Showing 87 items matching "hunted down"
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Flagstaff Hill Maritime Museum and VillageBook - Novel, The Mystery of Edwin Drood and Other Stories
... ...Hunted Down...Master Humphrey's Clock 2. Hunted Down (1860) 3. Holiday Romance 4. George Silverman's Explanation...Master Humphrey's Clock 2. Hunted Down (1860) 3. Holiday Romance 4. George Silverman's Explanation The Mystery of Edwin Drood and Other Stories Book Novel ...The Mystery of Edwin Drood and Other Stories Author: Charles Dickens Publisher: Chapman & Hall Ltd Further Information: Other stories are 1. Master Humphrey's Clock 2. Hunted Down (1860) 3. Holiday Romance 4. George Silverman's Explanationflagstaff hill, warrnambool, shipwrecked coast, flagstaff hill maritime museum, maritime museum, shipwreck coast, flagstaff hill maritime village, great ocean road, book, pattison collection, warrnambool library, warrnambool mechanics’ institute, ralph eric pattison, corangamite regional library service, warrnambool city librarian, mechanics’ institute library, victorian library board, warrnambool books and records, warrnambool children’s library, the mystery of edwin drood and other stories, master humphrey's clock, hunted down, holiday romance, george silverman's explanation -
Federation University Art CollectionSculpture, 'Vehicle of Transience' by Anderson Hunt, 1994-1995
... Anderson HUNT Anderson Hunt is associated with Down Street Studios. He studied a Graduate Diploma in Visual Art at the Gippsland Centre of Art and Design (GCAD) This work was purchased by the Gippsland Campus Enhancement Project, 1996....Federation University Art Collection Artworks are displayed at Federation University Australia campuses at Ballarat, Gippsland (Churchill), Stawell and Horsham. goldfields Anderson HUNT Anderson Hunt is associated with Down Street Studios. He studied a Graduate Diploma in Visual Art at the Gippsland Centre of Art and Design (GCAD) This work was purchased by the Gippsland Campus Enhancement Project, 1996. artist artwork anderson hunt sculpture gippsland campus alumni 'Vehicle of Transience' by Anderson Hunt Sculpture ...Anderson HUNT Anderson Hunt is associated with Down Street Studios. He studied a Graduate Diploma in Visual Art at the Gippsland Centre of Art and Design (GCAD) This work was purchased by the Gippsland Campus Enhancement Project, 1996.artist, artwork, anderson hunt, sculpture, gippsland campus, alumni -
Flagstaff Hill Maritime Museum and VillageBook, Jimmy of Murrumbar, circa 1938
... Oakley (Edward Daniel Oakley 1877-1962), is a children’s adventure story about an Australian indigenous boy who was educated in a mission and worked as a 'black tracker’ for the police to hunt down criminals in the bush and mountain region of the Grampian Ranges of Victoria. ...Oakley (Edward Daniel Oakley 1877-1962), is a children’s adventure story about an Australian indigenous boy who was educated in a mission and worked as a 'black tracker’ for the police to hunt down criminals in the bush and mountain region of the Grampian Ranges of Victoria. ...This novel, Jimmy of 'Murrumbar' by E.D. Oakley (Edward Daniel Oakley 1877-1962), is a children’s adventure story about an Australian indigenous boy who was educated in a mission and worked as a 'black tracker’ for the police to hunt down criminals in the bush and mountain region of the Grampian Ranges of Victoria. Oakely's parents, Thomas and Eliza, had a farm in Warrnambool called 'Oakbank'. Oakley worked at various jobs in the local district and later had his own wheat farms. When he returned to Warrnambool to build commercial premises and work in the retail industry. His influence encouraged Fletcher Jones to open a shop in Warrnambool. His novel - Jimmy of 'Murrumbar' - was written after he retired. The copy of the book in our collection does not have a publication date. The National Library of Australia lists two editions of this book, one dated 1938, the other is undetermined. It was published as part of a series called the Marcie Muir Collection of Australian children's books. No reference has been found to the author or any further works by him/her. The novel was reprinted as a reproduction in 2017 as a paperback and a leather bound edition 'Classic Reprint' by Forgotten Books. WARRNAMBOOL MECHANICS’ INSTITUTE Warrnambool's Mechanics' Institute (or Institution as it was sometimes called) was one of the earliest in Victoria. On 17th October 1853, a meeting was held where it was resolved to request the Lieutenant Governor of the Colony to grant land for the erection of a Mechanics' Institutes building. A committee was formed at the meeting and Richard Osburne chaired the first meeting of this committee. The land on the North West corner of Banyan and Merri Streets was granted but there were no funds to erect the building. The Formal Rights of the Warrnambool Mechanics' Institute's encompassed its aims and these were officially adopted in1859; "This Institution has for its object the diffusion of literary, scientific, and other useful knowledge amongst its members, excluding all controversial subjects, religious or political. These objects are sought to be obtained by means of a circulating library, a reading room, the establishment of classes, debates, and the occasional delivery of lectures on natural and experimental philosophy, mechanics, astronomy, chemistry, natural history, literature, and the useful and ornamental arts, particularly those which have a more immediate reference to the colony." The Warrnambool Mechanics' Institute opened its first reading room in November 1884 in the National School building at the corner of Banyan and Timor Streets. The Institute was funded by member subscription, payable on a quarterly, half-yearly or yearly basis. Samuel Hannaford, the Manager of the Warrnambool Bank of Australasia, was the first Honorary Secretary of the Mechanics' Institutes, and an early President and Vice-President. He also gave several of the early lectures in the Reading Room. Another early Secretary, Librarian and lecturer was Marmaduke Fisher, the teacher at the National School. Lecture topics included The Poets and Poetry of Ireland', 'The Birth and Development of the Earth', 'The Vertebrae - with Remarks on the pleasures resulting from the study of Natural History' and 'Architecture'. In 1856 the Reading Room was moved to James Hider's shop in Timor Street, and by 1864 it was located in the bookshop of Davies and Read. In the 1860's the Mechanics' Institute struggled as membership waned but in 1866, after a series of fundraising efforts, the committee was able to purchase land in Liebig Street, on a site then called Market Square, between the weighbridge and the fire station. A Mechanics' Institute building was opened at this site in August 1871. The following year four more rooms were added to the main Reading Room and in 1873 the Artisan School of Design was incorporated into the Institute. The same year Joseph Archibald established a Museum; however, it deteriorated when he was transferred to Bendigo in 1877. In 1880, with Archibald's return to Warrnambool, the Museum was re-established, and in 1885 a new building was built at the back of the Institute to accommodate the re-created School of Design, the Art Gallery and the Museum. In 1887 the Museum section was moved to the former courthouse in Timor Street (for some time the walls of the building formed part of the TAFE cafeteria but all is now demolished)). In 1911 the Museum was transferred back to the original building and the management of the Mechanics' Institute was handed over to the Warrnambool City Council. The Museum and Art Gallery became one and housed many fine works of art, and the Library continued to grow. The building was well patronised, with records showing that at the beginning of the 20th century there were between 500 and 800 visitors. During World War One the monthly figures were in the thousands, with 3,400 people visiting in January 1915. The Museum was a much loved Institution in Warrnambool until the contents of the Museum and Art Gallery were removed to make room for the Warrnambool City Council Engineers' Department. The contents were stored but many of the items were scattered or lost. When the original building was demolished the site became occupied by the Civic Centre, which included the new City Library. (The library was temporarily located in the old Palais building in Koroit Street.) In the process of reorganisation the Collection was distributed amongst the community groups: -The new City Library took some of the historical books and some important documents, historic photographs and newspapers. -The Art Gallery kept the 19th Century art collection and some of the artefacts from the museum. -The Historical Society has some items -The State Museum has some items -Some items were destroyed -Flagstaff Hill Maritime Village has old newspapers, Government Gazettes, most of the Mechanics' Institute Library, ledgers and documents connected to the Mechanics' Institute Library, some framed and unframed artworks and some photographs. The Warrnambool Mechanics' Institute Library book collection is deemed to be of great importance because it is one of the few collections in an almost intact state, and many of the books are now very rare and of great value. This novel is historically significant for its story, representing the changes to Australian Indigenous culture and life after colonisation. The book appears to be that this is the only work written by E.D. Oakley. It is locally significant for being written by an early prominent Warrnambool family member. Jimmy of Murrumbar : A Story of the Amazing Ability and Fidelity of an Australian Black Tracker Author: E D Oakley (Edward Daniel Oakley) Publisher: Osboldstone & Co, Pty Ltd, Melbourne, Australia The label on the spine with typed text R.A. 823 OAK The front loose endpaper has a sticker from Warrnambool Children’s Library shipwrecked-coast, flagstaff-hill, flagstaff-hill-maritime-museum, warrnambool, maritime-museum, shipwreck-coast, flagstaff-hill-maritime-village, shipwrecked-artefact, book, pattison collection, warrnambool library, warrnambool mechanics’ institute, ralph eric pattison, corangamite regional library service, warrnambool city librarian, mechanics’ institute library, victorian library board, warrnambool books and records, warrnambool children’s library, jimmy of murrumbar, e d oakley, edward daniel oakley, novel, young adult novel, juvenile fiction, australian black tracker, law enforcement - police trackers, tracking and trailing in australia, australian bush, grampian ranges in victoria, warrnambool history, fletcher jones, oakbank, thomas and eliza oakley, indigenous literature, indigenous australians -
Glen Eira Historical SocietyArticle - Olympic Games 2000
... Glen Eira Historical Society 965 Glen Huntly Rd Caulfield VIC 3162 melbourne This file contains one item relating to the torch relay of the 2000 Olympic Games: 1/A newspaper article from the Glen Eira News, Vol. 44, September 2000, describing the events of a leg of the Olympic torch relay that went down Hawthorn Road, between Dandenong Road and North Road. ...This file contains one item relating to the torch relay of the 2000 Olympic Games: 1/A newspaper article from the Glen Eira News, Vol. 44, September 2000, describing the events of a leg of the Olympic torch relay that went down Hawthorn Road, between Dandenong Road and North Road. The article includes 6 colour photographs taken by Bernie Bickerton and an article written by primary school student Daniel Kontrobarsky describing the event. Author unknown.hawthorn road, north road, dandenong road, olympic games, olympic torch, children, councillors, athletes, aged people, bickerton bernie, gardenvale primary school, kontrobarsky daniel, police, caulfield, caulfield north, caulfield south, glen eira, irwin chris, brown damien, stacey jay, cordingley louise, bentleigh east, glen eira town hall, primary schools, camden community, rosstown community, torres ron, local officials and employees -
Glen Eira Historical SocietyNewspaper - DUNERA BOYS’ PORTRAITS
... One item about these unidentified drawings 1/ Jenny Ling wrote ‘Dunera Boys Hunt’ article in Caulfield Port Phillip Leader of 08/09/2011. Melbourne Tour guide Shelley Cohney (of Caulfield North) is trying to track down the subjects of a series of 28 pencil portraits of ‘Dunera Boys’ and asks for assistance. ...Glen Eira Historical Society 965 Glen Huntly Rd Caulfield VIC 3162 melbourne One item about these unidentified drawings 1/ Jenny Ling wrote ‘Dunera Boys Hunt’ article in Caulfield Port Phillip Leader of 08/09/2011. Melbourne Tour guide Shelley Cohney (of Caulfield North) is trying to track down the subjects of a series of 28 pencil portraits of ‘Dunera Boys’ and asks for assistance. ...One item about these unidentified drawings 1/ Jenny Ling wrote ‘Dunera Boys Hunt’ article in Caulfield Port Phillip Leader of 08/09/2011. Melbourne Tour guide Shelley Cohney (of Caulfield North) is trying to track down the subjects of a series of 28 pencil portraits of ‘Dunera Boys’ and asks for assistance. The portraits were done by Theodore Engel at the Tatura internment camp and found by Shelley in a Caulfield person’s deceased estate.dunera boys, world war 1939-1945, caulfield north, internment, engel theodore, artists, ling jenny, caulfield/ port phillip press, cohney shelley, portraits, drawing, death and dying -
Glen Eira Historical SocietyArticle - Regent Street, 12, Elsternwick
... Glen Eira Historical Society 965 Glen Huntly Rd Caulfield VIC 3162 melbourne Three documents about this property: 1/A newspaper ad, dated 02/11/2005, gives a description of the home; 2/History of home as a run-down property and on current home owners, and the reasons for the renovations they did are covered in domain article of 09-15/11/2005; 3/Additional information included from Sands and McDougalls lists residents in 1923, 1948, 1960 and 1970 (in Claire Barton's handwriting as researcher). ...Three documents about this property: 1/A newspaper ad, dated 02/11/2005, gives a description of the home; 2/History of home as a run-down property and on current home owners, and the reasons for the renovations they did are covered in domain article of 09-15/11/2005; 3/Additional information included from Sands and McDougalls lists residents in 1923, 1948, 1960 and 1970 (in Claire Barton's handwriting as researcher).regent street, verandahs, cast iron work, builders, paterson christine, elsternwick, tosin paul, giannaris christine, biggin and scott, real estate agents, 'windsor', house names, stavrakis bill, hoos george, slate tiles, denning ethel, victorian style, paterson greg, makvshev e. -
Glen Eira Historical SocietyDocument - Shoobra Road, 7/11, Elsternwick
... Glen Eira Historical Society 965 Glen Huntly Rd Caulfield VIC 3162 melbourne Real Estate document dated 18/04/2003 from unknown source for forthcoming sale of strata titled flat. Brief flat interior details. Elsternwick Shoobra Rd Real estate agents Downes ...Real Estate document dated 18/04/2003 from unknown source for forthcoming sale of strata titled flat. Brief flat interior details.elsternwick, shoobra rd, real estate agents, downes derek, piotrowski lucy, bricks, flats -
The Beechworth Burke MuseumAnimal specimen - Diurnal Owl / Ural Owl
... down upon their prey from. Their diet includes amphibians, small mammals, reptiles and insects that they also hunt from small holes in the ground. ...down upon their prey from. Their diet includes amphibians, small mammals, reptiles and insects that they also hunt from small holes in the ground. ...Little owls (also known as the owl of Athena or owl of Minerva) usually prefer the warmer parts of Europe, North Africa and Asia, enjoying open country and agricultural land with high trees to swoop down upon their prey from. Their diet includes amphibians, small mammals, reptiles and insects that they also hunt from small holes in the ground. Little owls are monogamous and while they're usually solitary creatures, pairs who breed together will often stay together past breeding season. An Athene Noctua would usually be slightly smaller than this specimen. The colouring of browns and whites speckling the feathers is an accurate representation however the posture of a typical little owl would be more crouched, not so thin and tall. This specimen is part of a collection of almost 200 animal specimens that were originally acquired as skins from various institutions across Australia, including the Australian Museum in Sydney and the National Museum of Victoria (known as Museums Victoria since 1983), as well as individuals such as amateur anthropologist Reynell Eveleigh Johns between 1860-1880. These skins were then mounted by members of the Burke Museum Committee and put-on display in the formal space of the Museum’s original exhibition hall where they continue to be on display. This display of taxidermy mounts initially served to instruct visitors to the Burke Museum of the natural world around them, today it serves as an insight into the collecting habits of the 19th century.This specimen is part of a significant and rare taxidermy mount collection in the Burke Museum. This collection is scientifically and culturally important for reminding us of how science continues to shape our understanding of the modern world. They demonstrate a capacity to hold evidence of how Australia’s fauna history existed in the past and are potentially important for future environmental research. This collection continues to be on display in the Museum and has become a key part to interpreting the collecting habits of the 19th century.This Athene Nuctua (The Little Owl) is dark to medium brown with white specks all over the feathers. Large white spots are located on their wings/back. This specimen has some inconsistencies with how it has been styalised by the taxidermist. The tail curls in under itself where it should be straight and flat. There are several feathers which appear disheveled on the chest, shoulder and wing. The specimen is mounted on a wooden stand with paper and metal tags attached to the legs. Swing tag: 41. / Allied to / Diurnal Owl / Catalogue page 53 / Other tag: 31 / Strix Noctua / Holland Metal tag: 4061 /taxidermy mount, taxidermy, animalia, burke museum, beechworth, australian museum, skin, bird, owl, little owl, athene noctua -
Bendigo Historical Society Inc.Memorabilia - GREEN BROS BUILDING CONTRACTORS ADVERTISING BROCHURE
... down at the words. Bottom right is a caricature of a smiling house. Open the brochure and it tells you about the company *G. B.'Is The Buy Word For All Types of Buildings - Houses, Hall, Garage or Shearers' Hut. See Green Bros Always. Green Bros Building Contractors Epsom, Via Bendigo, Phone 26 Huntly...down at the words. Bottom right is a caricature of a smiling house. Open the brochure and it tells you about the company *G. B.'Is The Buy Word For All Types of Buildings - Houses, Hall, Garage or Shearers' Hut. See Green Bros Always. Green Bros Building Contractors Epsom, Via Bendigo, Phone 26 Huntly ...BHS CollectionGreen Bros building Contractors Advertising Brochure:-On cream paper background with red, black and blue print, has *Get The Things You Want - and like. Across these words in red ink is *Build with Green Bros* Top left corner in a circle is a man and women's faces smiling down at the words. Bottom right is a caricature of a smiling house. Open the brochure and it tells you about the company *G. B.'Is The Buy Word For All Types of Buildings - Houses, Hall, Garage or Shearers' Hut. See Green Bros Always. Green Bros Building Contractors Epsom, Via Bendigo, Phone 26 Huntly Branch: Henry St Deniliquin, Phone Deniliquin 88. Also is a drawing of a house plan. On the left side is 4 large red dots down the page and caricature of people enjoying themselves. On the Back is Advertising for House Moving Specialists. Bendigo Heavy Haulage Co. Box 625buildings, house, green bros builders., green bros builders. bendigo heavy haulage co. -
Flagstaff Hill Maritime Museum and VillageAnimal specimen - Whale Vertebrae, Undetermined
... hunt of specific species of whales. Adventure may have been the draw for some whalers, but for the captains who owned whaling ships, and the investors which financed voyages, there was a considerable monetary payoff. The gigantic carcasses of whales were chopped and boiled down...hunt of specific species of whales. Adventure may have been the draw for some whalers, but for the captains who owned whaling ships, and the investors which financed voyages, there was a considerable monetary payoff. The gigantic carcasses of whales were chopped and boiled down ...Prior to carrying out a detailed condition report of the cetacean skeletons, it is useful to have an understanding of the materials we are likely to encounter, in terms of structure and chemistry. This entry invites you to join in learning about the composition of whale bone and oil. Whale bone (Cetacean) bone is comprised of a composite structure of both an inorganic matrix of mainly hydroxylapatite (a calcium phosphate mineral), providing strength and rigidity, as well as an organic protein ‘scaffolding’ of mainly collagen, facilitating growth and repair (O’Connor 2008, CCI 2010). Collagen is also the structural protein component in cartilage between the whale vertebrae and attached to the fins of both the Killer Whale and the Dolphin. Relative proportions in the bone composition (affecting density), are linked with the feeding habits and mechanical stresses typically endured by bones of particular whale types. A Sperm Whale (Physeter macrocephalus Linnaeus, 1758) skeleton (toothed) thus has a higher mineral value (~67%) than a Fin Whale (Balaenoptera physalus Linnaeus, 1758) (baleen) (~60%) (Turner Walker 2012). The internal structure of bone can be divided into compact and cancellous bone. In whales, load-bearing structures such as mandibles and upper limb bones (e.g. humerus, sternum) are largely composed of compact bone (Turner Walker 2012). This consists of lamella concentrically deposited around the longitudinal axis and is permeated by fluid carrying channels (O’Connor 2008). Cancellous (spongy) bone, with a highly porous angular network of trabeculae, is less stiff and thus found in whale ribs and vertebrae (Turner Walker 2012). Whale oil Whales not only carry a thick layer of fat (blubber) in the soft tissue of their body for heat insulation and as a food store while they are alive, but also hold large oil (lipid) reserves in their porous bones. Following maceration of the whale skeleton after death to remove the soft tissue, the bones retain a high lipid content (Higgs et. al 2010). Particularly bones with a spongy (porous) structure have a high capacity to hold oil-rich marrow. Comparative data of various whale species suggests the skull, particularly the cranium and mandible bones are particularly oil rich. Along the vertebral column, the lipid content is reduced, particularly in the thoracic vertebrae (~10-25%), yet greatly increases from the lumbar to the caudal vertebrae (~40-55%). The chest area (scapula, sternum and ribs) show a mid-range lipid content (~15-30%), with vertically orientated ribs being more heavily soaked lower down (Turner Walker 2012, Higgs et. al 2010). Whale oil is largely composed of triglycerides (molecules of fatty acids attached to a glycerol molecule). In Arctic whales a higher proportion of unsaturated, versus saturated fatty acids make up the lipid. Unsaturated fatty acids (with double or triple carbon bonds causing chain kinks, preventing close packing (solidifying) of molecules), are more likely to be liquid (oil), versus solid (fat) at room temperature (Smith and March 2007). Objects Made From the Whaling Industry We all know that men set forth in sailing ships and risked their lives to harpoon whales on the open seas throughout the 1800s. And while Moby Dick and other tales have made whaling stories immortal, people today generally don't appreciate that the whalers were part of a well-organized industry. The ships that set out from ports in New England roamed as far as the Pacific in hunt of specific species of whales. Adventure may have been the draw for some whalers, but for the captains who owned whaling ships, and the investors which financed voyages, there was a considerable monetary payoff. The gigantic carcasses of whales were chopped and boiled down and turned into products such as the fine oil needed to lubricate increasing advanced machine tools. And beyond the oil derived from whales, even their bones, in an era before the invention of plastic, was used to make a wide variety of consumer goods. In short, whales were a valuable natural resource the same as wood, minerals, or petroleum we now pump from the ground. Oil From Whale’s Blubber Oil was the main product sought from whales, and it was used to lubricate machinery and to provide illumination by burning it in lamps. When a whale was killed, it was towed to the ship and its blubber, the thick insulating fat under its skin, would be peeled and cut from its carcass in a process known as “flensing.” The blubber was minced into chunks and boiled in large vats on board the whaling ship, producing oil. The oil taken from whale blubber was packaged in casks and transported back to the whaling ship’s home port (such as New Bedford, Massachusetts, the busiest American whaling port in the mid-1800s). From the ports it would be sold and transported across the country and would find its way into a huge variety of products. Whale oil, in addition to be used for lubrication and illumination, was also used to manufacture soaps, paint, and varnish. Whale oil was also utilized in some processes used to manufacture textiles and rope. Spermaceti, a Highly Regarded Oil A peculiar oil found in the head of the sperm whale, spermaceti, was highly prized. The oil was waxy, and was commonly used in making candles. In fact, candles made of spermaceti were considered the best in the world, producing a bright clear flame without an excess of smoke. Spermaceti was also used, distilled in liquid form, as an oil to fuel lamps. The main American whaling port, New Bedford, Massachusetts, was thus known as "The City That Lit the World." When John Adams was the ambassador to Great Britain before serving as president he recorded in his diary a conversation about spermaceti he had with the British Prime Minister William Pitt. Adams, keen to promote the New England whaling industry, was trying to convince the British to import spermaceti sold by American whalers, which the British could use to fuel street lamps. The British were not interested. In his diary, Adams wrote that he told Pitt, “the fat of the spermaceti whale gives the clearest and most beautiful flame of any substance that is known in nature, and we are surprised you prefer darkness, and consequent robberies, burglaries, and murders in your streets to receiving as a remittance our spermaceti oil.” Despite the failed sales pitch John Adams made in the late 1700s, the American whaling industry boomed in the early to mid-1800s. And spermaceti was a major component of that success. Spermaceti could be refined into a lubricant that was ideal for precision machinery. The machine tools that made the growth of industry possible in the United States were lubricated, and essentially made possible, by oil derived from spermaceti. Whalebone The bones and teeth of various species of whales were used in a number of products, many of them common implements in a 19th century household. Whales are said to have produced “the plastic of the 1800s.” The bone of the whale which was most commonly used wasn’t technically a bone, it was baleen, a hard material arrayed in large plates, like gigantic combs, in the mouths of some species of whales. The purpose of the baleen is to act as a sieve, catching tiny organisms in sea water, which the whale consumes as food. As baleen was tough yet flexible, it could be used in a number of practical applications. And it became commonly known as whalebone. Perhaps the most common use of whalebone was in the manufacture of corsets, which fashionable ladies in the 1800s wore to compress their waistlines. One typical corset advertisement from the 1800s proudly proclaims, “Real Whalebone Only Used.” Whalebone was also used for collar stays, buggy whips, and toys. Its remarkable flexibility even caused it to be used as the springs in early typewriters. The comparison to plastic is apt. Think of common items which today might be made of plastic, and it's likely that similar items in the 1800s would have been made of whalebone. Baleen whales do not have teeth. But the teeth of other whales, such as the sperm whale, would be used as ivory in such products as chess pieces, piano keys, or the handles of walking sticks. Pieces of scrimshaw, or carved whale's teeth, would probably be the best remembered use of whale's teeth. However, the carved teeth were created to pass the time on whaling voyages and were never a mass production item. Their relative rarity, of course, is why genuine pieces of 19th century scrimshaw are considered to be valuable collectibles today. Reference: McNamara, Robert. "Objects Made From the Whaling Industry." ThoughtCo, Jul. 31, 2021, thoughtco.com/products-produced-from-whales-1774070.Whale bone during the 17th, 18th, 19th and early 20th centuries was an important industry providing an important commodity. Whales from these times provided everything from lighting & machine oils to using the animal's bones for use in corsets, collar stays, buggy whips, and many other everyday items then in use.Whale bone Vertebrae with advanced stage of calcification as indicated by deep pitting. Off white to grey.None.warrnambool, flagstaff-hill, flagstaff-hill-maritime-museum, maritime-museum, shipwreck-coast, flagstaff-hill-maritime-village, whale bones, whale skeleton, whales, whale bone, corsets, toys, whips, whaleling industry, maritime fishing, whalebone -
Flagstaff Hill Maritime Museum and VillageAnimal specimen - Whale Jaw Bone, Undetermined
... hunt of specific species of whales. Adventure may have been the draw for some whalers, but for the captains who owned whaling ships, and the investors which financed voyages, there was a considerable monetary payoff. The gigantic carcasses of whales were chopped and boiled down...hunt of specific species of whales. Adventure may have been the draw for some whalers, but for the captains who owned whaling ships, and the investors which financed voyages, there was a considerable monetary payoff. The gigantic carcasses of whales were chopped and boiled down ...Prior to carrying out a detailed condition report of the cetacean skeletons, it is useful to have an understanding of the materials we are likely to encounter, in terms of structure and chemistry. This entry invites you to join in learning about the composition of whale bone and oil. Whale bone (Cetacean) bone is comprised of a composite structure of both an inorganic matrix of mainly hydroxylapatite (a calcium phosphate mineral), providing strength and rigidity, as well as an organic protein ‘scaffolding’ of mainly collagen, facilitating growth and repair (O’Connor 2008, CCI 2010). Collagen is also the structural protein component in cartilage between the whale vertebrae and attached to the fins of both the Killer Whale and the Dolphin. Relative proportions in the bone composition (affecting density), are linked with the feeding habits and mechanical stresses typically endured by bones of particular whale types. A Sperm Whale (Physeter macrocephalus Linnaeus, 1758) skeleton (toothed) thus has a higher mineral value (~67%) than a Fin Whale (Balaenoptera physalus Linnaeus, 1758) (baleen) (~60%) (Turner Walker 2012). The internal structure of bone can be divided into compact and cancellous bone. In whales, load-bearing structures such as mandibles and upper limb bones (e.g. humerus, sternum) are largely composed of compact bone (Turner Walker 2012). This consists of lamella concentrically deposited around the longitudinal axis and is permeated by fluid carrying channels (O’Connor 2008). Cancellous (spongy) bone, with a highly porous angular network of trabeculae, is less stiff and thus found in whale ribs and vertebrae (Turner Walker 2012). Whale oil Whales not only carry a thick layer of fat (blubber) in the soft tissue of their body for heat insulation and as a food store while they are alive, but also hold large oil (lipid) reserves in their porous bones. Following maceration of the whale skeleton after death to remove the soft tissue, the bones retain a high lipid content (Higgs et. al 2010). Particularly bones with a spongy (porous) structure have a high capacity to hold oil-rich marrow. Comparative data of various whale species suggests the skull, particularly the cranium and mandible bones are particularly oil rich. Along the vertebral column, the lipid content is reduced, particularly in the thoracic vertebrae (~10-25%), yet greatly increases from the lumbar to the caudal vertebrae (~40-55%). The chest area (scapula, sternum and ribs) show a mid-range lipid content (~15-30%), with vertically orientated ribs being more heavily soaked lower down (Turner Walker 2012, Higgs et. al 2010). Whale oil is largely composed of triglycerides (molecules of fatty acids attached to a glycerol molecule). In Arctic whales a higher proportion of unsaturated, versus saturated fatty acids make up the lipid. Unsaturated fatty acids (with double or triple carbon bonds causing chain kinks, preventing close packing (solidifying) of molecules), are more likely to be liquid (oil), versus solid (fat) at room temperature (Smith and March 2007). Objects Made From the Whaling Industry We all know that men set forth in sailing ships and risked their lives to harpoon whales on the open seas throughout the 1800s. And while Moby Dick and other tales have made whaling stories immortal, people today generally don't appreciate that the whalers were part of a well-organized industry. The ships that set out from ports in New England roamed as far as the Pacific in hunt of specific species of whales. Adventure may have been the draw for some whalers, but for the captains who owned whaling ships, and the investors which financed voyages, there was a considerable monetary payoff. The gigantic carcasses of whales were chopped and boiled down and turned into products such as the fine oil needed to lubricate increasing advanced machine tools. And beyond the oil derived from whales, even their bones, in an era before the invention of plastic, was used to make a wide variety of consumer goods. In short, whales were a valuable natural resource the same as wood, minerals, or petroleum we now pump from the ground. Oil From Whale’s Blubber Oil was the main product sought from whales, and it was used to lubricate machinery and to provide illumination by burning it in lamps. When a whale was killed, it was towed to the ship and its blubber, the thick insulating fat under its skin, would be peeled and cut from its carcass in a process known as “flensing.” The blubber was minced into chunks and boiled in large vats on board the whaling ship, producing oil. The oil taken from whale blubber was packaged in casks and transported back to the whaling ship’s home port (such as New Bedford, Massachusetts, the busiest American whaling port in the mid-1800s). From the ports it would be sold and transported across the country and would find its way into a huge variety of products. Whale oil, in addition to be used for lubrication and illumination, was also used to manufacture soaps, paint, and varnish. Whale oil was also utilized in some processes used to manufacture textiles and rope. Spermaceti, a Highly Regarded Oil A peculiar oil found in the head of the sperm whale, spermaceti, was highly prized. The oil was waxy, and was commonly used in making candles. In fact, candles made of spermaceti were considered the best in the world, producing a bright clear flame without an excess of smoke. Spermaceti was also used, distilled in liquid form, as an oil to fuel lamps. The main American whaling port, New Bedford, Massachusetts, was thus known as "The City That Lit the World." When John Adams was the ambassador to Great Britain before serving as president he recorded in his diary a conversation about spermaceti he had with the British Prime Minister William Pitt. Adams, keen to promote the New England whaling industry, was trying to convince the British to import spermaceti sold by American whalers, which the British could use to fuel street lamps. The British were not interested. In his diary, Adams wrote that he told Pitt, “the fat of the spermaceti whale gives the clearest and most beautiful flame of any substance that is known in nature, and we are surprised you prefer darkness, and consequent robberies, burglaries, and murders in your streets to receiving as a remittance our spermaceti oil.” Despite the failed sales pitch John Adams made in the late 1700s, the American whaling industry boomed in the early to mid-1800s. And spermaceti was a major component of that success. Spermaceti could be refined into a lubricant that was ideal for precision machinery. The machine tools that made the growth of industry possible in the United States were lubricated, and essentially made possible, by oil derived from spermaceti. Baleen, or "Whalebone" The bones and teeth of various species of whales were used in a number of products, many of them common implements in a 19th century household. Whales are said to have produced “the plastic of the 1800s.” The "bone" of the whale which was most commonly used wasn’t technically a bone, it was baleen, a hard material arrayed in large plates, like gigantic combs, in the mouths of some species of whales. The purpose of the baleen is to act as a sieve, catching tiny organisms in sea water, which the whale consumes as food. As baleen was tough yet flexible, it could be used in a number of practical applications. And it became commonly known as "whalebone." Perhaps the most common use of whalebone was in the manufacture of corsets, which fashionable ladies in the 1800s wore to compress their waistlines. One typical corset advertisement from the 1800s proudly proclaims, “Real Whalebone Only Used.” Whalebone was also used for collar stays, buggy whips, and toys. Its remarkable flexibility even caused it to be used as the springs in early typewriters. The comparison to plastic is apt. Think of common items which today might be made of plastic, and it's likely that similar items in the 1800s would have been made of whalebone. Baleen whales do not have teeth. But the teeth of other whales, such as the sperm whale, would be used as ivory in such products as chess pieces, piano keys, or the handles of walking sticks. Pieces of scrimshaw, or carved whale's teeth, would probably be the best remembered use of whale's teeth. However, the carved teeth were created to pass the time on whaling voyages and were never a mass production item. Their relative rarity, of course, is why genuine pieces of 19th century scrimshaw are considered to be valuable collectibles today. Reference: McNamara, Robert. "Objects Made From the Whaling Industry." ThoughtCo, Jul. 31, 2021, thoughtco.com/products-produced-from-whales-1774070.Whale bone during the 17th, 18th, 19th and early 20th centuries was an important industry providing an important commodity. Whales from these times provided everything from lighting & machine oils to using the animal's bones for use in corsets, collar stays, buggy whips, and many other everyday items then in use.Whale jaw bone one side, long & curved with advanced stage of calcification off white to grey.None.warrnambool, flagstaff-hill, flagstaff-hill-maritime-museum, maritime-museum, shipwreck-coast, flagstaff-hill-maritime-village, whale bones, whale skeleton, whales, whale bone, corsets, toys, whips, whaleling industry, maritime fishing, whalebone -
Flagstaff Hill Maritime Museum and VillageAnimal specimen - Whale Rib Bone, Undetermined
... hunt of specific species of whales. Adventure may have been the draw for some whalers, but for the captains who owned whaling ships, and the investors which financed voyages, there was a considerable monetary payoff. The gigantic carcasses of whales were chopped and boiled down...hunt of specific species of whales. Adventure may have been the draw for some whalers, but for the captains who owned whaling ships, and the investors which financed voyages, there was a considerable monetary payoff. The gigantic carcasses of whales were chopped and boiled down ...Prior to carrying out a detailed condition report of the cetacean skeletons, it is useful to have an understanding of the materials we are likely to encounter, in terms of structure and chemistry. This entry invites you to join in learning about the composition of whale bone and oil. Whale bone (Cetacean) bone is comprised of a composite structure of both an inorganic matrix of mainly hydroxylapatite (a calcium phosphate mineral), providing strength and rigidity, as well as an organic protein ‘scaffolding’ of mainly collagen, facilitating growth and repair (O’Connor 2008, CCI 2010). Collagen is also the structural protein component in cartilage between the whale vertebrae and attached to the fins of both the Killer Whale and the Dolphin. Relative proportions in the bone composition (affecting density), are linked with the feeding habits and mechanical stresses typically endured by bones of particular whale types. A Sperm Whale (Physeter macrocephalus Linnaeus, 1758) skeleton (toothed) thus has a higher mineral value (~67%) than a Fin Whale (Balaenoptera physalus Linnaeus, 1758) (baleen) (~60%) (Turner Walker 2012). The internal structure of bone can be divided into compact and cancellous bone. In whales, load-bearing structures such as mandibles and upper limb bones (e.g. humerus, sternum) are largely composed of compact bone (Turner Walker 2012). This consists of lamella concentrically deposited around the longitudinal axis and is permeated by fluid carrying channels (O’Connor 2008). Cancellous (spongy) bone, with a highly porous angular network of trabeculae, is less stiff and thus found in whale ribs and vertebrae (Turner Walker 2012). Whale oil Whales not only carry a thick layer of fat (blubber) in the soft tissue of their body for heat insulation and as a food store while they are alive, but also hold large oil (lipid) reserves in their porous bones. Following maceration of the whale skeleton after death to remove the soft tissue, the bones retain a high lipid content (Higgs et. al 2010). Particularly bones with a spongy (porous) structure have a high capacity to hold oil-rich marrow. Comparative data of various whale species suggests the skull, particularly the cranium and mandible bones are particularly oil rich. Along the vertebral column, the lipid content is reduced, particularly in the thoracic vertebrae (~10-25%), yet greatly increases from the lumbar to the caudal vertebrae (~40-55%). The chest area (scapula, sternum and ribs) show a mid-range lipid content (~15-30%), with vertically orientated ribs being more heavily soaked lower down (Turner Walker 2012, Higgs et. al 2010). Whale oil is largely composed of triglycerides (molecules of fatty acids attached to a glycerol molecule). In Arctic whales a higher proportion of unsaturated, versus saturated fatty acids make up the lipid. Unsaturated fatty acids (with double or triple carbon bonds causing chain kinks, preventing close packing (solidifying) of molecules), are more likely to be liquid (oil), versus solid (fat) at room temperature (Smith and March 2007). Objects Made From the Whaling Industry We all know that men set forth in sailing ships and risked their lives to harpoon whales on the open seas throughout the 1800s. And while Moby Dick and other tales have made whaling stories immortal, people today generally don't appreciate that the whalers were part of a well-organized industry. The ships that set out from ports in New England roamed as far as the Pacific in hunt of specific species of whales. Adventure may have been the draw for some whalers, but for the captains who owned whaling ships, and the investors which financed voyages, there was a considerable monetary payoff. The gigantic carcasses of whales were chopped and boiled down and turned into products such as the fine oil needed to lubricate increasing advanced machine tools. And beyond the oil derived from whales, even their bones, in an era before the invention of plastic, was used to make a wide variety of consumer goods. In short, whales were a valuable natural resource the same as wood, minerals, or petroleum we now pump from the ground. Oil From Whale’s Blubber Oil was the main product sought from whales, and it was used to lubricate machinery and to provide illumination by burning it in lamps. When a whale was killed, it was towed to the ship and its blubber, the thick insulating fat under its skin, would be peeled and cut from its carcass in a process known as “flensing.” The blubber was minced into chunks and boiled in large vats on board the whaling ship, producing oil. The oil taken from whale blubber was packaged in casks and transported back to the whaling ship’s home port (such as New Bedford, Massachusetts, the busiest American whaling port in the mid-1800s). From the ports it would be sold and transported across the country and would find its way into a huge variety of products. Whale oil, in addition to be used for lubrication and illumination, was also used to manufacture soaps, paint, and varnish. Whale oil was also utilized in some processes used to manufacture textiles and rope. Spermaceti, a Highly Regarded Oil A peculiar oil found in the head of the sperm whale, spermaceti, was highly prized. The oil was waxy, and was commonly used in making candles. In fact, candles made of spermaceti were considered the best in the world, producing a bright clear flame without an excess of smoke. Spermaceti was also used, distilled in liquid form, as an oil to fuel lamps. The main American whaling port, New Bedford, Massachusetts, was thus known as "The City That Lit the World." When John Adams was the ambassador to Great Britain before serving as president he recorded in his diary a conversation about spermaceti he had with the British Prime Minister William Pitt. Adams, keen to promote the New England whaling industry, was trying to convince the British to import spermaceti sold by American whalers, which the British could use to fuel street lamps. The British were not interested. In his diary, Adams wrote that he told Pitt, “the fat of the spermaceti whale gives the clearest and most beautiful flame of any substance that is known in nature, and we are surprised you prefer darkness, and consequent robberies, burglaries, and murders in your streets to receiving as a remittance our spermaceti oil.” Despite the failed sales pitch John Adams made in the late 1700s, the American whaling industry boomed in the early to mid-1800s. And spermaceti was a major component of that success. Spermaceti could be refined into a lubricant that was ideal for precision machinery. The machine tools that made the growth of industry possible in the United States were lubricated, and essentially made possible, by oil derived from spermaceti. Baleen, or "Whalebone" The bones and teeth of various species of whales were used in a number of products, many of them common implements in a 19th century household. Whales are said to have produced “the plastic of the 1800s.” The "bone" of the whale which was most commonly used wasn’t technically a bone, it was baleen, a hard material arrayed in large plates, like gigantic combs, in the mouths of some species of whales. The purpose of the baleen is to act as a sieve, catching tiny organisms in sea water, which the whale consumes as food. As baleen was tough yet flexible, it could be used in a number of practical applications. And it became commonly known as "whalebone." Perhaps the most common use of whalebone was in the manufacture of corsets, which fashionable ladies in the 1800s wore to compress their waistlines. One typical corset advertisement from the 1800s proudly proclaims, “Real Whalebone Only Used.” Whalebone was also used for collar stays, buggy whips, and toys. Its remarkable flexibility even caused it to be used as the springs in early typewriters. The comparison to plastic is apt. Think of common items which today might be made of plastic, and it's likely that similar items in the 1800s would have been made of whalebone. Baleen whales do not have teeth. But the teeth of other whales, such as the sperm whale, would be used as ivory in such products as chess pieces, piano keys, or the handles of walking sticks. Pieces of scrimshaw, or carved whale's teeth, would probably be the best remembered use of whale's teeth. However, the carved teeth were created to pass the time on whaling voyages and were never a mass production item. Their relative rarity, of course, is why genuine pieces of 19th century scrimshaw are considered to be valuable collectibles today. Reference: McNamara, Robert. "Objects Made From the Whaling Industry." ThoughtCo, Jul. 31, 2021, thoughtco.com/products-produced-from-whales-1774070.Whale bone during the 17th, 18th, 19th and early 20th centuries was an important industry providing an important commodity. Whales from these times provided everything from lighting & machine oils to using the animal's bones for use in corsets, collar stays, buggy whips, and many other everyday items then in use.Whale rib bone with advanced stage of calcification as indicated by brittleness. None.warrnambool, flagstaff-hill, flagstaff-hill-maritime-museum, maritime-museum, shipwreck-coast, flagstaff-hill-maritime-village, whale bones, whale skeleton, whales, whale bone, corsets, toys, whips, whaleling industry, maritime fishing, whalebone -
Flagstaff Hill Maritime Museum and VillageAnimal specimen - Whale bone, Undetermined
... hunt of specific species of whales. Adventure may have been the draw for some whalers, but for the captains who owned whaling ships, and the investors which financed voyages, there was a considerable monetary payoff. The gigantic carcasses of whales were chopped and boiled down...hunt of specific species of whales. Adventure may have been the draw for some whalers, but for the captains who owned whaling ships, and the investors which financed voyages, there was a considerable monetary payoff. The gigantic carcasses of whales were chopped and boiled down ...Prior to carrying out a detailed condition report of the cetacean skeletons, it is useful to have an understanding of the materials we are likely to encounter, in terms of structure and chemistry. This entry invites you to join in learning about the composition of whale bone and oil. Whale bone (Cetacean) bone is comprised of a composite structure of both an inorganic matrix of mainly hydroxylapatite (a calcium phosphate mineral), providing strength and rigidity, as well as an organic protein ‘scaffolding’ of mainly collagen, facilitating growth and repair (O’Connor 2008, CCI 2010). Collagen is also the structural protein component in cartilage between the whale vertebrae and attached to the fins of both the Killer Whale and the Dolphin. Relative proportions in the bone composition (affecting density), are linked with the feeding habits and mechanical stresses typically endured by bones of particular whale types. A Sperm Whale (Physeter macrocephalus Linnaeus, 1758) skeleton (toothed) thus has a higher mineral value (~67%) than a Fin Whale (Balaenoptera physalus Linnaeus, 1758) (baleen) (~60%) (Turner Walker 2012). The internal structure of bone can be divided into compact and cancellous bone. In whales, load-bearing structures such as mandibles and upper limb bones (e.g. humerus, sternum) are largely composed of compact bone (Turner Walker 2012). This consists of lamella concentrically deposited around the longitudinal axis and is permeated by fluid carrying channels (O’Connor 2008). Cancellous (spongy) bone, with a highly porous angular network of trabeculae, is less stiff and thus found in whale ribs and vertebrae (Turner Walker 2012). Whale oil Whales not only carry a thick layer of fat (blubber) in the soft tissue of their body for heat insulation and as a food store while they are alive, but also hold large oil (lipid) reserves in their porous bones. Following maceration of the whale skeleton after death to remove the soft tissue, the bones retain a high lipid content (Higgs et. al 2010). Particularly bones with a spongy (porous) structure have a high capacity to hold oil-rich marrow. Comparative data of various whale species suggests the skull, particularly the cranium and mandible bones are particularly oil rich. Along the vertebral column, the lipid content is reduced, particularly in the thoracic vertebrae (~10-25%), yet greatly increases from the lumbar to the caudal vertebrae (~40-55%). The chest area (scapula, sternum and ribs) show a mid-range lipid content (~15-30%), with vertically orientated ribs being more heavily soaked lower down (Turner Walker 2012, Higgs et. al 2010). Whale oil is largely composed of triglycerides (molecules of fatty acids attached to a glycerol molecule). In Arctic whales a higher proportion of unsaturated, versus saturated fatty acids make up the lipid. Unsaturated fatty acids (with double or triple carbon bonds causing chain kinks, preventing close packing (solidifying) of molecules), are more likely to be liquid (oil), versus solid (fat) at room temperature (Smith and March 2007). Objects Made From the Whaling Industry We all know that men set forth in sailing ships and risked their lives to harpoon whales on the open seas throughout the 1800s. And while Moby Dick and other tales have made whaling stories immortal, people today generally don't appreciate that the whalers were part of a well-organized industry. The ships that set out from ports in New England roamed as far as the Pacific in hunt of specific species of whales. Adventure may have been the draw for some whalers, but for the captains who owned whaling ships, and the investors which financed voyages, there was a considerable monetary payoff. The gigantic carcasses of whales were chopped and boiled down and turned into products such as the fine oil needed to lubricate increasing advanced machine tools. And beyond the oil derived from whales, even their bones, in an era before the invention of plastic, was used to make a wide variety of consumer goods. In short, whales were a valuable natural resource the same as wood, minerals, or petroleum we now pump from the ground. Oil From Whale’s Blubber Oil was the main product sought from whales, and it was used to lubricate machinery and to provide illumination by burning it in lamps. When a whale was killed, it was towed to the ship and its blubber, the thick insulating fat under its skin, would be peeled and cut from its carcass in a process known as “flensing.” The blubber was minced into chunks and boiled in large vats on board the whaling ship, producing oil. The oil taken from whale blubber was packaged in casks and transported back to the whaling ship’s home port (such as New Bedford, Massachusetts, the busiest American whaling port in the mid-1800s). From the ports it would be sold and transported across the country and would find its way into a huge variety of products. Whale oil, in addition to be used for lubrication and illumination, was also used to manufacture soaps, paint, and varnish. Whale oil was also utilized in some processes used to manufacture textiles and rope. Spermaceti, a Highly Regarded Oil A peculiar oil found in the head of the sperm whale, spermaceti, was highly prized. The oil was waxy, and was commonly used in making candles. In fact, candles made of spermaceti were considered the best in the world, producing a bright clear flame without an excess of smoke. Spermaceti was also used, distilled in liquid form, as an oil to fuel lamps. The main American whaling port, New Bedford, Massachusetts, was thus known as "The City That Lit the World." When John Adams was the ambassador to Great Britain before serving as president he recorded in his diary a conversation about spermaceti he had with the British Prime Minister William Pitt. Adams, keen to promote the New England whaling industry, was trying to convince the British to import spermaceti sold by American whalers, which the British could use to fuel street lamps. The British were not interested. In his diary, Adams wrote that he told Pitt, “the fat of the spermaceti whale gives the clearest and most beautiful flame of any substance that is known in nature, and we are surprised you prefer darkness, and consequent robberies, burglaries, and murders in your streets to receiving as a remittance our spermaceti oil.” Despite the failed sales pitch John Adams made in the late 1700s, the American whaling industry boomed in the early to mid-1800s. And spermaceti was a major component of that success. Spermaceti could be refined into a lubricant that was ideal for precision machinery. The machine tools that made the growth of industry possible in the United States were lubricated, and essentially made possible, by oil derived from spermaceti. Baleen, or "Whalebone" The bones and teeth of various species of whales were used in a number of products, many of them common implements in a 19th century household. Whales are said to have produced “the plastic of the 1800s.” The "bone" of the whale which was most commonly used wasn’t technically a bone, it was baleen, a hard material arrayed in large plates, like gigantic combs, in the mouths of some species of whales. The purpose of the baleen is to act as a sieve, catching tiny organisms in sea water, which the whale consumes as food. As baleen was tough yet flexible, it could be used in a number of practical applications. And it became commonly known as "whalebone." Perhaps the most common use of whalebone was in the manufacture of corsets, which fashionable ladies in the 1800s wore to compress their waistlines. One typical corset advertisement from the 1800s proudly proclaims, “Real Whalebone Only Used.” Whalebone was also used for collar stays, buggy whips, and toys. Its remarkable flexibility even caused it to be used as the springs in early typewriters. The comparison to plastic is apt. Think of common items which today might be made of plastic, and it's likely that similar items in the 1800s would have been made of whalebone. Baleen whales do not have teeth. But the teeth of other whales, such as the sperm whale, would be used as ivory in such products as chess pieces, piano keys, or the handles of walking sticks. Pieces of scrimshaw, or carved whale's teeth, would probably be the best remembered use of whale's teeth. However, the carved teeth were created to pass the time on whaling voyages and were never a mass production item. Their relative rarity, of course, is why genuine pieces of 19th century scrimshaw are considered to be valuable collectibles today. Reference: McNamara, Robert. "Objects Made From the Whaling Industry." ThoughtCo, Jul. 31, 2021, thoughtco.com/products-produced-from-whales-1774070.Whale bone was an important commodity, used in corsets, collar stays, buggy whips, and toys.Whale bone piece. Advanced stage of calcification as indicated by deep pitting. Off white to grey.None.flagstaff hill, warrnambool, shipwrecked-coast, flagstaff-hill, flagstaff-hill-maritime-museum, maritime-museum, shipwreck-coast, flagstaff-hill-maritime-village, whales, whale bone, corsets, toys, whips -
Flagstaff Hill Maritime Museum and VillageAnimal specimen - Whale bone, Undetermined
... hunt of specific species of whales. Adventure may have been the draw for some whalers, but for the captains who owned whaling ships, and the investors which financed voyages, there was a considerable monetary payoff. The gigantic carcasses of whales were chopped and boiled down...hunt of specific species of whales. Adventure may have been the draw for some whalers, but for the captains who owned whaling ships, and the investors which financed voyages, there was a considerable monetary payoff. The gigantic carcasses of whales were chopped and boiled down ...Prior to carrying out a detailed condition report of the cetacean skeletons, it is useful to have an understanding of the materials we are likely to encounter, in terms of structure and chemistry. This entry invites you to join in learning about the composition of whale bone and oil. Whale bone (Cetacean) bone is comprised of a composite structure of both an inorganic matrix of mainly hydroxylapatite (a calcium phosphate mineral), providing strength and rigidity, as well as an organic protein ‘scaffolding’ of mainly collagen, facilitating growth and repair (O’Connor 2008, CCI 2010). Collagen is also the structural protein component in cartilage between the whale vertebrae and attached to the fins of both the Killer Whale and the Dolphin. Relative proportions in the bone composition (affecting density), are linked with the feeding habits and mechanical stresses typically endured by bones of particular whale types. A Sperm Whale (Physeter macrocephalus Linnaeus, 1758) skeleton (toothed) thus has a higher mineral value (~67%) than a Fin Whale (Balaenoptera physalus Linnaeus, 1758) (baleen) (~60%) (Turner Walker 2012). The internal structure of bone can be divided into compact and cancellous bone. In whales, load-bearing structures such as mandibles and upper limb bones (e.g. humerus, sternum) are largely composed of compact bone (Turner Walker 2012). This consists of lamella concentrically deposited around the longitudinal axis and is permeated by fluid carrying channels (O’Connor 2008). Cancellous (spongy) bone, with a highly porous angular network of trabeculae, is less stiff and thus found in whale ribs and vertebrae (Turner Walker 2012). Whale oil Whales not only carry a thick layer of fat (blubber) in the soft tissue of their body for heat insulation and as a food store while they are alive, but also hold large oil (lipid) reserves in their porous bones. Following maceration of the whale skeleton after death to remove the soft tissue, the bones retain a high lipid content (Higgs et. al 2010). Particularly bones with a spongy (porous) structure have a high capacity to hold oil-rich marrow. Comparative data of various whale species suggests the skull, particularly the cranium and mandible bones are particularly oil rich. Along the vertebral column, the lipid content is reduced, particularly in the thoracic vertebrae (~10-25%), yet greatly increases from the lumbar to the caudal vertebrae (~40-55%). The chest area (scapula, sternum and ribs) show a mid-range lipid content (~15-30%), with vertically orientated ribs being more heavily soaked lower down (Turner Walker 2012, Higgs et. al 2010). Whale oil is largely composed of triglycerides (molecules of fatty acids attached to a glycerol molecule). In Arctic whales a higher proportion of unsaturated, versus saturated fatty acids make up the lipid. Unsaturated fatty acids (with double or triple carbon bonds causing chain kinks, preventing close packing (solidifying) of molecules), are more likely to be liquid (oil), versus solid (fat) at room temperature (Smith and March 2007). Objects Made From the Whaling Industry We all know that men set forth in sailing ships and risked their lives to harpoon whales on the open seas throughout the 1800s. And while Moby Dick and other tales have made whaling stories immortal, people today generally don't appreciate that the whalers were part of a well-organized industry. The ships that set out from ports in New England roamed as far as the Pacific in hunt of specific species of whales. Adventure may have been the draw for some whalers, but for the captains who owned whaling ships, and the investors which financed voyages, there was a considerable monetary payoff. The gigantic carcasses of whales were chopped and boiled down and turned into products such as the fine oil needed to lubricate increasing advanced machine tools. And beyond the oil derived from whales, even their bones, in an era before the invention of plastic, was used to make a wide variety of consumer goods. In short, whales were a valuable natural resource the same as wood, minerals, or petroleum we now pump from the ground. Oil From Whale’s Blubber Oil was the main product sought from whales, and it was used to lubricate machinery and to provide illumination by burning it in lamps. When a whale was killed, it was towed to the ship and its blubber, the thick insulating fat under its skin, would be peeled and cut from its carcass in a process known as “flensing.” The blubber was minced into chunks and boiled in large vats on board the whaling ship, producing oil. The oil taken from whale blubber was packaged in casks and transported back to the whaling ship’s home port (such as New Bedford, Massachusetts, the busiest American whaling port in the mid-1800s). From the ports it would be sold and transported across the country and would find its way into a huge variety of products. Whale oil, in addition to be used for lubrication and illumination, was also used to manufacture soaps, paint, and varnish. Whale oil was also utilized in some processes used to manufacture textiles and rope. Spermaceti, a Highly Regarded Oil A peculiar oil found in the head of the sperm whale, spermaceti, was highly prized. The oil was waxy, and was commonly used in making candles. In fact, candles made of spermaceti were considered the best in the world, producing a bright clear flame without an excess of smoke. Spermaceti was also used, distilled in liquid form, as an oil to fuel lamps. The main American whaling port, New Bedford, Massachusetts, was thus known as "The City That Lit the World." When John Adams was the ambassador to Great Britain before serving as president he recorded in his diary a conversation about spermaceti he had with the British Prime Minister William Pitt. Adams, keen to promote the New England whaling industry, was trying to convince the British to import spermaceti sold by American whalers, which the British could use to fuel street lamps. The British were not interested. In his diary, Adams wrote that he told Pitt, “the fat of the spermaceti whale gives the clearest and most beautiful flame of any substance that is known in nature, and we are surprised you prefer darkness, and consequent robberies, burglaries, and murders in your streets to receiving as a remittance our spermaceti oil.” Despite the failed sales pitch John Adams made in the late 1700s, the American whaling industry boomed in the early to mid-1800s. And spermaceti was a major component of that success. Spermaceti could be refined into a lubricant that was ideal for precision machinery. The machine tools that made the growth of industry possible in the United States were lubricated, and essentially made possible, by oil derived from spermaceti. Baleen, or "Whalebone" The bones and teeth of various species of whales were used in a number of products, many of them common implements in a 19th century household. Whales are said to have produced “the plastic of the 1800s.” The "bone" of the whale which was most commonly used wasn’t technically a bone, it was baleen, a hard material arrayed in large plates, like gigantic combs, in the mouths of some species of whales. The purpose of the baleen is to act as a sieve, catching tiny organisms in sea water, which the whale consumes as food. As baleen was tough yet flexible, it could be used in a number of practical applications. And it became commonly known as "whalebone." Perhaps the most common use of whalebone was in the manufacture of corsets, which fashionable ladies in the 1800s wore to compress their waistlines. One typical corset advertisement from the 1800s proudly proclaims, “Real Whalebone Only Used.” Whalebone was also used for collar stays, buggy whips, and toys. Its remarkable flexibility even caused it to be used as the springs in early typewriters. The comparison to plastic is apt. Think of common items which today might be made of plastic, and it's likely that similar items in the 1800s would have been made of whalebone. Baleen whales do not have teeth. But the teeth of other whales, such as the sperm whale, would be used as ivory in such products as chess pieces, piano keys, or the handles of walking sticks. Pieces of scrimshaw, or carved whale's teeth, would probably be the best remembered use of whale's teeth. However, the carved teeth were created to pass the time on whaling voyages and were never a mass production item. Their relative rarity, of course, is why genuine pieces of 19th century scrimshaw are considered to be valuable collectibles today. Reference: McNamara, Robert. "Objects Made From the Whaling Industry." ThoughtCo, Jul. 31, 2021, thoughtco.com/products-produced-from-whales-1774070.Whale bone was an important commodity, used in corsets, collar stays, buggy whips, and toys.Whale bone piece. Advanced stage of calcification as indicated by deep pitting. Off white to grey.None.flagstaff hill, warrnambool, shipwrecked-coast, flagstaff-hill, flagstaff-hill-maritime-museum, maritime-museum, shipwreck-coast, flagstaff-hill-maritime-village, whales, whale bone, corsets, toys, whips -
Flagstaff Hill Maritime Museum and VillageAnimal specimen - Whale bone, Undetermined
... hunt of specific species of whales. Adventure may have been the draw for some whalers, but for the captains who owned whaling ships, and the investors which financed voyages, there was a considerable monetary payoff. The gigantic carcasses of whales were chopped and boiled down...hunt of specific species of whales. Adventure may have been the draw for some whalers, but for the captains who owned whaling ships, and the investors which financed voyages, there was a considerable monetary payoff. The gigantic carcasses of whales were chopped and boiled down ...Prior to carrying out a detailed condition report of the cetacean skeletons, it is useful to have an understanding of the materials we are likely to encounter, in terms of structure and chemistry. This entry invites you to join in learning about the composition of whale bone and oil. Whale bone (Cetacean) bone is comprised of a composite structure of both an inorganic matrix of mainly hydroxylapatite (a calcium phosphate mineral), providing strength and rigidity, as well as an organic protein ‘scaffolding’ of mainly collagen, facilitating growth and repair (O’Connor 2008, CCI 2010). Collagen is also the structural protein component in cartilage between the whale vertebrae and attached to the fins of both the Killer Whale and the Dolphin. Relative proportions in the bone composition (affecting density), are linked with the feeding habits and mechanical stresses typically endured by bones of particular whale types. A Sperm Whale (Physeter macrocephalus Linnaeus, 1758) skeleton (toothed) thus has a higher mineral value (~67%) than a Fin Whale (Balaenoptera physalus Linnaeus, 1758) (baleen) (~60%) (Turner Walker 2012). The internal structure of bone can be divided into compact and cancellous bone. In whales, load-bearing structures such as mandibles and upper limb bones (e.g. humerus, sternum) are largely composed of compact bone (Turner Walker 2012). This consists of lamella concentrically deposited around the longitudinal axis and is permeated by fluid carrying channels (O’Connor 2008). Cancellous (spongy) bone, with a highly porous angular network of trabeculae, is less stiff and thus found in whale ribs and vertebrae (Turner Walker 2012). Whale oil Whales not only carry a thick layer of fat (blubber) in the soft tissue of their body for heat insulation and as a food store while they are alive, but also hold large oil (lipid) reserves in their porous bones. Following maceration of the whale skeleton after death to remove the soft tissue, the bones retain a high lipid content (Higgs et. al 2010). Particularly bones with a spongy (porous) structure have a high capacity to hold oil-rich marrow. Comparative data of various whale species suggests the skull, particularly the cranium and mandible bones are particularly oil rich. Along the vertebral column, the lipid content is reduced, particularly in the thoracic vertebrae (~10-25%), yet greatly increases from the lumbar to the caudal vertebrae (~40-55%). The chest area (scapula, sternum and ribs) show a mid-range lipid content (~15-30%), with vertically orientated ribs being more heavily soaked lower down (Turner Walker 2012, Higgs et. al 2010). Whale oil is largely composed of triglycerides (molecules of fatty acids attached to a glycerol molecule). In Arctic whales a higher proportion of unsaturated, versus saturated fatty acids make up the lipid. Unsaturated fatty acids (with double or triple carbon bonds causing chain kinks, preventing close packing (solidifying) of molecules), are more likely to be liquid (oil), versus solid (fat) at room temperature (Smith and March 2007). Objects Made From the Whaling Industry We all know that men set forth in sailing ships and risked their lives to harpoon whales on the open seas throughout the 1800s. And while Moby Dick and other tales have made whaling stories immortal, people today generally don't appreciate that the whalers were part of a well-organized industry. The ships that set out from ports in New England roamed as far as the Pacific in hunt of specific species of whales. Adventure may have been the draw for some whalers, but for the captains who owned whaling ships, and the investors which financed voyages, there was a considerable monetary payoff. The gigantic carcasses of whales were chopped and boiled down and turned into products such as the fine oil needed to lubricate increasing advanced machine tools. And beyond the oil derived from whales, even their bones, in an era before the invention of plastic, was used to make a wide variety of consumer goods. In short, whales were a valuable natural resource the same as wood, minerals, or petroleum we now pump from the ground. Oil From Whale’s Blubber Oil was the main product sought from whales, and it was used to lubricate machinery and to provide illumination by burning it in lamps. When a whale was killed, it was towed to the ship and its blubber, the thick insulating fat under its skin, would be peeled and cut from its carcass in a process known as “flensing.” The blubber was minced into chunks and boiled in large vats on board the whaling ship, producing oil. The oil taken from whale blubber was packaged in casks and transported back to the whaling ship’s home port (such as New Bedford, Massachusetts, the busiest American whaling port in the mid-1800s). From the ports it would be sold and transported across the country and would find its way into a huge variety of products. Whale oil, in addition to be used for lubrication and illumination, was also used to manufacture soaps, paint, and varnish. Whale oil was also utilized in some processes used to manufacture textiles and rope. Spermaceti, a Highly Regarded Oil A peculiar oil found in the head of the sperm whale, spermaceti, was highly prized. The oil was waxy, and was commonly used in making candles. In fact, candles made of spermaceti were considered the best in the world, producing a bright clear flame without an excess of smoke. Spermaceti was also used, distilled in liquid form, as an oil to fuel lamps. The main American whaling port, New Bedford, Massachusetts, was thus known as "The City That Lit the World." When John Adams was the ambassador to Great Britain before serving as president he recorded in his diary a conversation about spermaceti he had with the British Prime Minister William Pitt. Adams, keen to promote the New England whaling industry, was trying to convince the British to import spermaceti sold by American whalers, which the British could use to fuel street lamps. The British were not interested. In his diary, Adams wrote that he told Pitt, “the fat of the spermaceti whale gives the clearest and most beautiful flame of any substance that is known in nature, and we are surprised you prefer darkness, and consequent robberies, burglaries, and murders in your streets to receiving as a remittance our spermaceti oil.” Despite the failed sales pitch John Adams made in the late 1700s, the American whaling industry boomed in the early to mid-1800s. And spermaceti was a major component of that success. Spermaceti could be refined into a lubricant that was ideal for precision machinery. The machine tools that made the growth of industry possible in the United States were lubricated, and essentially made possible, by oil derived from spermaceti. Baleen, or "Whalebone" The bones and teeth of various species of whales were used in a number of products, many of them common implements in a 19th century household. Whales are said to have produced “the plastic of the 1800s.” The "bone" of the whale which was most commonly used wasn’t technically a bone, it was baleen, a hard material arrayed in large plates, like gigantic combs, in the mouths of some species of whales. The purpose of the baleen is to act as a sieve, catching tiny organisms in sea water, which the whale consumes as food. As baleen was tough yet flexible, it could be used in a number of practical applications. And it became commonly known as "whalebone." Perhaps the most common use of whalebone was in the manufacture of corsets, which fashionable ladies in the 1800s wore to compress their waistlines. One typical corset advertisement from the 1800s proudly proclaims, “Real Whalebone Only Used.” Whalebone was also used for collar stays, buggy whips, and toys. Its remarkable flexibility even caused it to be used as the springs in early typewriters. The comparison to plastic is apt. Think of common items which today might be made of plastic, and it's likely that similar items in the 1800s would have been made of whalebone. Baleen whales do not have teeth. But the teeth of other whales, such as the sperm whale, would be used as ivory in such products as chess pieces, piano keys, or the handles of walking sticks. Pieces of scrimshaw, or carved whale's teeth, would probably be the best remembered use of whale's teeth. However, the carved teeth were created to pass the time on whaling voyages and were never a mass production item. Their relative rarity, of course, is why genuine pieces of 19th century scrimshaw are considered to be valuable collectibles today. Reference: McNamara, Robert. "Objects Made From the Whaling Industry." ThoughtCo, Jul. 31, 2021, thoughtco.com/products-produced-from-whales-1774070.Whale bone was an important commodity, used in corsets, collar stays, buggy whips, and toys.Whale bone piece. Advanced stage of calcification as indicated by deep pitting. Off white to grey.None.flagstaff hill, warrnambool, shipwrecked-coast, flagstaff-hill, flagstaff-hill-maritime-museum, maritime-museum, shipwreck-coast, flagstaff-hill-maritime-village, whales, whale bone, corsets, toys, whips -
Flagstaff Hill Maritime Museum and VillageAnimal specimen - Whale bone, Undetermined
... hunt of specific species of whales. Adventure may have been the draw for some whalers, but for the captains who owned whaling ships, and the investors which financed voyages, there was a considerable monetary payoff. The gigantic carcasses of whales were chopped and boiled down...hunt of specific species of whales. Adventure may have been the draw for some whalers, but for the captains who owned whaling ships, and the investors which financed voyages, there was a considerable monetary payoff. The gigantic carcasses of whales were chopped and boiled down ...Prior to carrying out a detailed condition report of the cetacean skeletons, it is useful to have an understanding of the materials we are likely to encounter, in terms of structure and chemistry. This entry invites you to join in learning about the composition of whale bone and oil. Whale bone (Cetacean) bone is comprised of a composite structure of both an inorganic matrix of mainly hydroxylapatite (a calcium phosphate mineral), providing strength and rigidity, as well as an organic protein ‘scaffolding’ of mainly collagen, facilitating growth and repair (O’Connor 2008, CCI 2010). Collagen is also the structural protein component in cartilage between the whale vertebrae and attached to the fins of both the Killer Whale and the Dolphin. Relative proportions in the bone composition (affecting density), are linked with the feeding habits and mechanical stresses typically endured by bones of particular whale types. A Sperm Whale (Physeter macrocephalus Linnaeus, 1758) skeleton (toothed) thus has a higher mineral value (~67%) than a Fin Whale (Balaenoptera physalus Linnaeus, 1758) (baleen) (~60%) (Turner Walker 2012). The internal structure of bone can be divided into compact and cancellous bone. In whales, load-bearing structures such as mandibles and upper limb bones (e.g. humerus, sternum) are largely composed of compact bone (Turner Walker 2012). This consists of lamella concentrically deposited around the longitudinal axis and is permeated by fluid carrying channels (O’Connor 2008). Cancellous (spongy) bone, with a highly porous angular network of trabeculae, is less stiff and thus found in whale ribs and vertebrae (Turner Walker 2012). Whale oil Whales not only carry a thick layer of fat (blubber) in the soft tissue of their body for heat insulation and as a food store while they are alive, but also hold large oil (lipid) reserves in their porous bones. Following maceration of the whale skeleton after death to remove the soft tissue, the bones retain a high lipid content (Higgs et. al 2010). Particularly bones with a spongy (porous) structure have a high capacity to hold oil-rich marrow. Comparative data of various whale species suggests the skull, particularly the cranium and mandible bones are particularly oil rich. Along the vertebral column, the lipid content is reduced, particularly in the thoracic vertebrae (~10-25%), yet greatly increases from the lumbar to the caudal vertebrae (~40-55%). The chest area (scapula, sternum and ribs) show a mid-range lipid content (~15-30%), with vertically orientated ribs being more heavily soaked lower down (Turner Walker 2012, Higgs et. al 2010). Whale oil is largely composed of triglycerides (molecules of fatty acids attached to a glycerol molecule). In Arctic whales a higher proportion of unsaturated, versus saturated fatty acids make up the lipid. Unsaturated fatty acids (with double or triple carbon bonds causing chain kinks, preventing close packing (solidifying) of molecules), are more likely to be liquid (oil), versus solid (fat) at room temperature (Smith and March 2007). Objects Made From the Whaling Industry We all know that men set forth in sailing ships and risked their lives to harpoon whales on the open seas throughout the 1800s. And while Moby Dick and other tales have made whaling stories immortal, people today generally don't appreciate that the whalers were part of a well-organized industry. The ships that set out from ports in New England roamed as far as the Pacific in hunt of specific species of whales. Adventure may have been the draw for some whalers, but for the captains who owned whaling ships, and the investors which financed voyages, there was a considerable monetary payoff. The gigantic carcasses of whales were chopped and boiled down and turned into products such as the fine oil needed to lubricate increasing advanced machine tools. And beyond the oil derived from whales, even their bones, in an era before the invention of plastic, was used to make a wide variety of consumer goods. In short, whales were a valuable natural resource the same as wood, minerals, or petroleum we now pump from the ground. Oil From Whale’s Blubber Oil was the main product sought from whales, and it was used to lubricate machinery and to provide illumination by burning it in lamps. When a whale was killed, it was towed to the ship and its blubber, the thick insulating fat under its skin, would be peeled and cut from its carcass in a process known as “flensing.” The blubber was minced into chunks and boiled in large vats on board the whaling ship, producing oil. The oil taken from whale blubber was packaged in casks and transported back to the whaling ship’s home port (such as New Bedford, Massachusetts, the busiest American whaling port in the mid-1800s). From the ports it would be sold and transported across the country and would find its way into a huge variety of products. Whale oil, in addition to be used for lubrication and illumination, was also used to manufacture soaps, paint, and varnish. Whale oil was also utilized in some processes used to manufacture textiles and rope. Spermaceti, a Highly Regarded Oil A peculiar oil found in the head of the sperm whale, spermaceti, was highly prized. The oil was waxy, and was commonly used in making candles. In fact, candles made of spermaceti were considered the best in the world, producing a bright clear flame without an excess of smoke. Spermaceti was also used, distilled in liquid form, as an oil to fuel lamps. The main American whaling port, New Bedford, Massachusetts, was thus known as "The City That Lit the World." When John Adams was the ambassador to Great Britain before serving as president he recorded in his diary a conversation about spermaceti he had with the British Prime Minister William Pitt. Adams, keen to promote the New England whaling industry, was trying to convince the British to import spermaceti sold by American whalers, which the British could use to fuel street lamps. The British were not interested. In his diary, Adams wrote that he told Pitt, “the fat of the spermaceti whale gives the clearest and most beautiful flame of any substance that is known in nature, and we are surprised you prefer darkness, and consequent robberies, burglaries, and murders in your streets to receiving as a remittance our spermaceti oil.” Despite the failed sales pitch John Adams made in the late 1700s, the American whaling industry boomed in the early to mid-1800s. And spermaceti was a major component of that success. Spermaceti could be refined into a lubricant that was ideal for precision machinery. The machine tools that made the growth of industry possible in the United States were lubricated, and essentially made possible, by oil derived from spermaceti. Baleen, or "Whalebone" The bones and teeth of various species of whales were used in a number of products, many of them common implements in a 19th century household. Whales are said to have produced “the plastic of the 1800s.” The "bone" of the whale which was most commonly used wasn’t technically a bone, it was baleen, a hard material arrayed in large plates, like gigantic combs, in the mouths of some species of whales. The purpose of the baleen is to act as a sieve, catching tiny organisms in sea water, which the whale consumes as food. As baleen was tough yet flexible, it could be used in a number of practical applications. And it became commonly known as "whalebone." Perhaps the most common use of whalebone was in the manufacture of corsets, which fashionable ladies in the 1800s wore to compress their waistlines. One typical corset advertisement from the 1800s proudly proclaims, “Real Whalebone Only Used.” Whalebone was also used for collar stays, buggy whips, and toys. Its remarkable flexibility even caused it to be used as the springs in early typewriters. The comparison to plastic is apt. Think of common items which today might be made of plastic, and it's likely that similar items in the 1800s would have been made of whalebone. Baleen whales do not have teeth. But the teeth of other whales, such as the sperm whale, would be used as ivory in such products as chess pieces, piano keys, or the handles of walking sticks. Pieces of scrimshaw, or carved whale's teeth, would probably be the best remembered use of whale's teeth. However, the carved teeth were created to pass the time on whaling voyages and were never a mass production item. Their relative rarity, of course, is why genuine pieces of 19th century scrimshaw are considered to be valuable collectibles today. Reference: McNamara, Robert. "Objects Made From the Whaling Industry." ThoughtCo, Jul. 31, 2021, thoughtco.com/products-produced-from-whales-1774070. Whale bone was an important commodity, used in corsets, collar stays, buggy whips, and toys.Whale bone vertebrae. Advanced stage of calcification as indicated by deep pitting. Off white to grey.None.flagstaff hill, warrnambool, shipwrecked-coast, flagstaff-hill, flagstaff-hill-maritime-museum, maritime-museum, shipwreck-coast, flagstaff-hill-maritime-village, whales, whale bone, corsets, toys, whips -
Flagstaff Hill Maritime Museum and VillageAnimal specimen - Whale bone, Undetermined
... hunt of specific species of whales. Adventure may have been the draw for some whalers, but for the captains who owned whaling ships, and the investors which financed voyages, there was a considerable monetary payoff. The gigantic carcasses of whales were chopped and boiled down...hunt of specific species of whales. Adventure may have been the draw for some whalers, but for the captains who owned whaling ships, and the investors which financed voyages, there was a considerable monetary payoff. The gigantic carcasses of whales were chopped and boiled down ...Prior to carrying out a detailed condition report of the cetacean skeletons, it is useful to have an understanding of the materials we are likely to encounter, in terms of structure and chemistry. This entry invites you to join in learning about the composition of whale bone and oil. Whale bone (Cetacean) bone is comprised of a composite structure of both an inorganic matrix of mainly hydroxylapatite (a calcium phosphate mineral), providing strength and rigidity, as well as an organic protein ‘scaffolding’ of mainly collagen, facilitating growth and repair (O’Connor 2008, CCI 2010). Collagen is also the structural protein component in cartilage between the whale vertebrae and attached to the fins of both the Killer Whale and the Dolphin. Relative proportions in the bone composition (affecting density), are linked with the feeding habits and mechanical stresses typically endured by bones of particular whale types. A Sperm Whale (Physeter macrocephalus Linnaeus, 1758) skeleton (toothed) thus has a higher mineral value (~67%) than a Fin Whale (Balaenoptera physalus Linnaeus, 1758) (baleen) (~60%) (Turner Walker 2012). The internal structure of bone can be divided into compact and cancellous bone. In whales, load-bearing structures such as mandibles and upper limb bones (e.g. humerus, sternum) are largely composed of compact bone (Turner Walker 2012). This consists of lamella concentrically deposited around the longitudinal axis and is permeated by fluid carrying channels (O’Connor 2008). Cancellous (spongy) bone, with a highly porous angular network of trabeculae, is less stiff and thus found in whale ribs and vertebrae (Turner Walker 2012). Whale oil Whales not only carry a thick layer of fat (blubber) in the soft tissue of their body for heat insulation and as a food store while they are alive, but also hold large oil (lipid) reserves in their porous bones. Following maceration of the whale skeleton after death to remove the soft tissue, the bones retain a high lipid content (Higgs et. al 2010). Particularly bones with a spongy (porous) structure have a high capacity to hold oil-rich marrow. Comparative data of various whale species suggests the skull, particularly the cranium and mandible bones are particularly oil rich. Along the vertebral column, the lipid content is reduced, particularly in the thoracic vertebrae (~10-25%), yet greatly increases from the lumbar to the caudal vertebrae (~40-55%). The chest area (scapula, sternum and ribs) show a mid-range lipid content (~15-30%), with vertically orientated ribs being more heavily soaked lower down (Turner Walker 2012, Higgs et. al 2010). Whale oil is largely composed of triglycerides (molecules of fatty acids attached to a glycerol molecule). In Arctic whales a higher proportion of unsaturated, versus saturated fatty acids make up the lipid. Unsaturated fatty acids (with double or triple carbon bonds causing chain kinks, preventing close packing (solidifying) of molecules), are more likely to be liquid (oil), versus solid (fat) at room temperature (Smith and March 2007). Objects Made From the Whaling Industry We all know that men set forth in sailing ships and risked their lives to harpoon whales on the open seas throughout the 1800s. And while Moby Dick and other tales have made whaling stories immortal, people today generally don't appreciate that the whalers were part of a well-organized industry. The ships that set out from ports in New England roamed as far as the Pacific in hunt of specific species of whales. Adventure may have been the draw for some whalers, but for the captains who owned whaling ships, and the investors which financed voyages, there was a considerable monetary payoff. The gigantic carcasses of whales were chopped and boiled down and turned into products such as the fine oil needed to lubricate increasing advanced machine tools. And beyond the oil derived from whales, even their bones, in an era before the invention of plastic, was used to make a wide variety of consumer goods. In short, whales were a valuable natural resource the same as wood, minerals, or petroleum we now pump from the ground. Oil From Whale’s Blubber Oil was the main product sought from whales, and it was used to lubricate machinery and to provide illumination by burning it in lamps. When a whale was killed, it was towed to the ship and its blubber, the thick insulating fat under its skin, would be peeled and cut from its carcass in a process known as “flensing.” The blubber was minced into chunks and boiled in large vats on board the whaling ship, producing oil. The oil taken from whale blubber was packaged in casks and transported back to the whaling ship’s home port (such as New Bedford, Massachusetts, the busiest American whaling port in the mid-1800s). From the ports it would be sold and transported across the country and would find its way into a huge variety of products. Whale oil, in addition to be used for lubrication and illumination, was also used to manufacture soaps, paint, and varnish. Whale oil was also utilized in some processes used to manufacture textiles and rope. Spermaceti, a Highly Regarded Oil A peculiar oil found in the head of the sperm whale, spermaceti, was highly prized. The oil was waxy, and was commonly used in making candles. In fact, candles made of spermaceti were considered the best in the world, producing a bright clear flame without an excess of smoke. Spermaceti was also used, distilled in liquid form, as an oil to fuel lamps. The main American whaling port, New Bedford, Massachusetts, was thus known as "The City That Lit the World." When John Adams was the ambassador to Great Britain before serving as president he recorded in his diary a conversation about spermaceti he had with the British Prime Minister William Pitt. Adams, keen to promote the New England whaling industry, was trying to convince the British to import spermaceti sold by American whalers, which the British could use to fuel street lamps. The British were not interested. In his diary, Adams wrote that he told Pitt, “the fat of the spermaceti whale gives the clearest and most beautiful flame of any substance that is known in nature, and we are surprised you prefer darkness, and consequent robberies, burglaries, and murders in your streets to receiving as a remittance our spermaceti oil.” Despite the failed sales pitch John Adams made in the late 1700s, the American whaling industry boomed in the early to mid-1800s. And spermaceti was a major component of that success. Spermaceti could be refined into a lubricant that was ideal for precision machinery. The machine tools that made the growth of industry possible in the United States were lubricated, and essentially made possible, by oil derived from spermaceti. Baleen, or "Whalebone" The bones and teeth of various species of whales were used in a number of products, many of them common implements in a 19th century household. Whales are said to have produced “the plastic of the 1800s.” The "bone" of the whale which was most commonly used wasn’t technically a bone, it was baleen, a hard material arrayed in large plates, like gigantic combs, in the mouths of some species of whales. The purpose of the baleen is to act as a sieve, catching tiny organisms in sea water, which the whale consumes as food. As baleen was tough yet flexible, it could be used in a number of practical applications. And it became commonly known as "whalebone." Perhaps the most common use of whalebone was in the manufacture of corsets, which fashionable ladies in the 1800s wore to compress their waistlines. One typical corset advertisement from the 1800s proudly proclaims, “Real Whalebone Only Used.” Whalebone was also used for collar stays, buggy whips, and toys. Its remarkable flexibility even caused it to be used as the springs in early typewriters. The comparison to plastic is apt. Think of common items which today might be made of plastic, and it's likely that similar items in the 1800s would have been made of whalebone. Baleen whales do not have teeth. But the teeth of other whales, such as the sperm whale, would be used as ivory in such products as chess pieces, piano keys, or the handles of walking sticks. Pieces of scrimshaw, or carved whale's teeth, would probably be the best remembered use of whale's teeth. However, the carved teeth were created to pass the time on whaling voyages and were never a mass production item. Their relative rarity, of course, is why genuine pieces of 19th century scrimshaw are considered to be valuable collectibles today. Reference: McNamara, Robert. "Objects Made From the Whaling Industry." ThoughtCo, Jul. 31, 2021, thoughtco.com/products-produced-from-whales-1774070.Whale bone was an important commodity, used in corsets, collar stays, buggy whips, and toys.Whale bone in two pieces. Advanced stage of calcification as indicated by deep pitting. Off white to grey.None.flagstaff hill, warrnambool, shipwrecked-coast, flagstaff-hill, flagstaff-hill-maritime-museum, maritime-museum, shipwreck-coast, flagstaff-hill-maritime-village, whale bones, whale skeleton, whales, whale bone, corsets, toys, whips -
City of Moorabbin Historical Society (Operating the Box Cottage Museum)Photograph - Photograph, Black & White Mrs J.L.Smith & Butcher, 1915
... Hunt ) and developed another successful business. The Grain Store was managed by family until 1930. In 1932 JL Smith assisted a man whose car had broken down, pushing it to the garage and sadly suffered a heart attack and died. ...Hunt ) and developed another successful business. The Grain Store was managed by family until 1930. In 1932 JL Smith assisted a man whose car had broken down, pushing it to the garage and sadly suffered a heart attack and died. ...The Butcher Mr Bill Ellin delivering meat to Mrs J.L.Smith in front of the house Law Muir Den 510 Centre Rd Bentleigh c 1915. Groceries, Ice, Milk, Bread, Eggs, Poultry were delivered to housewives by the traders in horse drawn carts, Also Hawkers and Pedlars plied their wares by visiting the cottages. John Logan Smith 1860-1932 , the son of Irish immigrants James and Marianne Smith was born at their home near the 'Toll Gates' on Point Nepean Road and Dendy Street. East Brighton. At that time the area had many orchards that were later replaced by market gardens. J.L.Smith at first rented a cottage 'Law Muir Den' & Shed from Mr Box and commenced business as a wood merchant - sawing logs into shorter pieces using one horse to power the saw. He purchased the property, added to the buildings , began trading in fuel and fodder as well and installed a chaff cutting mill powered by 10hp steam engine. The business prospered 1909 following the death of Tommy Bent, J/L Smith was nominated for Councillor of the Shire of Moorabbin. WW1 1914 - 18 both John and Mary Ann supported local War Relief Auxiliaries and their son Vic served as a Signaler in AIF. As Motor transport was increasing 1926 J L Smith built a small Garage on the opposite corner (Woolworths Supermarket 2005) , employed a good mechanic ( Reg Hunt ) and developed another successful business. The Grain Store was managed by family until 1930. In 1932 JL Smith assisted a man whose car had broken down, pushing it to the garage and sadly suffered a heart attack and died. He is buried in Cheltenham Cemetery. J.L.Smith was an early settler in East Brighton now Bentleigh and established successful Wood cutting, Grain & Chaff cutting and Motor garage businesses in Centre Road . He was elected Councillor of the Shire of Moorabbin and, with Mary Ann, his family were involved with local Church, Red Cross, and other community organizations.A Black and white photograph c 1915 showing the Butcher delivering meat to Mrs J.L Smith Bentleighsmith j l, smith mary ann, stanley helen, smith vic, smith harry redvers, chaff cutter, horse drawn carts, toll gates brighton, motor cars 1900, steam engines, early settlers, bentleigh, parish of moorabbin, city of moorabbin, county of bourke, moorabbin roads board, shire of moorabbin, henry dendy's special survey 1841, bent thomas, charman s, highett william, ormond francis, market gardeners, vineyards, orchards, william ellin, butcher -
City of Moorabbin Historical Society (Operating the Box Cottage Museum)Photograph, Black & White J. L. Smith Hay & Grain Store Bentleigh c1910, c1910
... Hunt ) and developed another successful business. The Grain Store was managed by family until 1930. In 1932 JL Smith assisted a man whose car had broken down, pushing it to the garage and sadly suffered a heart attack and died. ...Hunt ) and developed another successful business. The Grain Store was managed by family until 1930. In 1932 JL Smith assisted a man whose car had broken down, pushing it to the garage and sadly suffered a heart attack and died. ...John Logan Smith 1860-1932 , the son of Irish immigrants James and Marianne Smith was born at their home near the 'Toll Gates' on Point Nepean Road and Dendy Street. East Brighton. At that time the area had many orchards that were later replaced by market gardens. J.L.Smith at first rented a cottage 'Law Muir Den' & Shed from Mr Box and commenced business as a wood merchant - sawing logs into shorter pieces using one horse to power the saw. He purchased the property, added to the buildings , began trading in fuel and fodder as well and installed a chaff cutting mill powered by 10hp steam engine. The business prospered 1909 following the death of Tommy Bent, J/L Smith was nominated for Councillor of the Shire of Moorabbin. WW1 1914 - 18 both John and Mary Ann supported local War Relief Auxiliaries and their son Vic served as a Signaler in AIF. As Motor transport was increasing 1926 J L Smith built a small Garage on the opposite corner (Woolworths Supermarket 2005) , employed a good mechanic ( Reg Hunt ) and developed another successful business. The Grain Store was managed by family until 1930. In 1932 JL Smith assisted a man whose car had broken down, pushing it to the garage and sadly suffered a heart attack and died. He is buried in Cheltenham Cemetery. J.L.Smith was an early settler in East Brighton now Bentleigh and established successful Wood cutting, Grain & Chaff cutting and Motor garage businesses in Centre Road . He was elected Councillor of the Shire of Moorabbin and, with Mary Ann, his family were involved with local Church, Red Cross, and other community organizations.Black & white photograph of the Hay & Grain Store of John Logan Smith 1860-1932 on the corner of Jasper Rd and Centre Rd Bentleigh ( East Brighton) c1910. A Horse drawn cart loaded with hay and another outside the first building used by J L Smith -
City of Moorabbin Historical Society (Operating the Box Cottage Museum)Photograph, Black & White, J.L.Smith Hay & Grain Store c1916 Bentleigh, 1916
... Hunt ) and developed another successful business. The Grain Store was managed by family until 1930. In 1932 JL Smith assisted a man whose car had broken down, pushing it to the garage and sadly suffered a heart attack and died. ...Hunt ) and developed another successful business. The Grain Store was managed by family until 1930. In 1932 JL Smith assisted a man whose car had broken down, pushing it to the garage and sadly suffered a heart attack and died. ...John Logan Smith 1860-1932 , the son of Irish immigrants James and Marianne Smith was born at their home near the 'Toll Gates' on Point Nepean Road and Dendy Street. East Brighton. At that time the area had many orchards that were later replaced by market gardens. J.L.Smith at first rented a cottage 'Law Muir Den' & Shed from Mr Box and commenced business as a wood merchant - sawing logs into shorter pieces using one horse to power the saw. He purchased the property, added to the buildings , began trading in fuel and fodder as well and installed a chaff cutting mill powered by 10hp steam engine. The business prospered 1909 following the death of Tommy Bent, J/L Smith was nominated for Councillor of the Shire of Moorabbin. WW1 1914 - 18 both John and Mary Ann supported local War Relief Auxiliaries and their son Vic served as a Signaler in AIF. As Motor transport was increasing 1926 J L Smith built a small Garage on the opposite corner (Woolworths Supermarket 2005) , employed a good mechanic ( Reg Hunt ) and developed another successful business. The Grain Store was managed by family until 1930. In 1932 JL Smith assisted a man whose car had broken down, pushing it to the garage and sadly suffered a heart attack and died. He is buried in Cheltenham Cemetery J.L.Smith was an early settler in East Brighton now Bentleigh and established successful Wood cutting, Grain & Chaff cutting and Motor garage businesses in Centre Road . He was elected Councillor of the Shire of Moorabbin and, with Mary Ann, his family were involved with local Church, Red Cross, and other community organizations.Black & White photograph of J L Smith Hay & Grain Store and Crushing Mill Jasper Rd / Centre Rd Bentleigh 1916. A veranda has been added to the store, new signage attached and a Gas light and hitching post are in foreground. 3 Horse drawn carts loaded with grain bags and drivers sitting on top of loadV. Smithgas street light, hitching posts, smith vic, photography, smith j l; smith mary ann, stanley helen, smith vic, smith harry redvers, chaff cutter, horse drawn carts, toll gates brighton, motor cars 1900, steam engines, early settlers, bentleigh, parish of moorabbin, city of moorabbin, county of bourke, moorabbin roads board, shire of moorabbin, henry dendy's special survey 1841, were j.b.; bent thomas, o'shannassy john, king richard, charman s, highett william, ormond francis, maynard dennis, market gardeners, vineyards, orchards -
City of Moorabbin Historical Society (Operating the Box Cottage Museum)Photograph, Black & White Oakleigh Hunt Club in Jasper Rd c 1920, c1920
... As the Melbourne suburbs spread the Club moved several times. 1920 it was in Oakleigh and now is possibly situated in Packenham watson george, oakleigh, melbourne hunt club, smith j l; smith mary ann, stanley helen, smith vic, smith harry redvers, chaff cutter, horse drawn carts, toll gates brighton, motor cars 1900, steam engines, early settlers, bentleigh, parish of moorabbin, city of moorabbin, county of bourke, moorabbin shire, king richard, charman s, highett william, ormond francis, maynard dennis, market gardeners, vineyards, orchards Black & White photograph showing men riding horses with a pack of hounds coming down a dirt road . ...The Melbourne Hunt Club was founded by Mr George Watson in 1852 with hounds brought to Australia from Ireland and moved its headquarters a number of times as the city grew between 1897 and 1929, The kennels were originally at Kirk's Bazaar, in Bourke Street, Melbourne, subsequently they moved to St Kilda, Caulfield, Deer Park, Oakleigh, Cranbourne and finally to their current location in Packenham. Oakleigh was the favoured spot, mainly because of the railway and the unloading ramp at the station. Riders and horses arrived on special trains and hunted over the surrounding market gardens, but not without friction. After 1929, significant numbers of Hunt Club members had access to motorized horse transport and besides, Oakleigh was becoming too built up. The Hunt Club moved on to Cranbourne The club maintains the oldest continual pack of hounds in Australia. The Melbourne Hunt Club was founded 1852 by George Watson and imported foxhounds from Ireland. As the Melbourne suburbs spread the Club moved several times. 1920 it was in Oakleigh and now is possibly situated in Packenham Black & White photograph showing men riding horses with a pack of hounds coming down a dirt road . Houses and vacant land in backgroundwatson george, oakleigh, melbourne hunt club, smith j l; smith mary ann, stanley helen, smith vic, smith harry redvers, chaff cutter, horse drawn carts, toll gates brighton, motor cars 1900, steam engines, early settlers, bentleigh, parish of moorabbin, city of moorabbin, county of bourke, moorabbin shire, king richard, charman s, highett william, ormond francis, maynard dennis, market gardeners, vineyards, orchards -
City of Moorabbin Historical Society (Operating the Box Cottage Museum)Photographs, x 2 ,Black & White, F Smith Horse drawn cart loaded, Baled Straw, Grain, c1920
... Hunt ) and developed another successful business. The Grain Store was managed by family until 1930. In 1932 J L Smith assisted a man whose car had broken down, pushing it to the garage and sadly suffered a heart attack and died. ...Hunt ) and developed another successful business. The Grain Store was managed by family until 1930. In 1932 J L Smith assisted a man whose car had broken down, pushing it to the garage and sadly suffered a heart attack and died. ...John Logan Smith 1860-1932 , the son of Irish immigrants James and Marianne Smith was born at their home near the 'Toll Gates' on Point Nepean Road and Dendy Street. East Brighton. At that time the area had many orchards that were later replaced by market gardens. J.L.Smith at first rented a cottage 'Law Muir Den' & Shed from Mr Box and commenced business as a wood merchant - sawing logs into shorter pieces using one horse to power the saw. He purchased the property, added to the buildings , began trading in fuel and fodder as well and installed a chaff cutting mill powered by 10hp steam engine. The business prospered 1909 following the death of Tommy Bent, J/L Smith was nominated for Councillor of the Shire of Moorabbin. WW1 1914 - 18 both John and Mary Ann supported local War Relief Auxiliaries and their son Vic served as a Signaler in AIF. As Motor transport was increasing 1926 J L Smith built a small Garage on the opposite corner (Woolworths Supermarket 2005) , employed a good mechanic ( Reg Hunt ) and developed another successful business. The Grain Store was managed by family until 1930. In 1932 J L Smith assisted a man whose car had broken down, pushing it to the garage and sadly suffered a heart attack and died. He is buried in Cheltenham Cemetery. J.L.Smith was an early settler in East Brighton now Bentleigh and established successful Wood cutting, Grain & Chaff cutting and Motor garage businesses in Centre Road . He was elected Councillor of the Shire of Moorabbin and, with Mary Ann, his family were involved with local Church, Red Cross, and other community organizations.2 x Black & White photographs showing horse drawn carts loaded with (a) Hay and (b) bags of grain outside J.L.Smith Grain & Chaff Store Centre Rd Bentleigh c1920smith frank, smith arch, smith tom, smith j l; smith mary ann, stanley helen, smith vic, smith harry redvers, chaff cutter, horse drawn carts, toll gates brighton, motor cars 1900, steam engines, early settlers, bentleigh, parish of moorabbin, city of moorabbin, county of bourke, moorabbin roads board, shire of moorabbin, henry dendy's special survey 1841, were j.b.; bent thomas, o'shannassy john, king richard, charman s, highett william, ormond francis, maynard dennis, market gardeners, vineyards, orchards -
City of Moorabbin Historical Society (Operating the Box Cottage Museum)Sewing Equipment , wooden 'Pic-Quic', 20thC
... down one side. A stocking or knitted fabric is stretched around the egg with the "ladder" in line with the groove. The latch hook is used to pick up the loops in knitted fabric to repair the fault. D.R.G.M., is not a German patent but was instead a way for inventors to register a product’s design or function in all states within Germany. From 1891 to 1952, products manufactured in Germany might have been stamped with this D.R.G.M. designation. This Quic Pic was used by the family of Ailsa Hunt...down one side. A stocking or knitted fabric is stretched around the egg with the "ladder" in line with the groove. The latch hook is used to pick up the loops in knitted fabric to repair the fault. D.R.G.M., is not a German patent but was instead a way for inventors to register a product’s design or function in all states within Germany. From 1891 to 1952, products manufactured in Germany might have been stamped with this D.R.G.M. designation. This Quic Pic was used by the family of Ailsa Hunt ...The wooden egg has a tiny metal latch hook inserted in the middle (same design as rug making tools). There is a groove down one side. A stocking or knitted fabric is stretched around the egg with the "ladder" in line with the groove. The latch hook is used to pick up the loops in knitted fabric to repair the fault. D.R.G.M., is not a German patent but was instead a way for inventors to register a product’s design or function in all states within Germany. From 1891 to 1952, products manufactured in Germany might have been stamped with this D.R.G.M. designation. This Quic Pic was used by the family of Ailsa Hunt in mid 20thCThe women of the post World War 11 estates made clothes and furnishings as their families settled in Bentleigh, McKinnon, Moorabbin ,Ormond in City of Moorabbin c1950s A wooden egg shaped tool with enclosed steel hook for darning stockings c1950'PIC - QUIC' DRGM 989116clothing, haberdashery, crochet, doilies, brighton, moorabbin, pioneers, dressmaking, market gardeners, early settlers, craftwork , bentleigh, lacework, moorabbin shire, hunt ailsa, dairy farms, fruit orchards -
City of Moorabbin Historical Society (Operating the Box Cottage Museum)Newsletter, City of Moorabbin Historical Society Feb 2011, February 2011
... Down Memory Lane’. Volunteers are requested for Open Days, and are reminded of the Visitors’ Book, Children’s Treasure Hunt Cards and the Volunteer Hours Record. ...Down Memory Lane’. Volunteers are requested for Open Days, and are reminded of the Visitors’ Book, Children’s Treasure Hunt Cards and the Volunteer Hours Record. ...The City of Moorabbin Historical Society was formed c 1960 by a group of Moorabbin residents who were concerned that the history of the area should be preserved. A good response to a call for items related to the historical area of Moorabbin Shire brought donations of a wide variety of artefacts which are now preserved by the current members of CMHS at Box Cottage Museum . Helen Stanley, Secretary of CMHS, began producing a Newsletter for members in April 2007 to provide current information and well researched items of historical interestHelen Stanley has produced a bi-monthly Newsletter, 2007 - 2013, for the members of the City of Moorabbin Historical Society that contains well researched interesting historical items, notification of upcoming events, current advice from Royal Australian Historical Society , Museums Australia Victoria and activities of Local Historical Societies. The Newsletter is an important record of the activities of the CMHS and this month Celebrates the 50th Anniversary of CMHS. The puzzle around the naming of the suburb McKinnon tells the story of Daniel, Donald and Laughlin MacKinnon. 5 x A4 paper printed on 1 side Issue 20 of the bi-monthly, City of Moorabbin Historical Society Newsletter produced by Society member and Secretary, Mrs Helen Stanley in February 2011. Notice for meeting February 27th and the Subscription $5 is due. Despite the recent heavy rain the Cottage and grounds were unaffected, however an possum / rat appears to have entered the Cottage via the Chimney and caused the breakage of 2 glass kerosene lamps that were on the mantelpiece and lots of droppings before escaping. Teresa Murphy, editor of ‘The Moorabbin Leader’ Newspaper, visited Box Cottage and discussed a proposed regular feature ‘Down Memory Lane’. Volunteers are requested for Open Days, and are reminded of the Visitors’ Book, Children’s Treasure Hunt Cards and the Volunteer Hours Record. Accompanying it is the Story of Daniel MacKinnon b Glasgow arrived Port Phillip 1839 died 1889, his son Donald MacKinnon b 1859 Terang, Victoria – 1932 and Laughlan MacKinnon b1817 Isle of Skye -1888 no relation to eitherCITY of MOORABBIN HISTORICAL SOCIETY / FEBRUARY 2011 NEWSLETTER city of moorabbin historical society, stanley helen, mackinnon daniel, mackinnon donald, mackinnon laughlin, melbourne, moorabbin, brighton, cheltenham, ormond, bentleigh, mckinnon, market gardeners, pioneers, early settlers, moorabbin shire, box cottage museum, city of moorabbin, box william, glen eira historical society, the moorabbin leader newspaper, murphy teresa, the argus newspaper -
Glenelg Shire Council Cultural CollectionWeapon - Whaling Lance, n.d
... During a brief 10 year period, whales were almost hunted to extinction and the industry slowed down and wound up in the 1840s whaling whale hunting maritime Front: - Back: - Whaling implement, iron, painted gloss black, shaft with screw on one end and turned back handle on the other. ...Part of the collection purchased from Brendan Kurtze by the City of Portland in 199..?Whaling and whales have played an important part in Portland's history. The whaling industry was established in Portland in the 1830s by William Dutton. During a brief 10 year period, whales were almost hunted to extinction and the industry slowed down and wound up in the 1840sWhaling implement, iron, painted gloss black, shaft with screw on one end and turned back handle on the other. A weld near the handle perhaps indicates that this may not be the original configuration.Front: - Back: -whaling, whale hunting, maritime -
Ringwood and District Historical SocietyPhotograph, Premises and Shops off Adelaide St, Ringwood etc (4 views). 1958
... Hunt's) June, 1958." SS0188c: "From same vantage point" (as previous photograph" SS0188d: "Car is parked on site of old Bakehouse which was burnt down 1957. ...Hunt's) June, 1958." SS0188c: "From same vantage point" (as previous photograph" SS0188d: "Car is parked on site of old Bakehouse which was burnt down 1957. ...Written next to photographs (Mounted on single sheet): SS0188a: "Looking at the rear of premises in Whitehorse Road from Warrandyte Road to Adelaide Street. SS0188b: "Taken from roof of plumbers shop in Adelaide Street, (Syd Hunt's) June, 1958." SS0188c: "From same vantage point" (as previous photograph" SS0188d: "Car is parked on site of old Bakehouse which was burnt down 1957. Door of oven was dated 1882." -
Flagstaff Hill Maritime Museum and VillageAnimal specimen - Whale bone, Undetermined
... hunt of specific species of whales. Adventure may have been the draw for some whalers, but for the captains who owned whaling ships, and the investors which financed voyages, there was a considerable monetary payoff. The gigantic carcasses of whales were chopped and boiled down...hunt of specific species of whales. Adventure may have been the draw for some whalers, but for the captains who owned whaling ships, and the investors which financed voyages, there was a considerable monetary payoff. The gigantic carcasses of whales were chopped and boiled down ...Prior to carrying out a detailed condition report of the cetacean skeletons, it is useful to have an understanding of the materials we are likely to encounter, in terms of structure and chemistry. This entry invites you to join in learning about the composition of whale bone and oil. Whale bone (Cetacean) bone is comprised of a composite structure of both an inorganic matrix of mainly hydroxylapatite (a calcium phosphate mineral), providing strength and rigidity, as well as an organic protein ‘scaffolding’ of mainly collagen, facilitating growth and repair (O’Connor 2008, CCI 2010). Collagen is also the structural protein component in cartilage between the whale vertebrae and attached to the fins of both the Killer Whale and the Dolphin. Relative proportions in the bone composition (affecting density), are linked with the feeding habits and mechanical stresses typically endured by bones of particular whale types. A Sperm Whale (Physeter macrocephalus Linnaeus, 1758) skeleton (toothed) thus has a higher mineral value (~67%) than a Fin Whale (Balaenoptera physalus Linnaeus, 1758) (baleen) (~60%) (Turner Walker 2012). The internal structure of bone can be divided into compact and cancellous bone. In whales, load-bearing structures such as mandibles and upper limb bones (e.g. humerus, sternum) are largely composed of compact bone (Turner Walker 2012). This consists of lamella concentrically deposited around the longitudinal axis and is permeated by fluid carrying channels (O’Connor 2008). Cancellous (spongy) bone, with a highly porous angular network of trabeculae, is less stiff and thus found in whale ribs and vertebrae (Turner Walker 2012). Whale oil Whales not only carry a thick layer of fat (blubber) in the soft tissue of their body for heat insulation and as a food store while they are alive, but also hold large oil (lipid) reserves in their porous bones. Following maceration of the whale skeleton after death to remove the soft tissue, the bones retain a high lipid content (Higgs et. al 2010). Particularly bones with a spongy (porous) structure have a high capacity to hold oil-rich marrow. Comparative data of various whale species suggests the skull, particularly the cranium and mandible bones are particularly oil rich. Along the vertebral column, the lipid content is reduced, particularly in the thoracic vertebrae (~10-25%), yet greatly increases from the lumbar to the caudal vertebrae (~40-55%). The chest area (scapula, sternum and ribs) show a mid-range lipid content (~15-30%), with vertically orientated ribs being more heavily soaked lower down (Turner Walker 2012, Higgs et. al 2010). Whale oil is largely composed of triglycerides (molecules of fatty acids attached to a glycerol molecule). In Arctic whales a higher proportion of unsaturated, versus saturated fatty acids make up the lipid. Unsaturated fatty acids (with double or triple carbon bonds causing chain kinks, preventing close packing (solidifying) of molecules), are more likely to be liquid (oil), versus solid (fat) at room temperature (Smith and March 2007). Objects Made From the Whaling Industry We all know that men set forth in sailing ships and risked their lives to harpoon whales on the open seas throughout the 1800s. And while Moby Dick and other tales have made whaling stories immortal, people today generally don't appreciate that the whalers were part of a well-organized industry. The ships that set out from ports in New England roamed as far as the Pacific in hunt of specific species of whales. Adventure may have been the draw for some whalers, but for the captains who owned whaling ships, and the investors which financed voyages, there was a considerable monetary payoff. The gigantic carcasses of whales were chopped and boiled down and turned into products such as the fine oil needed to lubricate increasing advanced machine tools. And beyond the oil derived from whales, even their bones, in an era before the invention of plastic, was used to make a wide variety of consumer goods. In short, whales were a valuable natural resource the same as wood, minerals, or petroleum we now pump from the ground. Oil From Whale’s Blubber Oil was the main product sought from whales, and it was used to lubricate machinery and to provide illumination by burning it in lamps. When a whale was killed, it was towed to the ship and its blubber, the thick insulating fat under its skin, would be peeled and cut from its carcass in a process known as “flensing.” The blubber was minced into chunks and boiled in large vats on board the whaling ship, producing oil. The oil taken from whale blubber was packaged in casks and transported back to the whaling ship’s home port (such as New Bedford, Massachusetts, the busiest American whaling port in the mid-1800s). From the ports it would be sold and transported across the country and would find its way into a huge variety of products. Whale oil, in addition to be used for lubrication and illumination, was also used to manufacture soaps, paint, and varnish. Whale oil was also utilized in some processes used to manufacture textiles and rope. Spermaceti, a Highly Regarded Oil A peculiar oil found in the head of the sperm whale, spermaceti, was highly prized. The oil was waxy, and was commonly used in making candles. In fact, candles made of spermaceti were considered the best in the world, producing a bright clear flame without an excess of smoke. Spermaceti was also used, distilled in liquid form, as an oil to fuel lamps. The main American whaling port, New Bedford, Massachusetts, was thus known as "The City That Lit the World." When John Adams was the ambassador to Great Britain before serving as president he recorded in his diary a conversation about spermaceti he had with the British Prime Minister William Pitt. Adams, keen to promote the New England whaling industry, was trying to convince the British to import spermaceti sold by American whalers, which the British could use to fuel street lamps. The British were not interested. In his diary, Adams wrote that he told Pitt, “the fat of the spermaceti whale gives the clearest and most beautiful flame of any substance that is known in nature, and we are surprised you prefer darkness, and consequent robberies, burglaries, and murders in your streets to receiving as a remittance our spermaceti oil.” Despite the failed sales pitch John Adams made in the late 1700s, the American whaling industry boomed in the early to mid-1800s. And spermaceti was a major component of that success. Spermaceti could be refined into a lubricant that was ideal for precision machinery. The machine tools that made the growth of industry possible in the United States were lubricated, and essentially made possible, by oil derived from spermaceti. Baleen, or "Whalebone" The bones and teeth of various species of whales were used in a number of products, many of them common implements in a 19th century household. Whales are said to have produced “the plastic of the 1800s.” The "bone" of the whale which was most commonly used wasn’t technically a bone, it was baleen, a hard material arrayed in large plates, like gigantic combs, in the mouths of some species of whales. The purpose of the baleen is to act as a sieve, catching tiny organisms in sea water, which the whale consumes as food. As baleen was tough yet flexible, it could be used in a number of practical applications. And it became commonly known as "whalebone." Perhaps the most common use of whalebone was in the manufacture of corsets, which fashionable ladies in the 1800s wore to compress their waistlines. One typical corset advertisement from the 1800s proudly proclaims, “Real Whalebone Only Used.” Whalebone was also used for collar stays, buggy whips, and toys. Its remarkable flexibility even caused it to be used as the springs in early typewriters. The comparison to plastic is apt. Think of common items which today might be made of plastic, and it's likely that similar items in the 1800s would have been made of whalebone. Baleen whales do not have teeth. But the teeth of other whales, such as the sperm whale, would be used as ivory in such products as chess pieces, piano keys, or the handles of walking sticks. Pieces of scrimshaw, or carved whale's teeth, would probably be the best remembered use of whale's teeth. However, the carved teeth were created to pass the time on whaling voyages and were never a mass production item. Their relative rarity, of course, is why genuine pieces of 19th century scrimshaw are considered to be valuable collectibles today. Reference: McNamara, Robert. "Objects Made From the Whaling Industry." ThoughtCo, Jul. 31, 2021, thoughtco.com/products-produced-from-whales-1774070.Whale bone was an important commodity, used in corsets, collar stays, buggy whips, and toys.Whale bone vertebrae. Advanced stage of calcification as indicated by deep pitting. Off white to grey.Noneflagstaff hill, warrnambool, shipwrecked-coast, flagstaff-hill, flagstaff-hill-maritime-museum, maritime-museum, shipwreck-coast, flagstaff-hill-maritime-village, whales, whale bone, corsets, toys, whips, whalebone -
Federation University Historical CollectionPhotograph, Pioneers of Ballarat
... Downes; J.A. Blight; J. Blight; T. Blight; J. Richardson; C.W. Toy; W.C. Elder; E. Towl; S. Walker; W.P. Martin; J.T Langley; J.A. Abramowitch; R, Allan; S.W. Woodward; G. Hunt...Downes J.A. Blight J. Blight T. Blight J. Richardson C.W. Toy W.C. Elder E. Towl S. Walker W.P. Martin J.T Langley J.A. Abramowitch R Allan S.W. Woodward G. Hunt ...The Pioneers of Ballarat may have been created to the Ballarat Old Colonists' Association and the reunions held by the early Ballarat pioneers. The dates given after the pioneers time is their date of arrival into the colony.Photograph showing numerous portraits of men who were considered Pioneers of Ballarat as complied by R. Walker and produced by Chuck Vice Regal Photo. The men depicted are: J. Smith; W. Gay; W. Downie; G. Goddard; B. Varcoe; A.F. Seidal; Loius Balhausen; J. McKenzie; William irwin; M. Box; Thomas Bath; James Oddie; William Tulloch; J.W. Graham; J. Ward; W. Curnow; R.J. Binder; F.J.L. Turner; W. Eyres; C.A. Welch; B. Welch; G. Welch; J. Lake; H. Smith; J. King; R.T. Wreford; Ernest Balhausen; J. Ward; T. Trengrove; J. Truswell; J. Taylor; W. Seeley; J.P. Murray; Hon. David Ham; Andrew Anderson; E. McCartney; J.H. Smith; Joseph Edward Cowley; A. Jones; W.H. Furness; F.N. Martin; James Anderson; G. Becher; James Meek; T. Hawkins; P. Drummond; C. Barker; J. Malcolm; R. Brown; G. Tupper; A. Rose; W. Pinkerton; A. Clinton; A. Sheppard, F.C. Downes; J.A. Blight; J. Blight; T. Blight; J. Richardson; C.W. Toy; W.C. Elder; E. Towl; S. Walker; W.P. Martin; J.T Langley; J.A. Abramowitch; R, Allan; S.W. Woodward; G. Hunt; J. Bishop; F.L. Graham; R. Graham; W. A.G. Fraser; J. Davies; J. Paterson; B.G. Tucker; E. McElroy; W.H. Burton, T.C. Coates; J. Williams; J.P. Roberts; J. Ritchie; T.W. White; J. F. Harvey; Natale D'Angri; D. McCallum; W. Chisholm; P. Kohl; J. Moncrief; J.P. Marshall; R.U. Nicholls; G.L. Holthouse; C. Gray; W. Gale; James Long; Theo Williams; J.R. Ellsworth; W. Scott; Henry Josephs; D. Cooke; William Little; T.H. Thompson; E. Morey; J.G. McDonald; C.C. Shoppee; G. Douglas; W. H. Ellis; W. Hicks; J. Cameron; W. B. Koppers; F. Marendez; G. Herrmann; J. Kelly; E. Jermyn; P. Murray; P. Gay; D. McNaught; T.D. Wanliss; G. Lord; H. Glenny; J. Trethowan; J. Blandford; J. Goujon; W. Coad; A. Colliver; J. Nunn; J. Munro; W.C. Burbidge; J. Jarvie; C. Ferguson; C. Morris; J. Russell; J. Phillips; J. Coghlan; R. Clark; Thomas Stoddart; M. Wasley; B. Retallack; John Reid; M.C. Carey; P. Maloney; E. Newman; J. Lamb; J,. Pryor; J. Gibson; James Mitchell; J. Rowe; James Vallins; A. Roxburgh; A. Cant; O. Thomas; J.Y. McDonald; W.M. Acheson; A. Jack; R. Gibbings; E.W. Chamberlain; J.H. Ellsworth; J. Falconer; G.G. Lorimer; James M. Bickett; T. Sayle; Andrew McIntyre; W. Hambley; K. Coutts; T. Muir; R. Scott; G. Leach; E. Richards; R. Hearn; J. Hughan; D. Miliani; E. Parr; J. T. Irving; W.G. Williams; J. Marks; J. Darby; T. Ray; D. McKenzie; James Robson; J. Robson; J. Moore; J. Murphy; Robert M. Serjeant; C. Ford; E.E. Campbell; P. Folland; P.J. Rickard; A. McVitty; B. Angwin; J.T. Sleep; M.P. Whiteside; W. Curtis; H. Crisp; E. Major; R. Pearce; J. Waller; G. Waller; G. Abrams; J. McIntyre; J. Johnston; W. Johnston; W. Taylor; J. Knoth; J. Davey; G. Smith; N. Kent; E.O. Witherden; J.B. Cathcart; W.H. Harrow; G. Evans; L. Ure; W.T. Glen; T. Dickinson; D. Hughes; J. Strickland; J. Hillman; E. Jackson; R.J. Walker; D. Gunn; R.J. Gullan; T. McManamy; A. Gray; James trembath; W. Porter; J. Showman; C. Walker; J. Bowman; W.B. McDonald; P. Jago; J. Stout pioneers, ballarat, chuck, chuck vice regal photo, r. walker, ballarat pioneers, pioneers of ballarat, j. smith, w. gay, w. downie, g. goddard, b. varcoe, a.f. seidal, loius balhausen, j. mckenzie, william irwin, m. box, thomas bath, james oddie, william tulloch, j.w. graham, j. ward, w. curnow, r.j. binder, f.j.l. turner, w. eyres, c.a. welch, b. welch, g. welch, j. lake, h. smith, j. king, r.t. wreford, ernest balhausen, t. trengrove, j. truswell, j. taylor, w. seeley, j.p. murray, hon. david ham, andrew anderson, e. mccartney, j.h. smith, joseph edward cowley, a. jones, w.h. furness, f.n. martin, james anderson, g. becher, james meek, t. hawkins, p. drummond, c. barker, j. malcolm, r. brown, g. tupper, a. rose, w. pinkerton, a. clinton, a. sheppard, f.c. downes, j.a. blight, j. blight, t. blight, j. richardson, c.w. toy, w.c. elder, e. towl, s. walker, w.p. martin, j.t langley, j.a. abramowitch, r, allan, s.w. woodward, g. hunt, j. bishop, f.l. graham, r. graham, w. a.g. fraser, j. davies, j. paterson, b.g. tucker, e. mcelroy, w.h. burton, t.c. coates, j. williams, j.p. roberts, j. ritchie, t.w. white, j. f. harvey, natale d'angri, d. mccallum, w. chisholm, p. kohl, j. moncrief, j.p. marshall, r.u. nicholls, g.l. holthouse, c. gray, w. gale, james long, theo williams, j.r. ellsworth, w. scott, henry josephs, d. cooke, william little, t.h. thompson, e. morey, j.g. mcdonald, c.c. shoppee, g. douglas, w. h. ellis, w. hicks, j. cameron, w. b. koppers, f. marendez, g. herrmann, j. kelly, e. jermyn, p. murray, p. gay, d. mcnaught, t.d. wanliss, g. lord, h. glenny, j. trethowan, j. blandford, j. goujon, w. coad, a. colliver, j. nunn, j. munro, w.c. burbidge, j. jarvie, c. ferguson, c. morris, j. russell, j. phillips, j. coghlan, r. clark, thomas stoddart, m. wasley, b. retallack, john reid, m.c. carey, p. maloney, e. newman, j. lamb, j, . pryor, j. gibson, james mitchell, j. rowe, james vallins, a. roxburgh, a. cant, o. thomas, j.y. mcdonald, w.m. acheson, a. jack, r. gibbings, e.w. chamberlain, j.h. ellsworth, j. falconer, g.g. lorimer, james m. bickett, t. sayle, andrew mcintyre, w. hambley, k. coutts, t. muir, r. scott, g. leach, e. richards, r. hearn, j. hughan, d. miliani, e. parr, j. t. irving, w.g. williams, j. marks, j. darby, t. ray, d. mckenzie, james robson, j. robson, j. moore, j. murphy, robert m. serjeant, c. ford, e.e. campbell, p. folland, p.j. rickard, a. mcvitty, b. angwin, j.t. sleep, m.p. whiteside, w. curtis, h. crisp, e. major, r. pearce, j. waller, g. waller, g. abrams, j. mcintyre, j. johnston, w. johnston, w. taylor, j. knoth, j. davey, g. smith, n. kent, e.o. witherden, j.b. cathcart, w.h. harrow, g. evans, l. ure, w.t. glen, t. dickinson, d. hughes, j. strickland, j. hillman, e. jackson, r.j. walker, d. gunn, r.j. gullan, t. mcmanamy, a. gray, james trembath, w. porter, j. showman, c. walker, j. bowman, w.b. mcdonald, p. jago, j. stout, john smith -
Narre Warren and District Family History GroupProgramme, Belgrave Masonic Lodge No 439 Installation program for Bro. Percy James Lester Dated Saturday 9th April 1932
... Hunt H. S Kaye G Muir D. W McKenzie A Ansaldi D O’Donohue A. E Maynard W O’Brien W Phillips F Pitt A Robins W Rocke J. H Maddock Front and back are thickened cream paper. The front has flower stems raised around the emblem and down ...Front and back are thickened cream paper. The front has flower stems raised around the emblem and down the side. The emblem has what looks like a blue lantern above the embossed in gold Square and compass. the printing is in dark blue of various fonts and sizes. the back is plain. It is tied in the middle with light blue thin cord. The middle page is ordinary white paper with dark blue border printed around writing. The writing is again in dark blue with various sizes and fonts.belgrave lodge no 439, percy james lester, dr. w. tregear, a. j brown, g. e chandler, c reynolds, g richards, c. a johnston, h. a wilkins, dr. s. e francis, r. c johnson, t. v. l ray, s. w hunt, h. s kaye, g muir, d. w mckenzie, a ansaldi, d o’donohue, a. e maynard, w o’brien, w phillips, f pitt, a robins, w rocke, j. h maddock -
Narre Warren and District Family History GroupBook - Scot's Presbyterian Church Dandenong, Arbuckle Waddell Pty Ltd, Scot's Presbyterian Church, Dandenong : a record of 100 years of congregational life and work 1854-1954, 1954
... Narre Warren and District Family History Group 110 High Street Berwick melbourne Scots Presbyterian Church Dandenong Rev J A Finlay Stuart G Brown E W Allison G G Byrne L R Hunt D J Mickle A H Murden H G Twiss G Crawford Angus Facey T Fisher H J Godwin A J Gibson Bruce Gibson A Hillard H Holcombe J F Hucker G A Ingram S W Laugher J McKenzie J W Marsh G E Pigdon J J Simester C Taylor V R Tharle Margaret Eddy Rev William Macdermid Rev Hugh Buntine Rev James Legge Rev John Meers Rev Vincent F Hadley Rev Jack A Finlay Rev David McFarlane A record of 100 years of congregational life and work at Scot's Presbyterian Church Dandenong - 1854-1954 A horizontal fold mark goes down the center of the booklet A5 Booklet - 12 Pages Scot's Presbyterian Church, Dandenong : a record of 100 years of congregational life and work 1854-1954 Book Scot's Presbyterian Church Dandenong Arbuckle Waddell Pty Ltd ...A record of 100 years of congregational life and work at Scot's Presbyterian Church Dandenong - 1854-1954A5 Booklet - 12 Pagesnon-fictionA record of 100 years of congregational life and work at Scot's Presbyterian Church Dandenong - 1854-1954scots presbyterian church dandenong, rev j a finlay, stuart g brown, e w allison, g g byrne, l r hunt, d j mickle, a h murden, h g twiss, g crawford, angus facey, t fisher, h j godwin, a j gibson, bruce gibson, a hillard, h holcombe, j f hucker, g a ingram, s w laugher, j mckenzie, j w marsh, g e pigdon, j j simester, c taylor, v r tharle, margaret eddy, rev william macdermid, rev hugh buntine, rev james legge, rev john meers, rev vincent f hadley, rev jack a finlay, rev david mcfarlane
