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Waverley RSL Sub Branch
Next of Kin Memorial Plaque Dead Mans Penny, Commonly known as Dead Man's Penny
“Pennies” were awarded to the Next of Kin of soldiers who died in or as a result of the “Great War” and approximately 1.5million were issued up until the 1930’s they were accompanied by a scroll (letter) from King George with the message “‘I join with my grateful people in sending you this memorial of a brave life given for others in the Great War”. The Name of the serviceman, which appears on the medallion' is always shown without rank. This is to show that the sacrifice of all men is of equal value.Stanley Alan Morey was born in Dulwich, London, England from whence he came to Austalia and lived with his parents and elder sister in Brighton Victoria He became a fitter and turner. He enlisted in the A.I.F on the 21th April 1917 Service number 3444 and was assigned to the 59th Battalion and embarked from Sydney on the HMAT “Port Melbourne” on the 16th July 1917 He went to France from England on the 9th January 1918 and joined his unit 18th January 1918 at Le Havre Less than 3 months later he was Killed in Action. He has no known grave but is remembered by a Memorial at Villers-Bretonneux, France Round Bronze Medallion/PlaqueDepicts British rule of the sea (Britannia with two Dolphins), and a lion representing the British Empire. The lion stands on an eagle which represents the defeated Germany. A small insert has the Soldiers name embossed within a rectangular border. Around the rim of the plaque appear the words "He died for freedom and honour"dead man's penny, stanley alan morey, 59th battalion, villers-bretonneux, next of kin memorial plaque -
Flagstaff Hill Maritime Museum and Village
Animal specimen - Whale Tooth, Probably 19th century
The toothed whales (also called odontocetes, systematic name Odontoceti) are a parvorder of cetaceans that includes dolphins, porpoises, and all other whales possessing teeth, such as the beaked whales and sperm whales. Seventy-three species of toothed whales are described. They are one of two living groups of cetaceans, the other being the baleen whales (Mysticeti), which have baleen instead of teeth. The two groups are thought to have diverged around 34 million years ago (mya). Toothed whales range in size from the 4.5 ft (1.4 m) and 120 lb (54 kg) vaquita to the 20 m (66 ft) and 55 t (61-short-ton) sperm whale. Several species of odontocetes exhibit sexual dimorphism, in that there are size or other morphological differences between females and males. They have streamlined bodies and two limbs that are modified into flippers. Some can travel at up to 20 knots. Odontocetes have conical teeth designed for catching fish or squid. They have well-developed hearing, that is well adapted for both air and water, so much so that some can survive even if they are blind. Some species are well adapted for diving to great depths. Almost all have a layer of fat, or blubber, under the skin to keep warm in the cold water, with the exception of river dolphins. Toothed whales consist of some of the most widespread mammals, but some, as with the vaquita, are restricted to certain areas. Odontocetes feed largely on fish and squid, but a few, like the killer whale, feed on mammals, such as pinnipeds. Males typically mate with multiple females every year, but females only mate every two to three years, making them polygynous. Calves are typically born in the spring and summer, and females bear the responsibility for raising them, but more sociable species rely on the family group to care for calves. Many species, mainly dolphins, are highly sociable, with some pods reaching over a thousand individuals. Once hunted for their products, cetaceans are now protected by international law. Some species are attributed with high levels of intelligence. At the 2012 meeting of the American Association for the Advancement of Science, support was reiterated for a cetacean bill of rights, listing cetaceans as nonhuman persons. Besides whaling and drive hunting, they also face threats from bycatch and marine pollution. The baiji, for example, is considered functionally extinct by the IUCN, with the last sighting in 2004, due to heavy pollution to the Yangtze River. Whales occasionally feature in literature and film, as in the great white sperm whale of Herman Melville's Moby-Dick. Small odontocetes, mainly dolphins, are kept in captivity and trained to perform tricks. Whale watching has become a form of tourism around the world. Reference: https://en.wikipedia.org/wiki/Toothed_whaleWhale teeth were much prized for use in scrimshaw work.Whale tooth. Significant staining and yellowing. Broken at base, and missing the root.Noneflagstaff hill, warrnambool, shipwrecked-coast, flagstaff-hill, flagstaff-hill-maritime-museum, maritime-museum, shipwreck-coast, flagstaff-hill-maritime-village, whale tooth, whaling, whaling industry, whales -
Federation University Historical Collection
Medal - Numismatics, 'Dead Man's Penny' for Edwin Joseph 'Ted' Cannon, c1919
The Dead Man’s Penny is a commemorative medallion which was presented to the next-of-kin of the men and women from England and the Empire who died during World War One. The Dead Man’s Penny was accompanied by a letter from King George V, stating ‘I join with my grateful people in sending you this memorial of a brave life given for others in the Great War’.[http://nma.gov.au/blogs/education/2010/11/14/dead-mans-penny/] Popularly known as the "Dead Man’s Penny", because of the similarity in appearance to the somewhat smaller penny coin. 1,355,000 plaques were issued, which used a total of 450 tonnes of bronze, and continued to be issued into the 1930s to commemorate people who died as a consequence of the war. [http://en.wikipedia.org/wiki/Memorial_Plaque_(medallion)] It was decided that the design of the plaque was to be picked from submissions made in a public competition. Over 800 designs were submitted and the competition was won by the sculptor and medallist Edward Carter Preston with his design called Pyramus, receiving a first place prize of £250.[http://en.wikipedia.org/wiki/Memorial_Plaque_(medallion)] They were initially made at the Memorial Plaque Factory, 54/56 Church Road, Acton, W3, London from 1919. Early plaques did not have a number stamped on them but later ones have a number stamped behind the lion's back leg. [http://en.wikipedia.org/wiki/Memorial_Plaque_(medallion)] Ted Cannon's plaquette does not have a stamped number. Ted Cannon was a gifted artist and cartoonist who studied at the Ballarat School of Mines Technical Art School. During the Battle of Pozieres on the Western Front Ted Cannon worked with the Scout Platoon sketching the enemy's gun emplacements. Ted proved invaluable to the Brigade and brought he came under the attention of the Australian High Command. On 13 September 1916 Ted was given a special assignment for General C.B.B. White. Ted was sent out forward of the Old Mill at Verbrandenmolen (in the Ypres Salient) to draw a panorama of the German lines in the area from Hill 60 to The Bluff. It was a hazardous task and Ted was warned to be careful. Tragically he was sniped by an enemy machine-gunner and sustained severe abdominal wounds. Stretcher-bearers rushed him to the 17th Casualty Clearing Station where he was operated on by the doctors at 8.30 that night. With little chance of success, but ever resilient, Ted remained conscious almost to the end. He died early in the morning of the 14 September 1916. His body was buried in the large Military Cemetery at Lijssenthoek. The effects of the late Ted Cannon were returned to his parents. These were an autograph book, three brushes, prayer book, housewife, whistle, book, hymn book, curios. Another listing gives his effects as "identity disc, letters, photos, wallet, 2 books, Mexican Dollar, 1 cent (Ceylon), 3 German Straps, Fountain Pen, Cigarette-holder, Franc Note, 50 centimes Note, devotional book, mirror, rosary, scapula, metal ring, two combs, book of views, nail clippers, badges, tie clip, Egyptian stamp.[http://recordsearch.naa.gov.au/scripts/Imagine.asp?B=3202589] Ted Cannon was an only child. It is not known how the 'Dead Man's Penny' came into the ownership of the donor, but it is thought that it may have been left in a house owned by the donor's mother. Further information on Ted Cannon can be found at http://bih.ballarat.edu.au/index.php/Edwin_J._Cannon and http://www.ballarat.edu.au/about-ub/history/art-and-historical-collection/ub-honour-roll/c/edwin-joseph-ted-cannon-1895-1916Large bronze medallion or plaquette featuring an image of Lady Britannia surrounded by two dolphins (representing Britain’s sea power) and a lion (representing Britain) standing over a defeated eagle (symbolising Germany). Around the outer edge of the medallion are the words ‘He died for freedom and honour’. Next to Lady Britannia is the deceased solider’s name, with no rank provided to show equality in their sacrifice. (http://nma.gov.au/blogs/education/2010/11/14/dead-mans-penny) The plaque was distributed throughout the British Empire, and the first plaques were distributed in Australia in 1922 "Returned home" by W. & O. Mayne, 2013. ted cannon, edwin joseph cannon, cannon, world war 1, world war -
Myrtleford and District Historical Society
Memorial Plaque, Memorial Plaque Factory, "Dead Man's Penny", Circa 1921
The "Dead Man's Penny" of Private George Matthews (24/1744) is a district link to the First World War. George enlisted with the Otago Regiment, New Zealand Expeditionary Force as a rifleman. Born in 1891, he was a former pupil of Myrtleford State School 955 and was one of four first cousins killed in action and recorded in a memorial window and honour board at the Uniting (formerly Methodist) Church, the Soldier's Memorial Square and on the State School Honour Board. George's parents, John and Mary Matthews,received the plaque in a pack, together with a letter and commemorative scroll from King George V. George Matthews is buried at the Caterpillar Valley (N.Z.) Memorial, France, having died on October 1, 1916, aged 25. The memorial plaque links local family tragedy to world conflict. It represents the impact of such events must have had on small town communities. George Matthews' enlistment in New Zealand is an indicator of the migratory nature of men involved in gold mining after the decline of the industry in Victoria and New South Wales in the late 19th centuryA World War 1 memorial plaque issued to next-of-kin of all British and Empire service personnel who died as a result of the war. They were round and cast in bronze, hence their similarity to the much smaller penny coin. The plaque includes an image of Britannia, holding a trident and standing with a lion. Britannia holds an oak leaf above the deceased's name, which is recorded without rank. Two dolphins swim around Britannia, symbolizing sea power, and at the base a second lion is tearing apart the German eagle. Around the picture a legend reads: "He died for freedom and Honour"Name engraved: GEORGE MATTHEWSmemorial plaque dead man's penny george matthews -
Phillip Island Conservation Society Inc.
Work on paper - Photocopy of newspaper cutting, "PHILLIP ISLAND/A place to fall in love"
This article was written by an English visitor named Elsa Christian who was touring Australia and New Zealand with her husband Frank in their own small van. The article was published in the Australian Women’s Weekly, magazine, March 1966. Elsa writes she wanted to visit four Australian locations before she died: Ayers Rock (actually Uluru), the Snowy River project, dolphins at Coolangatta and the Penguin Parade at Phillip Island. These destinations were all very popular in the 1960s for both Australian residents and overseas visitors. Because the roads were becoming better too many locations, self guided tours in small vans for cars towing bond would caravans were becoming more popular means of seeing AustraliaThe article is significant in many ways. 1. Indicates the places English visitors commonly wish to see in Australia. 2. Describes the growing trend to self- drive van/camping holidays. 3. Gives the route taken from Melbourne to Phillip Island during the 1960s. 4. Describes the appearance of the roadsides and locations visited. 5. It is written in a descriptive and lyrical style designed to appeal to Women’s Weekly magazine readers, who were probably wondering how they could visit Phillip Island with their husbands or families themselves, and what there was to see there. 6. Gives the visitors’ view of how the Penguin Parade operated at the time. 7. Includes a description of potter and artist Eric Juckert’s renowned garden at Grossard Point, Ventnor. 8. Indicates how introduced plants such as Hawthorn pushes and Kate weed were common in the area. 9. Describes Phillip Island as “a place to fall in love” because of its natural beauty, fauna and coastal seascapes. 10. As a visitor Elsa describes the housing estates as a blot on the landscape, but also sees the value as a way of their owners escaping from the hustle and bustle of Melbourne. 11. Gives the visitors’ interpretation of the behaviour of wildlife the RC in the wild, as well as Elsa’s knowledge about some of the species she encounters.Photocopy of full page article with 5 columns of text, a map and 2 photographs. Black ink on white paper. Photographs blackened in photocopying processphillip island, cape woolamai, penguin parade, seal rocks, nobbies, township of rhyll phillip island, princes highway, dandenong, pakenham, kooweerup, carinya creek, officer, san remo, gippsland highway, holiday homes, fort dumaresq, kitty miller's beach, wreck of the speke, hereford cattle, fleetwood manor, koalas, ventnor, eric juckert, little penguin behaviour -
Bendigo Historical Society Inc.
Photograph - GOLDEN SQUARE LAUREL STREET P.S. COLLECTION: GOLDEN SQUARE PRIMARY SCHOOL GRADE 2/3 1995
Coloured photograph of the Golden Square Laurel Street P.S. Collection - Golden Square Primary School No. 1189 - Grade 2/3 L 1995 classes. Their names are:- Back Row:- Anna Oakes, Hayden Donaldson, Justin Broadbent, Bethany thomson, Alex Lockwood, Laura Connaughjton, Kristey Allen, Jessica Gloster, Elizabeth Lobley, Brendan Bourke, Mitchell Butler, Anna Markis, Danielle Blake. Middle Row:- Mrs. Jenny Levett (Teacher), Lachlan Carter, Kara Braddy, Emma Hazelton, Tara Walsh, thomas Catterall, Dearne Rice, thomas Townsend, Rodney Weeks, Nicholas Van Dalen. Frong Row:- Avril Dolphin, Sarah Oakes, jarrad Hunt, Joshua Skinner, Seb Robins, Joel Clarke. Absent:- Brittany Rice. On the right of the names is an oval sketch of the school.education, primary, golden square laurel st p.s., golden square laurel street p.s. collection - golden square primary school no. 1189 - grade 2/3 l 1995, anna oakes, hayden donaldson, justin broadbent, bethany thomson, alex lockwood, laura connaughton, kristey allen, jessica gloster, elizabeth lobley, brendan bourke, mitchell butler, anna markis, danielle blake, mrs jenny levett (teacher) lachlan carter, kara braddy, emma hazelton, tara walsh, thomas catterall, dearne rice, thomas townsend, rodney weeks, nicholas van dalen, avril dolphin, sarah oakes, jarrad hunt, joshua skinner, seb robins, joel clarke, brittany rice -
Australian National Surfing Museum
Book, Andrew Crockett, Switch-foot (surfing art music), 2005
Switch-foot is a classic publication out of Australia 2005. This 210 page hardcover book has many of the immortal surfing images from the golden era in surfing from photographers such as Albe Falzon, George Greenough and Jack Eden. Stories from: George Greenough looking at his simple genius and his movie magic with ‘Dolphin Glide’ and ‘Behind the Scenes.’ The unmasking of the truth behind Peter Drouyn, 12 legends of the Lens (images from the golden era) The telling of Dick Van Straalen’s story and his current relationship with Dave Rastovich The art of Harry Daily Global surf travel with Colas Thomas Campbell drops by Rasta and friends music with the exploration into the mystery of the art of jamming Discussions about sustainable surfcraft production with Tom Wegener, the unveiling of new school talent within music and photography and also talking to important leaders in the field of classic surfing to gather information on surfboard design, single fin surfing and fin dynamics. Music from low pressure sound systems in the story titled ‘the art of jamming’ A significant publication that explores art, photography and music in surfing culture.Switch-foot (surfing art music) is a hard copybook of surfing photography with a black cover featuring 5 art panels and one panel with text. 'Switch-foot surfing art music'.ISBN 0-646-45057art, surfing, jack eden, switchfoot, music, surf photography, alby falzon, george greenough, peter drouyn, dolphin glide, dick van straaleen, jim banks, peter crawford, mark richards -
Wangaratta RSL Sub Branch
Framed Photograph, Peter Cardwell - Life Member Wangaratta RSL
Peter was born on 16/4/1950 at Corryong before moving to Barnawatha, Wodonga then Wangaratta in 1963. On the 5/1/1966 he joined the RAN as a junior recruit HMAS Leeuwin W.A. On 1/1/1967 he joined HMAS Yarra - Far East Strategic Reserve and Vietnam. Arriving back in Australia on 1/1/1968 he was posted to HMAS Watson in NSW. In 1969 he volunteered for submarine training in the UK at HMS Dolphin (Gosport). Joined HMS/m Onyx (3rd squadron at Faslane Scotland (Garelock Head) (HMS Neptune) On returning to Australia in 1971 posted to HMAS Platypus and HMAS/m Otway. In 1973 Peter was posted to HMAS Sydney - later decommissioned - then HMAS Torrens. Following the Royal Tour Pacific Islands in 1974 he joining the Naval Police in 1975 specialising in Fire fighting. Peter was discharged whilst still in hospital from the RAN in 1983 following a serious motor cycle accident in 1982. In 1984 on his return to Wangaratta he rejoined the RSL and held the office of Secretary for 10 years and Welfare/Pensions Officer for 22 years. In 2012 in recognition of his long service he was appointed Life Member of the RSL.Brown timber look frame inner edge gold painted with photograph of male wearing service medalsPeter L CARDWELL Appointed Life Member of the RSL in December 2012peter cardwell, wangaratta rsl, ran -
Robin Boyd Foundation
Magazine, Vogue Living, "All the Good Things of Life" Vogue Living Australia Vol. XX, No. 2, Whole No. 109, 1986
Softcover MagazineNote on the front cover with name "Raymond McGrath". Postcard found on page 108 from 6th May 1987 at Durras NSW. "Dear Trish, We are on our third day at Durras and having a wonderfully healthy holiday going for long beach walks and getting quite exhausted. Yesterday the more hardy of us (Ben, Amy & me) even swam. Just prior to our swim four dolphins had been frolicking in the bay where we were picnicking. Ben, Amy and Rupert are anxious to do some fishing so we are off to buy some bait and post this card in Batemans Bay some 20km south. Happy Mother's Day for Sunday. Love from us all, Penleigh." The postcard sent to Mrs John Davies and features the SS Merimbula approaching home wharf, photo credit unknown.walsh st library -
Bendigo Historical Society Inc.
Document - THE BENDIGO CHORAL SOCIETY, 17 Sept 1918
The Bendigo Choral Society, Season 1918, Second Concert. Sixth Grand Concert, Masonic Hall, September 17th, at 8 p.m. Artists: Miss Dorothy Penfold, A.R.C.M., Miss Myrtle Knight, Mr J Danks, Mr Arthur E Sayer, Mr H Williams. Conductor: Mr W C Frazier, A.R.C.O., Pianist: Miss Muriel Hyett, L.A.B. Admission 1?- and 1d. Tax. Patron: His Worship the Mayor, Cr Ambrose Dunstan. Office Bearers: President-Mr H M Leggo. Vice Presidents-Mr M G Giudice & Cr J H Curnow. Sub-Conductor-Mr E A Miller. Treasurer & Librarian-Mr W H Dolphin. Assistant Librarian-Mr R J G Duguid. Assistant Secretary-Mr F A Wittscheibe. Committee-Office Bearers, with Mesdames Perry & Scott, Misses Colgan, Veale, Gall and Weeks, and Messrs. Duguid, Sleeman, W Brown, F Wittsheibe and F J Walter. Hon. Secretary-J Huspeth, 85 Wills Street, Bendigo. Programme: God Save the King, Come if you dare, Scherzo Capriccio, La Carita, To the Forest, Villanelle,A Spell is on the Woods and Meadows, Scotland Yet, A Love Song, We Wandered, The Brook, Wanderer's Night Song, Eleanore, Young Lochinvar.Bolton Bros. Printers, Bendigoprogram, music, the bendigo choral society, the bendigo choral society, season 1918, second concert. sixth grand concert, masonic hall, september 17th, at 8 p.m. artists: miss dorothy penfold, a.r.c.m., miss myrtle knight, mr j danks, mr arthur e sayer, mr h williams. conductor: mr w c frazier, a.r.c.o., pianist: miss muriel hyett, l.a.b. admission 1?- and 1d. tax. patron: his worship the mayor, cr ambrose dunstan. office bearers: president-mr h m leggo. vice presidents-mr m g giudice & cr j h curnow. sub-conductor-mr e a miller. treasurer & librarian-mr w h dolphin. assistant librarian-mr r j g duguid. assistant secretary-mr f a wittscheibe. committee-office bearers, with mesdames perry & scott, misses colgan, veale, gall and weeks, and messrs. duguid, sleeman, w brown, f wittsheibe and f j walter. hon. secretary-j huspeth, 85 wills street, bendigo. programme: god save the king, come if you dare, scherzo capriccio, la carita, to the forest, villanelle, a spell is on the woods and meadows, scotland yet, a love song, we wandered, the brook, wanderer's night song, eleanore, young lochinvar. -
Bendigo Historical Society Inc.
Magazine - HANRO COLLECTION: JOHN BROWN FASHION NEWS LETTER VOL 1NO. 2, April 1968
BHS CollectionJohn Brown Fashion News Letter Vol 1, No 2.: A paper newsletter on a white back ground printed in black and tan colour box at the top, 20 x 5.2cm with fashion repeated three times filling the area on the right side. A stylized figure appears on the left hand side with its left leg pointed upwards. Underneath is Vol 1, No.2, Published by John Brown Industries Ltd. 110 Trennery Crescent Abbotsford, Vic. 3067. April 1968, (underlined). Page 1. The article is headed *Admiral Club Afloat* which is a new trade name for knit shirts, that has 300 colours and style combinations. Tricel is a new fibre introduced for the first time in Australia. On the right hand side is a black and white photo of two men wearing Tetoron and Polycott in a contemporary design wearing Bermuda shorts standing on a boat. On the left of the photo is a girl in a bikini top. On page 2 is a report on the increase on imports of knitted garments against local production. Also an article on quality control in Bendigo and a photo showing Mr Frank Harris viewing a fabric through an industrial magnifying glass. Page 3 shows knitwear from *The Admiral Club Range* Second item on page 2 is of The successful Kyneton Mill being established in 1921 bringing employment from the extended district. A photo of an original employee Mr Jim Roberts is at the bottom. Last page is an article top left side is The Welmar Men's Dress Shirt proved very popular and sold out before Christmas. Under that is a photo of the busy pressing room in Bendigo. Bottom left : *Sales Network Expanded* an article on sales covering Brisbane and a new office in Townsville. Top right is an article about Anne Hine an employee of John Brown, runner up of the Miss Victoria Quest enjoying herself in Queensland on the Gold Coast which was part of her prize. A photo of Anne with a dolphin is included. Other topics include *Ten pin Bowling trophy to Victoria* and New President announced*, Mrs Molly Lapsley Retires. Box 116AAssociated World Public Relations Pty Ltd. Printed by Aldine Press.bendigo, industry, john brown knitting mills, john brown industries. mr frank harris. mr jim roberts. michael robinson. welmar plant bendigo. norma gardner. mrs molly lapsley -
Moorabbin Air Museum
Document (Item) - Aircraft History ,Refer Description For Types And Serial Numbers
Douglas Dolphin A35-1 To A35-4 Fairchild 24G/24R (UC-61) Forwarder) A36-1 to A36-4 Miles 3D Falcon Six M4 Merlin ,M3A Falcon Major, A37-1 To A37-6 Stinson SR-8B Reliant A38-1, Sentinel L-5V USAAF 99129 Beechcraft 17 (UC-43 Traveller ) A39-1 to A39-3 Cessna C34 Airmaster A40-1 DH 83 Fox Moth A41-1 to A41-4 Lockheed DL-1A Vega 5 A42-1 Junkers G31 & W34 A44-1 To A44-3 DH 90 Dragonfly A43-1 Ford Trimotor A45-1 & A45-2 Dornier Do.24 A49-1 to A49-6 Waco YQC-6 A54-1 Lockheed Ventura A59 Northrop Delta A61-1+Douglas C-47 A65-1 To A65-124 Lockheed 18 Loadstar A67-1To A67-10.LT9-31 To LT9-35 Martin PBM Mariner A70-1 to A70-12 Noorduyn UC-64A Norseman IV , A71-1 To A71-14 DH Dragon Rapide A33-1 to A33-7 Ford Trimotor A45-1 & A45-2 -
Federation University Historical Collection
Minute Book, Minute Book 1 of the Eureka Stockade Memorial Park Committee
Brown hard covered book with red tape spine. Handwriiten minutes.F.-Penhalluriack, A.-J.-Pittard, Helen-McKay, D.-Bernardi, Tozer, Gingell, Lugg, R.-McGregor, Eureka-Stockade, J.-S.-Edwards, J.-Davies, J.-S.-Edwards, Eureka-Stockade, Eureka, Eureka-sports, A.-Cant, E.-G.-Pearce, C.-Jones, W.-Feary, J.-R.-Hams, W.-Pool, W.-Hayes, Rotunda, B.-Dolphin, J.-Elsworth, J.-Elsworth, H.-J.-Ham, J.-Lepp, Ballarat-Fire-Brigade, Ballarat-Pipe-Band, W.-F.-TuckerF.-Micklejohn, athletics, H.-McKinnon, A.-Levy, publican's-booth, Eureka-Carnival, J.-Davies, Ballarat-Lodge, Pathes-Pictures, H.Kisler, J.-Splatt, J.-Ellis, J.-Baxter, J,-Chatham, Our-Own-Little-Rebellion, D.-C.-McGrath, A.-N.-A., O'Dea, Meiklejohn, Eureka-Anniversary, W.-A.-Dalton. Alfred-Pittard, Eureka-Pottery-Works, Railway, Britnell, Easter-Fair, William-Carey, J.-Hill, McIvor, C.-E.-Webster, Loney, G.-William, Ttruswell, Dellaca, A.-Cochrane, F.-Britnell, Robert-Brown, W.-Hughes,Tonks, A.-Anglin, G.-Tait, Tom-mason, Hall-Skillion, Eureka-Stockade-Improvement-and-Progress-Association, Union-Jack, A.-J.-Fisken, members-list, J.-Tozer, Robert-Smith, M.-Guthrie, F.-Odgers, A.-Penhalluriack, Schroeder, John-barnes, H.-Hillier, A.-A.-O'Dea, S.-McIvoer, K.-Kisler, eureka stockade memorial park association, eureka stockade -
The Beechworth Burke Museum Research Collection
Card (Series) - Index Card, George Tibbits, Cnr Ford and Camp Streets, Beechworth, 1976
George Tibbits, University of Melbourne. Faculty of Architecture, Building and Town & Regional PlanningIndex system that support the research for Beechworth : historical reconstruction / [by] George Tibbits ... [et al]Arranged by street names of BeechworthEach index card includes: street name and number of property, image of property, allotment and section number, property owners and dates of ownership, description of the property according to rate records, property floor plan with dimensions.beechworth, george tibbitsbeechworth, george tibbits -
Bendigo Historical Society Inc.
Document - BENDIGO TOWN HALL - THE BENDIGO CHORAL SOCIETY, 8 July, 1919
Bendigo Town Hall - The Bendigo Choral Society - Eighth Grand Concert, 8th July 1919. (Nett proceeds for Soldiers' Memorial Institute.) Artists: Miss Winnie Mayberry, Dorothy Penfold, A.R.C.M., Myrtle Knight, Mr John Danks. Conductor: Mr W C Frazier, A.R.C.O. Pianiste: Miss Muriel Hyett, L.A.B. Admission- 2/2 Reserved. 1/1 Ordinary. Subscribers may book at flights on and after 3rd July without extra fee. Holders of 2/2 tickets may also book without fee. Holders of 1/1 tickets may book paying the difference, 1/1. Patron: His Worship the Mayor Cr. Ambrose Dunston. President: Mr H M Leggo. Vice-Presidents; Sir John Quick, Cr W Beebe, Mr Oscar Flight, Mr E S Cahill, Mr D Berriman, Mr A L Bolton, Mr G E Bolton, Dr W J Long, Dr O Penfold, Mr J G Oliphant, Mr Alf E Wallis, Mr A Whitehead, Mr W Watts. From the performing Members: Mr E H Collett, Mr A W McGibboney. Conductor: Mr W C Frazier, A.R.C.O. Sub-Conductor: Mr E A Miller. Pianiste: Miss Muriel Hyett, L.A.B. Treasurer: Mr W H Dolphin. Librarians: Mr R J Druid and G L McCoy. Auditors: Mr H T Bayton & Mr D H Holden. Committee Office Bearers with Mesdames T Scott & Chisholm & Misses Colgan, Gail Field & Wheaton & Messrs Sleeman, Jeffery, McClure, Brown, F J Walter & Frank Wittscheibe. Programme. 'Gloria' 12th Mass, 'Allegro Moto Vivace', 'My Heart is Weary', 150th Psalm, 'Blow, Blow, Thou Winter Wind', 'Land of Hope and Glory', 'Resting Place', 'Vesta', 'Hungarian Rhapsody', 'Eri tu' (Un Ballo in Maschera), 'O, Little Snowflake', 'Ave Maria', 'The Hunting Song', 'God Bless Our Splendid Men.' The Bendigo Choral Society. Has for its primary object, the desire of giving all those interested in this beneficial branch of Musical Culture, the opportunity of learning by becoming members, and hearing by becoming subscribers, the fine Choral works of the great composers. We feel that the splendid qualities of our gifted conductor, Mr W C Frazier, are becoming more and more known to the public of Bendigo, and it is the constant Endeavour of . . . .Bolton Bros. Printers Bendigoprogram, theatre, the bendigo choral society, bendigo town hall - the bendigo choral society - eighth grand concert, 8th july 1919. (nett proceeds for soldiers' memorial institute.) artists: miss winnie mayberry, dorothy penfold, a.r.c.m., myrtle knight, mr john danks. conductor: mr w c frazier, a.r.c.o. miss muriel hyett, l.a.b. admission- 2/2 reserved. 1/1 ordinary. subscribers may book at flights. holders of 2/2 tickets may also book. his worship the mayor cr. ambrose dunston. president: mr h m leggo. vice-presidents; sir john quick, cr w beebe, mr oscar flight, mr e s cahill, mr d berriman, mr a l bolton, mr g e bolton, dr w j long, dr o penfold, mr j g oliphant, mr alf e wallis, mr a whitehead, mr w watts. from the performing members: mr e h collett, mr a w mcgibboney. conductor: mr w c frazier, a.r.c.o. sub-conductor: mr e a miller. pianiste: miss muriel hyett, l.a.b. treasurer: mr w h dolphin. librarians: mr r j druid and g l mccoy. auditors: mr h t bayton & mr d h holden. committee office bearers with mesdames t scott & chisholm & misses colgan, gail field & wheaton & messrs sleeman, jeffery, mcclure, brown, f j walter & frank wittscheibe. programme. 'gloria' 12th mass, 'allegro moto vivace', 'my heart is weary', 150th psalm, 'blow, blow, thou winter wind', 'land of hope and glory', 'resting place', 'vesta', 'hungarian rhapsody', 'eri tu' (un ballo in maschera), 'o, little snowflake', 'ave maria', 'the hunting song', 'god bless our splendid men.' the bendigo choral society. has for its primary object, the desire of giving all those interested in this beneficial branch of musical culture, opportunity of learning members subscribers mr w c frazier -
Moorabbin Air Museum
Document (item) - Roland Jahne Collection - See Description for details
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Flagstaff Hill Maritime Museum and Village
Animal specimen - Whale bone, Undetermined
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 -
Flagstaff Hill Maritime Museum and Village
Animal specimen - Whale bone, Undetermined
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 Village
Animal specimen - Whale bone, Undetermined
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 Village
Animal specimen - Whale bone, Undetermined
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 Village
Animal specimen - Whale bone, Undetermined
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 Village
Animal specimen - Whale bone, Undetermined
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 -
Flagstaff Hill Maritime Museum and Village
Animal specimen - Whale Vertebrae, Undetermined
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 Village
Animal specimen - Whale Jaw Bone, Undetermined
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 Village
Animal specimen - Whale Rib Bone, Undetermined
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 -
Glen Eira Historical Society
Newspaper - GLENHUNTLY
This file contains one item pertaining to Glenhuntly: 1/A copy of the 11/1981, Vol. 1, No. 1 edition (that is, the first edition) of the Glenhuntly News, a local newspaper. Each of its 8 pages except pages 6 and 8 contain material of relevance to Glen Eira. Page 1 features 3 items: an article about the action taken in the wake of a fire occurring at Glenhuntly Primary School on 29/10/1981, a short article about Caulfield resident’s misuse of rubbish bins, and an article (continued on page 7) about the beautification of the Koornang Road Shopping Centre. Page 2 features 2 items: an advertisement for Homestead Handyman Hardware, and an article in which the Liberal candidate for the seat of Glenhuntly, Peter Norman, comments on the State Government’s decision not to extend trading hours for large retailer. Page 3 features 4 items: 2 advertisements for volunteer work for the regional branch of the Liberal Party, an article about the many difficulties people face using an underpass at a railway crossing in North Road, and an article describing the aims of the newly-established newspaper itself. Pages 4 and 5 feature 1 item: an article about Peter Norman; his life, work and opinions. Page 6 features 1 item: an article(continued on page 7) by three American children – Anita, Fabos and Adrian (surnames unspecified) – detailing their visit to Melbourne. There does not appear to be anything of relevance to Glen Eira. Page 7 features 5 items: the continuations of the articles from pages 1 and 6, an advertisement for a pool party for young Caulfield/Glenhuntly Liberals, an advertisement for an antiques sale, and an article about the establishment of a technical school on the site of former Holmesglen Construction Factory in Malvern (not relevant to Glen Eira). Page 8 features 2 items: an article about the three certificates the Royal Life Saving Society of Australia offers children for swimming competency, and an advertisement for an automobile called the Gemini Sandpiper II. Neither is relevant to Glen Eira). Numerous black and white photographs throughout the newspaper illustrate the subjects at hand.‘glenhuntly news’, glenhuntly primary school, primary schools, fires, dolphin bill, st anthony’s school, dalton des, caulfield south primary school, gardenvale central primary school, norman peter, rubbish bins, koornang road shopping centre, carnegie neighbourhood study, car parks, caulfield city council, homestead handyman hardware, hardware stores, liberal party, railway crossings, north road, ormond railway station, strong chris mr., kendall press, norman carol, ormond east primary school, norman stuart, norman cameron, estrella kindergarten, solway primary school, higgins electorate committee, higgins area finance committee, national stationers and office suppliers association, oakleigh chamber of commerce, anti-c3 action group (actag), haywood don, ireland jim, ramsay jim, gardner barry, sessler kurt, thompson lindsay, booran holden, glenhuntly road, caulfield -
Monbulk RSL Sub Branch
Book, Anthony Hill, Animal heroes, 2005
Here are twenty-one fascinating stories about the forgotten heroes of war: animals who have served beside Australian forces. These are all animals that dazzle with their courage and loyalty - or sometimes just by being lovable. Whether it's a rooster guarding his battalion during the First World War or a mine-detecting dolphin in Iraq, they make the difficult lives of soldiers so much more bearable.Index, bib, ill, p.207.non-fictionHere are twenty-one fascinating stories about the forgotten heroes of war: animals who have served beside Australian forces. These are all animals that dazzle with their courage and loyalty - or sometimes just by being lovable. Whether it's a rooster guarding his battalion during the First World War or a mine-detecting dolphin in Iraq, they make the difficult lives of soldiers so much more bearable.animals - war use, animal heroes -
Robin Boyd Foundation
Document - Manuscript, Robin Boyd, (captions for photographs), c1970
Captions for photographs in "Living in Australia"Original manuscript for the captions for "Living in Australia", Pergamon Press, 1970Typewritten (c copy), quarto, 16 pagesmccaughey court, lyons house, mcclune house, menzies college, shelmerdine house, john batman motor inn, black dolphin, marks house, lawrence house, boyd house, walsh st, baker house, troedal house, purves house, fletcher house, handfield house, kaye house, domain park flats, robin boyd, manuscript -
Bendigo Historical Society Inc.
Book - HELEN MACPHERSON SMITH TRUST ANNUAL REPORT 2007
Forty-four page dark red covered report with a red shaded photo/drawing of a young man on a skateboard, titled Storm Sequence (2000) by Shaun Gladwell. In the front of the book is a loose letter mentioning the 2007 annual Report, covering their activities of the Trust for the year. Titles in the book are: About Our Founder and Her Legacy; Trustee's Report; Grants Overview; Grants Approved in 2006-2007, which are Aged Care, Arts, Culture & Heritage; Community Support; Disability Care & Support; Education; Employment & Vocational Training; Environment; and Health; Investments and Grants - An historical perspective, Financial Summary and An Historical Insight: The Smiths in Australia. Most chapters have information.Helen Mcpherson Smith Trust Annual report 2007helen macpherson smith trust annual report 2007, helen macpherson schutt (nee smith), darvell m hutchinson am, j barry hutchins oam, frances h awcock am, keith b smith, anthony baird, darren mcconnell, liz gillies, sarah bartak, pamela beech, lonia catalano, beolite village, bundji bundji, odyssey house victoria, macpherson smith community alliance, brotherhood of st laurence, dolphin research institute, howard florey institute, the jean hailes foundation for women's health, historical insight - the smiths in australia, shaun gladwell -
Glen Eira Historical Society
Book - Glen Huntly State School No.3703 Grange Road
A 190 page book called The Story So Far 1914-2009 – The History of Glen Huntly Primary School No.3703, by Shirley A. Mriams. The book gives a very detailed history of the school’s early history. It includes head teachers/principals and the school’s progress through each decade to 2009. The remaining chapters give 2009 student roll call, citizenship awards, house competition awards, music awards, sporting awards, encouragement, swimming and musical productions, notable past students and teachers, bibliography and sponsors. There are many photos and school plans as well.glen huntly, glen huntly primary school, glenhuntly primary school, mirams shirley a., glenhuntly printing works, printing industry, from the earth fruit and veg., glenhuntly state school, greengrocers, king stephen, king design, alessi libby, principals, mcgowan keith, radio broadcasting, hunt sydney, forbes c., ramsay m., primary schools, glenhuntly state school, jenkin william, bryant a., orames mr, morrison r., christensen t., doggett j., rogers a., fink r., terrill f., mitchell j., cravine e., mcrae w., cooper l., chernside c., silva a.j., dolphin w., crampton colin, wilson wendy mrs, glenhuntly road, glen huntly, clerk's estate, subdivisions, glen huntly clerk's settlement, carnegie school no. 2897, world war 1914-1918, gardens, mothers clubs, world war 1939-1945, poliomylitis, rural training school, traffic signals, films, 'slow bike race', parents and friends association, after school program, fires, 'links' magazine, choirs, disadvantaged schools program, school plays, 'germs', 'garden folk', festivals and celebrations, japanese internship program, 'kids in space', 'dragon girl', 'fish 'n' ships', murals, wendy wilson music award, fetes, lord reserve, carnegie, australian natives association, congregational chuch sunday school hall, martell e miss, garden avenue, grange road, salvation army halls, halls, glenhuntly road, wanalta road, williamson alex, williamson jean, williamson gordon mccrae, school rolls, le brocq john, cockfield douglas r., grogan allen, mathiesson edward, johnston ronald frank, harris george, money neil robert, fraser eric, munro john, hyland hector thos., gibson wilfred john, eliason francis, scarles john robert, wallace andrew, henning george frederick, maryson sydney, petherbridge c., whitfield j., edward lee, queen alexander, carnegie state school, madden frank sir, parliamentary representatives, bank of new south wales, charles ernest, wallace andrew james, hunt chas. hogarth, williams stanley f., tester thomas george, henstridge john, henstridge reginald, johnston travis andrew, nixon alexander, lewis victor, dalton john, arthurs violet grace, browning leslie george, carroll eric harry, dobson keith george, evans george w.m., eyres annie may, hogg lillian, hunt alfred w.m., johnson henry, jones dorothy minnie, love helvic agnes, lyons gordon, lyons vera, parsons eric robert, dickens gordon percy, smith elva beatrice, harry david, westcott harold norton, westcott ormond chs., bremner marie, entertainers, williamson alex mccrae, ransay albert, caulfield town hall, green ethel, hawthorn alice, reynolds emma a., potter thelma, potter phyllis, anderson elsie m., girdwood stella, bastin may, murphy dorothy g., southern mary, mcleod gwen, ezard gladys m., hood emily vera, thorne eileen isobel, robinson noel, monckton marjorie, mrs hannigan's tuckshop, foley children, lord mr., bladin francis, tomlinson jean, jenkins vern, williamson jean, forty alan, rhinefield mr, bennett mary, brabham laurel, swain george, reynolds mille, gill harry, williamson g., cockfield winifred, baird beth, king elsie, challman miss, glen huntly 'drum and file' school band, larkin aircraft supply company, sugarworks swamp, lemans swamp, lyons streets, morgan streets, miller street, lizars linda, brown allan sir, hurie gladys, simpson peggy, royal ave., garden ave., tennis courts, lander h.j., castledine f.r., henning a.s., glen huntly progress association, harboard joan, mullins mr, pountney dorothy, daley beryl, marching clubs, findlay joyce, green lionel, charles ern, bennett mary, shelter sheds, blanchfield mr bakers, donoald mr grocers, walburn rhoda, harris shirley, treyvaud mr, hale maxwell, painter ken, allan mr ('fatty'), proven mr, ross mrs, nye margaret, nally ware beaker, monuments and memorials, graham bruce, 'bulldog drummond', learmonth mary, bullock margaret, o'shea annie, tattersall dawn, jenkins betty, lighton robert, bruce peter, love grace, love family, judd margery, gardiner elsie, gardiner sadie, glen eira dairy, vanston dorothy, barton cynthia, tipping mr, drummond mr, hambly chrissy, shrives kathleen, hutton beverly, miller kenneth deering, callender mr bakers, cook miss, nunn john athlete, andrews ailsa (nee mcgregor), fraser wally, vickers madeline, vickers john, scanlon mr, malcolm miss, brown barbara (nee holland), pepper miss, burns miss, mclaren miss, beadman jim athletics, robinson noel, crompton neal sportsperson, wilkinson graham, neilson ray, byers barry, bryant tony referee, murray bob, burton pam, pappas george, burke b. mrs, neville street, smith harvey, o'donnell mrs, kivlighon mr, grierson wendy, evans yvonne, squires doreen, squires kathy, jenvey stewart, baxter john, coenen eddie maintenance workers, byrne carol, williams pamela, zari austin (nee coenen), furney janet, dodds mrs, mitchell j., bell r., forsyth e. miss, mitchell neil, radio broadcasting, burke m., boatman r., garfield d., harris e. mrs, 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