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Royal Australian and New Zealand College of Obstetricians & Gynaecologists (RANZCOG)
Equipment - Two Gravigard IUDs associated with Dr Lachlan Hardy-Wilson, Searle Laboratories
Copper intrauterine devices (IUDs), first marketed in the early 1970s, represent an important contraceptive option for 150 million women worldwide. The method is safe, rapidly reversible, inexpensive, highly effective, long-acting (up to 20 years for some products [1]), and non-hormonal; these attributes make it unique and desirable for many users. However, increased bleeding and pain cause up to 15% of users to have the device removed within the first year [2]; still higher percentages tolerate some level of these side effects yet retain use of the method. In one study, 67% of women using the TCu380A complained about menstrual side effects within the first year of use [3]. (Hubacher et al, 'Side effects from the copper IUD: do they decrease over time?', 2009)This is one of a collection of items received from the practice of Dr Lachlan Hardy-Wilson, FRCOG, Launceston, Tasmania.Two sealed Gravigard IUDs. IUD and inserter are sealed inside a sterile plastic pocket. Manufacturer information is printed on a cardboard insert which holds each IUD inside the pocket.intrauterine device -
Mission to Seafarers Victoria
Letter - Correspondence, 1948
Indicates a friendship at that dateQuinn CollectionThree-page letter written on three sheets of blue, lined paper (0390.a1-0390.a3) Letter is written on board S S Morgenster and is undated. Letter begins 'Hello Al' and ends 'Your pal Arthur.' Blue envelope (0390.b) is post-marked Durban, dated 15 September 1948 and bears one blue and one red South African stamp. 0390.b has been re-addressed from Rector Street, New York to South Street, New York. The back of the envelope is stamped with three circular (one large and two small) New York post-marks and two horizontal Church Street Station marks.Date style:15.IX.48quinn, s s morgenster, 1948 -
Bendigo Historical Society Inc.
Book - LONG GULLY HISTORY GROUP COLLECTION: ALOIS ALZHEIMER
The Long Gully History Group - Alois Alzheimer: Gone but not Forgotten, Associate Professor Tony Snell, Bendigo Health Care Group, La Trobe University Bendigo, Ronald Reagan, Australian Alzheimer's Association, Alois Alzheimer, Colin Masters, Henry Brobaty, Centre for Rural Rehabilitation and Aged Care, Alzheimer's Association, The Australian Society for Geriatric Medicine, The Loddon Mallee Dementia Management Strategy, Gavin Jennings, Medical Journal of Australia, Peter Panegyres, Monash University, Sir John Quick, Bendigo ANA, Michele Matthews, The Hon Justice Michael Kirby, Mr Don Blackmore, Dr Janet McCalman, Dr John White, Dr Al Luloff, Mrs Delys Sargeant, The Rt Hon Sir Ninian Stephen, Mr Peter McCarthy, Professor Jeff Brownriggbendigo, history, long gully history group -
Mission to Seafarers Victoria
Letter - Correspondence, 31/01/1951
Indicates a friendship at the timeQuinn CollectionFive page letter (0857.a1-5) written to Allan in black ink on pale brown paper headed Alfred Wolff, c/- Gilbert, 41 Kensington Road, Melbourne S.E.1. Port Adelaide 31/01/51. Airmail envelope (0857.b) has been re- addressed from C/- Australia House, The Strand, London, England to General Delivery G.P.O. Oslo, Norway. The post-mark, only partly legible, is South Australia and the value of the Australian stamp one shilling and sixpence. On the back of the envelope is a promotional stamp for 'British Industries Fair, 30 April - 11 May 1951, London & Birmingham'. Also a London postmark, an Oslo postmark and a return address as per the heading on the letter with 'South Yarra' substituted for 'Melbourne'.Letter commences "Dear Al,...." and concludes "...your pal Fred". This letter is in reply to a letter from Allan and contains descriptions of life as a crew member on board a Swedish ship. The writer comments on how much prices have increased in Australia in the last twelve months and lists various items (clothing, hair cuts, cigarettes) and their prices. A 1950 Buick is being sold for 3,500 pounds, a 1950 Plymouth for 3,200 pounds and a 1950 Ford for 2,900 pounds. Holden cars sell for about 1,300 pounds.letters-from-abroad, quinn, 1951, alfred wolff -
Bendigo Historical Society Inc.
Photograph - HILDA HILL COLLECTION: BLACK AND WHITE PHOTOS
Hilda Hill Collection. Combination Sepia & Black & White Photos Double Sided Card Total of 8 depicting family life towards the end of the First World War in 1918 up until July 1924. A comparison exists between life at 'The Ranch' ? In Eppalock in 1918 versus life at 'The Ranch' in 1924. lady standing at the front of the house with left arm raised to shade her eyes dressed in a dark coloured dress, light coloured cover on chair in background at 'the Ranch' June 1918. Oval black and white photo of Doreen at Durvol, dressed in black skirt and white shirt with black school? Tie June 1918. Proud parents with baby sitting in pram, both p[parents are wearing dark coloured hats dark clothing and white shirts, pram is boat style body with large rear wheels and smaller front wheels. White picket fence in background, May 1918. Also on this page is a reference to 'The Ranch' July 1924 in white, but no photo. Claire and Doreen sitting on lawn area, small garden to left, row of decorative plants in semi circle, dead tree centre background and other trees to left and right background, S.H.L.C. 24 Sept 1918. Boys' Flag Drill - repatriation Upper Reserve 19 October 1918. Group of people, all but one females, all in white at No. 7 reservoir happy 9 January 1919. Al and Marie sitting, Al in all white and hatless, Marie in white blouse and black waistcoat with black tie, foreground shows large rocks, background has trees in distance, No.7 reservoir 9 January 1919. Childrens folk dance at Upper Reserve, All children dressed in white, large round hat in foreground, and suited man in hat walking past 19 October 10918.Hilda Hill Personal Collectionaustralia, history, post war life -
Kew Historical Society Inc
Archive (Series) - Subject File, Fairyland - 57 Malmsbury Street
Various PartiesReference, Research, InformationSecondary Values (KHS Imposed Order)Subject file on ‘Fairyland’, 57 Malmsbury Street, Kew. Fairyland, when owned by the Tabulos was a noted local, state, national and international tourist attraction. The grandparents of the historian Dorothy Rogers had originally owned the house. The file contains a copy of Rogers’ history of the house. The file also contains sundry newspaper articles/clippings, correspondence between KHS and the City of Boroondara relating to heritage protection, personal email correspondence (not for distribution), poetry, research documents including timelines, and colour and black and white photographs (donated by Betty Morgan, Matt Dickerson, et al). Primary sources included in the file include photocopies of Jim Tabulo’s War records and Jim and Grace Tabulo’s wedding certificate. The Tabulos collected and displayed in their garden many items of porcelain, pictures etc. The file contains a copy of a document/booklet on the British Royal family that once formed part of the Fairyland Collection.kew (vic) - history, fairyland - 57 malmsbury street (kew), jim tabulo, grace tabulo, mrs warboys, william lowe, henrietta lowe, dorothy rogers, arthur spruzen, william coucherkew (vic) - history, fairyland - 57 malmsbury street (kew), jim tabulo, grace tabulo, mrs warboys, william lowe, henrietta lowe, dorothy rogers, arthur spruzen, william coucher -
Bendigo Historical Society Inc.
Photograph - HILDA HILL COLLECTION: BLACK AND WHITE PHOTOS, 1922
Series of Black & White Photos Total 5 of the Hill Family & Friends during leisure in 1922. Mollie dressed on black with white blouse astride a horse & Hilda wearing a tartan skirt with a white blouse, at the Durvol Property Kyneton Victoria Australia September 1922. Four young ladies all wearing a dark colour dress with white blouse, two are wearing dark hats and two white, sitting on a metal ended wooden slat seat, Castlemaine 1922.Nora Nellie Jonah sitting on a rocky outcrop, two wearing dark clothing with white blouses on in lighter colour wearing hat with white bands on crown. At Inglewood November 8th 1922, Six males al dressed in dark suits with white shirts and dark ties, also six ladies one in coloured dress others all in white one wearing a tartan like pattern skirt, one lady has dark hat another light coloured. Enjoying the Reservoir Inglewood 1922.Hilda Hill Perrsonal Collectionaustralia, history, post war life -
Ballarat Tramway Museum
Photograph - Black & White Photograph/s - set of 3, Richard Gilbert, Nov. 1998
Set of three black and white photographs of activities around the tramway during November 1998 sent to the Editor of Trolley Wire - used in the February 1999 issue of Trolley Wire. All photos by Richard Gilbert. Photos taken early November 1998. 1145.1 - photo of the old fare signs with caption on the rear "Retirement at last for the Museum's original tram ride signs, in service for over twenty years, and looking like it. With the fare rise to $2 / $1 new signs were introduced." 1145.2 - Photo of crew in front of tram 26 with caption on the rear "On Springfest Day in early November, Motorman O'Neil and Conductor Giles on car 26, ready for the onslaught." - photo taken 1/11/1998. 1145.3 - photo equipment on trolley being moved around with caption on the rear - "The motor cases of car 33 are currently residing on the trolley for cleaning. Here they are being relocated to the bottom of 3 road by Al and Dave, with assistance from our youngest and keenest worker, Danny Edwards." All have captions written on back in blue ink (as noted in description) and "Richard Gilbert" in bottom right hand corner, and cropping marks in blue ink on rear.trams, tramways, trolley wire, springfest, btm, volunteers, tram ride signs, tram 26 -
Melbourne Tram Museum
Newspaper, The Sun, The Age, “A special tram – to the United States”, 24/01/1978 12:00:00 AM
Newspaper clipping untitled: The Sun, Tuesday, Jan 24, 1978 Tram # 230 in photo, displaying route 48, "East Melbourne, Hoddle St" Trams # 401 and 484 sold to Seattle Seattle councillor, George Benson and Paul Class have convinced Seattle to buy two 50-year-old trams (401 and 484) to be used as tourist trams along heritage waterfront. Benson is chairman of his city’s traffic committee and Class is head of company that will establish the tram service. Trams cost $5000 each and cost another $40000 to deliver. Newspaper clipping titled: “A special tram – to the United States” The Age, Wednesday, February 1, 1978 Photo and text Two trams sold to City of Seattle as tourist attractions. Will run along 2.1 km line along waterfront beside Pugent Souna. First tram loaded onto a low-loader yesterday at Preston Tramways Workshops and driven through city to the dock where it will be lifeted aboard the Al lunga for trip across Pacific.trams, tramways, w class, sale of trams, tourist trams, seattle, transporting trams, tram 230, tram 401, tram 484 -
Ruyton Girls' School
Magazine, Ruyton Reporter, 1995
The Ruyton Reporter (formerly known as Ruyton Reports) captures the essential Ruyton Girls' School experience for the broader school community. It has been produced since 1986.The record has strong historic significance as it pertains to one of the oldest girls' school in Victoria, Australia. Ruyton was founded in 1878 in the Bulleen Road, Kew, home of newly widowed Mrs Charlotte Anderson (now High Street South). Thus, the record can be used as a reference example for research into Victorian school history. It also gives insight into the types of activities and events undertaken at Ruyton Girls' School during the period of its production. The record's significance is further enhanced by its exceptionally well-documented provenance, having remained the property of Ruyton Girls' School since its production.Colour publication printed on paper with staple binding. 16 pages.Front Page: the reporter / Ruyton / autumn 1995 / PRINT POST / PP 341999 00026 / APPROVED / 12 Selbourne Road Kew / Telephone: 9819 2422 / Facsimile: 9818 4790 / R / RECTE ET FIDE LITER / Launch of the Henty Rowing Club: The Senior IV / Contents / VCE 1994 / Allegro Al Fresco / Medieval Fair / Interview with / the Premier / Photograph courtesy of "Images" Photography / Bow: Emma Anderson, Victoria Wile, Kate Kotzmann, Stroke: Katrina Walker, Cox: Kate McQuillen / STOP PRESS: Head Coach, Gina Douglas has now won 4 National Titles in Perth /ruyton girls' school, ruyton, school, students, newsletter, ruyton reports, ruyton news, kew, victoria, melbourne, girls school -
Federation University Historical Collection
Article - Catalogue pack, Graduate Publication 2013 Bachelor of Visual Arts Graphic Design & Multimedia, 2013
University of Ballarat, third year / graduate A5 promotional pack/publication consisting of four volumes and one 4pp card, with a paper wrap holding the five pieces together. Reverse of Volume Two lists lecturers: Chrissie Smith, Ben Mangan, Glen Bellman, Gavin Nash, Luke Keys, Damian Lentini and Jennifer Jones-O'Neill Guest speakers at the event were Travis Price, Amy Walker, Sam Harmer, Nick Hallem and Phillip Berry. Publication layout and design attributed to Leah Armstrong, Josh Dunbar and Carleen Harmon. Poster, Invitation and flyer design attributed to Leah Armstrong, Josh Dunbar, Carleen Harmon and Lara Russell. Sovereign Press sponsored the print. Exhibition opening Friday 22 November 2013. Students listed across volumes are: V1: Scott Gullock, Carleen Harmon, Kate Simpson, Josh Dunbar, Jennifer Marlow. V2: Billy Burns, Jessica Nuzum, Leah Armstrong, Lisa Kearney, Samantha Reddie, Lauren McKenna. V3. Ashlea Caygill, Sarah Trotter, Naomi Roberts, Simon Dunbar, Lara Russell, Ray Edwards, Casey Pinkerton. V4: Teghan Johns, Tyler Zebra, Nawal Al-Adasani, Bonnie Redfern, Amarinda Long, Dylan Leak. University of Ballarat, third year / graduate A5 promotional pack/publication consisting of four volumes and one 4pp card, with a paper wrap holding the five pieces together.teghan johns, tyler zebra, nawal al-adasani, bonnie redfern, amarinda long, dylan leak., ashlea caygill, sarah trotter, naomi roberts, simon dunbar, lara russell, ray edwards, casey pinkerton., billy burns, jessica nuzum, leah armstrong, lisa kearney, samantha reddie, lauren mckenna, scott gullock, carleen harmon, kate simpson, josh dunbar, jennifer marlow, university of ballarat, federation university, graphic design, multimedia, bachelor, degree, camp street campus, arts academy -
Australian Gliding Museum
Machine - Glider - Sailplane
The Schreder HP 14V is an all metal single seat sailplane designed by Richard Schreder in America. The design is an evolution of Schreder’s metal sailplane designs that date from the late 1950s. Schreder won the United States National Soaring Championship in 1966 in the prototype HP 14. He marketed the glider in kit form in the 1960s and 1970s and allowed Slingsby in the UK to further develop the design for production. Schreder HP14 V, registered as VH-GGB, was built in South Australia by Harry Bache of the Waikerie Gliding Club in the 1970s. Martin Simons, an authority on vintage sailplanes (including Slingsby types), refers to this airframe as “built entirely from scratch”. After Bache, this Schreder HP14V passed on to E.G. Moore and N.L. Lovell at Ararat in Western Victoria, then Graeme Rickert of the Canberra Gliding Club and finally, to Greg O’Sullivan of the Geelong Gliding Club. The glider was first flown on 20 December 1975. It appears to have been flown regularly over its life to 2015 and the cumulative use being 1386 hours flown from 702 launches. The log book does not disclose details of flights except as aggregates of flights and times. Details of notable flights by Bache and Moore et al are not available. However, reports from Rickert and O’Sullivan indicate that a good number of cross-country flights of 300km or longer were achieved in this aircraft. A well-engineered metal sailplane from the 1970s with good soaring performance which was designed for amateur construction. All metal single seat glider sailplane with a distinctive V-tail, finished in a white and blue colour schemeRegistration letters 'GGB' on sides of fuselageaustralian gliding, glider, sailplane, schreder, slingsby, bache, waikerie gliding club, moore, lovell, rickert, o’sullivan, canberra gliding club, geelong gliding club. -
Bendigo Historical Society Inc.
Document - MINER'S RIGHT - GOLD LICENSE NO 210 MINER'S RIGHT NO 20
Two licences, yellow-brown Victorian Gold License No 210, dated May 31, 1853 (a) and a Miner's Right No 20, dated 28 June 1861(b). The Gold License cost one pound ten shillings and for the month of June 1853. It was for Crown Lands within the Loddon District. At the bottom of the license are five Regulations to be observed by the person digging for gold or otherwise employed at the Gold Diggings. It has a crest at the top with a lion and a unicorn. Printed on a circular cnetre piece are the words: Honi so- -al y pense and below the lion, Dieu, in the centre is -t mon and under the unicorn is droit. The Miner's Right No 20, issued by the Colony of Victoria, for the District of Maldon, cost one pound. Across the top is a crest with a lion and a unicorn holding up an oval piece with a crown and a lion on top, In the oval is an illustration with two men and a woman and sailing ships in the background. Around the top of the oval is: Moni s- - qui mal y pense and at the bottom: Advance - Australia. Under the lion is: Dieu et mon and under the unicorn: Droit. Has been stamped in black, but is unreadable. Signatures and names on both documents are very hard to read. Printed by: John Ferres, Government Printer, Melbourne.document, gold, miner's right, miner's right, gold license no 210 & miner's right no20, john ferres -
Red Cliffs Military Museum
Collage, Collage of WW1 photos of E. H. Rowe, 1st April, 2001 (exact)
This is part of the E.H. Rowe Collection.A brown wooden frame, containing 7 photos and a history of Ernest Henry Rowe. The frame has a small plaque on the bottom front.Photos from left-top to bottom: (.1) 1 Australian Divisional Headquarters- Orderlies, Grooms & Police- Derna Camp - Egypt 1914/ (.2) Two Pals and Ernie Rowe -Pyramids, Egypt, 1914/ (.3) Morning fatigues- Derna Camp- Egypt, 1914/ Main Photo: (.4) Officer Cadet Ernest Henry Rowe/ Queens College, Oxford, England/ October 1917./ Top right to bottom: (.5) Recovering at Al Hayat Hospital- Egypt after being wounded at Lone Pine Battle, Gallipoli, in August 1915./ (.6) The boy from the Bush- heading to France with Engineers- 1916./ (.7) The Sphynx and Pyramids - Egypt - 1914/ Plaque: To The Red Cliffs R.S.L. / from/ The Rowe Family of Red Cliffs/ 1st April, 2001. camp, australian, ww1, 1, gallipoli, henry, egypt, ernest, rowe, derna, divisional, headquarters, queens, college, oxford, lone, pine -
Federation University Historical Collection
Documents - Reports, Reports and articles relating to Big Cats
The articles were used for research into Australian Animal Folklore.Research documents relating to reports into big cats and other animals of Australian Folklore. (1) Acclimatizing the World: A history of the Paradigmatic Colonial Science by Michael A. Osborne. (.2) A novel microsatellite (STR) marker for forensic identification of big cats India by Anju Singh et al. (.3) The Feral Cat by Ian Mahood (.4) Report Re Faeces Suspected to Be from a Big Cat by David Cass (.5) Indentification of Leopard, Panthera Pardus, in South Eastern Australia by Analysis of DNA from Hairs by Stephen Frankenberg and david Cass. (.6) David Cass's Story by David Cass (.7) Animal calls mistaken for big cats- Graeme Ambrose (.8) Review of Cat Ecology & Management Strategies in Australia - Elizabeth Denny and Christopher Dickman (.9) Ecology of the Feral Cat, Felis catus (L.), in South eastern Australia. III.*Home ranges and Population ecology in Semiarid North-West Victoria -Evan Jones and Brian Coman. (.10) Feeding Ecology and population Dynamics of the feral cat (Felis Catus) in relation to the availability of prey in central-eastern New South Wales - Robyn Molsher, Alan Newsome and Chris Dickman. (.11) Thylaine associated with the Royal Zoological Society of New South Wales - R.N. Paddle. Australian Animal Folklore Collectionaustralian animal folklore collection, david cass, brisbane ranges natinoal park, big cats, bruce, meredith, anakie, otway ranges, faecesologist, puma, black leopard, peter chapple, otway, stephen frankenburg, faeces, helen mccracken, feral cats, mythical, myth, folklore -
Melbourne Tram Museum
Photograph - Set of 9 Black & White Photograph/s, Ray Marsh, CBD Melbourne in 17 Feb. 1972 - floods, 1970's
Set of seven black and white photographs of Ray Marsh, of the flooding that occurred in the centre of the CBD Melbourne in 17 Feb. 1972. See Timeline History of Melbourne Trams - Barry George et al. .1 - 876 and two other trams, inbound, Bourke - Elizabeth at the height of the downpour. .2 - ditto, after the rain - looking east, with Dunklings in the view. .3 - W2, route 49, Little Collins and Swanston St looking west. Has a sign advertising Bush walking and sporting equipment above. .4 - W2 591 - north bound in Elizabeth St Essendon, route 49 looking south at corner of Collins St. Digital image of The Age article for the event supplied by Mal Rowe 4/12/12 by e-mail. 2nd copies of .2, .3 and .4 added ex donation of Keith Kings. .7 - Looking south from Bourke St / Elizabeth St. .8 - Bourke St at Elizabeth St with W6 976 and 992 in Bourke St on their way to Spencer St. .9 - Line up of trams in Bourke St (looking west) tailed by W6 999,. route 88. - two copies held. See Reg Item 5995 for photos of Flinders St at Market St. and 6099 for other photos.Details of the event written on the back of photos collected by Keith Kings and the Ray Marsh stamp in green ink with his address details.trams, tramways, melbourne, flooding, elizabeth st, bourke st, tram 876, tram 591, tram 976, tram 992, tram 999 -
Kiewa Valley Historical Society
Photographs and copies of photographs of the pack horses and early horsemen who transported supplies to outposts in the Bogong High Plains, via cattle tracks before access roads were made
In the mid to late 1930’s survey outposts were established to plot the early stages of the Kiewa Hydro Electric System for the SECV in the Bogong High Plains. Before any roads were built, the old cattleman’s tracks were used with packhorses to deliver supplies, wages and mail and collect timesheets and correspondence from the workmen and dam builders living in canvas tents and at the outlying survey posts. The trip up the mountain was long and hard and dangerous for both horse and man Most of the men of the survey teams were not bush-men and were often ill equipped for the harsh weather and living conditions of bush camping, often arriving in their city clothes ready for work. The tent city at Bogong was destroyed by bush fires in 1939 after which an access road was built from Mt Beauty to transport building materials for more permanent dwellings for workmen. Pack horses continued to be used for transporting goods etc. to workers further up the mountain.Without the work of horsemen and their pack horses providing supplies and communications for outlying outposts, surveying and early planning for the Kiewa Valley Hydro Electric scheme could not have gone ahead and the dams and power stations which support the system could not have been constructed. The Hydro-electric scheme, and the workers who planned and built it play a major part in the early history of the Kiewa Valley and many original families still remain living, or have ties with the local area.: Set of 21 black and white photographs and copies of photographs depicting the pack horses and the men who handled them, transporting supplies and correspondence to the outlying camps and survey posts in the Bogong High Plains, via the rough cattlemen’s tracks. Photographs also show the early tent camps of the workers. Some photos mounted on A4 white paper. Some photos enlarged to A3 poster size for display1. Handwritten on back – Max Lawrence 2. -8 No inscriptions 9. Handwritten on back- Packing in supplies for early workers of the Kiewa Hydro scheme. There were no roads in the early days of the scheme 10. Printed on bottom of photo- Roper’s cattle on road below Howman’s Gap 11. Handwritten on back – Roper’s et al about to leave for the high plains 12. Printed under photo- Syd Ryder at the Pretty Valley Cut-Out (JBR) 13-16. No markings 17. Printed under photo- Gwen Talbot visits the Camp area. 1937 18. Handwritten on back- 14/1 Barbara Talbot 19. No markings 20-21. No markings 22. Printed under photo- STATE ELECTRICITY COMMISSION OF VICTORIA. Date: 15-3-45 Time: 8.0pm No: K 1838 Kiewa Hydro-Electric Works, Investigations 1944-1945 – Survey Camp at Young’s Hut pack horses; bogong high plains; survey posts; supplies delivery -
Federation University Historical Collection
Document, The place of dogs in Victorian Aboriginal society in the nineteenth century: a reconsideration of the archival record
Abstract: ‘Dingo’ is today the name given to Australia’s wolf-like native dog Canis dingo, however it was originally the Dharuk word for a ‘domesticated dog’ - the Dharuk word for a wild dog was ‘warrigul’ (Dixon, Ramson, and Thomas 1992, pp. 65, 87). In its populist usage today this distinction has fallen away and dingo now refers to both wild and domesticated native dogs. Anthropological discussions about the role and significance of dingoes and dogs in northern Australian Aboriginal society have been extensive (Meehan, Jones and Vincent 1999; Smith and Litchfield 2009). Archaeological (McCoy 1882; Barker 1979), ecological (Nowak 2006) and taxonomic debates (Corbett 1995; Coman and Jones 2007) have existed for almost two centuries about the dingo’s origins (Jardine 1839; Gill 1951; Barker 1979; Savolainen et al 2004), and an intense sociological discussion has focused on what has been termed the ‘economic-utilitarian perspective’ that attributes to dingoes a decisive usefulness in Aboriginal people’s food quest (Kolig 1978). Contributors to this lively debate have been almost exclusively northern Australia-centric in their conversations, with the notable exception of Jones (1970), which is understandable given the rich vein of accessible Aboriginal informants in this region and observational data neither of which is possible or available in much of southern Australia. In this paper the authors shall build upon the northern Australian research of Meggitt (1965), Rose (1992), Meehan, Jones and Vincent (1999), and Parker (2006) and demonstrate that there exists a concomitant range of ethno-historical and archeological sources from south-eastern Australia which adds a considerable body of knowledge to our understanding of the utilitarian and symbolic significance of dingoes for Aboriginal communities. Furthermore, the authors shall examine the impact of British colonizers upon Aboriginal peoples’ associations with dingoes in Victoria. The word dingo shall be used throughout this paper to connote dogs as well as dingoes. Unpublished typed manuscript. This item is part of the 'Australian Mythical Animals Collection'.aboriginal, aborigines, fred cahir, ian clark, dog, dingo, australian mythical animals collection, mythical, myth, folklore -
Bendigo Historical Society Inc.
Photograph - HILDA HILL COLLECTION: BLACK AND WHITE PHOTOS, 1918-1920
Hilda Hill Collection. Black & White Photos of Hill Family Total 9. Three girls at SHLC 1918 with white sashes and medallions, dark clothing with white collars, background is garden scene , photo has over exposure problem which gives a lighter print, 24 September 1918, could it be a ladies college of education? Al standing wearing white blouse and dark dress holding a white hat standing and Gert sitting and holding a white hat in front of a bush wearing a white blouse and a light coloured skirt, background is forested area, 'The Pines' January 9th 1919. Claire dressed in dark dress and wearing a white hat with her hands together, oval photo, 'The Ranche', October 23 1918. Jonah wearing a hat and white dress with colourful hemline standing before a large hedge holding a parasol, large tree background left, 'The Ranche'. Three boys and two dogs All boys dressed in dark coats and shorts long socks two of the boys are on their haunches, Background is a gabled roof and 2 chimneys, white fence, between two of the boys is a water tap on a medium height pipe, Durvol December 1919. Moll Noonan seated on a round backed chair wearing a white dress, right background shows the side of a building, at knee level sis a broad leafed plant, other shrubbery in the background, 'The Ranche' November 1918. Ettie seated on a staircase and holding a dog, lady is wearing a broad brimmed hat, One Tree Hill April 18 1920. Two ladies in lightly coloured dresses standing in a garden setting, lady on left has a black sash waistband, Durvol December 1919 . Group of seven girls and 4 boys, all of the girls are dressed in white, front girl has black neck accessory, 'The Pines' January 9 1919 No. 7 Reservoir.Hilda Hill Personal Collectionaustralia, history, post war life -
Melbourne Tram Museum
Ephemera - Ticket/s, Melbourne & Metropolitan Tramways Board (MMTB), "Check Ticket Zone 1 Only", Mid 1960's to c1980
Set of 24 decimal current MMTB tram tickets. All black printing unless noted otherwise. A variety of small size (55H x 26W) or large format (68H x 31W). .1 - 5c, large on light pink paper, with P (Pensioner) overprinted in red, No. 013294 .2 - 5c, large on pink paper, No. At 615005. .3 - 5c, large on off white paper with P (Pensioner) and a diagonal slash overprinted in red, B019424. .4 - 7c, large on grey paper, No. Be 811145, has tape damage. .5 - 10c, large on light brown paper, with P (Pensioner) and a diagonal slash overprinted in red, B005464. .6 - 10c, large, on off white paper, printed with brown ink, Aa 047834. .7 - 10c, small, on light brown paper, F311163 .8 - 10c, large, on off white paper, printed in blue ink, over stamped "City Section" in black. .9 - 10c, large on light brown paper, Al 075891 .10 - 10c, large on light brown paper, with P (Pensioner) overprinted in red, No A006068 .11 - 12c, large on light brown paper, printed with brown ink, Bs 727285 has tape damage. .12 - 15c, large on shiny white paper, Av586696 .13 - 15c, large on yellow paper, with P (Pensioner) and a diagonal slash overprinted in red, B004804 .14 - 15c, large on off white paper, printed in purple ink, over stamped "City Section" in purple, C 372658. .15 - 15c, large on yellow paper, As 15405 .16 - as for .14, Ag 688901 .17 - 15c, small, on yellow C711727 .18 - 15c, large, on yellow paper, with P (Pensioner) overprinted in red - A 186849 .19 - 20c - large on off white paper, printed in purple ink, over stamped "City Section" in purple, Aa 457610 .20 - 20c - large on blue paper, Ay 027256 .21 - 20c - large on off white paper, printed in light blue ink, Ad 023003 .22 - 25c - large on orange paper, printed in red ink, Ce 428409trams, tramways, mmtb, tickets, city section -
Victorian Aboriginal Corporation for Languages
Book, Brett Baker, Indigenous language and social identity : papers in honour of Michael Walsh, 2010
For almost 40 years, Michael Walsh has been working alongside Indigenous people: documenting language, music and other traditional knowledge, acting on behalf of claimants to land in the Northern Territory, and making crucial contributions to the revitalisation of Aboriginal languages in NSW. This volume, with contributions from his colleagues and students, celebrates his abiding interest in and commitment to Indigenous society with papers in two broad themes. ?Language, identity and country? addresses the often complex relations between Aboriginal social groups and countries, and linguistic identity. In ?Language, identity and social action? authors discuss the role that language plays in maintaining social identities in the realms of conversation, story-telling, music, language games, and in education. ?Language and Social Identity in Australian Indigenous Communities? will be of interest to students of linguistics, Indigenous studies, anthropology, and sociology. Contents: 1. Introduction /? Rod Gardner ... [et al.] 2. Michael Walsh : a personal reflection /? Ros Fraser 3. Place and property at Yintjingga/?Port Stewart under Aboriginal Law and Queensland Law /? Bruce Rigsby and Diane Hafner 4. Linguistic identities in the eastern Western Desert : the Tindale evidence /? Peter Sutton Juwaliny : dialectal variation and ethnolinguistic identity in the Great Sandy Desert /? Sally Dixon 6. Who were the 'Yukul'? and who are they now? /? Brett Baker 7. Colonisation and Aboriginal concepts of land tenure in the Darwin region /? Mark Harvey 8. Aboriginal languages and social groups in the Canberra region : interpreting the historical documentation /? Harold Koch 9. The Kuringgai puzzle : languages and dialects on the NSW Mid Coast /? Jim Wafer and Amanda Lissarrague 10. Dawes' Law generalised : cluster simplification in the coastal dialect of the Sydney language /? David Nash 11. Space, time and environment in Kala Lagaw Ya /? Lesley Stirling 12. Turn management in Garrwa mixed-language conversations /? Ilana Mushin and Rod Gardner 13. Laughter is the best medicine : roles for prosody in a Murriny Patha conversational narrative /? Joe Blythe 14. Collaborative narration and cross-speaker repetition in Umpila and Kuuku Ya'u /? Clair Hill 15. Co-narration of a Koko-Bera story : giants in Cape York Peninsula /? Paul BlackMaps, b&w photographs, charts, word listslanguage and identity, language maintenance, language and culture, language and country -
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