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Ringwood and District Historical Society
Photograph, Ringwood State School - Choir, 1964
Black and white photograph - Choir, 1964."Attached to photograph" Back Row- L to R: ?, ?, ?, Norman Pearson, Malcom Pearson, Craig Rawson, Graham Adamson, ?, ?, ?, John McCaulin. 2nd Row- L to R: ?, ?, Margaret Findlay, Lorraine Tann, Annette Smeaton, Jennifer Flaherty, ?, ?< ?, Lynette Costello. 3rd Row-L to R: ?, Linda (?), Cheryl (?), ?, Jane Walker, Laurie Simpson, Ann Downey, Barbara Donald, Ghristine Schraum, Julie Hall, Jocelyn Cole, Ros Wigley, Judy Parker.? Front Row- L to R: ?, Debbie Monk, Sally Shaw, Jenny Buchanan, Lyn German, Leanne Thorpe, Rosemary Evans, Jennifer Johnson, ?, Robyn Henry, Joanne Fly, Susan Baxendall, ?, Kerry Marsh, ?. On ground- L to R: ?, Brian Proud, ?. Teacher: -
Uniting Church Archives - Synod of Victoria
Photograph, 1908
Mrs Mary Holden (1843 - 1930) was the mother of the Rev Albert Thomas Holden CBE V.D., B.A., D.D. Director of the Methodist Inland Missions, Chaplain-General of the A.I.F. and President-General of the Methodist Conference of Australasia. She was the mother-in-law of the Rev. Samuel HobanB & W composite photo of the Young Men's Class at Ashby Methodist Sunday School in Wellington Street, comprising 30 oval head and shoulders photos of the young men, and 1 rectangular head and shoulders photo of their teacher, Mrs T. Holden."Wellington Street Methodist Sunday School Young Men's Class. Presented to Mrs T. Holden as a slight token of esteem and respect from the members of her class. March 1908. P. Buchanan,N. Buchanan, L. Pash, T. Cortous, C. Walter, B. Palmer, S. Dorling, W. Hancock, N. Potter, E. Thomas, E. Potter, H. Reeves, R. McCann, H. Gallagher, P. Baxter, L. Viccars, F. Walker, F. Wynn, E. Whitton, J. Thomson, A. Sykes, W. Gallagher, G. Littleton, A. Wilson, N. Johnston, H. Viccars, H. Bell, C. Cortous, C. Bond, L. Muir, R. Thomson, H. Johnston.mary holden, rev albert thomas holden, rev samuel hoban, ashby methodist, sunday school -
Mission to Seafarers Victoria
Letter - Petition, October November 1897
This document reveals the way in which Mission to Seafarers grew in response to demand. With increased shipping to Australia for all purposes, the need for the then existing Mission to grow to be conveniently located and to accommodate seafarers became increasingly evident. This document also shows the formal nature of documents and petitions in the 1890s and documents the names of twenty-two contemporaneous ships and their respective captains. The Anna, Dharwar and Mermerus arrived in port at the end of July 1897. The Carmanina arrived on the 21 October 1897. The Loch Katrine, at the end of the list, arrived on 5 November 1897. The letter was published in the Argus, 22 December 1897: "APPEAL FOR SEAMEN. TO THE EDITOR OF THE ARGUS. Sir, I beg that in the interests of the Victorian Seamen's Mission you will be kind enough to publish the appended testimony of the ship masters who for many years have been trading to this port, and therefore have had many opportunities of judging the effects of his work. The mission has much need of monetary assistance, and, should any of your numenous leaders deem it worthy of support, the committee would feel most grateful for any help that may be given in this direction. It has been the pleasure of the committee as far as possible to supply the crews of all outward bound steamers and sailing vessels with literature for their use on the voyage. My former appeals through your columns for leading matter have always been liberally responded to, and I trust that should any of our booksellers have any surplus stock of periodicals, religious and secular, illustrated or otherwise, at the end of the year, they will kindly remember the Victorian Seamen's Mission and the sailors. Private individuals also who may have stacks of literature by them, if they would kindly send some to the Seamen's Institute, Beach street, Port Melbourne, would cause the cheering of many a dark and lonely hour in the seamen's life. From 900 to 1.200 parcels have hitherto been given to the sailors and firemen annually by this mission, and we should be extremely grateful to those who would place us in a position to continue such donations in the future. Yours, &c. , E. JAMES, Chaplain to the Mission. Seamen's Institute, Beach street, Port Melbourne, Dec. 10." -------------------------------------------------- "To the Executive Committee of the Victorian Seamen's Mission, Melbourne. "Ladies and Gentleman, "We, the undersigned captains of several ships now lying at the Melbourne wharves think it most desirable that the Victorian Seamen's Mission, being the mission that has for so many years shown a most part their interest in the spiritual, moral, and social well-being of the seamen of all nationalities, shall him on the banks of the Yarra an institute such as that at Port Melbourne, where sailors of every grade could profitably and pleasantly spend their evenings. At almost every other seaport in the world such institutions are being provided for seamen, and we are satisfied from our opinion of the Melbourne public that the matter needs only to be prominently brought under their notice to be accomplished. We are confident that the good work of the mission is being hampered by its not having such a place near the shipping at the Melbourne wharves. Our crews are at present placed at a great dis advantage through not having an institute more convenient to the scene of their labours than that at Port Melbourne, which, on a very wet or a very hot, is not easily reached. If a site could be obtained immediately above the Gasworks but on the other side of Flinders street extension, that is to say, on the lower part of the land on which the Harbour Trust offices are built, it would be most convenient for the shipping on both the north and south side of the river. Trusting that it may be possible to do some thing to meet this long felt want, We suscribe ourselves, Yours respectfully, Geo.H Steven, master ship Dharwar; Thos. Curd, master ship Narcissus; James Horne, master ship Loch Garry; T.Tait, master ship Loch Ryan; T. Nilsen, master ship Hebe; G. Ch Christian, master ship Anna; R.E. Peasley, master ship Seminole; Wm. Martin, master ship Loch Ness; T.C. Martin, master ship Loch Tay; W.H. Bennett, master ship Loch Vennachar; J. Raglan Brodie, master s.s. Warrnambool; James E. Coles, master ship Mermerus; J. H. Walker, master ship Hinemoa; R.J. Johns, master ship Ariel; D. Gorchem (sic. Gerckens), master ship Matador; H. Petersen, master ship Nesaia; Wm. J. Reid, master s.s. Star of New Zealand; A. F. Svhanstrom, master ship Hermes; Alex. Smith, master ship Sophocles; W. Y. Bunn, master ship Carmanian; William Anderson, master ship Loch Katrine."This petition is historically significant as it is documentary evidence of the need for a new facility for seafarers signed and presented by the captains of 21 ships, including several of the sister ships of the Loch Ard. The need for a new facility was a result of changes in shipping and the use of the Melbourne ports in the 1890's and this document supported the pressure on the Harbour offices to finally release land for an appropriate building in the early 20th C.Mounted hand-written petition to the Executive Committee of the Victorian Seaman's Mission Melbourne. The letter petitions the Executive Committee to create a facility on the wharves, "where sailors of every grade could profitably and pleasantly spend their evenings." This portion of the letter takes up three quarters of the document. The remainder has two lists, one of twelve captain's signatures and the other of the names of their ships. The list is continued on the reverse side with an additional nine signatures and corresponding ship names.In cursive handwriting: To The Executive Committee of the Victorian Seamans Mission', / Melbourne / Ladies and Gentlemen / we the undersigned captains....... We subscribe / ourselves respectfully, Captain signatures and names of ships ( NB Ship names in upper case for this entry ): Geo H. Stevens - DHARWAR / Thomas Curd - NARCISSUS; / James Horn - LOCH GARRY / T.Tait - LOCH RYAN ; / T.NIlsen - Hebe ; / G.C. Christians - ANNA ;/ R E Peasley - SEMIOLE ; / William Martin - LOCH NESS ; / T C Martin - LOCH TAY;/ W H Bennett - LOCH VENNUACHAR; / RJ Raglan Brodie - SS WARRNAMBOOL; ; / James E. Coles - MERMERUS; / ( signatures continue overleaf) J H Walker - HINEMORA ; / R J Johns - ARIEL; / D Gorchem - MATADOR; / H Petersen - NESAIA;/ William J Reid - STAR of N. ZELAND [sic] ; / TJ Sohanstrom - HERMES;/ Alex Smith - SOPHOCLES; / W Y Bunn - CARMANIAN;./ William Anderson - LOCH KATRINE;/ Handwritten in red ink on the front of the parchment: "8182" NB The second digit in the number sequence appears to have been written over and could also be a "9", an "8" or a "3". paper Watermark "HERCULES". Prior to conservation and taped to the glass on the reverse side of the parchment was a small piece of paper reading: "Letter written in 1897 and signed between the last week of October and the first week of November." T and C probably stands for Trade and Customs and 8382 is the file no." (H8.4 x W11.8)victoria, melbourne, ships, petition, australia-wharf, captains, signatures, 717-flinders-street-docklands, maritime welfare services, mission to seafarers, seamen's mission, mission to seamen, mermerus, captain coles, sir john coode, loch line, loch ness, loch gary, loch ryan, ss warrnambool, loch tay, loch vennachar, matador, nesaia, d. gerckens, h. petersen, a.f. svhanstrom, hermes, ariel, loch katrine, william anderson, dharwar, narcissus, hebe, anna, hinemoa, sophocles, carmanian, captains' petition -
Eltham District Historical Society Inc
Photograph, Peter Pidgeon, Official opening of the new Eltham Ambulance Branch, Apex Way, Montmorency, 29 August 2018, 29 Aug 2018
Dignitaries included Ambulance Victoria CEO Tony Walker, Vicki Ward MP for Eltham and Jill Hennessey State Ambulance Services Minister The Eltham Apex Club conducted a Community Service Project (1965-1968) to raise funds for a new Ambulance Station to service the community. A site bounded by the intersection of Main Road, Grand Boulevard and Looker Road at Montmorency was purchased in 1969. In 1970, Eltham Shire Council undertook roadworks to construct Apex Way in preparation for the new station as well as duplicate Main Road, Lower Plenty, east of Grand Boulevard including the new Lower Plenty Bridge, which had been opened in November 1966, bordering with the City of Heidelberg. Diamond Valley Leader, September 5, 2018, p4. MONTMORENCY $1.6mil station unveiled A REVAMPED Montmorency ambulance station has been unveiled. State Ambulance Services Minister Jill Hennessy and Eltham State Labor MP Vicki Ward revealed the $1.6 million complex at the corner of Grand Boulevard and Apex Way in Montmorency. It replaces the 50-year-old station and now includes four ambulance bays, four rest and recline rooms, a large training room and offstreet parking for staff. “The community campaigned long and hard for this new ambulance station and I’m delighted to have stood with them all the way,” Ms Ward said. The latest quarterly performance data showed 90.4 per cent of ambulances in Banyule arrived within 15 minutes of Code 1 emergencies — up from 89.2 per cent three months earlier. Ms Hennessy said paramedics had worked in “cramped” facilities. “We’ve fixed that,” she said.55 born digital imagesambulance victoria ceo, apex way, apex-diamond valley ambulance station, eltham ambulance station, eltham apex club, jill hennessey, montmorency, mp for eltham, state ambulance services minister, tony walker, vicki ward -
Surrey Hills Historical Society Collection
Photograph, Joseph W Cairnduff, 1914, 1914
Joseph William Cairnduff (1876-1929) was born in Hobart, Tasmania. He married Ann Walker in 1900. When he enlisted on 19 August 1914 he was given SERN 4. At the time he was living at 'Tyne', 96 Guildford Road, Surrey Hills. He was 5'5", 38 years old and employed as a civil servant. He had served for 5 years in the Senior Cadets and 3 years in the Australian Signallers. He was given the rank of sergeant in the Divisional Signal Company 1 and embarked for Egypt from Melbourne on board HMAT A10 Karroo on 20 October 1914. Surviving service on Gallipoli and the Western Front, he returned to Melbourne leaving on board HT 'Wiltshire', 12 November 1916. He was discharged medically unfit. Joseph and Ann had a large family before he left for WW1: Ann Mary b.1901; James William Cotter b. 1903; Mathew Norman Banks b. 1904; Doris Jean b.1906; Claude James b, 1908; Elsie Edna b. 1910; Clive Bruce b. 1912 and Gladys Janet b. 1914. After his return he and Ann had more 2 daughters - Sylvia McLaren b. 1917 and Mavis Morley b. 1918, who commenced at Chatham Primary School in 1927 and 1928 respectively. Joseph and Ann are buried in Box Hill Cemetery (M-NS-0492). Joseph's twin brother, James Banks Cairnduff (SERN 571) also served in the AIF and is also buried in Box Hill Cemetery (M-NS-0003). A studio portrait of a soldier in AIF uniform and a peaked cap. He is short and is standing with one arm straight and the other bend. He is holding what looks like a whip in the hand of the bent arm.In the hand of the donor: "1914" in ink in top RH corner. The centre: "Joseph W. Cairnduff / Before leaving for overseas / in 1914, firstly to Egypt / then Gallipoli, then Western / Front."joseph william cairnduff, first world war, signals company, guildford road, 'tyne', (miss) ann walker, (mrs) ann cairnduff, (mrs) mavis good -
Surrey Hills Historical Society Collection
Photograph, Joseph W Cairnduff in trenches on Gallipoli, 1915, 1915
Joseph William Cairnduff (1876-1929) was born in Hobart, Tasmania. He married Ann Walker in 1900. When he enlisted on 19 August 1914 he was given SERN 4. At the time he was living at 'Tyne', 96 Guildford Road, Surrey Hills. He was 5'5", 38 years old and employed as a civil servant. He had served for 5 years in the Senior Cadets and 3 years in the Australian Signallers. He was given the rank of sergeant in the Divisional Signal Company 1 and embarked for Egypt from Melbourne on board HMAT A10 Karroo on 20 October 1914. Joseph was on Gallipoli from 5/4/1915; he proceeded from there to Alexandria on 24/10/1915. Surviving service on Gallipoli and the Western Front, he returned to Melbourne leaving on board HT 'Wiltshire', 12 November 1916. He was discharged medically unfit. Joseph and Ann had a large family before he left for WW1: Ann Mary b.1901; James William Cotter b. 1903; Mathew Norman Banks b. 1904; Doris Jean b.1906; Claude James b, 1908; Elsie Edna b. 1910; Clive Bruce b. 1912 and Gladys Janet b. 1914. After his return he and Ann had more 2 daughters - Sylvia McLaren b. 1917 and Mavis Morley b. 1918, who commenced at Chatham Primary School in 1927 and 1928 respectively. Joseph and Ann are buried in Box Hill Cemetery (M-NS-0492). Joseph's twin brother, James Banks Cairnduff (SERN 571) also served in the AIF and is also buried in Box Hill Cemetery (M-NS-0003). A black and white photo of a group of 2 Australian soldiers sitting on wooden boxes under a slatted wooden low roof. They are at work on equipment of some kind. In the background are shelves with stores including a roll of cording and other materials in tins and boxes.On the rear in the hand of the donor: ""Repairing telephones / in Gallipoli" (in trench) / Dad on the left"joseph william cairnduff, first world war, signals company, guildford road, 'tyne', (miss) ann walker,, (mrs) ann walker, (mrs) mavis good, gallipoli, trenches -
Federation University Historical Collection
Poster - Advertisment, University of Ballarat, The Antipodes, 1 : 2007 .2: 2008
'The Antipodes' a comedy by Richard Brome. He was an English dramatist, born c1590 and died September24 1652 in London, generally deemed the "most considerable of minor Jacobean playwrights". 'The Antipodes' was an "ingenious satirical comedy" considered Brome's masterpiece - folly, jealousy, melancholy, madness and discord. This play directed by Kim Durban is a play within a play travels with Peregrine to Botany Bay in 1789 where there is an imagined "upside-down paradise of masterless men." The main ingredient is Ballarat's magnificent Mining Exchange, haunted as it is by ghosts of earlier travellers. There are five Acts performed by Third Year Graduate Actors of The Arts Academy of the University of Ballarat Design by John Bennett; costumes by Melanie Liertz; Choreography by Jessica Nichols / Lisa Minett; Lighting by Bronwyn Pringle; Sound by David Franzke. Cast: Dylan Lincoln, Blaze; Luke Western, Joyless; Anthony Dynon, Doctor; Alison Etheridge, Barbara; Tamara Gourley, Martha; Scott Middleton, Letoy; Sarah Ranken, Quailpipe; Rick Haseman, Peregrine; Robyn Nethercote, Diana; Scott Jackson, Byplay; Alexander May, Truelock. Letoy's Players,Sailors, Gentlemen, Maids, Citizens Courtiers and more: Vanessa Crouch' Stephanie Osztrecher, Kristy Phelan, Rea Walker, Emily Frewer, Beth Liston, John Desengano, Adam Smith, Jessica Nichols, Andrew Rostenburg, AshleyClarke, Kara, Tischler, Phillipa Shea, Sarah Brennan and Matt Young . Opening night: Saturday April 26th followed by Sunday 27th, Wednesday 30th through to Saturday May 3rd, 2007. Tickets: Adults $22, Concession $15.50, Student $12.50, UB Student $7.50, Arts Academy Student $5. The play was performed at Ballarat Mining Exchange, Lydiard Street North, Ballarat. Original poster the antipodes, the university of ballarat arts academy, kim durban, john bennett, melanie liertz, lisa minett, jessica nichols, bronwyn pringle, david franzke, dylan lincoln, luke western, anthony dynon, alison etheridge, tamara gourley, scott middleton, sarah ranken, rick haseman, robyn nethercote, scott jackson, alexander may -
University of Melbourne, Burnley Campus Archives
Photograph - Black and white print, Information Branch Victorian Department of Agriculture, Burnley Horticultural College - Staff 1974, 1974
Black and white photographs. 6 copies, 3 enlargements. Official Staff photograph. Group seated and standing in the Burnley Gardens.On reverse, "Photograph by Information Branch Victorian Department of Agriculture Ref. No. 1974 (99-1) to (99-3)." On reverse of enlargement, "Burnley Horticultural College - Staff 1974. Back l-r: Clarry Anderson, George Jackson, Eric Gay, Edward Marriott, John Kane, Fairly Siddle, David Walker, Sandra Burridge (Burrage), Rick Taylor, Rosemary Hall, Jim Edwards, Rob Hardy (Hardie), Dennis Erwin, Eddy Moore, Frank Casly (Casley). Front L-r: Geoff Olive, Ian McCure, George Grumont, Bill Nicholls, Laurie Metzling (Metzeling), Barry Dimelow, (V.P.), Eric Littlejohn (Principal), Jack Farrance, Ian Lee, Minnet(te) Russel (Russell-Young), Ken James, Paul Norquay."burnley horticultural college, staff, 1974, clarry anderson, george jackson, eric gay, edward marriott, john kane, fairly siddle, david walker, sandra burrage, rick taylor, rosemary hall, jim edwards, dennis erwin, eddy moore, geoff olive, ian mccure, george grumont, bill nicholls, barry dimelow, eric littlejohn, principal, jack farrance, ian lee, minnette russell-young, ken james, paul norquay, frank casley, laurie metzeling, rob hardy -
Mt Dandenong & District Historical Society Inc.
Photograph, Post Office and 'Mountjoy', Mt. Dandenong North, 1913
Rose Series post card #182Copy of Rose Series postcard #182 showing Kalorama Gap in 1913. Haystacks in foreground with Mountjoy Guest House and Beulah Tea Rooms/Mt Dandenong North Post Office in centre. This photograph has a detailed inscription on the back handwritten by John Lundy-Clarke in 1974.Kalorama Gap in 1913 The elm trees are in the centre of the picture. One of these is really two as two suckers of the further tree were twisted together by Fred Jeeves in 1898 and grew as one tree. The other was planted in 1880. The shop is the shop of Mrs Eliza Hand and daughter Florence. The closed in far end of the verandah was the Mount Dandenong North Post Office. The large house is “Mountjoy” owned and run by the Jeeves Family from 1908 till 1943. It was built in 1905 by the Paynters who sold to Ellis Jeeves in 1908.He moved his line of coaches from “Kalorama” his old homestead and housed the horses in a line of stables behind “Mountjoy”. Price’s house, which contained their shop, the first one on the mountain, opened 1906, can be seen faintly behind the pine tree opposite the bend in the road, which was the main road then and now is Ridge Road. The Price’s house just shows in two tiny pieces, one on each side of the pine tree half way up. The house to the right of and high up the pine tree is Walker’s cottage which exists today opposite Jack Kidd’s home at the far edge of Lt 2 Village Settlement and was between Main Road and Barbers Road which runs down the left behind the elms. Walker’s homestead can be seen near left edge of picture 2/3 way up. The roof of the Methodist Church shows among trees left of picture. This, like Mrs Hand’s shop was built on portions separated from Isaac Jeeves’ Selection “C” known as Jeeves Saddle. kalorama gap, five ways, mountjoy, john lundy-clarke, beulah tea rooms, post office, fred jeeves, paynter, jeeves, frederick jeeves, price, walker, jack kidd -
Kew Historical Society Inc
Award, V.B.A, President’s Trophy, 1937
Sports Clubs in Kew in the final decades of the 19th century and in the early 20th century were often umbrella organisations with facilities for a number of sports. Typically in Kew, this included teams in lawn bowls, tennis and croquet. The Kew Bowling Club was formed in 1880 while the privately owned Auburn Heights Recreation Club was opened in 1904. By 1998, the two Clubs decided to amalgamate at the Auburn Heights site in Barkers Road, forming the Kew Heights Sports Club. The combined club was itself taken over by the Melbourne Cricket Club in 2012 becoming MCC Kew Sports Club. In 2017 MCC Kew closed and its landholding was subsequently sold to Carey Baptist Grammar School. Both the Kew and Auburn Heights Clubs assembled important collections. These historically significant and large collections were donated to the Society in 2020. The collections include manuscripts, pictures, trophies, plans, honour boards etc. References Barnard FGA 1910, 'Sports and Pastimes' in Jubilee History of Kew Victoria: Its origin & progress 1803-1910. Nixon NV 1980, The History of the Kew Bowling Club 1880-1980. Reeve S 2012, City of Boroondara: Thematic Environmental History, p.216.The combined collections of the four sporting clubs making up the collection number hundreds of items that are historically significant locally. They are also significant to the sporting history of the greater Melbourne area and to the sports of lawn bowls and tennis in Australia in the 19th and 20th centuries. The collection illuminates two of the Victorian historic themes - 'Building community life' through forming community organisations and 'Shaping cultural and creative life' by participating in sport and recreation.Wood, brass and white metal VBA President's trophy. While the names of the winners have been partially abraided, contemporary press reports confirm the details and the significance of the trophy. An article in The Australasian (30 Jan 1937 reports: V.B.A. OFFICIALS' TROPHIES The three competitions involved in this title have now been concluded. Commenced on December 12, they occupied two Saturdays, and then were played on Tuesday afternoons to the conclusion. The president's trophy - the oldest competition in bowls, dating back to 1873 is for a two-rInk team of A pennant players; while the vice-president's B trophy and the vice-president's C trophy are also confined to two-rink teams in their respective grades. In the semi-final ot the president's trophy Kew, 34, defeated Richmond Union, 23, and Oakleigh defeated City of Hawthorn by 45-35. In the final Kew defeated Oakleigh, the scores being Kew, 39 (Cummins, Hambleton, Wood, Vance, 14; Taylor, Troon, Fraser, Rigg, 25), and Oakleigh. 20 (Cameron, Sumsion, Gronow, Walker, 12; Emmett, Skjellerup, Pakes, Geggie, 8). Kew had to wait 35 years to win its second president's trophy. That club was runner-up in 1890. Oakleigh has been twice runner-up (in 1924 and 1937), but has never won it. [The item is part of the historic Kew Bowling Club collection (1880-1988) gifted to the Kew Historical Society in 2020].VBA / VICTORIA BOWLING ASSOCIATION / PRESIDENT'S TROPHY / PRESENTED BY *** SIR WM BRUNTON / WON BY KEW BOWLING CLUB / TEAMS / JP CUMMINS, LH HAMBLETON, CG WOOD, P VANCE, / AD TAYLOR, RLR TROON, HE FRASER, FH RIGGkew bowling club - wellington street - kew (vic), clubs - lawn bowls - kew (vic), trophies - lawn bowls -
Ballarat Clarendon College
Photograph album, 1918
Significant pictorial record of College life at the end of the WW1. Property appearance, uniform/clothing details, furnishings, and named photographs of students. Junior school Forms I, II, III: Top row: T Dowling, Whitfield, W Paterson, R Paterson, R Morris, B Pain, W Coyle, R Thomas, Campbell; Middle row: Creer, pringle, Greenfield, K Baird, Mrs Gilbert, R Thomas, G Jeffrey, G Shaw, E Morton; Front row: H Strong, C Morton, R Carthew, R Pearce, A Greenfield; Middle School Forms IV, VB: Top row: Leslie, Michael, M Gunn, H Jones, W Hicks, L McLennan, K Bradby, Forster, K Joy, C C McMillan; 2nd row from top: Mr Deans, R Paterson, A Carthew, A Mckenzie, N Shaw, G Ross, H Lester, Leishman, Tanner, G E Clark, W Revelman, Mr Morton; Thurd row from top: A Levy, McLeod, J O'Grady, E Davies, W Walker, J Smith, N Boustead, E Abraham, Alkemade, Ronaldson, Crawford, McDougall, Hill; Front row: Klug, J Tonner, H Deeble, Soloman, Beacham, J Bradby, A Coldham, G Clarke, L Murphy, A King. Senior school Forms VIA, VIB & VA Top row: E Pearce, W Williams, A Ramage, D Langsford A Clarke, J Mitchell. Middle row: R Langsford, A Rogers, G Lester, V Cooper, A Thiessen, R Shannon, G Swan, D Robinson, J Coltman, R Jack; Front row: B Jones, L Shannon, R Morrow, Mr A S M Polson BA, R Steveson, R Sloan, M Morris. Social significanceLoose-leaf photograph album featuring photographs of Ballarat College property and classes taken 4th July 1918. Light card cover. 8 inidividual sheets of paper. Front cover: BALLARAT COLLEGE / PHOTOGRAPHS 4th July 1918 C A Ramage / DIFFERENT VIEWS 7 GROUPS / Taken 1918ballarat-college, 1918, uniform, c-a-ramage, boatshed, college-oval, assembly-hall, honour-boards, chemistry-laboratory, a-s-m-polson, mr-deans, mr-morton, miss-gilbert, junior-school, middle-school, senior-school -
Surrey Hills Historical Society Collection
Photograph, Joseph W Cairnduff in Egypt, 1916, 1916
Joseph William Cairnduff (1876-1929) was born in Hobart, Tasmania. He married Ann Walker in 1900. When he enlisted on 19 August 1914 he was given SERN 4. At the time he was living at 'Tyne', 96 Guildford Road, Surrey Hills. He was 5'5", 38 years old and employed as a civil servant. He had served for 5 years in the Senior Cadets and 3 years in the Australian Signallers. He was given the rank of sergeant in the Divisional Signal Company 1 and embarked for Egypt from Melbourne on board HMAT A10 Karroo on 20 October 1914. Joseph was in Egypt from 24/10/1915 to 17/6/1916, but only in Giza from 21/02/1916 to 6/03/1916. Surviving service on Gallipoli and the Western Front, he returned to Melbourne leaving on board HT 'Wiltshire', 12 November 1916. He was discharged medically unfit. Joseph and Ann had a large family before he left for WW1: Ann Mary b.1901; James William Cotter b. 1903; Mathew Norman Banks b. 1904; Doris Jean b.1906; Claude James b, 1908; Elsie Edna b. 1910; Clive Bruce b. 1912 and Gladys Janet b. 1914. After his return he and Ann had more 2 daughters - Sylvia McLaren b. 1917 and Mavis Morley b. 1918, who commenced at Chatham Primary School in 1927 and 1928 respectively. Joseph and Ann are buried in Box Hill Cemetery (M-NS-0492). Joseph's twin brother, James Banks Cairnduff (SERN 571) also served in the AIF and is also buried in Box Hill Cemetery (M-NS-0003). A black and white photo of a group of 7 Australian soldiers and 2 Egyptians gathered around a pole. The context is not able to be discerned. One of the soldiers is marked with an 'X' and is smoking a pipe. He has a cap-like object on his head. The other soldiers are wearing slouch hats. The Egyptians are dressed in long white garments and are wearing turbans.On the rear in the hand of the donor: "Dad had written on the original (photo) / "The 1st and only Telegraph ffice / erected on the top of the Pyramids, / it was erected by me during our / sojourn in Egypt"joseph william cairnduff, first world war, egypt, signals company, telegraph office, pyramids -
Bendigo Historical Society Inc.
Magazine - Our Own Magazine Vol. 1 - No. 6 (published 1 October 1897), 1 October 1897
The magazine was edited by Reverand R.C. Nugent Kelly as an Anglican Church publication. Reverend Kelly: Born in 1858 to Robert George and Mary Kelly (nee. Walker) of Birkenhead, England. Married Emma Louisa Edith Cremer in 1882 in England Died 11 Oct 1936 in Hornsby Shire, New South Wales, Australia Kelly joined All Saints Bendigo in 1896 where he edited the 'Our Own Magazine' and established a reputation for effective financial management. He left Bendigo in 1901. Much of his life was spent dedicated to church work which was documented as early as 1890. Now known as Old All Saints Cathedral, the church is located on the Northern corner of Mackenzie Street and Forest Street. The church was closed in 2015 and has remained abandoned. The church is located across the street from Bendigo Historical Society on Mackenzie Street. The Lambeth Conference: "The first Lambeth Conference took place in 1867 when the Archbishop of Canterbury, Charles Thomas Longley, invited the bishops of what would become the Anglican Communion to gather for a conference at Lambeth Palace.... There were two main issues that led to this invitation: First, a growing desire, expressed by many bishops around the world, to gather in order to pray, to study scripture and to confer together and, second, to address difficult pastoral and theological issues that were causing divisions between bishops around the world. These issues related to how the Christian gospel was and should be expressed in different cultures... Over successive Lambeth Conferences the mind of the bishops was expressed through published resolutions. These resolutions have touched on every area of the life and mission of the church... It has encouraged and enabled significant decisions to be made by the member churches" The 1897 conference resulted in 62 resolutions including the desire and establishment of regular conferences every ten years.1 October 1897 Edition of 'Our Own Magazine: A Church Monthly for the People'. The front cover contains the phrasing "registered as a newspaper" directly under the 'O' of "Our" though has been categorised as a magazine. Printed in black and white, the 10 page (not including covers) contains several advertisements for local Bendigo businesses. The cover showcases a hand drawn image of a robed man holding a ribbon "For God and His Church". The back cover shows a large black and white image of Enterprise Baking Powder. Other images include logos for local business and an ornate header on the front page. There are also ornate drop caps throughout the publication. The magazine includes articles pertaining to The Pope, the Lambeth Conference, Alexander Mackay of Uganda, the death of W. Walsham How (Bishop of Wakefield, C of E), the establishment of a press committee by the Anglican church, summaries of important sermons, mission notes, Parish news, baptisms, marriages and deaths. Centre fold and stapled together, each page is presented in a two-column layout. There is only one staple in the spine. Some pages extend past the edge of the cover. Printed on orange paper.reverand richard charles nugent kelly, all saints cathedral, bendigo, anglican church, lambeth conference, 1897, old all saints curch, local businesses -
Eltham District Historical Society Inc
Document, Conveyance, Lot 20 Henry Street, Eltham, Hope of Eltham Tent No. 195 I.O.R. to W.J. Capewell and others, 31 Dec 1926
Indenture between Jack Alfred Harrison, Accountant, Edward Samuel McColl, Council Employee, both of Eltham and William Wilson, Coachbuilder of Research, the Trustees of a certain Friendly Society known as The Hope of Eltham Tent No. 195 Victorian District I.O.R of the one part and William James Capewell, Butcher, Ernest James Andrew, News Agent and George Birchall, Hatter all of Eltham of the other part, Trustees for The Eltham Hall, for the purchase of Lot 20 Henry Street for £750. Witnessed by Hubert James Carter J.P for Jack Alfred Harrison, A.H.C. Price J.P. for Edward Samuel McColl and J. Webster J.P. for William Wilson. Originally purchased in 1856 from Thomas Roberts, Yeoman of Little Eltham, for £10 for use by the Wesleyan Chapel, represented by indentured Trustees, Rev. Barnabas Shaw Walker, Minister of the Pentridge Circuit, Francis Thomas, Farmer of Keelbundora, William Harriman, Blacksmith of Nillumbik, Nicholas Rodda, Farmer of Nillumbik, Aaron Grimshaw, Farmer of Greensborough, Joseph Cooper, Gardener of Keelbundora, Peter Dredge, Scholmaster of Jika Jika and Samuel Jeffrey, Farmer of Jika Jika. Lot 20 of Subdivision of Portion 13, Section 4 of the Parish of Nillumbik in the County of Evelyn was located on the southern side of Henry street in Little Eltham North, where the current Our Lady Help of Christians Catholic Church is situated. It became the location of the Eltham Rechabite Hall. In 1893 a new hall was built and further enlarged in 1919. At the commencement of 1922, the property was purchased from the Independent Order of Rechabites with publicly subscribed funds and a new hall built at a cost of £750 and improved road access constructed to reduce the grade, running from Dudley Street to Henry Street. This hall was eventually replaced with the new Shire Offices and Hall built on the corner of Arthur Street and Main Road, which was opened in 1941. Traces the earliest history of the Eltham Public Hall in Henry Street and the various names, occupations and abodes of the Trustees associated with the property -
Federation University Historical Collection
Newspaper, ANZAC Centenary newspaper features, 2015, 25/04/2015
The Centenary of the ANZAC landing of Gallipoli was marked in 2015. .1) Herald Sun Gallipoli 100-year Anniversary - The Legend Begins. Includes information on Gallipoli, Gallipoli landing, Lemnos, VC Winners, William Dunstan, Bigali, The Nek, Indigenous soldiers, Lone Pine, Gallipoli Retreat Images include: Gallipoli, William Birdwood, Harold Walker, Winston Churchill, Ian Hamilton, John Fisher, William Throsby Bridges Otto Linden von Sanders, Herbert Asquith, Sinclair MacLagan, Mehit Sefik, Mastafa Kermal, nurses on Lemnos, Alexander Burton, Bigali, Turkey, Keith Murdoch, Charles Bean, Joe Stratford, Frank Loud, Thomas Ford, Leslie Boyce, Raymond Brownell, Alfred Lovett, Leonard Lovett, Frederick Amos Lovett, Herbert Stahle Lovett, Cyril Brudenell White, Minyip .2) ANZAC Day 2015 Supplement from The Age. The supplement includes information on Australia's compulsory cadet training, Wireless telegraphists, horses .3) The Age ANZAC centernary Galipoli Tribute, 2015. Eight page broad sheet with amazing stories from the front line. Includes a listing of all those who lost their lives on the Gallipoli Peninsula, timeline of the Gallipoli landing, information on Douglas Barrett-Lennard, William Throsby Bridges, Alan Dudley Henderson, James Charles Martin, Arthur Harold Jopp, John Simpson Kirkpatrick, Cecil Anthony McAnulty, Laurence W. Street, Alfred Shout, Joseph Stratford, Alexander Stewart Burton, Alfred Hearpsgallipoli, anzac centenary, gallipoli landing, walker's ridge, pope's hill, quinn's post, lone pine, pine ridge, shrapnel gully, the sphinx, maclaurin's hill, monash valley, plugge's plateau, dardenells, keith murdoch, charles bean, cadets, compulsory cadet training -
Bendigo Historical Society Inc.
Photograph - BENDIGO BICYCLE CLUB, 1898 ?
Sepia photograph mounted on grey board. Photograph of frame included. 50 bust photographs of males, 2 storey building. 1 larger male bust photo. 1 badge and ribbons, surrounded by cut out mount board. BENDIGO BICYCLE CLUB . On back in biro Mr. L ? E. Wait, 72 Lily Street. Names of people transcribed below Presented to J HEFFERNAN ( as a mark of esteem) L Barnett C Barnett J Butler T W Capewell F Casey H Crowe W Crowley T Doyle F W Drews J Driscoll C Edwards J L Faul Dr B Gaffney J Gould J Grant A Gude J C Hallam J Heffernan A Heine L Herman P F Hogan W Honeybone E Hull T O Hunter A Johnson R Jones D B Lazarus A Magee W Maggs S Marcollo H McAtamney F A Moore E T Morland R Nicolai E J V Nigan T O’Donnell G Pritchard J Purchase C I Rice C E Roberts H Rolfe A Stephenson J Stevens C E H Swyer J Thomas F Vlaeminck C B Walker R Watson W Westphalen H White C E Ward ALAN SPICER Williamson Street BendigoAlan Spicerorganization, club/society, bendigo bicycle club 1898 -
Ballarat Tramway Museum
Photograph - Digital image Set of 10, George Coop, 1968 - 1970
Yields information about the tram operations and the landscape views of the Sturt St median strip.Ten (10) Digital images taken by George Coop during the period 1968 - 1970, of SEC trams in Sturt St, between the City and Pleasant Streets. .1 - Tram 26 climbing the Sturt St hill to Lydiard St, with the Cook's Private Hotel, the Commonwealth Bank and the National Mutual Life building in the background. Photo taken from the Titanic Bandstand. .2 - Tram 40 Sturt St, enough to Lydiard St North just before Raglan St. Has a lady passenger by the tram stop. .3 - Tram 30 - Sturt St north side, near Armstrong St, - has a blue framing line around the photograph. .4 - Tram 39, Sturt St, near Doveton St, shows the rotunda in the median strip. .5 - Tram 18, with median step in view. .6 - Tram 31, with two Johnnie Walker whiskey roof adverts, outside the National Mutual Life building with the Alan Bros Jewellers and Golden Star Chinese Cafe in the view. .7 - Tram 31, Sturt St south side with Town Hall and the Golden City Hotel in the view. Tram has destination of Gardens via Drummond North. .8 - Tram 41 - ditto - going to Sebastopol. .9 - Tram 13, south side, Gardens via Sturt West, about , near Ripon St, with the Ampol service station in the background and about to pick up a lady passenger .10 - Tram 17, near Doveton St. Has a Twin Lakes sign and a Wilkinson Sword Razor Bladese roof advert. trams, tramways, sturt st, raglan st, passengers, doveton st, tram 26, tram 40, tram 30, tram 39, tram 18, tram 31, tram 41, tram 13, tram 17 -
Ballarat Tramway Museum
Document - Form/s, State Electricity Commission of Victoria (SECV), "Summary of daily time sheets - Traffic Department", 1971
Form used to record a summary of the working hours of crews, showing the total hours and the hours worked when one man operation. Gives a list of names at the time when the form prepared. Also used by Jerry? as a sheet of paper to write out the details of No. 9 run for Saturdays as a reference document and noted it was last time on the Victoria St route and recorded the tramcar number.Duplicated typed form, foolscap sheet, titled "Summary of daily time sheets - Traffic Department", giving name, total time, one man rate time, and spread of hours. Has a list of employee names in two columns. Dated 28/7/1971 - Wednesday On rear of sheets, Jerry? Van Rooy - has used the sheet to write out Saturday 9 run details. Has endorsed it - "My last Vic Run on 21/8/1971" - Conductor Jerry? Van Rooy - Car No. 17" Names on the sheet are: (in alphabetical order on the sheet) L Walker H Knight J Smerdon A Turnbull A Mercer R. Courtney W. Ward R. Williams A. Jeffreys D. McGregor D. Thomson I Willis D O'Leary J. Maher A. Morris D. Domaschenz R. G. Knight E Lake I. Tierney N Cahill N Reynolds W. Davies N. Hamilton L. McMahon J. Billman W. Nancarrow H. M. Van Oorschot W. Newell L. Bird D. Chambers H. Van Rooy H. Mannion N. Robe E. Van Rooy M. Blackman N. K. Alan - crossed out H. Hall J. Mason S. Davies W. F. Segrave N. D. Hunt K. Butler V. L. Gill R. K, Morris D. Everett T. Williams A. Reed B. Melville I. Trenfield Power - in pen W. Tuddenham Photocopy of sheet made.See above.trams, tramways, timetables, sec, ballarat, shifts, times -
Ballarat Tramway Museum
Photograph - Digital image Set of 10, Tony Smith, 1971
Yields information about Ballarat Tramways and trams prior to the closure of the tramway system.Set of 10 digital images of Ballarat trams prior to closure, scanned from original slides by Tony Smith, 1971 prior to closure of the system. The following photos have suffered colour change and showing some deterioration - fungal growth. .1 - 35 (Sebastopol), with the Town Hall and Gemmola's chemist in the background. Tram waiting at the tram stop. .2 - 27 at Victoria St loop, showing Gardens via Drummond St Nth. .3 - 35 at Armstrong St inbound showing Lydiard St Nth. Has the Commonwealth bank in the background. .4 - 32 westbound in Sturt St between Dawson and Lyon Streets, tram has the destination of Gardens via Drummond Nth. Has the Town Hall and other buildings in the background. .5 - 17 inbound at Dawson St. Tram has destination of Mt Pleasant. .6 - 39 picking up passengers at the tram stop on the west side of Dawson St. Has the Ritzy cafe and the Golden City hotel in the background. Tram appears to be well loaded with lady passengers and has a "Everything under my control in my all electric kitchen" SEC roof ad. .7 - 37 using the Dawson St crossover - has St Patricks Cathedral in the background. .8 - 21 entering the depot with Lake Wendouree in the background. .9 - 11 sitting in 0 road at the depot. .10 - 41 at the depot on 2 road. Tram has two Johnny Walker Whiskey roof adverts.trams, tramways, sturt st, victoria st, dawson st, lake wendouree, wendouree parade, depot, tram 35, tram 27, tram 32, tram 17, tram 39, tram 37, tram 21, tram 11, tram 41 -
Bendigo Historical Society Inc.
Photograph - PETER ELLIS COLLECTION: BENDIGO HIGH SCHOOL
Colour picture in heavy paper folder. Sticker on front of folder reads: Bendigo High School 1907-2007 Celebrating 100 years of Quality Education 6th - 8 October 2007. Students 1957-1958 Bk: Graeme Tuder, Ivan Brown, Tony Conolan, David Stuccoes, Neil Shaw, Kevin Rusbridge, Keith Ryall, Peter Ellis, John Harris, John Charlton, Bill Cook. 4th: Brian Tresidder, Jack Harvey, Tony Hayward, Ken Prior, Peter Dumont, Roger Banks, M.R. Adamthwaite, Tom Bowles, Will Turner, Lance Lakey, Faye Frewin (McKenzie). 3rd David Pocock, Margaret Grant (Hawke), Barbara Glover (Simms), June Tully (Lewis), Jan Nankervis (Every), Nola Williams (Dalrymple), Jan van der Spek (Sheringham), Kay Trimble (Oswald), Coral Symons (Eickert), Joan Rathbone (Griffen), Pam Lane (Jenkin), Joy Howell (Anderson). 2nd: Eric McLeod, Noel Mibus, Malcolm Ward, Shirley Walker (Moresi), Shirley Midgey (Osborne), Patricia McLay (Johnston), Margaret Aitken, Lynette Dowall (Teague), Trudy Green (Partington), Margaret Symons (Fehring). Ft: Marilyn Millar (Stephens), Juanita Aitken (Howe), Val Pratt (Hester), Bronwen Schleiger (Townsend), Barbara Jones (Matthews), Lyn Goldsmith (Punch), Pauline Wileman (Lampard), Cheryl Chant (Read), Chris Charnas (Frewin). Spielvogel Photographics P.O. Box 1004 Ballarat Mail Centre, Vic 3354. Ph. 03 5334 0246.Spielvogel Photographics P.O. Box 1004 Ballarat Mail Centre, Vic 3354. Ph. 03 5334 0246.bendigo, education, bendigo high school -
Kew Historical Society Inc
Archive (series) - Subject File, Artists II (Kew), 1958
Various partiesReference, Research, InformationKHS OrderThe second of two reference files on artists in Kew, this file including research and printed copies of a publication by Elizabeth Mackie, ‘The Artists of Kew’ (self-published 1981 - ISBN 0 9594081 0 X). The publication is attached to this record as a PDF file, but it should be noted that copyright is still held by the descendants of the author, but may be used and quoted for research purposes. One of the copies in the file of the publication is an ex-library copy and includes an index. The other unpublished material/research is held in copyright by the Kew Historical Society Inc. The files include descriptions, addresses and or dates relating to artists mentioned in the file. Within the file, there is also detailed correspondence and notes from and relating to Gwen Walker, Marguerete Mahood, Stanley Ballard, and Kathlyn Margaret Ballard. Index - ‘The Artists of Kew’ (Mackie E, 1981): Louis Abrahams, Edith Alsop, William Nichols Anderson, Louis Anquetin, Dorothy Baker, Alice [Marion Emily] Bale, Kaye Ballard, Stan Ballard, George Bell, Leila Bell, Charles Bennett, A Bolam, Shirley Bourne, Arthur Boyd, John Brack, Louis Buvelot, Donald Cameron, Robert Camm, Sir Hugh Casson, S Cochrane, Alexander Colquhoun, Amalie Colquhoun, Archibald D Colquhoun, Beatrice Colquhoun, Elizabeth Colquhoun, George Colville, Charles Conder, Colin Coulihan, Noel Counihan, David Cox, Sir William Dargie, Isobel Davies, Miss De Mole, L Dunn, Frank Emery, Albert Enes, Alma Figuerola, W H Fitchett, Paul Fitzgerald, George Frederick Folingsby, E Phillips Fox, William Frater, John Frith, Miss Fullwood, Alistair Cameron Gray, Harley Griffiths, Gilda Gude, Nornie Gude, Dora Hake, Elsie Bernard Hall, Robert Hannaford, John Hassell, Carl Hempel, Harold Herbert, June Hobart, Kenneth Jack, Jean Jeffery, Cliff Judge, Lois Kahan, William Kearney, Percy Leason, Bastien Le Page, J Lewis, Norman Lindsay, Percy Lindsay, Sir John Longstaff, John Loxton, Arthur Loureiro, Gordon McCrae, Frederick McCubbin, Herchfield Mack, Alan Martin, Karlis Mednis, Max Meldrum, Bertha Merfield, Anne Montgomery, David Moore, Lillian Morrison, Carl Nelson, Sydney Nolan, Ambrose Patterson, Lawrence Scott Pendelbury, John Percival, John Perry, W Pinderson, Marie Pinschoff, John Piper, J Reverdy, Tom Roberts, James Robertson, John Russell, Jan Hendrik Scheltema, Arnold Shore, Joseph Simpson, Joy Stewart, Sir Arthur Streeton, Jane Sutherland, Ruth Sutherland, Evelyn Syme, Eric Thake, Isobel Thorn, Albert Tucker, Tudor St George Tucker, Isobel Tweddle. Other artists noted in file include: Marguerete Mahood, Leopoldine Mimovich, Julius Wentscher, Tina Wentscher, Sigismonde Zacutti, Napier Waller, Percy Gair, Stuart Warmington, Len Annois, Margaret Baskerville, Clara Southern, Andre Maszaros, Michael Maszaros, Walter Withers, Edith Ussher, Arthur Wills, Douglas Annand, and Gwen Walker.artists - kew (vic)artists - kew (vic) -
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