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Flagstaff Hill Maritime Museum and Village
Animal specimen - Whale bone, Undetermined
Prior to carrying out a detailed condition report of the cetacean skeletons, it is useful to have an understanding of the materials we are likely to encounter, in terms of structure and chemistry. This entry invites you to join in learning about the composition of whale bone and oil. Whale bone (Cetacean) bone is comprised of a composite structure of both an inorganic matrix of mainly hydroxylapatite (a calcium phosphate mineral), providing strength and rigidity, as well as an organic protein ‘scaffolding’ of mainly collagen, facilitating growth and repair (O’Connor 2008, CCI 2010). Collagen is also the structural protein component in cartilage between the whale vertebrae and attached to the fins of both the Killer Whale and the Dolphin. Relative proportions in the bone composition (affecting density), are linked with the feeding habits and mechanical stresses typically endured by bones of particular whale types. A Sperm Whale (Physeter macrocephalus Linnaeus, 1758) skeleton (toothed) thus has a higher mineral value (~67%) than a Fin Whale (Balaenoptera physalus Linnaeus, 1758) (baleen) (~60%) (Turner Walker 2012). The internal structure of bone can be divided into compact and cancellous bone. In whales, load-bearing structures such as mandibles and upper limb bones (e.g. humerus, sternum) are largely composed of compact bone (Turner Walker 2012). This consists of lamella concentrically deposited around the longitudinal axis and is permeated by fluid carrying channels (O’Connor 2008). Cancellous (spongy) bone, with a highly porous angular network of trabeculae, is less stiff and thus found in whale ribs and vertebrae (Turner Walker 2012). Whale oil Whales not only carry a thick layer of fat (blubber) in the soft tissue of their body for heat insulation and as a food store while they are alive, but also hold large oil (lipid) reserves in their porous bones. Following maceration of the whale skeleton after death to remove the soft tissue, the bones retain a high lipid content (Higgs et. al 2010). Particularly bones with a spongy (porous) structure have a high capacity to hold oil-rich marrow. Comparative data of various whale species suggests the skull, particularly the cranium and mandible bones are particularly oil rich. Along the vertebral column, the lipid content is reduced, particularly in the thoracic vertebrae (~10-25%), yet greatly increases from the lumbar to the caudal vertebrae (~40-55%). The chest area (scapula, sternum and ribs) show a mid-range lipid content (~15-30%), with vertically orientated ribs being more heavily soaked lower down (Turner Walker 2012, Higgs et. al 2010). Whale oil is largely composed of triglycerides (molecules of fatty acids attached to a glycerol molecule). In Arctic whales a higher proportion of unsaturated, versus saturated fatty acids make up the lipid. Unsaturated fatty acids (with double or triple carbon bonds causing chain kinks, preventing close packing (solidifying) of molecules), are more likely to be liquid (oil), versus solid (fat) at room temperature (Smith and March 2007). Objects Made From the Whaling Industry We all know that men set forth in sailing ships and risked their lives to harpoon whales on the open seas throughout the 1800s. And while Moby Dick and other tales have made whaling stories immortal, people today generally don't appreciate that the whalers were part of a well-organized industry. The ships that set out from ports in New England roamed as far as the Pacific in hunt of specific species of whales. Adventure may have been the draw for some whalers, but for the captains who owned whaling ships, and the investors which financed voyages, there was a considerable monetary payoff. The gigantic carcasses of whales were chopped and boiled down and turned into products such as the fine oil needed to lubricate increasing advanced machine tools. And beyond the oil derived from whales, even their bones, in an era before the invention of plastic, was used to make a wide variety of consumer goods. In short, whales were a valuable natural resource the same as wood, minerals, or petroleum we now pump from the ground. Oil From Whale’s Blubber Oil was the main product sought from whales, and it was used to lubricate machinery and to provide illumination by burning it in lamps. When a whale was killed, it was towed to the ship and its blubber, the thick insulating fat under its skin, would be peeled and cut from its carcass in a process known as “flensing.” The blubber was minced into chunks and boiled in large vats on board the whaling ship, producing oil. The oil taken from whale blubber was packaged in casks and transported back to the whaling ship’s home port (such as New Bedford, Massachusetts, the busiest American whaling port in the mid-1800s). From the ports it would be sold and transported across the country and would find its way into a huge variety of products. Whale oil, in addition to be used for lubrication and illumination, was also used to manufacture soaps, paint, and varnish. Whale oil was also utilized in some processes used to manufacture textiles and rope. Spermaceti, a Highly Regarded Oil A peculiar oil found in the head of the sperm whale, spermaceti, was highly prized. The oil was waxy, and was commonly used in making candles. In fact, candles made of spermaceti were considered the best in the world, producing a bright clear flame without an excess of smoke. Spermaceti was also used, distilled in liquid form, as an oil to fuel lamps. The main American whaling port, New Bedford, Massachusetts, was thus known as "The City That Lit the World." When John Adams was the ambassador to Great Britain before serving as president he recorded in his diary a conversation about spermaceti he had with the British Prime Minister William Pitt. Adams, keen to promote the New England whaling industry, was trying to convince the British to import spermaceti sold by American whalers, which the British could use to fuel street lamps. The British were not interested. In his diary, Adams wrote that he told Pitt, “the fat of the spermaceti whale gives the clearest and most beautiful flame of any substance that is known in nature, and we are surprised you prefer darkness, and consequent robberies, burglaries, and murders in your streets to receiving as a remittance our spermaceti oil.” Despite the failed sales pitch John Adams made in the late 1700s, the American whaling industry boomed in the early to mid-1800s. And spermaceti was a major component of that success. Spermaceti could be refined into a lubricant that was ideal for precision machinery. The machine tools that made the growth of industry possible in the United States were lubricated, and essentially made possible, by oil derived from spermaceti. Baleen, or "Whalebone" The bones and teeth of various species of whales were used in a number of products, many of them common implements in a 19th century household. Whales are said to have produced “the plastic of the 1800s.” The "bone" of the whale which was most commonly used wasn’t technically a bone, it was baleen, a hard material arrayed in large plates, like gigantic combs, in the mouths of some species of whales. The purpose of the baleen is to act as a sieve, catching tiny organisms in sea water, which the whale consumes as food. As baleen was tough yet flexible, it could be used in a number of practical applications. And it became commonly known as "whalebone." Perhaps the most common use of whalebone was in the manufacture of corsets, which fashionable ladies in the 1800s wore to compress their waistlines. One typical corset advertisement from the 1800s proudly proclaims, “Real Whalebone Only Used.” Whalebone was also used for collar stays, buggy whips, and toys. Its remarkable flexibility even caused it to be used as the springs in early typewriters. The comparison to plastic is apt. Think of common items which today might be made of plastic, and it's likely that similar items in the 1800s would have been made of whalebone. Baleen whales do not have teeth. But the teeth of other whales, such as the sperm whale, would be used as ivory in such products as chess pieces, piano keys, or the handles of walking sticks. Pieces of scrimshaw, or carved whale's teeth, would probably be the best remembered use of whale's teeth. However, the carved teeth were created to pass the time on whaling voyages and were never a mass production item. Their relative rarity, of course, is why genuine pieces of 19th century scrimshaw are considered to be valuable collectibles today. Reference: McNamara, Robert. "Objects Made From the Whaling Industry." ThoughtCo, Jul. 31, 2021, thoughtco.com/products-produced-from-whales-1774070.Whale bone was an important commodity, used in corsets, collar stays, buggy whips, and toys.Whale bone in two pieces. Advanced stage of calcification as indicated by deep pitting. Off white to grey.None.flagstaff hill, warrnambool, shipwrecked-coast, flagstaff-hill, flagstaff-hill-maritime-museum, maritime-museum, shipwreck-coast, flagstaff-hill-maritime-village, whale bones, whale skeleton, whales, whale bone, corsets, toys, whips -
Flagstaff Hill Maritime Museum and Village
Functional object - Megaphone, Bef. 09-02-1984
This megaphone's conical shape amplifies the sound from the narrow end and would have been used to signal a warning or give instructions. Its design is similar to an earlier brass fog horn used on a marine vessel, as it has a wide brim that allows it to be free-standing, and a shoulder rope makes it portable and frees up the user's hands. The narrow end is shaped into a mouthpiece. The megaphone may have been used at sea foghorn on a vessel, although it has no reeds for the sound, or used by a leader of a band or a fireman or other similar uses. This megaphone's conical shape is based on the centuries-old ram's horn or horn from other animals, used to amplify sound to make it travel a long distance or be heard above other sounds. It represents a similar instrument made in the 19th century and used as a signal or to give instructions, such as on a vessel at sea, to a lifesaving team, or in a marching band. Megaphone; brass conical shape with an opening at both ends and a join near the wide end. The wide opening has a broad brim and is painted red inside. A brass ring is attached near each opening and a narrow rope is attached to each ring. warrnambool, flagstaff hill maritime museum and village, fog horn, marine equipment, navigation, warning signal, maritime, nautical, fireman, captain, shoulder rope, signal, safety equipment -
Flagstaff Hill Maritime Museum and Village
Animal specimen - Lamb Fetus
This lamb fetus has been placed in preserving fluid. This can be formaldehyde, isopropyl or ethanol. It is important that glass jars are used, as plastic will be affected by the chemicals over time in the preserving fluid. Note the glass lid and the rubber seal; also the plastic covered metal clasp that has no contact with the contents. It is not known how long the lamb has been in this jar, but it is remarkably well preserved with just a little film of scum on parts on the top of the interior of the jar.The use of such preserved specimens is widespread in teaching students of all ages, veterinary operatives and museums of the composition of certain animals, insects and birds. Any information about an animal — be it photographs, blood, feathers or fur samples — is better than no information at all. But specimens are vital to ground-truth.Large glass jar containing a lamb fetus in preserving fluid. Glass lid is secured with rubber seal and metal fastening. flagstaff hill, flagstaff hill maritime museum and village, warrnambool, maritime museum, maritime village, great ocean road, shipwreck coast, lamb, fetus, lamb fetus, animal specimen, biological specimen -
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 -
Federation University Historical Collection
Reports, Thylacenes and Large Predators Sightings, 2000-2010, 2000-2010
The folder or correspondence is the result of a Freedom of Information request made to the Department of Sustainability and Environment in 2011. The folder was collected for research being conducted by David Waldron.Folder of correspondence and newsclips relating to "Big Cats" and other large predators. Sections of this file includes redacted areas relating to the privacy of correspondents.australian mythical animals collection, david waldron, depatment of primary industries, marsupial lion, thylacoled, thylacine, apollo bay, dingo, east gippsland, metung, lake king, s. temby, footprint, feral cat, puma, australian rare fauna research association inc, geelong, ceres hill, gippsland tasmanian tiger, tasmanian tiger, wilsons promomontory, fauna, scats, lochsport, philip g. gittins, wilson's promontory national park, peter hall, lang lang, alberton, yanakie, fish creek, waratah bay, walkerville, cap liptrap, lower tarwin, middle tarwin, grantville, toora, koonwarra, foster, welshpool, cotters lake, wild dogs, stuart atkins, bob cameron, big cat, sheep kills, jaw bones, livestock loss, peter walsh, woodside, binginwarri, yarram, mountain lion, cougars -
Federation University Historical Collection
Document - Reports, Large Cats, Thylacenes and Large Predators Sigtings, 1975-1985 and 2002-2011
The folder of correspondence is the result of a Freedom of Information request made to the Department of Sustainability and Environment in 2011. The folder was collected for research being conducted by David Waldron.Folder of correspondence and newsclips relating to "Big Cats" and other large predators. Please note: sections of this file are closed to protect the privacy of correspondents.australian mythical animals collection, david waldron, brian waters, moonambel, joyce collins, ian smith, thylacene, marrarkuli, burragorang, m.g. hornocker, mt bepcha, billywing upland, john a. henry, bryan wlaters, ken bodinnar, harcourt, kevin farley, fowlers bay, carolyn hodges, puma, macarthur, paynesville, john aldreson, animal damage control, mountain lion, bryan walters, cougar, big cat, maryborough, joan kirner, bernard mace, tasmanian tigers, d.g. willey, calder highway sightings, kevin phelen, mt richmond national park, feral cat, felis catus, lancefield, pyalong, broadford, pyalong pantherleopard, porsche park, dick shaw, big cats in victoria, peter hall, lyn sellens, south gippsland, plaster cast, foot cast, unidentified wildlife, john seeback, michael moss, carnivores, halls gap, halls gap puma scats, kooreh, ballan, ballan large cat, a.g. kerr, south gippsland tasmanian tiger sightings, central victorian puma, otways, wilsons promontory, john higgins, tasmanian wolf, j.k. depmster, vermin, lion, cooper's creek, warrego river, dingo, thylacinus cynocephalus, mirboo north, newham, operation puma victoria, australian skeptics, kangaroo ground, rare fauna, black wildcat, pyalong panther, bob warneke, black puma, maryborough puma, creswick panther, cape bridgewater, pyrenees panther, footprints, daisy hill, bung bong, phantom puma, geranium springs, maurice hornocker -
Federation University Historical Collection
Reports, Big Cats Sightings and Stock Kills 2000-2011, 2000-2011
The folder or correspondence is the result of a Freedom of Informaition request made to the Department of Primary Industries in 2011. The folder was collected for research being conducted by David Waldron.Folder of reports of Big Cat by rangers. australian mythical animals collection, david waldron, department of primary industries, rangers, peter walsh, warragul creek, binginwarri, coongulla, straford, licola, blanket hill, darramin, blanket hill, woodside beach, heyfield, puma, panther, cowwarr, glenmaggie, bolands bluff, darrimen, bolands bluff, binginnwarri, dawson, the springs, mt taylor, black range, driffield west, snowy plains airstrip, glenmaggie north, jack smith lake, munro, briagaling, dutson downs, connors plain, giffard west, darriment, joyces road junction, giffard west, wallaby creek, south gippsland highway, avon river, orbost, four mile creek -
Federation University Historical Collection
Reports, Big Cat sightings (dates), 1989
Research of dated sightngs of Big cats in Victoria from 1868-1989. australian mythical animals collection, david waldron, dse, big cats, panthers pumas, nuggety, gippsland, black cats, tasmanian tiger, marysville, wood's point, thylacine, south gippsland, felid, gippsland big cat, kelvin healey, peter hall, sherbrooke forest, woodside, walaces flat, mountain lion, heyfield, mt taylor, walhalla, mt selma, warrnambool, kyneton, korumburra, canadian forest, grampians, panton hill, beaconsfield, apollo bay, forrest, victoria valley, rapanyup, dargo, inglewood, doncaster east, tidal river, cape bridgewater, walkerville, dooen, st arnaud, lake bung bong, mitta mitta, moliagul, emerald, kinglake, cape otway, dereel, leonard's hill, daylesford, korweinguboora, lal lal, noojee, eltham, lancefield, trentham, daisy hill, tanjil south, wonthaggi, cockatoo, warrenheip, greendale, howqua, lake buchan, melville caves, portland, mt elephant, morwell, navarre, yarram, yandoit, moonambel, maryborough, taravale, coghill's creek, trentham, carisbrook, inglewood, warrenmang, yarragon, creswick, emerald, stawel, clunes, majorca, heathcote, talbot, daylesford, newham, broadford, peter chapple -
Federation University Historical Collection
Reports, Unidentified Mammal Report, 1970-1990, 1970-1990
The folder or correspondence is the result of a Freedom of Information request made to the Department of of Conservation, Forests and Lands in 2011. The folder was collected for research being conducted by David Waldron.Folder of reports relating to "Big Cats", Thylacines, and other large predators sightings australian mythical animals collection, david waldron, thylacine, sassafras, peter monhorst, jodie hoey, kelvin smith, traralgon south, gormondale, bridgewater, g. mcclure, whorouly, albury, jim walker, andrea westcott, john dawson, nicole walsh, grampians, eddy scott, talbot, lancefield, kalorama, inglewood, gavin cerini, dereel, rosemary fernandez, brian walters, alexandra, unidentified mammel, romsey, bill butterworth, flowerdale, bob hoare, trafalgar, lyn demopolis, broadford, green gully, ian weir, noel pascoe, bruce carter, mount stirling, andrea cooper, stawell, yvonne shepherd, red hills, halls gap, jill reid, puma, w.r.c. hill, caelli -
Federation University Historical Collection
Book - Scrapbook, Scrap Book Compiled by William Robertson, c1911
Maroon covered minute book that has had handwritten minutes pasted overs with clippings collected by William Robertson. The minutes appear to be of the Budding Rose Juvenile Temple IOGS held in hte Piggoret Public Hall and/or Piggoreet Presbyterian Church Clippings include: Origins of man (Jubilee of Darwin's Theory) Fight Against Evolution (E. Grant Conklin) Neanderthal Man and Grimaldi Man Our First Immigrant Had Human Head, But MOuth Like a Mnkey Darwinism Mutton BurdsThe Missing Link: Supposed Discovery. Man who walked on all-fours Channel tunnel Ernest Haeckel and his work Mr McCabe's Lecture Taungs Skull Jumbo's Trunk Man hand written notes by Roberston are evident, including Heredity, Classification, Fossil Men, Broken Hill Skull (South Africa) budding rose juvenile temple, piggoreet public hall, piggoreet presbyterian church, charlotte leaske, james robertson, nellie robertson, richard webb, bella laidler, john christie, e. prolonseau, charles christie, andrew jamieson, david sinclair, sam webb, origin of man, darwin's theory, darwinism, embyology, origin of creation, sir oliver lodge, missing link, heredity, fossils, pedigree of birds, fourth dimension, joseph mccabe, huxley's reserves, animal intellegence -
Federation University Historical Collection
Photograph - Colour, The Royal Melbourne Zoological Gardens 1985: Mzuri the baby gorilla, 1985
Laminated colour photographic image of Blue Macaw parrot laminatedsignature lower right 'David Higgins '85'bird photography, encapsulated photograph, colour photograph, david higgins, gorilla, mzuri, fauna, animal -
Federation University Historical Collection
Booklet, University of Ballarat Centre for Environmental Management, 1996
The Centre for Environmental Management as established in July 1995 as a strategic development initiative to consolidate the University's position as a centre for industry linked environmenttal teaching, resarech and consultancy. Page 19 "SPECIAL INITIATIVES Establishment of field Research Stations Two areas of concentration of research effort for the Centre are the Otways in the south western Victoria and the Scotia Country in the rangelands of NSW. In both these areas it is essential that ther be a secure accomodation abase for research students. In the former case there is a need for a sheltered base to enable year round field work in cold wet conditions and in the latter a base with a reliable water supply and the facilities to allow field work in very hot dry conditions which prevail from much of the year. It has been an ibjective of the Centre to establish field stations at these two sites and considerable progress has been made through the year. (i) Nanya Field Station in the Scotial Country Through the generosity of the owner, Mr Rob Taylor, an unused homestead on Nanya Station was made available to the Centre. Largely through voluntary labour during research field trips during the year this previously derelict homestead has been restored to functionality and now has facilities for up to 20 research workers with a reliable water supply, cooking, washing, and refrigeration facilities. (ii) Cape Otway Resaerch Centre Negotiations have continued through the year with the potential lessees of the Cape Otway Lighthouse Precinct with the support of the Vice Chancellor and other potential user groups within the University these have reached a successful outcome. The University will be working with the lessees to develop the historic Telegraph Station as a dual purpose facility for interpretation and research." Black and white cover with clear plastic sheet. university of ballarat, centre for environmental management, martin westbrooke, richard mcewan, mal weston, john miller, nanya, telegraph station, cape otway, cape otway lighthouse station, cape otway telegraph station, field resaerch stations, s. hadden, peter dahlhaus, r.j. macewan, pat prevett, native vegetation assessment, fauna management, pest plants and animal research, soil and water assessment, conservation reserve management, paul ryan, richard macewan -
Federation University Historical Collection
Booklet, Little Desert National Park and Wail State Forest Proposed Management Plan, 1991, 11/1991
Grey soft covered report of 80 pages. Includes a pull out map.little desert national park, wait state forest, management plan, horsham, department of conservation and environment, rod gowans, don spence, wimmera river, threatened plants, fauna, flora, birds, mammals, wergaia, scarred trees, mounds, pest plants, pest animals, tourism and recreation, timber, grazing, conservation -
Federation University Historical Collection
Book, Department of External Affairs, Melbourne, Bulletin of the Northern Territory, Bulletin No. 1, March 1912, 1912
Soft brown covered book of 68 pages. Photographic images of Roper River, Mount McMinn, Abraham's Lagoon, Edith Creek, Red Lily Lagoon, Darwin Boy Scouts, China Town in Darwin, Umbrawarra Creek, Paddy's lagoon, McMinn's Homestead, gold cradle, Aborigines, Syphilis, Mungurai, yaws.northern territory, scientific expedition, health, domesticated animals, j.a. gilruth, a. breinl, mosquitos, paul foelscher, roper river, mount mcminn, abraham's lagoon, edith creek, red lily lagoon, darwin boy scouts, china town in darwin, umbrawarra creek, paddy's lagoon, mcminn's homestead, gold cradle, aborigines, syphilis, mungurai, yaws, buffalo fly, henry tryon -
Ringwood and District Historical Society
Letter, 1946 letter from Municipal Association of Victoria stating that stray dogs will not be sent to universities but Dog's Home and Animal Hospital
Two-page letter -
Flagstaff Hill Maritime Museum and Village
Animal specimen - Sea Urchin
This sea urchin shell was recovered from the wreck of the S.S. Casino (1882 – 1932) between the late 1960’s to early 1970’s. It is part of the John Chance Collection. The coastal trader SS Casino (1882–1932) had a run of almost 50 years along the coast of Western Victoria. She traded goods and food as well as carrying passengers from port to port on her many voyages. This vase may have been included in her cargo or could have been amongst the personal luggage of the people on board.The sea urchin shell is significant as an example of underwater animal life existing in Victoria the 1960s. It was recovered by John Chance, a diver from the wreck of the S.S. Casino in the 1960s-70s. Items that come from several wrecks along Victoria's coast have since been donated to the Flagstaff Hill Maritime Village’s museum collection by his family, illustrating this item’s level of historical value. The urchin is connected with the S.S. Casino, which played an historical role in Western Victoria, providing transport, communication and trade along the coast between Melbourne and Portland in the late 19th and the early 20th century, visiting the ports at Apollo Bay, Warrnambool and Belfast (Port Fairy). The S.S. Casino was the only regular trader with normal passenger accommodation along the West Coast and the only Western District steamship that was in service between 1854 and 1939, and to be represented in the Victorian Heritage Shipwreck register, and to have been wrecked in the Western District, and to have the wreck located, and to be accessible to divers. The wreck of the S.S. Casino, and its associated relics, is considered an important part of Victorian and Australian cultural heritage and is now protected as a Historic Shipwreck under State and Commonwealth Law in the Commonwealth Historic Shipwrecks Act (1976). Sea urchin, global shape, beige colour. Urchin has two naturally formed holes, the larger being the mouth. Ten segments radiate from top to bottom, each with a row of small white raised circles.flagstaff hill, warrnambool, flagstaff hill maritime museum, maritime museum, shipwreck coast, flagstaff hill maritime village, great ocean road, s.s. casino, john chance, west coast trader, apollo bay, sea urchin, south west victoria, sea life -
Flagstaff Hill Maritime Museum and Village
Animal specimen - Golden Sea Pen
The name 'Sea Pen', which name comes from its resemblance to bird feathers, originates from its more formal title of 'Pennatula'. There are various species, one of which (Phosphorea)is not uncommon at depths of 50 metres or more. It consists of a stalk by which the Sea Pen is probably fixed upright in the mud or sand, and of a fan like upper part. When alive it is brightly phosphorescent. The stalk is really a tube and can be inflated. The strands or polyps of the upper part of the creature are fused together in sets of a dozen or so, to form leaves up each side, somewhat like the barbs of a feather. The whole axis is supported by a firmly calcified internal stem. The preserved item in our collection has been bleached naturally in the preserving fluid over time. However the Sea Pen in this photograph is alive and displays as golden. It is positioned vertically with its stalk at the bottom and its fronds or feathers beautifully displayed along the upper part. The preserved item in our collection has been bleached naturally in the preserving fluid over time. However the Sea Pen in this photograph is alive and displays as golden. It is positioned vertically with its stalk at the bottom and its fronds or feathers beautifully displayed along the upper part.The use of such preserved specimens is widespread in teaching students of all ages, and museums of the composition of certain animals, insects, birds and sea creatures. Any information about an animal — be it photographs, blood, feathers or fur samples — is better than no information at all. But specimens are vital to ground-truth.Closed jar with an all white sea creature preserved in clear fluid. The head is uppermost, and the sea pen is positioned vertically in the jar.Golden Sea Penflagstaff hill, warrnambool, shipwrecked-coast, flagstaff-hill, flagstaff-hill-maritime-museum, maritime-museum, shipwreck-coast, flagstaff-hill-maritime-village, sea pen -
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 -
Bendigo Historical Society Inc.
Book - EVERYTHING YOU EVER WANTED TO KNOW ABOUT DRAGONS
Everything you ever wanted to know about Dragons Booklet - soft cover 20 pages with colour photographs. printed by Bolton Bros. BendigoDavid G Horsfalltopic, animal, dragons -
Bendigo Historical Society Inc.
Photograph - PHOTOGRAPH: PORTRAIT OF DOG
Photograph: black and white photo of dog seated on small table situated in garden.topic, animal, dog, portrait, dog -
Port Melbourne Historical & Preservation Society
Book - Borough of Port Melbourne, Dog registrations, 1880s
Borough of Port Melbourne. Receipt book Dog registrations 1885 -1895. Blue cover and red spinelocal government - borough of port melbourne, livestock, dogs, animal registration -
Churchill Island Heritage Farm
Animal specimen - Shell
Large olive-type shell. Fawn colourchurchill island, amess house, shell -
Bendigo Historical Society Inc.
Animal specimen - ALBINO RAVEN IN CASE
Taxidermied albino Little Raven enclosed in a wooden, glass sided case. Raven is sitting on a wooden perch. Possibly, formerly in the museum at the School of Mines. Small hand written sign inserted between glass and wood: 'Albino Little Raven'topic -
Bendigo Historical Society Inc.
Container - LYDIA CHANCELLOR COLLECTION; EMPTY TIN
An empty tin with a picture of a dog and her pup on the lid.empty tin, lydia chancellor collection, collection, tin, animal, dog -
Monbulk RSL Sub Branch
Book, Animal heroes, 2005
Here are twenty-one fascinating stories about the forgotten heroes of war: animals who have served beside Australian forces. These are all animals that dazzle with their courage and loyalty - or sometimes just by being lovable. Whether it's a rooster guarding his battalion during the First World War or a mine-detecting dolphin in Iraq, they make the difficult lives of soldiers so much more bearable.Index, bib, ill, p.207.non-fictionHere are twenty-one fascinating stories about the forgotten heroes of war: animals who have served beside Australian forces. These are all animals that dazzle with their courage and loyalty - or sometimes just by being lovable. Whether it's a rooster guarding his battalion during the First World War or a mine-detecting dolphin in Iraq, they make the difficult lives of soldiers so much more bearable.animals - war use, animal heroes -
Monbulk RSL Sub Branch
Book, Horrie the War Dog, 2013
In the harsh Libyan desert in the middle of the second world war, Private Jim Moody, a signaller with the First Australian Machine Gun Battalion, found a starving puppy on a sand dune. Moody called the dog Horrie. Much more than a mascot, Horrie's exceptional hearing picked up the whine of enemy aircraft two minutes before his human counterparts and repeatedly saved the lives of the thousand-strong contingent. The little Egyptian Terrier's ritual of sitting, barking, then dashing for the trenches, had the gunners running for cover before their camp was strafed and bombed. Where Moody went, Horrie went too, through the battle zones of the Middle East and far beyond. As the Japanese forces began their assault in Asia Moody and his soldier mates joined the fight, but not before they had smuggled Horrie onto a troop ship and a harrowing journey back to Australia where they thought their little friend would be safe. The war over, Moody brought Horrie out of hiding to raise money for the Red Cross, and the brave little dog's story became widely known. When quarantine officers pounced and demanded that the dog be put down there was a huge public outcry. Horrie had saved a thousand lives. How could a cruel bureaucracy heartlessly kill him? But defying the authorities would mean gaol for Moody and certain death for Horrie. Was Horrie, the gunner's hero, condemned to die or could Moody devise a scheme to save him?Ill, p.336.non-fictionIn the harsh Libyan desert in the middle of the second world war, Private Jim Moody, a signaller with the First Australian Machine Gun Battalion, found a starving puppy on a sand dune. Moody called the dog Horrie. Much more than a mascot, Horrie's exceptional hearing picked up the whine of enemy aircraft two minutes before his human counterparts and repeatedly saved the lives of the thousand-strong contingent. The little Egyptian Terrier's ritual of sitting, barking, then dashing for the trenches, had the gunners running for cover before their camp was strafed and bombed. Where Moody went, Horrie went too, through the battle zones of the Middle East and far beyond. As the Japanese forces began their assault in Asia Moody and his soldier mates joined the fight, but not before they had smuggled Horrie onto a troop ship and a harrowing journey back to Australia where they thought their little friend would be safe. The war over, Moody brought Horrie out of hiding to raise money for the Red Cross, and the brave little dog's story became widely known. When quarantine officers pounced and demanded that the dog be put down there was a huge public outcry. Horrie had saved a thousand lives. How could a cruel bureaucracy heartlessly kill him? But defying the authorities would mean gaol for Moody and certain death for Horrie. Was Horrie, the gunner's hero, condemned to die or could Moody devise a scheme to save him? animals - war use, australia - armed forces - mascots -
Monbulk RSL Sub Branch
Book, Judy : a dog in a million, 2014
Shares the story of Judy, the first-ever animal to gain formal status as a prisoner of war, who during World War II saved countless lives and became a friend and protector to Allied soldiers in the Japanese prison camps in Indonesia.Index, ill, p.352.non-fictionShares the story of Judy, the first-ever animal to gain formal status as a prisoner of war, who during World War II saved countless lives and became a friend and protector to Allied soldiers in the Japanese prison camps in Indonesia.animals - war use, dogs - war use - great britain -
Yarra Ranges Regional Museum
Animal specimen - Burnt Skink, February 2009
The skink was found in the garden on a property in Glenburn, Victoria, Australia. It was burnt during the February 2009 bushfires. Two specimens were found immediately after the bushfires however only one was locatable when donated.This specimen has historic significance for its association with the February 2009 bushfires. It is a rare, complete example of the impact of the bushfires on a diverse range of fauna in and around Yarra Ranges. Although many animals were affected by the bushfires, very few specimens were collected and preserved. This specimen is reliably provenanced to a property in Glendale (just outside the boundaries of the Shire of Yarra Ranges) which was affected by the 2009 bushfires.Fully grown, complete skink burnt during the Black Saturday bushfires in February 2009 in Glenburn, Victoria.fire, yarra ranges, skink, bushfire, bushfires, 2009, animal, glenburn