Showing 105 items matching "navigational equipment"
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Moorabbin Air MuseumManual (Item) - Navigational Equipment - Instrument fitter - RAAF tech school
... Navigational Equipment - Instrument fitter - RAAF tech school...Navigational Equipment - Instrument fitter - RAAF tech school...Navigational Equipment - Instrument fitter - RAAF tech school Manual Navigational Equipment - Instrument fitter - RAAF tech school ... -
Moorabbin Air MuseumManual (Item) - Fitters Course Notes - Instrument Fitter, Navigational Equipment - RAAF School Technical Training
... Fitters Course Notes - Instrument Fitter, Navigational Equipment - RAAF School Technical Training...Fitters Course Notes - Instrument Fitter, Navigational Equipment - RAAF School Technical Training...Fitters Course Notes - Instrument Fitter, Navigational Equipment - RAAF School Technical Training Manual Fitters Course Notes - Instrument Fitter, Navigational Equipment - RAAF School Technical Training ... -
Moorabbin Air MuseumInstrument (Item) - Navigational instruments, dials and equipment - various in plastic folder
... Navigational instruments, dials and equipment - various in plastic folder...Navigational instruments, dials and equipment - various in plastic folder...Navigational instruments, dials and equipment - various in plastic folder Instrument Navigational instruments, dials and equipment - various in plastic folder ... -
Flagstaff Hill Maritime Museum and VillageInstrument - Ship Log, 1880-1890
... navigation...navigational equipment...The Hand Company built navigational equipment for all varieties of floating vessels, and operated a chain of retail outlets with “service stations” in numerous port cities, including Baltimore and New Orleans, until 1956. ...The Hand Company built navigational equipment for all varieties of floating vessels, and operated a chain of retail outlets with “service stations” in numerous port cities, including Baltimore and New Orleans, until 1956. ...The John E. Hand & Sons Company was founded in Philadelphia in 1873, quickly gaining a reputation as competent manufacturers of nautical instruments and compass adjusters. In fact, John Enos Hand, the company founder, is recognised as the first man in America to adjust a compass aboard an iron ship. The Hand Company built navigational equipment for all varieties of floating vessels, and operated a chain of retail outlets with “service stations” in numerous port cities, including Baltimore and New Orleans, until 1956. Service stations sold Hand instruments as well as other nautical paraphernalia and provided compass adjusting services. Additionally, John E Hand and his two sons, John L Hand and Bartram Hand, were inventors in their own right who patented design improvements for numerous instruments that were employed in the company’s work. Commercial and private contracts dominated the firm’s business until the late 1930s when the United States military began preparations for World War II. Although the Hand Company never completely abandoned its involvement with private industry, after World War II, military contracts monopolised their business. The Company obtained contracts with the Navy, Coast Guard and Marines to develop new instruments, and to build military-engineered nautical equipment. Of note are the wrist compass, developed for the Navy beginning in the 1950s, and the Mark VII Model 5 Navy Standard Binnacle. Although it moved numerous times, the Hand Company headquarters and factory remained in the Delaware Valley, occupying several buildings in Philadelphia and southern New Jersey. Maintaining its central office in Philadelphia well into the 1900s, the factory was moved to Atco, New Jersey around the turn of the twentieth century and subsequently to Haddon field, New Jersey. It moved one last time in the 1960s to Cherry Hill, New Jersey. In 1997, California-based Sunset Cliffs Merchandising Corporation purchased the Hand Company and all its assets for $100,000. "HAND" brand taffrail log by John F. Hand and Sons Co. Register is enclosed in log, has a glass front and 3 dials on an enameled surface, the first dial registers the miles up to 100, the second registers the units up to 10 mile, the third registers quarters of a mile. The item is rocket shaped with a three blade rotor and a rope ring attachment at one end; the rotor will spin when a rope is attached, allowing the apparatus dials to measure the ship's speed when it is dragged behind a ship. Diagram of the 'Hand' trademark with a compass card in the middle, inscription reads "John F Hand and Sons Co" and "PHILA-BALTO" ( Abbreviation for: Philadelphia / Baltimore) flagstaff hill, warrnambool, shipwrecked coast, flagstaff hill maritime museum, maritime museum, shipwreck coast, flagstaff hill maritime village, great ocean road, bartram hand, john enos hand, john f. hand and sons co, john l hand, john hand & sons instrument makers, john hand & sons of philadelphia, marine instrument, marine service station, mechanical ship log, nautical instrument, nautical navigation, navigational equipment, scientific instrument, ship log, ship log register, ship’s speed, sunset cliffs merchandising corporation, speed log, rocket log, harpoon log, taffrail log, taff rail log -
Flagstaff Hill Maritime Museum and VillageEquipment - Ship's Wheel, 1880s
... navigation...ship's steering...ship's steering wheel...maring technology...ship's fitting...navigational equipment...equipment on a sailing ship. Flagstaff Hill Maritime Museum and Village Maritime Museum Maritime Village Great Ocean Road Shipwreck Coast ship's wheel 10-spoked ship's wheel wooden ship's wheel navigation ship's steering ship's steering wheel maring technology ship's fitting navigational equipment Sailing ship's wheel handcraft shipwright large ship's wheel 19th century 1880s oak Ship's wheel: a large ship's wheel made of oak wood and brass. ...This large, ten-spoked wheel is an example of a ca. 1880s ship's wheel used to steer a large sailing ship. It was made in England from oak wood and brass by a shipwright.This large, heavy wooden ship's wheel is an example of a late 19th-century, handcrafted wheel used at the helm to steer large sailing ships. The design continues to be used on sailing vessels today. This wheel has been on display for decades to demonstrate the perspective of the size of equipment on a sailing ship.Ship's wheel: a large ship's wheel made of oak wood and brass. It has ten turned, grooved spokes with rounded handles; some are bolted through the centre to the wheel. The hub and inlaid outer reinforcing ring are made of brass. The heavy hub has a metal backing and shaft. The ship's wheel was made in England ca. 1880s.flagstaff hill maritime museum and village, maritime museum, maritime village, great ocean road, shipwreck coast, ship's wheel, 10-spoked ship's wheel, wooden ship's wheel, navigation, ship's steering, ship's steering wheel, maring technology, ship's fitting, navigational equipment, sailing ship's wheel, handcraft, shipwright, large ship's wheel, 19th century, 1880s, oak -
Moorabbin Air MuseumBook - Aeronautics, Aeronautics Volume II
... ...Navigational equipment...Aeronautics Parachutes Instruments & electrical equipment Blind flying panels Radio navigation Flying clothing Engine instruments Navigational equipment Electricity in the cockpit The altimeter Ice formation Airport aids to flight Catapults & assisted take offs Vertical speed indicator Instrument flying Airspeed indicators Air traffic rules Radio beams Air beacons Transatlantic flying Flares & pyrotechnics Cabin equipment Inspection & testing for wireless operators Electrical interference Sextants Hydraulic controls Bad weather flying Bonding & screening Aircraft as disease carriers Overview of aircraft instruments & accessories. ...Overview of aircraft instruments & accessories. No publication date stated, but looks to be around late 1930s/early 1940snon-fictionOverview of aircraft instruments & accessories. No publication date stated, but looks to be around late 1930s/early 1940sparachutes, instruments & electrical equipment, blind flying panels, radio navigation, flying clothing, engine instruments, navigational equipment, electricity in the cockpit, the altimeter, ice formation, airport aids to flight, catapults & assisted take offs, vertical speed indicator, instrument flying, airspeed indicators, air traffic rules, radio beams, air beacons, transatlantic flying, flares & pyrotechnics, cabin equipment, inspection & testing for wireless operators, electrical interference, sextants, hydraulic controls, bad weather flying, bonding & screening, aircraft as disease carriers -
Queenscliffe Maritime MuseumEquipment - Recognition Plaque
... Circular brass plaque inscribed with J5 North Sea 1917 1918 made from a piece of navigational equipment used on the submarine J5 mounted on wood...Popular diving sites in Ships Graveyard outside the rip between Point Lonsdale and Barwon Heads J Class Submarines J5 Ships graveyard Port Phillip Submarine J5 North Sea 1917 - 1918 Circular brass plaque inscribed with J5 North Sea 1917 1918 made from a piece of navigational equipment used on the submarine J5 mounted on wood Equipment Recognition Plaque ...In the early 1920s Australia was gifted six J class submarines from the Royal Navy. These were the latest and largest submarines built by the RN for service in World War I. They were competent but were in service with the Royal Navy for only a short time before the end of the war. Once in Australia they were placed into service but there was little appetite for submarines or in fact any other military endeavour in the early ‘twenties’. The world was exhausted from a long and dirty war followed by a devastating Influenza Epidemic. The J class boats were soon retired and sunk as breakwaters or scuttled in the ship graveyard area off the mouth of Port Phillip Bay.Popular diving sites in Ships Graveyard outside the rip between Point Lonsdale and Barwon HeadsCircular brass plaque inscribed with J5 North Sea 1917 1918 made from a piece of navigational equipment used on the submarine J5 mounted on woodSubmarine J5 North Sea 1917 - 1918j class submarines, j5, ships graveyard, port phillip -
Queenscliffe Maritime MuseumEquipment - A parallel ruler and dividers
... Navigational equipment...Navigational equipment Navigational equipment Parallel Ruler Dividers Navigation chart reading A timber and brass parallel ruler and brass dividers Equipment A parallel ruler and dividers ...Navigational equipmentNavigational equipment A timber and brass parallel ruler and brass dividersparallel ruler, dividers, navigation, chart reading -
Flagstaff Hill Maritime Museum and VillageBooklet - Book and World Chart for Emergency Navigation, George Grady Press, The Raft Book, 1943
... In 1927 he moved to California and opened a navigation school and also a laboratory repairing navigational equipment. At this time he became very interested in air navigation and was aware of the limitations of existing methods and instruments for aerial navigation. ...In 1927 he moved to California and opened a navigation school and also a laboratory repairing navigational equipment. At this time he became very interested in air navigation and was aware of the limitations of existing methods and instruments for aerial navigation. ...Harold Gatty was born on January 5th, 1903 in Campbell Town, Tasmania. He was a navigator and aviation pioneer. He began his career learning navigation at the age of 14 as a midshipman at the Royal Australian Naval College but withdrew after three years and became an apprenticed ship's officer with the Patrick Steamship Company of Sydney. After W. W. 1 he joined the Australian Merchant Navy where he learned the constellations while standing night watch and became an expert in celestial navigation while serving on many ships sailing between Australia and California. In 1927 he moved to California and opened a navigation school and also a laboratory repairing navigational equipment. At this time he became very interested in air navigation and was aware of the limitations of existing methods and instruments for aerial navigation. He began researching ways of improving aerial navigation. Two early inventions of his were his air sextant and a ground speed and drift indicator which formed the basis of the automatic pilot which later came to be standard equipment on most aircraft. He worked with several record breaking pilots including Ann Morrow Lindbergh (who went on to serve as a navigator for her husband Charles Lindbergh), helped Wiley Post break the world record circumnavigating the Earth, invented a new method of "dead reckoning" that revolutionised the ability to fly safely through cloudy conditions without drifting off course and famously navigated a small plane (whilst trying to cross the Pacific) over 1900 km through fog (with no radio) and using only his dead reckoning techniques, back to their starting point in Japan after they developed fuel problems. In 1932 Gatty received the Distinguished Flying Cross from President Hoover. In 1934 Gatty formed the South Seas Commercial Company with Donald Douglas with the aim to deliver air services to the islands of the South Pacific. The Company was sold to Pan Am but he continued to work for them. In 1935 he went on a sailing expedition investigating several small islands in the South Pacific and was briefly marooned on Baker Island. He was able to use his extensive knowledge of seabird habits to save the crew. He was also very interested in the ability of the Polynesians to navigate using the stars. During the Second World War Gatty was given the honorary rank of Group Captain in the Royal Australian Air Force (RAAF) and worked for the U. S. Army Air Forces (USAAF) in the South Pacific. In 1943 he moved to Washington where he developed a survival book (The Raft Book) specifically for boat crews or air crews flying over the Pacific to help them survive and navigate their life rafts in remote areas of the ocean. The original book was 152 pages long however a condensed version was made which consisted of a 64 page booklet, combined map and star chart and calendar strip enclosed in a waterproof slipcase, to be placed in life rafts for emergency use. The booklet included navigational advice and ideas such as ocean currents, estimation of distance, using a compass, measurement of angles, recognising and steering by the stars, land indications from sea birds, migration of sea birds and insects, sounds from the land, the scent of the land and ocean currents and the colour of the sea etc. After W.W.2 Gatty moved to Fiji and formed Fiji Airways (which later became Air Pacific). Harold Gatty died in August 1957.The two copies of "The Raft Book" are significant as they are a written summary of the many methods of sea navigation (both modern and historical) that existed in the 1940's. They are also a record of Harold Gatty, who played a significant role in the development of modern day aerial navigation using his understanding of different sea navigational techniques.Two rectangular brown packets with waterproof coverings (oiled paper) titled "The Raft Book" by Harold Gatty. Each packet contains a folded 64 page paper booklet with detailed instructions for navigating a small craft in open seas, a folded chart (with a map of the world and oceans, well known constellations, latitude and longitude charts, Greenwich time and a scale for string lengths and Harp scale) and a long folded paper calendar strip.Front of package - "WATERPROOFED EDITION OF/ THE RAFT BOOK / By Harold Gatty / BOOK AND WORLD CHART / FOR / EMERGENCY NAVIGATION / To open envelope tear along above line. If the envelope is used again fold the flap to keep contents dry. 1. This envelope contains a book, chart and tape for emergency navigation. The contents are folded to take up the least possible space and therefore should not be removed until needed. 2. if the chart and tape are immersed in water for a long period, there will be a slight variation in the scale but the strength and resistence to tear of the paper will not be changed. In the event of long immersion, dry the chart and tape as much as possible before using in order to in order to get the greatest accuracy in scale. Front of booklet - THE RAFT BOOK / LORE OF THE SEA AND SKY /By Harold Gatty IMPORTANT FOR YOUR SECURITY/Upon abandoning ship you may have to be your own navigator. Take the following pre/cautions for your own safety:/ Carry a good type of pocket watch / keep it wound and have it running on Greenwich (England) / Time, which you can get from the navigating officer. / Keep track of the date at Greenwich; and on a 24-hour basis, / know whether the time is, say, 6 hours (6 A.M.) showing on / your watch, or 18 hours (6P.M.) Greenwich. / PROECT YOUR WATCH. GET A RUBBER SACK FOR IT (OBTAIN FROM PHARMACIST) AND KEEP IT DRY / KEEP A PENCIL IN YOUR POCKET/ POSITION OF SHIP WHEN ABANDONED PRINTED IN UNITED STATES OF AMERICA GEORGE GRADY PRESS, NEW YORK/COPYRIGHT, 1943, BY HAROLD AND FENNA GATTYflagstaff hill maritime museum and village, shipwreck coast, warrnambool, the raft book, harold gatty, book and world chart for emergency navigation, ww 2, ww ii, navigation, air navigation, aerial navigation, lindbergh, wiley post, dead reckoning, south seas commercial company, u.s. army airforce, usaaf, survival book, life rafts, sea navigation, emergency navigation, fiji airways, harp scale -
Flagstaff Hill Maritime Museum and VillageEquipment - Ship's Telegraph section, Chadburn & Sons, 1875-1898
... The ship’s telegraph section was once part of the navigational equipment of the famous paddle steamer, PS Hygeia, and was later installed on Flagstaff Hill’s exhibit, the steamer Rowitta. ...The ship’s telegraph section was once part of the navigational equipment of the famous paddle steamer, PS Hygeia, and was later installed on Flagstaff Hill’s exhibit, the steamer Rowitta. ...The ship’s telegraph section was once part of the navigational equipment of the famous paddle steamer, PS Hygeia, and was later installed on Flagstaff Hill’s exhibit, the steamer Rowitta. This is the Bridge Section of a ship’s telegraph, a Duplex Gong model, made by Chadburn & Son of Liverpool. The gong sounded two signals whenever the navigational commands to change the speed or direction were given by the ship’s pilot. Communication between the ship’s pilot and the engine room in the late 19th to the mid-20th centuries was made with a system called an Engine Order Telegraph (E.O.T.) or ship’s telegraph. The equipment has two parts, the Bridge Section and the Engine Room Section. The Bridge Section was usually mounted onto a pedestal, and the Engine Room Section was attached to a vertical surface. The standard marine commands were printed or stamped around the face of the dial and indicated by a pointer or arrow that was usually moved by a rotating brass section or handle. The ship’s pilot stationed on the Bridge of a vessel sends his Orders for speed and direction to the Engine Room with the E.O.T. He moves the lever or levers, depending on the number of engines the ship has, to change the indicator on the Bridge Section’s dial to point in the new direction and speed of travel. This change causes the Orders to be duplicated on the Engine Room Section’s dial and a bell or bells to signal the change at the same time. The engineer then adjusts the ship’s engines and steering equipment to follow the pilot’s Order. CHADBURN & SON, Liverpool- Chadburn Brothers, William and C.H., were joint inventors and well-established makers of optical and scientific instruments and marine gauges. The firm was granted the Prince Albert Royal Warrant in the late 19th century. In 1870, William Chadburn applied for a patent for his navigational communication device for use on ships. By 1875, Chadburn & Son was producing the brass Engine Order Telegraph in its plant at 71 Lord Street, Liverpool. In 1911, the ship, RMS Titanic, was launched, fitted with Chadburn & Sons E.O.T. The Chadburn Ship Telegraph Company Limited was registered in 1898 to take over Chadburn & Sons. In 1903, a large factory at Bootle, near Liverpool, and its products were being sold overseas. In 1920, electric-powered telegraphs were developed. In 1944, the name changed to Chadburn’s (Liverpool) Limited. In 1968, the company became Chadburn Bloctube Ltd. In 2000, the company, now Bloctube Marine Limited, was still manufacturing ship telegraphs. The P.S. HYGEIA 1890-1932: - This ship’s telegraph was installed on the new paddle steamer, PS Hygeia, one of three iconic pleasure steamers famous for providing regular services in Port Phillip Bay, Victoria, to thousands of passengers between the ports of Queenscliff, Sorrento, Portsea, Dromana, Rosebud, Rye, and Mornington. It joined the Ozone and the Weeroona, all three described as being glamorous, powerful and fast. Its ticket office was on the pier itself. The P.S. Hygeia was built in Yorker, Scotland, in 1890, by Napier, Sharks & Bell. It was registered in Melbourne, Australia, by Hubbart, Parker & Co. in 1891. The steel ship was 92 metres long, able to travel at 22 knots, and licensed to carry over 1600 passengers in luxury, with even a barber shop on board. The regular service between the ports in Port Phillip Bay, Victoria, continued for over 40 years. With the decline in passenger demand, the service wound down. The Hygeia was sold to H.M. Morris in 1931 for demolition and breaking up. Equipment, fittings, and even lifebuoys were sold, with many items purchased by people who had some connection to the Hygeia. On August 25th, 1931, what was left of the vessel departed Port Melbourne and eventually, in June 1932, it was laid to rest at the ships’ graveyard outside Port Phillip Heads. The SS ROWITTA 1909-2015: - The ship’s telegraph was originally installed on the PS Hygeia. It was purchased when the Hygeia was broken up in 1931 and later installed, in 1975, on Flagstaff Hill’s SS Rowitta, an exhibit greatly enjoyed by the public until it was demolished in 2015. The ferry “SS Rowitta” was built in 1909 in Hobart, Tasmania. The timber steam ferry was built using planks of Huon and Karri wood. It was a favourite with sightseeing passengers steaming along Tasmania’s Tamar and Derwent rivers for 30 years. Rowitta was also known as Tarkarri and Sorrento and had worked as a coastal trading vessel between Devonport and Melbourne, and Melbourne, Queenscliff and Sorrento. The vessel had given over 100 years of service and pleasure. This Bridge section of a ship’s Engine Order Telegraph, used with an Engine Room section, represents late-19th-century change and progress in communication and navigation at sea. This type of equipment was still in use in the mid-20th century. It is significant for its association with its maker, Chadburn & Son, of Liverpool, a well-known marine instrument maker whose work was recognised by English Royalty, and whose products were selected to supply similar equipment for use on the RMS Titanic. The ship’s telegraph is also significant for its association with the paddle steamer PS Hygeia, one of three iconic steamers that transported thousands of passengers from port to port within Port Phillip Bay, Victoria, for over 40 years from the 1890s to the 1930s. Queenscliff Borough remembers the Hygeia by naming a road near the pier Hygeia Drive. The Hygeia is registered on the Victorian Heritage Database as a vessel of significance, VHR S329. In 1901, Hygeia had the privilege of carrying their Royal Highnesses, the Duke and Duchess of York, from Mornington to St Kilda Pier, Melbourne, during their Royal visit celebrating the Federation of Australia. The ship’s telegraph is also important for its connection with the Rowitta, a large exhibit on display at Flagstaff Hill Maritime Village, aiding maritime education for over 40 years. It represented the importance of coastal traders to transport, trade and communication along the coast of Victoria, and before the availability of rail and motor vehicles, serving many roles. Bridge section of a Ship’s Telegraph or Engine Order Telegraph (E.O.T.). The round, double-sided, painted glass dial is inside a brass case behind glass. It is fitted onto an outward tapering brass pedestal with a round base. The brass indicator arrows between the handles point simultaneously to both sides of the dial when moved. An oval brass maker’s plate is attached to the top of the case. The dial’s faces have inscriptions that indicate speed and direction, and the front face and plate include the maker’s details. A serial number is stamped on the collar where the dial is fitted to the pedestal. The ship’s telegraph is a Duplex Gong model, made by Chadburn & Son of Liverpool. It was originally part of the navigational fittings on the paddle steamer, PS Hygeia.Dial, maker’s details: “PATENT “DUPLEX GONG” TELEGRAPH / CHADBURN & SON / TELEGRAPH WORKS / PATENTEES & MANUFACTURERS / 11 WATERLOO ROAD / LIVERPOOL” LONDON / 105 FENCHURCH STREET” “NEWCASTLE / 85 QUAY + SIDE” “GLASGOW / 69 ANDERSON QUAY” “PATENT” Dial instructions: “FULL / HALF/ SLOW / FINISHED WITH ENGINES / STOP STAND BY / SLOW / HALF / FULL / ASTERN / AHEAD” Maker’s plate: “CHADBURN / & SON / PATENT / LIVERPOOL” Serial number: “22073”flagstaff hill, warrnambool, maritime village, maritime museum, shipwreck coast, great ocean road, engine order telegraph, e.o.t., navigational instrument, communication device, ship’s telegraph, engine room section, bridge section, rms titanic, chadburn & son, chadburn brothers, william chadburn, chadburn ship telegraph company, chadburns, duplex gong, liverpool, ss rowitta, navigation, marine technology, pilot’s orders, steam power, hobart, tasmania, devonport, tasmanian-built, ferry, steam ferry, steamer, 1909, early 20th century vessel, passenger vessel, tamar trading company, launceston, george town, sorrento, tarkarri, speculant, peter mcgennan, p j mcgennan & co. port phillip ferries pty ltd, melbourne, coastal trader, timber steamer, huon, karri, freighter, supply ship, charter ferry, floating restaurant, prawn boat, lakes entrance, ps hygeia, paddle steamer, pleasure steamer, port phillip bay, queenscliff, portsea, dromana, rosebud, rye, mornington, hubbart parker & co, 1890, 1903, h.m. morris, hygeia -
Flagstaff Hill Maritime Museum and VillageBook - Textbook, Introduction to Modern Geography
... His younger son William Thomson (1824-1907) became Professor of Natural Philosophy from 1846-1899 at the University of Glasgow, and later the 1st Baron of Kelvin, famous for his designs of nautical instruments such as the navigational compass and sounding equipment used in the transatlantic installation of sea cable. ...His younger son William Thomson (1824-1907) became Professor of Natural Philosophy from 1846-1899 at the University of Glasgow, and later the 1st Baron of Kelvin, famous for his designs of nautical instruments such as the navigational compass and sounding equipment used in the transatlantic installation of sea cable. ...This mid-19th century scientific reference book, Introduction to Modern Geography, explains geography and astronomy using the globe of the world as a teaching aid. The inscription connects this book to the Bobinawarrah Public Library but research to date has found no further details about the library. The rural area was settled in 1859, but in 2016 its population was only 87. It is situated about 21 kilometres south of the City of Wangaratta, in Northeast Victoria. In 2024 the local community received a grant for preservation of its almost 100-year-old Bobinawarrah Memorial Hall which displays an honour board of the Pioneers of Bobinawarrah 1859-1959. The donor of the book lived in Warrnambool. ABOUT THE AUTHOR, James Thomson (1786-1849): - James Thomson was a British Irish mathematician. He became Professor of Mathematics at the University of Glasgow. He wrote many school textbooks and reference books, one of which was Introduction to Modern Geography, first published in Belfast in 1827, and revised and published in over 20 more editions. Thomson tutored two of his several children at home. His older son James Thomson (1822-1892) became an engineer and physicist. His younger son William Thomson (1824-1907) became Professor of Natural Philosophy from 1846-1899 at the University of Glasgow, and later the 1st Baron of Kelvin, famous for his designs of nautical instruments such as the navigational compass and sounding equipment used in the transatlantic installation of sea cable. William was part of the firm that became famous as Kelvin & Hughes Ltd., suppliers of radar and echo sounders to the Ministry of Transport and the Ministry of Defence. The name continued on as Kelvin & Hughes. James Thomson (1786-1849) was a renowned British Irish mathematician and Professor of Mathematics at the University of Glasgow. He was a respected author of many important school books and textbooks that were widely used to provide understanding of arithmetic and geography. Thomson encouraged practical education and held extra classes for young ladies to learn mathematics and geography, which were a novelty at that time. Many of his works were known and used worldwide. This work was published in many editions. It is now considered as culturally significant as a basis for knowledge about our civilisation and has been made publicly available in overseas countries, and republished and reproduced in a readable format, including its diagrams and maps. Book; scientific textbook. The book has a black leather cover. The front cover is blank, but the spine has an embossed gold vertical title within a rectangular border boasting fancy corners. The fly page has a detailed title. The author is James Thomson. It is the Eighteenth edition, published in Simms & McIntyre of London and Belfast in 1845. An inscription connects it to the Bobinawarrah Public Library in Victoria.Spine within a gold border: "THOMSON'S GEOGRAPHY" Fly Page: "AN INTRODUCTION TO MODERN GEOGRAPHY, WITH AN APPENDIX, CONTAINING AN OUTLINE OF ASTRONOMY, AND THE USE OF THE GLOBES. BY JAMES THOMSON, LL.D., PROFESSOR OF MATHEMATICS IN THE UNIVERSITY OF GLASGOW." "Eighteenth Edition" "LONDON: SIMMS AND McINTYRE, ALDINE CHAMBERS, PATERSOSTER ROW; AND DONEGALL -STREET, BELFAST.""1845"flagstaff hill, flagstaff hill maritime museum and village, warrnambool, maritime museum, maritime village, great ocean road, shipwreck coast, introduction to geography, james thomson, reference book, professor thomson's introduction to modern geography, bobinawarrah public library, james thomson mathematician, james thomson engineer, 19th century irish mathematician, irish presbyterian, william thomson 1st baron of kelvin, professor of mathematics, glasgow university, william thomson professor of natural philosophy, introduction to modern geography, outline of astronomy, use of the globes, james thomson ll.d., simms and mcintyre, 1843, scientific book, school book, lord kelvin, baron kelvin of langs, nautical instruments, marine instruments, transatlantic cable, kelvin & hughes, thomson’s geography, astronomy, geography, world globe, cartography, pioneers of bobinawarrah, textbook -
Flagstaff Hill Maritime Museum and VillageBook, The Old Bus
... Together they performed important ‘demonstration’ flights including a flight around Australia in 10 days and 5 hours using very limited navigational equipment. Kingsford Smith immediately started to search for support to do a trans-Pacific flight. ...Together they performed important ‘demonstration’ flights including a flight around Australia in 10 days and 5 hours using very limited navigational equipment. Kingsford Smith immediately started to search for support to do a trans-Pacific flight. ...Sir Charles Edward Kingsford Smith is a famous Australian, well known in civil aviation history for his courageous endeavours in flight. He broken many flight records for long distance and time travelled and he was also a war hero in World War 1. He has been referred to as being “known to millions of Australians as “Smithy” … he was one of Australia’s true twentieth-century legends”. In honour of his place amongst the world’s famous pioneers his image is featured on Australia’s $20 note, Sydney airport is named after him, there is a memorial to Kingsford Smith, Taylor and Ulm at the Anderson Park, also in Sydney and his plane “Southern Cross” is on view at Brisbane Airport. Kingsford Smith wrote ‘The Old Bus’ (1932) and he and Ulm were co-authors of ‘Story of 'Southern Cross' Trans-Pacific Flight’ (1928). His also wrote a book about his own life ‘My Flying Life’ which was published after his death in 1937. and the story of his life was filmed in Australia in 1946. A BRIEF HISTORY OF SIR CHARLES EDWARD KINGSFORD SMITH (1897 – 1935) … Kingsford Smith was born 9th February 1897 in Brisbane, Queensland, Australia. His parents were William Charles Smith and Catherine Mary, nee Kingsford. His mother’s maiden name of “Kingsford” was added to the family name when they spent time in Canada from around 1903 to 1907, after which they returned to Sydney, Australia. In 1915 Kingsford Smith enlisted in Australian Imperial Force. He served in 4th Signal Troop, 2nd Division Signal Company at Gallipoli Peninsular as a ‘sapper’ or combat engineer and later in Egypt and in France as a dispatch rider. In 1916 Kingsford Smith was transferred to the Australian Flying Corps as a sergeant. He was discharged after training in England and commissioned as a second lieutenant in the Royal Flying Corps. He was appointed fling officer and soon joined the 23rd Squadron in France. He brought down four machines in his first month there and also did invaluable work attacking enemy targets. He was wounded and shot down and later awarded the Military Cross ‘for conspicuous gallantry and devotion to duty’. He was promoted to lieutenant in 1918 and served as a Flying Instructor with the R.F.C. Kingsford Smith was not allowed to participate in the 1919 England to Australia air race because of assumed lack of navigational experience. He and his pilot friend Cyril Maddocks formed a business and flew joy-flights in both England and America. In America he did some stunt flying with a Flying Circus. Kingsford Smith returned to Australia in 1921 and found employment as a pilot. He soon realised the value of air transport in such a vast country. He formed a partnership with pilot Keith Anderson in 1924 and they purchased two Bristol Tourer biplanes. Their business broadened to include Charles Ulm and became the Interstate Flying services in Sydney. Together they performed important ‘demonstration’ flights including a flight around Australia in 10 days and 5 hours using very limited navigational equipment. Kingsford Smith immediately started to search for support to do a trans-Pacific flight. This support came from the New South Wales government, Sidney Myer and G. Allan Hancock, an American oil magnate. On 31st May 1928 Kingsford Smith, Charles Ulm and two American crewmen, Harry Lyan and Jim Warner, took off from Oakland, California and flew to Brisbane via Hawaii and Suva. This historic flight took 83 hours and 38 minutes. Their Fokker plane had three engines and was named the “Southern Cross”. This amazing achievement resulted in huge financial subscriptions. Kingsford Smith was awarded the Air Force Cross and appointed as honorary squadron leader, Royal Australian Air Force. Kingsford Smith flew his Southern Cross plane from Point Cook in Victoria to Perth nonstop. Then in September – October 1928, with Charles Ulm and an Australian crew, he piloted the Southern Cross from Sidney to Christchurch New Zealand. This flight showed that was possible for regular passenger and mail services across the Tasman Sea. Kingsford Smith flew his plane to England to an order for four aircraft, planning to use them for an inter-capital air service in Australia. Sadly on 1st April 1929 he was forced to land, having lost radio contact with the ground and having run into bad weather over north – west Australia. Keith Anderson and Robert Hitchcock both perished before the search party reached them. Once official enquiries were completed the flight to England continued in June and was completed in record time of 12 days and 18 hours. In January 1930 Kingsford Smith piloted the “Southern Cloud”, one of the new Avro Ten planes, on the first flight of his airline, the Australian National Airways, from Sydney to Melbourne. The “Southern Cross” was overhauled in Holland by the Fokker Aircraft Co. and in June 1930 Kingsford Smith achieved an east-west crossing of the Atlantic from Ireland to Newfoundland in 31.5 hours. Kingsford Smith returned to England and took delivery of an Avro Avian biplane that he named the “Southern Cross Junior” and flew solo from England to Darwin, Australia. This record breaking flight took less than 10 days. He beat four other planes that had left England before him and he was 5.5 days faster than Hinkler. Sadly Kingsford Smith’s “Southern Cloud” was lost during a flight from Sydney to Melbourne in 1931 with no surviving crew or passengers; in 1958 the wreckage was discovered in the Snowy Mountains. Later that year Kingsford Smith flew his “Southern Cloud” from Australia to Timor, collecting mail from a damaged Imperial Airways plane in Timor. Other flights followed. Kingsford Smith was knighted in 1932 for his services in Aviation. He returned to selling joy flights then established the Kingsford Smith Air Service, a flying training school in Sydney. In 1933 Kingsford Smith flew the amazing record flight in “Miss Southern Cross” – a Percival Gull - from London to Wyndham in Western Australia in just over ten days. The Australian Commonwealth then gave Kingsford Smith a large grant and he was also appointed as aviation consultant to Vacuum Oil Co. Another flying record was made when Kingsford Smith and Sir P.G. Taylor flow “Lady Southern Cross” from Brisbane to San Francisco in order to sell her there; the west-east-trans-Pacific flight made aviation history. They returned to Australia to make an attempt at the trans-Tasman flight but their attempt failed due to engine failure; they managed to get back to Sydney safely, minus most of their cargo. Kingsford Smith had his unsold “Lady Southern Cross” shipped back to England, from where he and J. T. Pethybridge in the “Lady Southern Cross” attempted another record breaking flight from England The Old Bus Author: Charles Kingsford Smith Publisher: Distibuted by Herald Feature Service Date; 1932Label on spine cover with typed text RA 629.1309 KIN flagstaff hill, warrnambool, shipwrecked coast, flagstaff hill maritime museum, maritime museum, shipwreck coast, flagstaff hill maritime village, great ocean road, the old bus, charles kingsford smith -
Flagstaff Hill Maritime Museum and VillageEquipment - Navigation Lamp, Port, Genton & Kessler Ltd, 1900 -1920
... navigation Seahorse Great Britain Genton & Kessler Ltd. Stamped: "Seahorse GB trade mark" "No. 54987" "PORT" Brass lamp marked 'Port', with two small chains and hook locking mechanisms, and a hinged lid. It has a clear ribbed glass front with a red lens filter. The fuel tank and wick burner were removed. Inscriptions marked on the lamp. Manufacturer: Seahorse in Great Britain. Equipment ...Alfred Frederick Samuel Genton was born in Switzerland around 1869 and arrived in England, date unclear. By 1901, the Kelly’s Directory of Birmingham had listed the Genton & Kessler company as manufacturers of all kinds of ship and railway lamps, fog horns and general ship fittings, with their factory listed as the Bingley Works, King Edward Place, Birmingham, UK, which is listed in 1896 as being owned and run by J E & H Player. Then in February 1905 it appears the partnership of Alfred F S Genton & Julius Rudolf Kessler was dissolved and Alfred F S Genton continued to carry on the business on his own. The company continued to be managed by family members until 1961, when it ceased trading.A marine lamp made by a significant maker in Birmingham, England, in the early part of the 20th century. This item is now regarded as a collector's item. Brass lamp marked 'Port', with two small chains and hook locking mechanisms, and a hinged lid. It has a clear ribbed glass front with a red lens filter. The fuel tank and wick burner were removed. Inscriptions marked on the lamp. Manufacturer: Seahorse in Great Britain.Stamped: "Seahorse GB trade mark" "No. 54987" "PORT"flagstaff hill, warrnambool, shipwrecked-coast, flagstaff-hill, flagstaff-hill-maritime-museum, maritime-museum, shipwreck-coast, flagstaff-hill-maritime-village, alfred frederick samuel genton, birmingham, genton & kessler, ship lamp, bingley works, j e & h player, alfred f s genton, navigation lamp, port lamp, bow side lamp, lighting device, navigation, seahorse, great britain, genton & kessler ltd. -
Flagstaff Hill Maritime Museum and VillageEquipment - Distant Signal, 1897-1931
... navigation Warrnambool flagstaff 1854 1857 1931 1887 1897 Distant Signal Ball, part of a Flagstaff signal set. A round woven cane ball, painted black, with a metal rod passing through the centre. The rod has a loop at each end, then a concave, octagonal metal plate that rests on the outside surface of the ball, serving as a washer. The rod has swivels at each end. Equipment ...This three-dimensional Distant Signal is part of a Flagstaff Signal set of ball, cone and drum shapes. It has been woven and then fabricated with strong metal swivel fittings and loops for suspending from a high point on a flagstaff at a signal station or on a ship’s masthead. The cane signal was constructed to withstand all weather and to be visible from a long distance. The gaps between the woven cane allow air to pass through, minimising possible swaying. Similar sets were made from rope or fabric. Warrnambool's Flagstaff was erected in 1854. Its primary use was to display visual signals that could convey messages between land and sea. It was also used to notify the local population of the approach of ships. One of the popular signalling codes in use in the early-to-mid 1800s was the Marryat’s Code but there were others in use as well; there was no one standard code. In 1857 the International Marine Conference adopted an International Code of Signals as a standard communications system for all vessels that could be understood in many different languages. The Normanby Advertiser reported on June 5th 1857 a query from the Post Master General as to whether the request of the Chief Harbour Master would be carried out, in that Warrnambool would receive a new flagstaff and a set of Marryatt’s signal flags. The Table of Codes was published, showing how to use combinations of these flags to send messages. The Code was revised in 1887 to cover situations where distance, light, wind and weather conditions affected the visibility of the flags and prevented clear communication. The first report of the International Code of Signals Committee of 1897 warned signalmen not to rely on ordinary semaphore flags and introduced a Distant Signal Code using either particular semaphore flags or the three-dimensional shapes of a ball, cone and drum that aligned with the semaphore flag shapes of a circle, pennant and square. International Code of Signals In 1931, after World War I’s experiences in using signal codes, the International Code of Signals conference in Washington revised and published the rules for the conduct of signalling. One of the changes was that “the use of the Distant Signals and of fixed semaphore was abandoned”. It is of interest to know that modern marine law in many countries insists that a set of Day Shapes must be carried onboard vessels of a certain size. These highly visible geometric shapes are used at sea in daylight to communicate messages between vessels. They are used in a similar way to the Distant Signals, in that different combinations of shapes represent different messages. The set of shapes includes a ball, cylinder, cone and diamond. The shapes are hung between the top of the vessel’s foremast and the front of the vessel. They are only coloured black and are about 1.5 metres high. The vertical line of shapes can mean messages such as Boat not under command, Fishing, and Under sail and power.Distant Signals were an important means of marine communication from the late 1880s to the early 1930s, including during World War I. They were an advancement to the International Shipping Codes and safety. The cane signals’ shapes appear to be the same from whatever direction they are viewed, removing confusion about the message they convey. The same shapes continue to be used today for the sets of Day Shapes used as marine navigational signals that are mandatory on certain-sized vessels.Distant Signal Ball, part of a Flagstaff signal set. A round woven cane ball, painted black, with a metal rod passing through the centre. The rod has a loop at each end, then a concave, octagonal metal plate that rests on the outside surface of the ball, serving as a washer. The rod has swivels at each end.flagstaff hill, flagstaff hill maritime museum and village, warrnambool, maritime museum, maritime village, great ocean road, shipwreck coast, distant signal, signal, maritime signal, ball signal, signal shape, flagstaff signal, signal station, masthead signal, communications, marine technology, signals, marine signals, flaghoists, international marine conference, international code of signals, signal codes, marine safety, signal flags, day shape, daymark, day symbol, navigation, warrnambool flagstaff, 1854, 1857 1931, 1887, 1897 -
Flagstaff Hill Maritime Museum and VillageEquipment - Distant Signal, 1897-1931
... ...navigation equipment...The same shapes continue to be used today for the sets of Day Shapes used as marine navigational signals that are mandatory on certain-sized vessels. flagstaff hill warrnambool flagstaff Hill Maritime Museum and village Shipwreck Coast Marine Navigation Marine communications Communication Signal Lifesaving ship at sea day shape masthead signal day signal day mark signals marine technology safety equipment navigation equipment marine day shape day marker cane day shape signal cone day signal cone cone signal cone day shape distant signal flagstaff signal signal station communications signals marine signals flaghoists International Marine Conference International Code of Signals signal codes marine safety signal flags daymark day symbol navigation Warrnambool flagstaff 1854 1857 1931 1887 1897 Distant Signal Cone, part of a Flagstaff signal set. ...This three-dimensional Distant Signal is part of a Flagstaff Signal set of ball, cone and drum shapes. It has been woven and then fabricated with strong metal swivel fittings and loops for suspending from a high point on a flagstaff at a signal station or on a ship’s masthead. The cane signal was constructed to withstand all weather and to be visible from a long distance. The gaps between the woven cane allow air to pass through, minimising possible swaying. Similar sets were made from rope or fabric. Warrnambool's Flagstaff was erected in 1854. Its primary use was to display visual signals that could convey messages between land and sea. It was also used to notify the local population of the approach of ships. One of the popular signalling codes in use in the early-to-mid 1800s was the Marryat’s Code but there were others in use as well; there was no one standard code. In 1857 the International Marine Conference adopted an International Code of Signals as a standard communications system for all vessels that could be understood in many different languages. The Normanby Advertiser reported on June 5th 1857 a query from the Post Master General as to whether the request of the Chief Harbour Master would be carried out, in that Warrnambool would receive a new flagstaff and a set of Marryatt’s signal flags. The Table of Codes was published, showing how to use combinations of these flags to send messages. The Code was revised in 1887 to cover situations where distance, light, wind and weather conditions affected the visibility of the flags and prevented clear communication. The first report of the International Code of Signals Committee of 1897 warned signalmen not to rely on ordinary semaphore flags and introduced a Distant Signal Code using either particular semaphore flags or the three-dimensional shapes of a ball, cone and drum that aligned with the semaphore flag shapes of a circle, pennant and square. International Code of Signals In 1931, after World War I’s experiences in using signal codes, the International Code of Signals conference in Washington revised and published the rules for the conduct of signalling. One of the changes was that “the use of the Distant Signals and of fixed semaphore was abandoned”. It is of interest to know that modern marine law in many countries insists that a set of Day Shapes must be carried onboard vessels of a certain size. These highly visible geometric shapes are used at sea in daylight to communicate messages between vessels. They are used in a similar way to the Distant Signals, in that different combinations of shapes represent different messages. The set of shapes includes a ball, cylinder, cone and diamond. The shapes are hung between the top of the vessel’s foremast and the front of the vessel. They are only coloured black and are about 1.5 metres high. The vertical line of shapes can mean messages such as Boat not under command, Fishing, and Under sail and power.Distant Signals were an important means of marine communication from the late 1880s to the early 1930s, including during World War I. They were an advancement to the International Shipping Codes and safety. The cane signals’ shapes appear to be the same from whatever direction they are viewed, removing confusion about the message they convey. The same shapes continue to be used today for the sets of Day Shapes used as marine navigational signals that are mandatory on certain-sized vessels.Distant Signal Cone, part of a Flagstaff signal set. A woven cane cone, painted black, with a metal rod passing through the centre and two crossed metal bars at the base. The central rod has a loop at the top and passes through the bars at the base, finishing in a metal loop. The rod has swivels at each end.flagstaff hill, warrnambool, flagstaff hill maritime museum and village, shipwreck coast, marine navigation, marine communications, communication signal, lifesaving, ship at sea, day shape, masthead signal, day signal, day mark signals, marine technology, safety equipment, navigation equipment, marine day shape, day marker, cane day shape, signal cone, day signal cone, cone signal, cone day shape, distant signal, flagstaff signal, signal station, communications, signals, marine signals, flaghoists, international marine conference, international code of signals, signal codes, marine safety, signal flags, daymark, day symbol, navigation, warrnambool flagstaff, 1854, 1857 1931, 1887, 1897 -
Flagstaff Hill Maritime Museum and VillageEquipment - Distant Signal, 1897-1931
... ...navigation equipment...The same shapes continue to be used today for the sets of Day Shapes used as marine navigational signals that are mandatory on certain-sized vessels. flagstaff hill warrnambool flagstaff Hill Maritime Museum and village Shipwreck Coast Marine Navigation Marine communications Communication Signal Lifesaving ship at sea day shape masthead signal day signal day mark signals marine technology safety equipment navigation equipment marine day shape day marker cane day shape signal ball day signal ball Ball signal ball day shape distant signal flagstaff signal signal station communications signals marine signals flaghoists International Marine Conference International Code of Signals signal codes marine safety signal flags daymark day symbol navigation Warrnambool flagstaff 1854 1857 1931 1887 1897 Distant Signal Ball, part of a Flagstaff signal set. ...This three-dimensional Distant Signal is part of a Flagstaff Signal set of ball, cone and drum shapes. It has been woven and then fabricated with strong metal swivel fittings and loops for suspending from a high point on a flagstaff at a signal station or on a ship’s masthead. The cane signal was constructed to withstand all weather and to be visible from a long distance. The gaps between the woven cane allow air to pass through, minimising possible swaying. Similar sets were made from rope or fabric. Warrnambool's Flagstaff was erected in 1854. Its primary use was to display visual signals that could convey messages between land and sea. It was also used to notify the local population of the approach of ships. One of the popular signalling codes in use in the early-to-mid 1800s was the Marryat’s Code but there were others in use as well; there was no one standard code. In 1857 the International Marine Conference adopted an International Code of Signals as a standard communications system for all vessels that could be understood in many different languages. The Normanby Advertiser reported on June 5th 1857 a query from the Post Master General as to whether the request of the Chief Harbour Master would be carried out, in that Warrnambool would receive a new flagstaff and a set of Marryatt’s signal flags. The Table of Codes was published, showing how to use combinations of these flags to send messages. The Code was revised in 1887 to cover situations where distance, light, wind and weather conditions affected the visibility of the flags and prevented clear communication. The first report of the International Code of Signals Committee of 1897 warned signalmen not to rely on ordinary semaphore flags and introduced a Distant Signal Code using either particular semaphore flags or the three-dimensional shapes of a ball, cone and drum that aligned with the semaphore flag shapes of a circle, pennant and square. International Code of Signals In 1931, after World War I’s experiences in using signal codes, the International Code of Signals conference in Washington revised and published the rules for the conduct of signalling. One of the changes was that “the use of the Distant Signals and of fixed semaphore was abandoned”. It is of interest to know that modern marine law in many countries insists that a set of Day Shapes must be carried onboard vessels of a certain size. These highly visible geometric shapes are used at sea in daylight to communicate messages between vessels. They are used in a similar way to the Distant Signals, in that different combinations of shapes represent different messages. The set of shapes includes a ball, cylinder, cone and diamond. The shapes are hung between the top of the vessel’s foremast and the front of the vessel. They are only coloured black and are about 1.5 metres high. The vertical line of shapes can mean messages such as Boat not under command, Fishing, and Under sail and power.Distant Signals were an important means of marine communication from the late 1880s to the early 1930s, including during World War I. They were an advancement to the International Shipping Codes and safety. The cane signals’ shapes appear to be the same from whatever direction they are viewed, removing confusion about the message they convey. The same shapes continue to be used today for the sets of Day Shapes used as marine navigational signals that are mandatory on certain-sized vessels.Distant Signal Ball, part of a Flagstaff signal set. A round woven cane ball, painted black, with a metal rod passing through the centre. The rod has a loop at each end, then a concave, octagonal metal plate that rests on the outside surface of the ball, serving as a washer. The rod has swivels at each end.flagstaff hill, warrnambool, flagstaff hill maritime museum and village, shipwreck coast, marine navigation, marine communications, communication signal, lifesaving, ship at sea, day shape, masthead signal, day signal, day mark signals, marine technology, safety equipment, navigation equipment, marine day shape, day marker, cane day shape, signal ball, day signal ball, ball signal, ball day shape, distant signal, flagstaff signal, signal station, communications, signals, marine signals, flaghoists, international marine conference, international code of signals, signal codes, marine safety, signal flags, daymark, day symbol, navigation, warrnambool flagstaff, 1854, 1857 1931, 1887, 1897 -
Flagstaff Hill Maritime Museum and VillageContainer - Chart Case, Late 19th to early 20th centuries
... navigation...ship equipment...The charts within the case represent the places to which the vessel travelled. flagstaff hill warrnambool shipwrecked coast flagstaff hill maritime museum maritime museum shipwreck coast flagstaff hill maritime village great ocean road map case chart case map box chart box british admiralty charts navigational charts hydrographer charts navigation ship equipment There is a hand written name on the back of the case. ...This case was donated along with the contents of over 60 navigational charts for locations all over the world. The narrow box is built to keep the charts in order and easily accessible on board a vessel. The chart case is a rare example of a container used on board a vessel for the storage and protection of navigational charts. It represents the type of equipment used by the navigator of a seafaring vessel. The charts within the case represent the places to which the vessel travelled.Chart case (or map case), wooden, has hinged opening at top. Front of case folds down and has a hook closure. It contained 65 British Admiralty navigational charts, which are listed and stored separately. (See separate items 2928.2 to 2928.66)There is a hand written name on the back of the case.flagstaff hill, warrnambool, shipwrecked coast, flagstaff hill maritime museum, maritime museum, shipwreck coast, flagstaff hill maritime village, great ocean road, map case, chart case, map box, chart box, british admiralty charts, navigational charts, hydrographer charts, navigation, ship equipment -
Flagstaff Hill Maritime Museum and VillageEquipment - Ships' Telegraph section, Milne Brothers, Copper and Brass Works, Early-to mid-20th century
... equipment including machinery and gauges for the Railways. The Engine Room section is significant for being part of the communications system on the ship SS Rip, owned by Melbourne's Ports & Harbours department and used to service and maintain the navigation signals of Port Phillip Bay and at Queenscliffe in the mid-20th century. ...This Engine Room section of a ship's telegraph system was part of the equipment of the Ports and Harbour ship the SS Rip. The vessel serviced and maintained the lights and buoys at Port Phillip Bay and Queenscliffe. The SS Rip was possibly the former gunboat "Albert". The ship’s communication system that was used from the late 19th century to early-to-mid-20th-century is called an Engine Order Telegraph (E.O.T.) or ship’s telegraph. The system has two parts, the Bridge Section and the Engine Room Section. The Bridge Section is usually mounted on top of a pedestal, and the Engine Room Section is often attached to a vertical surface. The standard commands printed or stamped onto the dial are the directions of AHEAD and ASTERN, and the speeds of STOP, FULL, EASY, STD. BY. and FIN. ENG. The ship’s pilot on the Bridge of a vessel sends his Orders for speed and direction to the to the Engine Room with the E.O.T. He moves the lever or levers, depending on the number of engines the ship has, to change the indicator on the Bridge Section’s dial to point in the new direction and speed of travel. This change causes the Orders to be duplicated on the Engine Room Section’s dial and a bell to signal the change simultaneously. The engineer then adjusts the ship’s engines and steering equipment to follow the pilot’s Order. The manufacturer, Mulne Bros., was a copper and brass works at 166 Sussex Street Sydney, in December 1892, and previously from 1870 at 128 to 130 Sussex Street. The company made and sold a wide range of equipment including machinery and gauges for the Railways.The Engine Room section is significant for being part of the communications system on the ship SS Rip, owned by Melbourne's Ports & Harbours department and used to service and maintain the navigation signals of Port Phillip Bay and at Queenscliffe in the mid-20th century. The dial is an example of marine equipment made in Australia and used for the safety of Victorian vessels. It is also significant for being made by an early Australian manufacturer, Milne Brothers of Sydney.Engine Room Section of a ship’s telegraph or Engine Order Telegraph (E.O.T.). The round metal dial has inscriptions stamped around the edges. The inscriptions are nautical terms for direction and speed and include the maker’s details. The dial was made by Milne Bros. of Sydney. It was part of the equipment on the "SS Rip" in Victoria.Black paint around dial: "MILNE BROS. / MAKERS / SYDNEY" "FULL EASY STD. BY " "FIN ENG. EASY FULL" ""ASTERN" "STOP" "AHEAD"flagstaff hill, warrnambool, maritime museum, maritime village, great ocean road, shipwreck coast, marine technology, marine communications, engine order telegraph, e.o.t., ship’s telegraph, bridge section, engine room section, ship’s engine telegraph section, marine telegraph, milne bros., milne brothers, sydney, copper and brass works, ports & harbours ship, ss rip, gunboat albert, service ship, maintenance ship -
Flagstaff Hill Maritime Museum and VillageBinnacle, Early to mid 20th Century
... (See Links for more information) A significant item of early 20th century marine navigational equipment made by a leading manufacturer in the field from a company that is still producing marine navigational instruments today. ...Mr John Wilson Gillie was born on the 31st of March 1864. On the 31st of July 1880 he was apprenticed for four years to J.J. Wilson and Sons, Nautical Instrument Makers of Sunderland. Following the apprenticeship he spent six months to a year as an ‘improver’ in Glasgow, and then started a new company ‘Wilson and Gillie’ in North Shields. At this time sail had just given way to steam and wooden ships to steel, and the railways were competing with colliers for the carrying of coal from the North East of England to London and the South. In 1858 only seven out of 44 shipyards on the Tyne were using iron, but by 1862 there were ten, employing around 4,000 men. These changes had a significant effect on nautical instrument manufacturers, as the magnetic compass for a wooden sailing vessel was very simple and required little in the way of compensation. For steel vessels much more was required and this was a period of great development, both in the compass bowl and the binnacle in which it was housed. In 1870 Sir William Thomson (later Lord Kelvin) designed his dry card standard compass, which completely replaced all previous designs. Wilson and Gillie started as agents for the Thomson compass, but later J.W. Gillie, using similar principles, redesigned the compass suspension and patented the ‘UNIT’ standard compass. It became popular with local shipowners and shipbuilders. In 1910 the firm of John Lilley and Son (which had been established in London in 1812), found themselves in financial difficulties and were saved with the help of John Wilson Gillie, who established, on the 8th of August 1911, a new firm of John Lilley and Son Limited. John Lilley and Son had been the sole London agents for Sir William Thomson, a very enviable position during this period, when the Thomson compass led the field. Unfortunately, Mr. Lilley had quarreled with the Glasgow company, who withdrew the agency and established their own branch in London (later to become Kelvin White and Hutton). On November 7th 1913, the firm of John Lilley and Son Limited of London amalgamated with Wilson and Gillie of North Shields, and after this date instruments manufactured by the two companies bore the name John Lilley and Son Limited of London and North Shields. During the 1930s many of the London nautical instrument makers were in difficulties, including John Lilley and Son Limited and Reynolds and Son, Dobbie and Clyde Limited, and Mr. J.W. Gillie arranged an amalgamation between these two companies. The new firm became Lilley and Reynolds Limited. In 1943, with estate duties in mind, the North Shields company was reconstituted and took the name of John Lilley and Gillie Limited, although the shareholders, directors and personnel remained unchanged In the early 1970s Lilley and Gillie developed close links with Observator in Rotterdam, who manufactured one of the first fully reliable transmitting magnetic compass systems. The Observator shareholders, Holland America Line, bought the share capital of John Lilley and Gillie Limited., but retained all the personnel and the directors. (See Links for more information)A significant item of early 20th century marine navigational equipment made by a leading manufacturer in the field from a company that is still producing marine navigational instruments today. John Lilleys company began in 1812 growing at a time when the transition of compasses from timber ships, to steel vessels. Compasses at this time required a method of compensation to allow their inclusion in steel vessels without magnetic deviation. This therefore was a period of great development, both in the compass bowl and the binnacle in which it was housed and the Lilley company were leaders in the field. Ships binnacle, wood with brass fittings, consists of 2 brass lamp holders, place for compass, Also has an inclinometer with a scale 40 to 0 to 40, one red and one green iron Kelvin compensation balls, one on each side of binnacle denoting port and starboard, a brass cylinder attached perpendicular at the rear for storing a Flinders Bar, 2 hinged cupboards containing adjustable wooden racks with drilled holes in them to hold iron Heeling error magnets.Textured brass plate attached to front stating "JOHN LILLEY & SON LTD (WILSON & GILLIE), NAUTICAL INSTRUMENT MAKERS, NORTH SHIELDS" . Inclinometer has "JOHN LILLEY & SON LTD (Wilson & Gillie) LONDON & NORTH SHIELDS" engraved. flagstaff hill, warrnambool, shipwrecked-coast, flagstaff-hill, flagstaff-hill-maritime-museum, maritime-museum, shipwreck-coast, flagstaff-hill-maritime-village, binnacle, john lillie & son ltd, compass -
Flagstaff Hill Maritime Museum and VillageEquipment - Ship's Wheel, John Hastie et al, Early 20th Century
... Equipment...instrument...navigation...An item made by two marine innovators of marine auxiliary machinery, equipment and items flagstaff hill warrnambool shipwrecked-coast flagstaff-hill flagstaff-hill-maritime-museum maritime-museum shipwreck-coast flagstaff-hill-maritime-village John Hastie John Hastie Andrew Betts Brown Ships Wheel Ship Steering gear Marine Equipment instrument navigation Inscription to wheel hub "Brown Brothers & Co. ...John Hastie Engineer and millwright John Hastie opened small manufacturing works in Greenock in 1845 and 1853 patented the first self-holding steering gear. The firm became known as John, Hastie and Co. Ltd. in 1898 after taking on limited liability status and their main works were at Kilblain Street, Greenock, where they specialised in ships' steering gear. The company also occupied works at Rue End Street, Greenock. Plans of this unit depict a stockyard to the east, with areas for welding; fitting and assembly; flame, cutting and fabrication; and a machine bay. The company was dissolved in 1991. Brown Brothers Brown Bros Rosebank Ironworks made the steering gears for many large ship's, including The Titanic. Andrew Betts Brown the founder was born in 1741 and closely associated with many improvements in marine engineering. He was educated in his native city and served his apprenticeship as an engineer in the locomotive works of the North British Railway Company at St. Margaret's. During his apprenticeship, he attended the evening classes at Watt College. subsequently going to Manchester to study chemistry. He went to London around 1863 and took over an old brewery, which he converted into an engineering works. During his time there he invented an overhead travelling crane, which was used on the construction of Blackfriars Bridge London. He went on to develop plant which used steam and hydraulic power for discharging ships as a result the company was contracted to install this equipment in Hamburg Docks. By around 1870 he continued to construct machinery in London but realised that conditions were more favourable in Edinburgh. He acquired land at Rosebank adjoining the North British Railway Company's line to Granton, and the necessary infrastructure was completed allowing him to finish the Hamburg contract. The works at Rosebank were eventually extended and added to until they became one of the largest engineering works in the East of Scotland. Mr Brown was a member of numerous engineering institutions, the best known at the time being the Institution of Naval Architects. He was also a Fellow of the Royal Society of Edinburgh, a member of the Institute of Mechanical Engineers and of the Institution of Marine Engineers he died in 1906 at the age of 67.An item made by two marine innovators of marine auxiliary machinery, equipment and itemsShip's wheel, brass, attached to brass pillar. The base has six holes in it for securing it in place. Top of the ship's wheel pillar has a brass, adjustable arrow pointer that is positioned over a dial etched into the flat brass surface. The dial reads " PORT STABD". Lines and degrees are marked, with '0' in centre and every 5 degrees, from 0-35, in both Port and Starboard sidesInscription to wheel hub "Brown Brothers & Co. Ltd, Rosebank Ironworks, Edinburgh"flagstaff hill, warrnambool, shipwrecked-coast, flagstaff-hill, flagstaff-hill-maritime-museum, maritime-museum, shipwreck-coast, flagstaff-hill-maritime-village, john hastie, john hastie, andrew betts brown, ships wheel, ship steering gear, marine equipment, instrument, navigation -
Flagstaff Hill Maritime Museum and VillageInstrument - Sextant, Late 20th Century
... Purchased as an exhibition of marine navigational instruments for the Flagstaff Hill museum. flagstaff hill warrnambool shipwrecked-coast flagstaff-hill flagstaff-hill-maritime-museum maritime-museum shipwreck-coast flagstaff-hill-maritime-village sextant kelvin & hughes ltd hong kong navigational instrument g falconer mariner's quadrants G Falconer and Co. Hong Kong (retailers of nautical equipment The Sextant is a brass apparatus with filters and telescope lens, and comes with a wooden felt lined storage box. ...In 1941, the scientific instrument manufacturing firms of Henry Hughes & Son Ltd, London, England, and Kelvin Bottomley & Baird Ltd, Glasgow, Scotland, came together to form Kelvin & Hughes Ltd. Kelvin Company History: The origins of the company lie in the highly successful and strictly informal relationship between William Thomson (1824-1907), Professor of Natural Philosophy at Glasgow University from 1846-1899 and James White, a Glasgow optical maker. James White (1824-1884) founded the firm of James White, an optical instrument maker in Glasgow in 1850 and was involved in supplying and mending apparatus for Thomson university laboratory and working with him on experimental constructions. White was declared bankrupt in August 1861 and released several months later. In 1870, White was largely responsible for equipping William Thomson laboratory in the new University premises at Gilmore hill. From 1876, he was producing accurate compasses for metal ships to Thomson design during this period and this became an important part of his business in the last years of his life. He was also involved in the production of sophisticated-sounding machinery that Thomson had designed to address problems encountered laying cables at sea, helping to make possible the first transatlantic cable connection. At the same time, he continued to make a whole range of more conventional instruments such as telescopes, microscopes and surveying equipment. White's association with Thomson continued until he died. After his death, his business continued under the same name, being administered by Matthew Edwards (until 1891 when he left to set up his own company. Thomson who became Sir William Thomson and then Baron Kelvin of Largs in 1892, continued to maintain his interest in the business after James White's death. In 1884 raising most of the capital needed to construct and equip new workshops in Cambridge Street, Glasgow. At these premises, the company continued to make the compass Thomson had designed during the 1870s and to supply it in some quantity, especially to the Admiralty. At the same time, the firm became increasingly involved in the design, production and sale of electrical apparatus. In 1899, Lord Kelvin resigned from his University chair and became, in 1900, a director in the newly formed limited liability company Kelvin & James White Ltd which had acquired the business of James White. At the same time Kelvin's nephew, James Thomson Bottomley (1845-1926), joined the firm. In 1904, a London branch office was opened which by 1915 had become known as Kelvin, White & Hutton Ltd. Kelvin & James White Ltd underwent a further change of name in 1913, becoming Kelvin Bottomley & Baird Ltd. Hughes Company History: Henry Hughes & Sons were founded in 1838 in London as a maker of chronographic and scientific instruments. The firm was incorporated as “Henry Hughes & Sons Ltd” in 1903. In 1923, the company produced its first recording echo sounder and in 1935 a controlling interest in the company was acquired by S Smith & Son Ltd resulting in the development and production of marine and aircraft instruments. Following the London office's destruction in the Blitz of 1941, a collaboration was entered into with Kelvin, Bottomley & Baird Ltd resulting in the establishing “Marine Instruments Ltd”. Following the formal amalgamation of Kelvin, Bottomley & Baird Ltd and Henry Hughes & Sons Ltd in 1947 to form Kelvin & Hughes Ltd. Marine Instruments Ltd then acted as regional agents in the UK for Kelvin & Hughes Ltd who were essentially now a part of Smith's Industries Ltd founded in 1944 and the successors of S. Smith & Son Ltd. Kelvin & Hughes Ltd went on to develop various marine radar and echo sounders supplying the Ministry of Transport, and later the Ministry of Defence. The firm was liquidated in 1966 but the name was continued as Kelvin Hughes, a division of the Smiths Group. In 2002, Kelvin Hughes continues to produce and develop marine instruments for commercial and military. G. Falconer Company History: G Falconer (Hong Kong Ltd) appear to have had a retail presence in Hong Kong since 1885, according to the company website, and currently have a shop in the Peninsula Hotel. G Falconer was the Hong Kong selling agent for several British companies. Ross Ltd of 111 New Bond St London was one and the other was Kelvins Nautical Instruments. Falconers were primarily watchmakers, jewellers and diamond merchants.They were also agents for Admiralty Charts, Ross binoculars and telescopes, and sold English Silverware and High Class English Jewellery. In 1928 the company was operating from the Union Building opposite the Hong Kong general post office. It is unclear if the item is an original Sextant made by Kelvin prior to his amalgamation with Henry Hughes & Sons in 1941 as Kelvin appears to have only made compasses up to this date. If the Sextant can be established that it was made by Kelvin then it is very significant and a rare item made for and distributed through their Hong Kong selling agents G Falconer Ltd. There are many Sextants advertised for sale stating "Kelvin & Hughes 1917 model sextant". These can be regarded as replicas as the company was not formed until 1941 and production of marine instruments was not fully under way until after the war in 1947. Further investigation needs to be undertaken to accurately determine the provenance of this item. As the writer currently has the impression that the subject object was possibly made by Kelvin and Hughes in the mid to late 20th century or is a replica made by an unknown maker in the late 1970s. Purchased as an exhibition of marine navigational instruments for the Flagstaff Hill museum. The Sextant is a brass apparatus with filters and telescope lens, and comes with a wooden felt lined storage box. It is a doubly reflecting navigation instrument that measures the angular distance between two visible objects. The primary use of a sextant is to measure the angle between an astronomical object and the horizon for the purposes of celestial navigation.G Falconer and Co. Hong Kong (retailers of nautical equipmentflagstaff hill, warrnambool, shipwrecked-coast, flagstaff-hill, flagstaff-hill-maritime-museum, maritime-museum, shipwreck-coast, flagstaff-hill-maritime-village, sextant, kelvin & hughes ltd, hong kong, navigational instrument, g falconer, mariner's quadrants -
Flagstaff Hill Maritime Museum and VillageInstrument - Sextant, Troughton & Simms, late 19th C. to 1922
... navigation...marine equipment...It was made by London scientific instrument maker Troughton and Simms, which originated in 1826 and continued until 1922. flagstaff hill warrnambool shipwrecked-coast flagstaff-hill flagstaff-hill-maritime-museum maritime-museum shipwreck-coast flagstaff-hill-maritime-village sextant navigational instrument marine navigation marine equipment instrument navigation Troughton and Simms London scientific instrument Sextant and its fitted square wooden box. ...This sextant is very similar to a 1915 Sextant design. A sextant is an astronomical instrument used in measuring angular distances especially the altitudes of sun, moon and starts at sea determining latitude and longitude.This sextant is an example of a 19th-century marine instrument used for finding location at sea. It was made by London scientific instrument maker Troughton and Simms, which originated in 1826 and continued until 1922.Sextant and its fitted square wooden box. The handle of the sextant is carved with a cross-hatched pattern. Made by Troughton and Simms, London.flagstaff hill, warrnambool, shipwrecked-coast, flagstaff-hill, flagstaff-hill-maritime-museum, maritime-museum, shipwreck-coast, flagstaff-hill-maritime-village, sextant, navigational instrument, marine navigation, marine equipment, instrument, navigation, troughton and simms, london, scientific instrument -
Flagstaff Hill Maritime Museum and VillageEquipment - Ship's Wheel, ca. 1900s
... Flagstaff Hill Flagstaff Hill Maritime Museum and Village Warrnambool Maritime Museum Maritime Village Great Ocean Road Shipwreck Coast marine technology ship's fitting navigation ship's wheel boat wheel steering wheel Handwritten: "B266" Ship's wheel, small, with wooden spokes and handles, painted yellow. One handle is broken off. Marked inscription in black pen. Circa 1900. Equipment ...This ship's wheel is an example of a simple handmade wheel for a small boat and can be used for comparison with professional ship's wheels for large sailing ships.Ship's wheel, small, with wooden spokes and handles, painted yellow. One handle is broken off. Marked inscription in black pen. Circa 1900.Handwritten: "B266"flagstaff hill, flagstaff hill maritime museum and village, warrnambool, maritime museum, maritime village, great ocean road, shipwreck coast, marine technology, ship's fitting, navigation, ship's wheel, boat wheel, steering wheel -
Flagstaff Hill Maritime Museum and VillageEquipment - Ship's Wheel, Mid to late 20th century
... The decorative ship's wheel is an example of the basic design used for marine vessels for centuries that continues to be used today., flagstaff hill warrnambool shipwrecked-coast flagstaff-hill flagstaff-hill-maritime-museum maritime-museum shipwreck-coast flagstaff-hill-maritime-village Wheel ship's wheel navigation Ship's wheel, wooden dark polished, with six turned spokes and a round centre hole. Equipment ...This wooden ship's wheel with six turned spokes is small and could have been used for steering a small boat. The decorative ship's wheel is an example of the basic design used for marine vessels for centuries that continues to be used today.,Ship's wheel, wooden dark polished, with six turned spokes and a round centre hole.flagstaff hill, warrnambool, shipwrecked-coast, flagstaff-hill, flagstaff-hill-maritime-museum, maritime-museum, shipwreck-coast, flagstaff-hill-maritime-village, wheel, ship's wheel, navigation -
Flagstaff Hill Maritime Museum and VillageEquipment - Lead line
... This handheld lead is an example of early marine navigational equipment used by sailors to travel the seas to measure the depth of the water and sample the nature of the seabed. ...The lead line or hand lead is a simple navigational instrument used as a depth finder to measure the depth of water under the ship’s keel and to take samples of the sea bed. The long line may be marked at regular intervals with tags of different coloured and textured fabric, such as rope, leather and cloth. Each tag was a code to represent a certain depth. The leadsman’s eyes and hands could distinguish the depth easily as he drew in the lead line, day or night and in poor weather conditions. A standard set of codes for the tags was used so that the depth of the sea could be easily and quickly read. The measurement used was a Fathom, which equals 1.83 metres. The codes were: - 2 fathoms = 2 strips of leather 3 fathoms = 3 strips of leather 5 fathoms = white duck fabric 7 fathoms = red bunting fabric 10 fathoms = leather with a hole 13 fathoms = blue serge fabric 15 fathoms = white duck fabric 17 fathoms = red bunting 20 fathoms = 2 knots The lead weight could be between 7 -14 pounds (3.5 – 6.5kg) and the rope would be approximately 25 fathoms (45m). The hollowed-out end of the weight would hold a stick substance such as tallow or wax, which would pick up samples from the sea bed which would show whether the vessel was close to, or far away from, the shore. The leadsman would stand at the front of the vessel and cast the lead line into the sea. When it hit bottom he would note the tag marker nearest the surface of the water and call out his finding. Then he would haul it up again and examine the kind of matter that adhered to the end of the weight, whether it be sand, mud, gravel, or the colour of it. This information would be given to the ship’s helmsman or navigator and would help indicate the proximity to the land.This handheld lead is an example of early marine navigational equipment used by sailors to travel the seas to measure the depth of the water and sample the nature of the seabed. It helps to understand the history and progress made from the very basic to the sophisticated technology of today.Lead line, sounding line or depth finder. The long length of rope has a heavy lead weight attached to the end. Coloured fabric tags are tied onto the rope at regular intervals, representing different depths. The concave base of weight holds sticky substances such as tallow or beeswax, providing an adhesive surface to collect samples of sea bed like sand, shells or pebbles. flagstaff hill, warrnambool, shipwrecked coast, flagstaff hill maritime museum, maritime museum, shipwreck coast, flagstaff hill maritime village, lead line, depth finder, hand lead, sounding lin, leadsmane, navigation instrument, leadline, hand lead line -
Flagstaff Hill Maritime Museum and VillageEquipment - Distant Signal, 1897-1931
... navigation Warrnambool flagstaff 1854 1857 1931 1887 1897 Distant Signal Ball, part of a Flagstaff signal set. A round woven cane ball, painted black, with a metal rod passing through the centre. The rod has a loop at each end, then a concave, octagonal metal plate that rests on the outside surface of the ball, serving as a washer. The rod has swivels at each end. Equipment ...This three-dimensional Distant Signal is part of a Flagstaff Signal set of ball, cone and drum shapes. It has been woven and then fabricated with strong metal swivel fittings and loops for suspending from a high point on a flagstaff at a signal station or on a ship’s masthead. The cane signal was constructed to withstand all weather and to be visible from a long distance. The gaps between the woven cane allow air to pass through, minimising possible swaying. Similar sets were made from rope or fabric. Warrnambool's Flagstaff was erected in 1854. Its primary use was to display visual signals that could convey messages between land and sea. It was also used to notify the local population of the approach of ships. One of the popular signalling codes in use in the early-to-mid 1800s was the Marryat’s Code but there were others in use as well; there was no one standard code. In 1857 the International Marine Conference adopted an International Code of Signals as a standard communications system for all vessels that could be understood in many different languages. The Normanby Advertiser reported on June 5th 1857 a query from the Post Master General as to whether the request of the Chief Harbour Master would be carried out, in that Warrnambool would receive a new flagstaff and a set of Marryatt’s signal flags. The Table of Codes was published, showing how to use combinations of these flags to send messages. The Code was revised in 1887 to cover situations where distance, light, wind and weather conditions affected the visibility of the flags and prevented clear communication. The first report of the International Code of Signals Committee of 1897 warned signalmen not to rely on ordinary semaphore flags and introduced a Distant Signal Code using either particular semaphore flags or the three-dimensional shapes of a ball, cone and drum that aligned with the semaphore flag shapes of a circle, pennant and square. International Code of Signals In 1931, after World War I’s experiences in using signal codes, the International Code of Signals conference in Washington revised and published the rules for the conduct of signalling. One of the changes was that “the use of the Distant Signals and of fixed semaphore was abandoned”. It is of interest to know that modern marine law in many countries insists that a set of Day Shapes must be carried onboard vessels of a certain size. These highly visible geometric shapes are used at sea in daylight to communicate messages between vessels. They are used in a similar way to the Distant Signals, in that different combinations of shapes represent different messages. The set of shapes includes a ball, cylinder, cone and diamond. The shapes are hung between the top of the vessel’s foremast and the front of the vessel. They are only coloured black and are about 1.5 metres high. The vertical line of shapes can mean messages such as Boat not under command, Fishing, and Under sail and power.Distant Signals were an important means of marine communication from the late 1880s to the early 1930s, including during World War I. They were an advancement to the International Shipping Codes and safety. The cane signals’ shapes appear to be the same from whatever direction they are viewed, removing confusion about the message they convey. The same shapes continue to be used today for the sets of Day Shapes used as marine navigational signals that are mandatory on certain-sized vessels.Distant Signal Ball, part of a Flagstaff signal set. A round woven cane ball, painted black, with a metal rod passing through the centre. The rod has a loop at each end, then a concave, octagonal metal plate that rests on the outside surface of the ball, serving as a washer. The rod has swivels at each end.distant signal, flagstaff signal, signal station, masthead signal, communications, marine technology, signals, marine signals, flaghoists, international marine conference, international code of signals, signal codes, marine safety, signal flags, day shape, daymark, day symbol, navigation, warrnambool flagstaff, 1854, 1857 1931, 1887, 1897 -
Flagstaff Hill Maritime Museum and VillageFunctional object - Anchor Lamp, Bef. 09-02-1984
... equipment...marine lamp...navigation...The lamp is made to the design of a 19th and early 20th-century kerosene anchor lamp carried as essential marine equipment and used as a signal lamp on sailing ships. brass lamp lamp Anchor Kerosene Lamp kerosene lamp marine equipment marine lamp navigation light ship light ship lamp lantern maritime nautical safety lamp Lamps; a pair of cylindrical kerosene anchor lamps. ...The kerosene lamp was one of the most common oil lamps used and was manufactured until the 1980s. An anchor lamp like the lamps in this pair would be raised on the highest ship mast at night to signal other seafarers that the ship was at anchor or sailing at night. The metal loops on opposing sides of the lamp could hold a pair of rods or ropes. and be used to raise the lamp.The lamp is made to the design of a 19th and early 20th-century kerosene anchor lamp carried as essential marine equipment and used as a signal lamp on sailing ships. Lamps; a pair of cylindrical kerosene anchor lamps. Each has a flat back, a hinged door, a metal handle and two metal loops or guides fixed on each side. The glass window is convex and inside the lamp is a wick in an enamel wick holder.brass lamp, lamp, anchor kerosene lamp, kerosene lamp, marine equipment, marine lamp, navigation, light, ship light, ship lamp, lantern, maritime, nautical, safety lamp -
Flagstaff Hill Maritime Museum and VillageFunctional object - Megaphone
... equipment...navigation...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. warrnambool Flagstaff Hill Maritime Museum and Village fog horn marine equipment navigation warning signal maritime nautical fireman captain shoulder rope signal safety equipment Megaphone; brass conical shape with an opening at both ends and a join near the wide end. ...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 VillageEquipment - Navigation Lamp, William Harvie & Co, First half of the 20th century
... Navigation Lamp...Kerosene Lamp...Signal Lamp...Marine Equipment...Front reference plate reads " Meteorite" then "Meteorite No. 92276" Navigation lamp, round ship's lamp with clear glass and a red filter, handle at top, fitted with hinged and catch section at top to service lamp. Bracket at back for hanging lamp item painted red with black handles. Equipment ...William Harvie was granted a patent in 1868 for improvements in the manufacture of lamps, lanterns and lenses for ships navigation and signal lamps 1868. Production began at 222 Broomielaw street Glasgow Scotland. Another patent was issued in 1873 for additional improvements to the companies lamps. Records show that in1873 William Harvie was in partnership with Malcolm Graham & Co, grease manufacturers and rosin distillers at 50 Anderson Street Gallowgate Glasgow. It appears around this time the business was transferred to George Moffat of 128 Garthland Drive Dennistoun Glasgow to continue under the same name (William Harvie & Co at premises situated at 100 East John St Gallowgate Glasgow. It is unclear but at some point W T George & Co were one in the same with William Harvie & Co. W T George made lamps with the trade name “Meteorite” and after gaining a patent for improvements to his lamps in 1941 the patent numbers were affixed to his lamps. In the Scottish Post Office annual Glasgow Directory 1900-1902 William Haveie & Co. Ltd is listed with two addresses; 222 Broomielaw and 24 McAlpine Streets, Glasgow. In the early 20th century the business moved to Birmingham until 1983 when the company went into voluntary liquidation after a meeting was held at Newhall Street Birmingham on the 10th January 1983 for WT George and William Harvie. This meeting was for the purposes regarding the insolvency of a company as set out in Sec 294 & 295 of the companies Act 1948 as a result Harvie & Co cease production of their products.An item made by a company that was an innovator of significant improvements in the manufacture of marine signal and navigation lamps during the late 19th and 20th centuries. Lamps made by this manufacturer are now sought after collector's items that are of significant value. Navigation lamp, round ship's lamp with clear glass and a red filter, handle at top, fitted with hinged and catch section at top to service lamp. Bracket at back for hanging lamp item painted red with black handles.Black nameplate is unreadable. Front reference plate reads " Meteorite" then "Meteorite No. 92276" warrnambool, flagstaff-hill, flagstaff-hill-maritime-museum, maritime-museum, shipwreck-coast, flagstaff-hill-maritime-village, lamp, meteorite, william harvie, navigation lamp, kerosene lamp, signal lamp, marine equipment, marine navigation, w t george & co, george bocock & co, william harvie & co. ltd. -
Flagstaff Hill Maritime Museum and VillageEquipment - Marine Kerosene Lamp, W T George & Co, 1941 +
... navigation lamps during the late 19th and 20th centuries. Lamps made by this manufacturer are now sought after collector's items that are of significant value. warrnambool flagstaff-hill flagstaff-hill-maritime-museum maritime-museum shipwreck-coast flagstaff-hill-maritime-village Lamp round ship's lamp Kerosene Marine Lamp W T George & Co William Harvie & Co George Bocock & Co Stamped "Meteorite 110560" Bottom stamped "Patent no GB546575 and others pending". Lamp, round ship's copper lamp with clear glass, handle at top, fitted with hinged and catch section at top to service lamp. Bracket at back for hanging lamp. Equipment ...WT George & Co of Sherlock Street Birmingham were makers of ships lanterns under the trade name “Meteorite”. In 1941 Thomas George writer assumes a relative of WT George was granted a patent number GB546575 relating to improvements to his lamps. After this date a plate was affixed with this number. What's confusing with the companies records is that they show that in Birmingham three companies are listed making lamps together and the writer is assuming under a partnership agreement. First in 1983 W T George & Co with William Harvie & Co went into liquidation with G Bocock & Co, together, then in 1992 George Bocock and Harvie Ltd were in liquidation. Although these companies seem to have different addresses in Birmingham they were linked together given they were all liquidated at the same time for two of them. They all appear to have been partners in some way making marine lamps under the William Harvie banner. William Harvie & Co. Ltd advertised as being electric light and power engineers, and patent ship lamp manufacturers, as early as 1901-1902, as listed in the Post Office annual Glasgow Directory 1901-1902.An item made by a company that was an innovator of significant improvements in the manufacture of marine signal and navigation lamps during the late 19th and 20th centuries. Lamps made by this manufacturer are now sought after collector's items that are of significant value. Lamp, round ship's copper lamp with clear glass, handle at top, fitted with hinged and catch section at top to service lamp. Bracket at back for hanging lamp. Stamped "Meteorite 110560" Bottom stamped "Patent no GB546575 and others pending".warrnambool, flagstaff-hill, flagstaff-hill-maritime-museum, maritime-museum, shipwreck-coast, flagstaff-hill-maritime-village, lamp, round ship's lamp, kerosene marine lamp, w t george & co, william harvie & co, george bocock & co
