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  • 121 Cowper-Coles, Sherard Osborn

    SUBJECT AREA: Metallurgy
    [br]
    b. 8 October 1866 East Harting, Sussex, England
    d. 9 September 1936
    [br]
    English inventor of the sherardizing process for metal protection.
    [br]
    He was the son of Captain Cowper- Coles, Royal Navy, the inventor of the swivelling turret for naval guns. He inherited his father's inventive talents and investigated a variety of inventions in his workshop at his home at Sunbury-on-Thames, assisted by a number of scientific workers. He had been educated by governesses, but he lacked a sound scientific background. His inventions, rarely systematically pursued, ranged from electrolytic processes for making copper sheets and parabolic reflectors to a process for inlaying and decorating metallic surfaces. Overall, however, he is best known for the invention of "sherardizing", the process for producing a rustproof coating of zinc on small metallic articles. The discovery came by chance, when he was annealing iron and steel packed in zinc dust to exclude air. The metal was found to be coated with a thin layer of zinc with some surface penetration. The first patent for the process was obtained in 1900, and later the American rights were sold, with a company being formed in 1908 to control them. A small plant was set up in Chelsea, London, to develop the process to the point where it could be carried out on a commercial scale in a plant in Willesden. Sherardizing has not been a general protective finish, but is restricted to articles such as nuts and bolts which are then painted or finished. The process was still in use in 1977, operated by the Zinc Alloy Company (London) Ltd.
    [br]
    Further Reading
    C.A.Smith, 1978, "Sherard Cowper-Coles: a review of the inception of sherardizing", Transactions of the Newcomen Society 49:1–4.
    LRD

    Biographical history of technology > Cowper-Coles, Sherard Osborn

  • 122 Deville, Henri Etienne Sainte-Claire

    SUBJECT AREA: Metallurgy
    [br]
    b. 11 March 1818 St Thomas, Virgin Islands
    d. 1 July 1881 Boulogne-sur-Seine, France
    [br]
    French chemist and metallurgist, pioneer in the large-scale production of aluminium and other light metals.
    [br]
    Deville was the son of a prosperous shipowner with diplomatic duties in the Virgin Islands. With his elder brother Charles, who later became a distinguished physicist, he was sent to Paris to be educated. He took his degree in medicine in 1843, but before that he had shown an interest in chemistry, due particularly to the lectures of Thenard. Two years later, with Thenard's influence, he was appointed Professor of Chemistry at Besançon. In 1851 he was able to return to Paris as Professor at the Ecole Normale Supérieure. He remained there for the rest of his working life, greatly improving the standard of teaching, and his laboratory became one of the great research centres of Europe. His first chemical work had been in organic chemistry, but he then turned to inorganic chemistry, specifically to improve methods of producing the new and little-known metal aluminium. Essentially, the process consisted of forming sodium aluminium trichloride and reducing it with sodium to metallic aluminium. He obtained sodium in sufficient quantity by reducing sodium carbonate with carbon. In 1855 he exhibited specimens of the metal at the Paris Exhibition, and the same year Napoleon III asked to see them, with a view to using it for breastplates for the Army and for spoons and forks for State banquets. With the resulting government support, he set up a pilot plant at Jarvel to develop the process, and then set up a small company, the Société d'Aluminium at Nan terre. This raised the output of this attractive and useful metal, so it could be used more widely than for the jewellery to which it had hitherto been restricted. Large-scale applications, however, had to await the electrolytic process that began to supersede Deville's in the 1890s. Deville extended his sodium reduction method to produce silicon, boron and the light metals magnesium and titanium. His investigations into the metallurgy of platinum revolutionized the industry and led in 1872 to his being asked to make the platinum-iridium (90–10) alloy for the standard kilogram and metre. Deville later carried out important work in high-temperature chemistry. He grieved much at the death of his brother Charles in 1876, and his retirement was forced by declining health in 1880; he did not survive for long.
    [br]
    Bibliography
    Deville published influential books on aluminium and platinum; these and all his publications are listed in the bibliography in the standard biography by J.Gray, 1889, Henri Sainte-Claire Deville: sa vie et ses travaux, Paris.
    Further Reading
    M.Daumas, 1949, "Henri Sainte-Claire Deville et les débuts de l'industrie de l'aluminium", Rev.Hist.Sci 2:352–7.
    J.C.Chaston, 1981, "Henri Sainte-Claire Deville: his outstanding contributions to the chemistry of the platinum metals", Platinum Metals Review 25:121–8.
    LRD

    Biographical history of technology > Deville, Henri Etienne Sainte-Claire

  • 123 Ercker, Lazarus

    [br]
    b. c.1530 Annaberg, Saxony, Germany
    d. 1594 Prague, Bohemia
    [br]
    German chemist and metallurgist.
    [br]
    Educated at Wittenberg University during 1547–8, Ercker obtained in 1554, through one of his wife's relatives, the post of Assayer from the Elector Augustus at Dresden. From then on he took a succession of posts in mining and metallurgy. In 1555 he was Chief Consultant and Supervisor of all matters relating to mines, but for some unknown reason was demoted to Warden of the Mint at Annaberg. In 1558 he travelled to the Tyrol to study the mines in that region, and in the same year Prince Henry of Brunswick appointed him Warden, then Master, of the Mint at Goslar. Ercker later moved to Prague where, through another of his wife's relatives, he was appointed Control Tester at Kutna Hora. It was there that he wrote his best-known book, Die Beschreibung allfürnemisten mineralischen Ertz, which drew him to the attention of the Emperor Maximilian, who made him Courier for Mining and a clerk of the Supreme Court of Bohemia. The next Emperor, Rudolf II, a noted patron of science and alchemy, promoted Ercker to Chief Inspector of Mines and ennobled him in 1586 with the title Von Schreckenfels'. His second wife managed the mint at Kutna Hora and his two sons became assayers. These appointments gained him much experience of the extraction and refining of metals. This first bore fruit in a book on assaying, Probierbüchlein, printed in 1556, followed by one on minting, Münzbuch, in 1563. His main work, Die Beschreibung, was a systematic review of the methods of obtaining, refining and testing the alloys and minerals of gold, silver, copper, antimony, mercury and lead. The preparation of acids, salts and other compounds is also covered, and his apparatus is fully described and illustrated. Although Ercker used Agricola's De re metattica as a model, his own work was securely based on his practical experience. Die Beschreibung was the first manual of analytical and metallurgical chemistry and influenced later writers such as Glauber on assaying. After the first edition in Prague came four further editions in Frankfurt-am-Main.
    [br]
    Bibliography
    Die Beschreibung allfürnemisten mineralischen Ertz, Prague. 1556, Probierbuchlein.
    1563, Munzbuch.
    Further Reading
    P.R.Beierlein, 1955, Lazarus Ercker, Bergmann, Hüttenmann und Münzmeister im 16. Jahrhundert, Berlin (the best biography, although the chemical details are incomplete).
    J.R.Partington, 1961, History of Chemistry, London, Vol. II, pp. 104–7.
    E.V.Armstrong and H.Lukens, 1939, "Lazarus Ercker and his Probierbuch", J.Chem. Ed.
    16: 553–62.
    LRD

    Biographical history of technology > Ercker, Lazarus

  • 124 Essen, Louis

    SUBJECT AREA: Horology
    [br]
    b. 6 September 1908 Nottingham, England
    [br]
    English physicist who produced the first practical caesium atomic clock, which was later used to define the second.
    [br]
    Louis Essen joined the National Physical Laboratory (NPL) at Teddington in 1927 after graduating from London University. He spent his whole working life at the NPL and retired in 1972; his research there was recognized by the award of a DSc in 1948. At NPL he joined a team working on the development of frequency standards using quartz crystals and he designed a very successful quartz oscillator, which became known as the "Essen ring". He was also involved with radio frequency oscillators. His expertise in these fields was to play a crucial role in the development of the caesium clock. The idea of an atomic clock had been proposed by I.I.Rabbi in 1945, and an instrument was constructed shortly afterwards at the National Bureau of Standards in the USA. However, this device never realized the full potential of the concept, and after seeing it on a visit to the USA Essen was convinced that a more successful instrument could be built at Teddington. Assisted by J.V.L.Parry, he commenced work in the spring of 1953 and by June 1955 the clock was working reliably, with an accuracy that was equivalent to one second in three hundred years. This was significantly more accurate than the astronomical observations that were used at that time to determine the second: in 1967 the second was redefined in terms of the value for the frequency of vibration of caesium atoms that had been obtained with this clock.
    [br]
    Principal Honours and Distinctions
    FRS 1960. Clockmakers' Company Tompion Gold Medal 1957. Physical Society C.V.Boys Prize 1957. USSR Academy of Science Popov Gold Medal 1959.
    Bibliography
    1957, with J.V.L.Parry, "The caesium resonator as a standard of frequency and time", Philosophical Transactions of the Royal Society (Series A) 25:45–69 (the first comprehensive description of the caesium clock).
    Further Reading
    P.Forman, 1985, "Atomichron: the atomic clock from concept to commercial product", Proceedings of the IEEE 75:1,181–204 (an authoritative critical review of the development of the atomic clock).
    N.Cessons (ed.), 1992, The Making of the Modern World, London: Science Museum, pp.
    190–1 (contains a short account).
    DV

    Biographical history of technology > Essen, Louis

  • 125 Fischer, E.

    [br]
    fl. 1930s Switzerland
    [br]
    Swiss engineer who invented the Eidophor large-screen television projector.
    [br]
    Fischer was a professor of engineering at the Swiss Federal Institute of Technology in the late 1930s. Interested in the emerging technology for television, he was of the opinion that the growth of television would take place through the development and use of large-screen cinema-type displays serving large audiences. He therefore carried out research into suitable techniques. Realizing the brightness limitations of projection systems based on the optical magnification of the image produced by a conventional cathode ray tube, he used the deflected electron-beam, not to excite a phosphor screen, but to deposit a variable charge on the surface of a film or oil. By means of a Schlieren slit system, the consequent deformations of the surface were used to spatially modulate the light from an electric arc or a discharge tube, giving a large, high-brightness image. Although the idea, first put forward in 1939, was not taken up for cinema television, the subsequent requirement of the US National Aeronautics and Space Administration in the 1960s for large colour displays in its Command and Control Centres led to the successful development of the idea by Gretag AG, a subsidiary of Ciba-Geigy: separate units were used for the red, green and blue images. In the 1990s, colour Eidophor projectors were used for large conference meetings and pop concerts.
    [br]
    Bibliography
    1946, "Views on the suitability of a cathode ray tube with a fluorescent screen for projection in cinemas", Bulletin of the Association of Swiss Electricians 39:468 (describes the concept of the Eidophor).
    Further Reading
    E.H.Baumann, 1953, "The Fischer large screen projection system", Journal of Society of Motion Picture and Television Engineers 60:344.
    A.Robertson, 1976, "Projection television. A review of current practice in large-screen projectors", Wireless World 47.
    KF

    Biographical history of technology > Fischer, E.

  • 126 Hammond, Robert

    [br]
    b. 19 January 1850 Waltham Cross, England
    d. 5 August 1915 London, England
    [br]
    English engineer who established many of the earliest public electricity-supply systems in Britain.
    [br]
    After an education at Nunhead Grammar School, Hammond founded engineering businesses in Middlesbrough and London. Obtaining the first concession from the Anglo- American Brush Company for the exploitation of their system in Britain, he was instrumental in popularizing the Brush arc-lighting generator. Schemes using this system, which he established at Chesterfield, Brighton, Eastbourne and Hastings in 1881–2, were the earliest public electricity-supply ventures in Britain. On the invention of the incandescent lamp, high-voltage Brush dynamos were employed to operate both arc and incandescent lamps. The limitations of this arrangement led Hammond to become the sole agent for the Ferranti alternator, introduced in 1882. Commencing practice as a consulting engineer, Hammond was responsible for the construction of many electricity works in the United Kingdom, of which the most notable were those at Leeds, Hackney (London) and Dublin, in addition to many abroad. Appreciating the need for trained engineers for the new electrical industry and profession then being created, in 1882 he established the Hammond Electrical Engineering College. Later, in association with Francis Ince, he founded Faraday House, a training school that pioneered the concept of "sandwich courses" for engineers. Between 1883 and 1903 he paid several visits to the United States to study developments in electric traction and was one of the advisers to the Postmaster General on the acquisition of the telephone companies.
    [br]
    Bibliography
    1884, Electric Light in Our Homes, London (one of the first detailed accounts of electric lighting).
    1897, "Twenty five years" developments in central stations', Electrical Review 41:683–7 (surveys nineteenth-century public electricity supply).
    Further Reading
    F.W.Lipscomb, 1973, The Wise Men of the Wires, London (the story of Faraday House). B.Bowers, 1985, biography, in Dictionary of Business Biography, Vol. III, ed. J.Jeremy, London, pp. 21–2 (provides an account of Hammond's business ventures). J.D.Poulter, 1986, An Early History of 'Electricity Supply, London.
    GW

    Biographical history of technology > Hammond, Robert

  • 127 Lubetkin, Berthold

    [br]
    b. 12 December 1901 Tiflis, Georgia
    d. 23 October 1990 Bristol, England
    [br]
    Soviet émigré architect who, through the firm of Tecton, wins influential in introducing architecture of the modern international style into England.
    [br]
    Lubetkin studied in Moscow, where in the years immediately after 1917 he met Vesnin and Rodchenko and absorbed the contemporary Constructivist ideas. He then moved on to Paris and worked with Auguste Perret, coming in on the ground floor of the modern movement. He went to England in 1930 and two years later formed the Tecton group, leading six young architects who had newly graduated from the Architectural Association in London. Lubetkin's early commissions in England were for animals rather than humans. He designed the gorilla house (1932) at the Regent's Park Zoological Gardens, after which came his award-winning Penguin Pool there, a sculptural blend of curved planes in reinforced concrete. He also worked at Whipsnade and at Dudley Zoo. The name of Tecton had quickly became synonymous with modern methods of design and structure, particularly the use of reinforced concrete; such work was not common in the 1930s in Britain. In 1938–9 the firm was responsible for another pace-setting design, the Finsbury Health Centre in London. Tecton was disbanded during the Second World War, and although it was reformed in the late 1940s it did not recover its initiative in leading the field of modern work. Lubetkin lived on to be an old man but his post-war career did not fulfil his earlier promise and brilliance. He was appointed Architect-Planner of the Peterlee New Town in 1948, but he resigned after a few years and no other notable commissions materialized. In 1982 the Royal Institute of British Architects belatedly remembered him with the award of their Gold Medal.
    [br]
    Principal Honours and Distinctions
    RIBA Gold Medal 1982.
    Further Reading
    John Allan, 1992, Architecture and the Tradition of Progress, RIBA publications. R.Furneaux Jordan, 1955, "Lubetkin", Architectural Review 36–44.
    P.Coe and M.Reading, 1981, Lubetkin and Tecton, University of Bristol Arts Council.
    DY

    Biographical history of technology > Lubetkin, Berthold

  • 128 Momma (Mumma), Jacob

    SUBJECT AREA: Metallurgy
    [br]
    b. early seventeenth century Germany
    d. 1679 England
    [br]
    German (naturalized English) immigrant skilled in the manufacture and production of brass, who also mined and smelted copper.
    [br]
    The protestant Momma family were well known in Aachen, the seventeenth-century centre of German brass production. Subjected to religious pressures, some members of the family moved to nearby Stolberg, while others migrated to Sweden, starting brass manufacture there. Jacob travelled to England, establishing brassworks with two German partners at Esher in Surrey in 1649; theirs was the only such works in England to survive for more than a few years during the seventeenth century.
    Jacob, naturalized English by 1660, is often referred to in England as Mummer or another variant of his name. He became respected, serving as a juror, and was appointed a constable in 1661. During the 1660s Momma was engaged in mining copper at Ecton Hill, Staffordshire, where he was credited with introducing gunpowder to English mining technology. He smelted his ore at works nearby in an effort to secure copper supplies, but the whole project was brief and unprofitable.
    The alternative imported copper required for his brass came mainly from Sweden, its high cost proving a barrier to viable English brass production. In 1662 Momma petitioned Parliament for some form of assistance. A year later he pleaded further for higher tariffs against brass-wire imports as protection from the price manipulation of Swedish exporters. He sought support from the Society of Mineral and Battery Works, the Elizabethan monopoly (see Dockwra, William) claiming jurisdiction over the country's working of brass, but neither petition succeeded. Despite these problems with the high cost of copper supplies in England, Momma continued his business and is recorded as still paying hearth tax on his twenty brass furnaces up to 1664. Although these were abandoned before his death and he claimed to have lost £6,000 on his brassworks, his wire mills survived him for a few years under the management of his son.
    [br]
    Further Reading
    J.Morton, 1985, The rise of the modern copper and brass industry: 1690 to 1750, unpublished thesis: University of Birmingham, 16–25.
    J.Day, 1984, "The continental origins of Bristol Brass", Industrial Archaeology Review 8/1: 32–56.
    John Robey, 1969, "Ecton copper mines in the seventeenth century", Bulletin of the Peak District Mines Historic Society 4(2):145–55 (the most comprehensive published account).
    JD

    Biographical history of technology > Momma (Mumma), Jacob

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