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  • 1 Fellow of the Royal Historical Society

    General subject: FR Hist S

    Универсальный русско-английский словарь > Fellow of the Royal Historical Society

  • 2 Institute for Historical Review

    General subject: IHR

    Универсальный русско-английский словарь > Institute for Historical Review

  • 3 Institute of Historical Research

    General subject: IHR

    Универсальный русско-английский словарь > Institute of Historical Research

  • 4 Royal Commission on the Ancient and Historical Monuments of Scotland

    General subject: RCAHMS

    Универсальный русско-английский словарь > Royal Commission on the Ancient and Historical Monuments of Scotland

  • 5 Royal Historical Society

    2) Abbreviation: RHS

    Универсальный русско-английский словарь > Royal Historical Society

  • 6 gestalten

    I v/t
    1. (formen) form, shape; Bildhauerei etc.: model; kreatives Gestalten creative expression
    2. schöpferisch: create, produce, make; ein Thema dramatisch / poetisch gestalten give dramatic / poetic form to a subject, dramatize a subject / write a poem on a subject
    3. (entwerfen) design (auch TECH.); (Park etc.) lay out; (Raum etc.) decorate; (einrichten) arrange; (Schaufenster) dress; moderner gestalten modernize
    4. (Fest etc.) arrange, organize; eine Feier etc. abwechslungsreich gestalten bring some variety to the celebrations; den Unterricht / ein Seminar etc. interessanter gestalten make lessons / a seminar etc. more interesting; eine Notlage etc. erträglich gestalten not let a crisis etc. get out of hand
    II v/refl take shape; (sich entwickeln) develop; sich gut etc. gestalten go ( oder turn out) well etc.; sich zu einem Erfolg etc. gestalten prove, turn out (to be), be; es gestaltete sich schwierig it turned out to be difficult
    * * *
    to form; to fashion; to shape; to frame; to configure; to cast; to pattern; to mold
    * * *
    ge|stạl|ten [gə'ʃtaltn] ptp gesta\#ltet
    1. vt
    Text, Wohnung to lay out; Programm, Abend, Layout to arrange; Arbeitsplatz, Benutzeroberfläche to organize; Arbeitszeit, Freizeit, Abend to organize, to structure; Schaufenster to dress; Zukunft, Beziehung, Gesellschaft, Politik to shape

    etw rationeller/effizienter/flexibler gestalten — to make sth more rational/efficient/flexible

    ich gestalte mein Leben so, wie ich will — I live or organize my life the way I want to

    etw interessanter/moderner etc gestalten — to make sth more interesting/modern etc

    der Umbau wurde nach den ursprünglichen Plänen gestaltetthe conversion was carried out in accordance with the original plans

    einen historischen Stoff zu einem Roman gestaltento fashion or mould (Brit) or mold (US) a historical subject into a novel

    2. vr
    (= werden) to become; (= sich entwickeln) to turn or develop (zu into)

    sich schwierig gestalten (Verhandlungen etc)to run into difficulties

    * * *
    (to put into the required state: The footballers trained hard in order to condition themselves for the match.) condition
    * * *
    ge·stal·ten *
    [gəˈʃtaltn̩]
    I. vt
    etw irgendwie \gestalten
    1. (einrichten) to design
    einen Garten/einen Gartenteich/eine Terrasse \gestalten to lay out [or plan] a garden/a garden pond/a terrace
    ein Schaufenster \gestalten to dress a shop window
    etw neu/anders \gestalten to redesign sth
    2. (darbieten, präsentieren) to arrange
    ein Programm/einen Abend/Unterricht \gestalten to organize [or arrange] a programme [or AM -am]/an evening/a lesson [or lessons]
    einen Text \gestalten to formulate a text
    3. (organisieren) to arrange, to organize
    4. ARCHIT (konstruieren) to build
    eine Terrasse \gestalten to lay out a terrace
    einen Einrichtungsgegenstand/einen Gebrauchsgegenstand \gestalten to design a fitting [or pl furnishings]/an object of use
    ein Kunstwerk \gestalten to design a piece of art
    II. vr (geh)
    sich akk irgendwie \gestalten to turn out [or prove] to be somehow
    * * *
    1.
    transitives Verb fashion, shape, form < vase, figure, etc.>; design <furnishings, stage-set, etc.>; lay out < public gardens>; dress < shop window>; mould, shape <character, personality>; arrange < party, conference, etc.>; frame <sentence, reply, etc.>
    2.
    reflexives Verb turn out

    sich schwieriger gestalten als erwartetturn out or prove to be more difficult than had been expected

    * * *
    A. v/t
    1. (formen) form, shape; Bildhauerei etc: model;
    kreatives Gestalten creative expression
    2. schöpferisch: create, produce, make;
    ein Thema dramatisch/poetisch gestalten give dramatic/poetic form to a subject, dramatize a subject/write a poem on a subject
    3. (entwerfen) design ( auch TECH); (Park etc) lay out; (Raum etc) decorate; (einrichten) arrange; (Schaufenster) dress;
    4. (Fest etc) arrange, organize;
    abwechslungsreich gestalten bring some variety to the celebrations;
    den Unterricht/ein Seminar etc
    interessanter gestalten make lessons/a seminar etc more interesting;
    erträglich gestalten not let a crisis etc get out of hand
    B. v/r take shape; (sich entwickeln) develop;
    sich gut etc
    gestalten go ( oder turn out) well etc;
    sich zu einem Erfolg etc
    gestalten prove, turn out (to be), be;
    es gestaltete sich schwierig it turned out to be difficult
    * * *
    1.
    transitives Verb fashion, shape, form <vase, figure, etc.>; design <furnishings, stage-set, etc.>; lay out < public gardens>; dress < shop window>; mould, shape <character, personality>; arrange <party, conference, etc.>; frame <sentence, reply, etc.>
    2.
    reflexives Verb turn out

    sich schwieriger gestalten als erwartetturn out or prove to be more difficult than had been expected

    * * *
    v.
    to configure v.
    to construct v.
    to fashion v.
    to form v.
    to frame v.
    to mold v.
    to mould (out of) v.
    to shape v.

    Deutsch-Englisch Wörterbuch > gestalten

  • 7 историческая тема

    General subject: historical subject

    Универсальный русско-английский словарь > историческая тема

  • 8 Pliny the Elder (Gaius Plinius Secundus)

    SUBJECT AREA: Metallurgy
    [br]
    b. c. 23 AD Como, Italy
    d. 25 August 79 AD near Pompeii, Italy
    [br]
    Roman encyclopedic writer on the natural world.
    [br]
    Pliny was well educated in Rome, and for ten years or so followed a military career with which he was able to combine literary work, writing especially on historical subjects. He completed his duties c. 57 AD and concentrated on writing until he resumed his official career in 69 AD with administrative duties. During this last phase he began work on his only extant work, the thirty-seven "books" of his Historia Naturalis (Natural History), each dealing with a broad subject such as astronomy, geography, mineralogy, etc. His last post was the command of the fleet based at Misenum, which came to an end when he sailed too near Vesuvius during the eruption that engulfed Pompeii and he was overcome by the fumes.
    Pliny developed an insatiable curiosity about the natural world. Unlike the Greeks, the Romans made few original contributions to scientific thought and observation, but some made careful compilations of the learning and observations of Greek scholars. The most notable and influential of these was the Historia Naturalis. To the ideas about the natural world gleaned from earlier Greek authors, he added information about natural history, mineral resources, crafts and some technological processes, such as the extraction of metals from their ores, reported to him from the corners of the Empire. He added a few observations of his own, noted during travels on his official duties. Not all the reports were reliable, and the work often presents a tangled web of fact and fable. Gibbon described it as an immense register in which the author has "deposited the discoveries, the arts, and the errors of mankind". Pliny was indefatigable in his relentless note-taking, even dictating to his secretary while dining.
    During the Dark Ages and early Middle Ages in Western Europe, Pliny's Historia Naturalis was the largest known collection of facts about the natural world and was drawn upon freely by a succession of later writers. Its influence survived the influx into Western Europe, from the twelfth century, of translations of the works of Greek and Arab scholars. After the invention of printing in the middle of the fifteenth century, Pliny was the first work on a scientific subject to be printed, in 1469. Many editions followed and it may still be consulted with profit for its insights into technical knowledge and practice in the ancient world.
    [br]
    Bibliography
    The standard Latin text with English translation is that edited by H.Rackham et al.(1942– 63, Loeb Classical Library, London: Heinemann, 10 vols). The French version is by A.
    Ernout et al. (1947–, Belles Lettres, Paris).
    Further Reading
    The editions mentioned above include useful biographical and other details. For special aspects of Pliny, see K.C.Bailey, 1929–32, The Elder Pliny's Chapters on Chemical Subjects, London, 2 vols.
    LRD

    Biographical history of technology > Pliny the Elder (Gaius Plinius Secundus)

  • 9 Blackett, William Cuthbert

    [br]
    b. 18 November 1859 Durham, England
    d. 13 June 1935 Durham, England
    [br]
    English mine manager, expert in preventing mine explosions and inventor of a coal-face conveyor.
    [br]
    After leaving Durham college of Physical Science and having been apprenticed in different mines, he received the certificate for colliery managers and subsequently, in 1887, was appointed Manager of all the mines of Charlaw and Sacriston collieries in Durham. He remained in this position for the rest of his working life.
    Frequent explosions in mines led him to investigate the causes. He was among the first to recognize the role contributed by coal-dust on mine roads, pioneered the use of inert rock-or stone-dust to render the coal-dust harmless and was the originator of many technical terms on the subject. He contributed many papers on explosion and was appointed a member of many advisory committees on prevention measures. A liquid-air rescue apparatus, designed by him and patented in 1910, was installed in various parts of the country.
    Blackett also developed various new devices in mining machinery. He patented a wire-rope socket which made use of a metal wedge; invented a rotary tippler driven by frictional contact instead of gearing and which stopped automatically; and he designed a revolving cylindrical coal-washer, which also gained interest among German mining engineers. His most important invention, the first successful coal-face conveyor, was patented in 1902. It was driven by compressed air and consisted of a trough running along the length of the race through which ran an endless scraper chain. Thus fillers cast the coal into the trough, and the scraper chain drew it to the main gate to be loaded into trams.
    [br]
    Principal Honours and Distinctions
    Knight of Grace of the Order of St John of Jerusalem. OBE. Honorary MSc University of Durham; Honorary LLD University of Birmingham. Honorary Member, Institution of Mining and Metallurgy. Honorary Member, American Institute of Mining and Metallurgical Engineers. Royal Humane Society Medal.
    Further Reading
    Transactions of the Institution of Mining Engineers (1934–5) 89:339–41.
    Mining Association of Great Britain (ed.), 1924, Historical Review of Coal Mining London (describes early mechanical devices for the extraction of coal).
    WK

    Biographical history of technology > Blackett, William Cuthbert

  • 10 Boot, Henry Albert Howard

    [br]
    b. 29 July 1917 Birmingham, England
    d. 8 February 1983 Cambridge, England
    [br]
    English physicist who, with John Randall, invented the cavity magnetron used in radar systems.
    [br]
    After secondary education at King Edward School, Birmingham, Boot studied physics at Birmingham University, obtaining his BSc in 1938 and PhD in 1941. With the outbreak of the Second World War, he became involved with Randall and others in the development of a source of microwave power suitable for use in radar transmitters. Following unsuccessful attempts to use klystrons, they turned to investigation of the magnetron, and by adding cavity resonators they obtained useful power on 21 February 1940 at a wavelength of 9.8 cm. By May a cavity magnetron radar system had been constructed at TRE, Swanage, and in September submarine periscopes were detected at a range of 7 miles (11 km).
    In 1943 the physics department at Birmingham resumed its research in atomic physics and Boot moved to BTH at Rugby to continue development of magnetrons, but in 1945 he returned to Birmingham as Nuffield Research Fellow and helped construct the cyclotron there. Three years later he took up a post as a Principal Scientific Officer (PSO) at the Services Electronic Research Laboratories at Baldock, Hertfordshire, becoming a Senior PSO in 1954. He remained there until his retirement in 1977, variously carrying out research on microwaves, magnetrons, plasma physics and lasers.
    [br]
    Principal Honours and Distinctions
    Royal Society of Arts Thomas Gray Memorial Prize 1943. Royal Commission Inventors Award 1946. Franklin Institute John Price Wetherill Medal 1958. City of Pennsylvania John Scott Award 1959. (All jointly with Randall.)
    Bibliography
    1976, with J.T.Randall, "Historical notes on the cavity magnetron", Transactions of the Institute of Electrical and Electronics Engineers ED-23: 724 (provides an account of their development of the cavity magnetron).
    Further Reading
    E.H.Dix and W.H.Aldous, 1966, Microwave Valves.
    KF

    Biographical history of technology > Boot, Henry Albert Howard

  • 11 Burks, Arthur Walter

    [br]
    b. 13 October 1915 Duluth, Minnesota, USA
    [br]
    American engineer involved in the development of the ENIAC and Whirlwind computers.
    [br]
    After obtaining his AB degree from De Pere University, Wisconsin (1937), and his AM and PhD from the University of Michigan (1938 and 1941, respectively), Burks carried out research at the Moore School of Engineering, University of Pennsylvania, during the Second World War, and at the same time taught philosophy in another department. There, with Herman Goldstine, he was involved in the construction of ENIAC (the Electronic Numerical Integrator and Computer).
    In 1946 he took a post as Assistant Professor of Engineering at Michigan University, and subsequently became Associate Professor (1948) and Full Professor (1954). Between 1946 and 1948 he was also associated with the computer activities of John von Neumann at the Institute of Advanced Studies, Princeton, and was involved in the development of the Whirlwind I computer (the first stored-program computer) by Jay Forrester at the Massachusetts Institute of Technology. From 1948 until 1954 he was a consultant for the Burroughs Corporation and also contributed to the Oak Ridge computer ORACLE. He was Chairman of the Michigan University Department of Communications Science in 1967–71 and at various times was Visiting Professor at Harvard University and the universities of Illinois and Stanford. In 1975 he became Editor of the Journal of Computer and System Sciences.
    [br]
    Bibliography
    1946. "Super electronic computing machine", Electronics Industry 62.
    1947. "Electronic computing circuits of the ENIAC", Proceedings of the Institute of Radio Engineers 35:756.
    1980, "From ENIAC to the stored program computer. Two revolutions in computing", in N.Metropolis, J.Hewlett \& G.-C.Rota (eds), A History of Computing in the 20th Century, London: Academic Press.
    Further Reading
    J.W.Corlada, 1987, Historical Dictionary of Data Processing (provides further details of Burk's career).
    KF

    Biographical history of technology > Burks, Arthur Walter

  • 12 By, Lieutenant-Colonel John

    SUBJECT AREA: Canals
    [br]
    b. 7 (?) August 1779 Lambeth, London, England
    d. 1 February 1836 Frant, Sussex, England
    [br]
    English Engineer-in-Charge of the construction of the Rideau Canal, linking the St Lawrence and Ottawa Rivers in Canada.
    [br]
    Admitted in 1797 as a Gentleman Cadet in the Royal Military Academy at Woolwich, By was commissioned on 1 August 1799 as a second lieutenant in the Royal Artillery, but was soon transferred to the Royal Engineers. Posted to Plymouth upon the development of the fortifications, he was further posted to Canada, arriving there in August 1802.
    In 1803 By was engaged in canal work, assisting Captain Bruyères in the construction of a short canal (1,500 ft (460 m) long) at the Cascades on the Grand, now the Ottawa, River. In 1805 he was back at the Cascades repairing ice damage caused during the previous winter. He was promoted Captain in 1809. Meanwhile he worked on the fortifications of Quebec and in 1806–7 he built a scale model of the Citadel, which is now in the National War Museum of Canada. He returned to England in 1810 and served in Portugal in 1811. Back in England at the end of the year, he was appointed Royal Engineer Officer in charge at the Waltham Abbey Gunpowder Works on 1 January 1812 and later planned the new Small Arms Factory at Enfield; both works were on the navigable River Lee.
    In the post-Napoleonic period Major By, as he then was, retired on half-pay but was promoted to Lieu tenant-Colonel on 2 December 1824. Eighteen months later, in March 1826, he returned to Canada on active duty to build the Rideau Canal. This was John By's greatest work. It was conceived after the American war of 1812–14 as a connection for vessels to reach Kingston and the Great Lakes from Montreal while avoiding possible attack from the United States forces. Ships would pass up the Ottawa River using the already-constructed locks and bypass channels and then travel via a new canal cut through virgin forest southwards to the St Lawrence at Kingston. By based his operational headquarters at the Ottawa River end of the new works and in a forest clearing he established a small settlement. Because of the regard in which By was held, this settlement became known as By town. In 1855, long after By's death, the settlement was designated by Queen Victoria as capital of United Canada (which was to become a self-governing Dominion in 1867) and renamed Ottawa; as a result of the presence of the national government, the growth of the town accelerated greatly.
    Between 1826–7 and 1832 the Rideau Canal was constructed. It included the massive engineering works of Jones Falls Dam (62 ft 6 in. (19 m) high) and 47 locks. By exercised an almost paternal care over those employed under his direction. The canal was completed in June 1832 at a cost of £800,000. By was summoned back to London to face virulent and unjust criticism from the Treasury. He was honoured in Canada but vilified by the British Government.
    [br]
    Further Reading
    R.F.Leggett, 1982, John By, Historical Society of Canada.
    —1976, Canals of Canada, Newton Abbot: David \& Charles.
    —1972, Rideau Waterway, Toronto: University of Toronto Press.
    Bernard Pothier, 1978, "The Quebec Model", Canadian War Museum Paper 9, Ottawa: National Museums of Canada.
    JHB

    Biographical history of technology > By, Lieutenant-Colonel John

  • 13 Coolidge, William David

    SUBJECT AREA: Electricity, Metallurgy
    [br]
    b. 23 October 1873 Hudson, Massachusetts, USA
    d. 3 February 1975 New York, USA
    [br]
    American physicist and metallurgist who invented a method of producing ductile tungsten wire for electric lamps.
    [br]
    Coolidge obtained his BS from the Massachusetts Institute of Technology (MIT) in 1896, and his PhD (physics) from the University of Leipzig in 1899. He was appointed Assistant Professor of Physics at MIT in 1904, and in 1905 he joined the staff of the General Electric Company's research laboratory at Schenectady. In 1905 Schenectady was trying to make tungsten-filament lamps to counter the competition of the tantalum-filament lamps then being produced by their German rival Siemens. The first tungsten lamps made by Just and Hanaman in Vienna in 1904 had been too fragile for general use. Coolidge and his life-long collaborator, Colin G. Fink, succeeded in 1910 by hot-working directly dense sintered tungsten compacts into wire. This success was the result of a flash of insight by Coolidge, who first perceived that fully recrystallized tungsten wire was always brittle and that only partially work-hardened wire retained a measure of ductility. This grasped, a process was developed which induced ductility into the wire by hot-working at temperatures below those required for full recrystallization, so that an elongated fibrous grain structure was progressively developed. Sintered tungsten ingots were swaged to bar at temperatures around 1,500°C and at the end of the process ductile tungsten filament wire was drawn through diamond dies around 550°C. This process allowed General Electric to dominate the world lamp market. Tungsten lamps consumed only one-third the energy of carbon lamps, and for the first time the cost of electric lighting was reduced to that of gas. Between 1911 and 1914, manufacturing licences for the General Electric patents had been granted for most of the developed work. The validity of the General Electric monopoly was bitterly contested, though in all the litigation that followed, Coolidge's fibering principle was upheld. Commercial arrangements between General Electric and European producers such as Siemens led to the name "Osram" being commonly applied to any lamp with a drawn tungsten filament. In 1910 Coolidge patented the use of thoria as a particular additive that greatly improved the high-temperature strength of tungsten filaments. From this development sprang the technique of "dispersion strengthening", still being widely used in the development of high-temperature alloys in the 1990s. In 1913 Coolidge introduced the first controllable hot-cathode X-ray tube, which had a tungsten target and operated in vacuo rather than in a gaseous atmosphere. With this equipment, medical radiography could for the first time be safely practised on a routine basis. During the First World War, Coolidge developed portable X-ray units for use in field hospitals, and between the First and Second World Wars he introduced between 1 and 2 million X-ray machines for cancer treatment and for industrial radiography. He became Director of the Schenectady laboratory in 1932, and from 1940 until 1944 he was Vice-President and Director of Research. After retirement he was retained as an X-ray consultant, and in this capacity he attended the Bikini atom bomb trials in 1946. Throughout the Second World War he was a member of the National Defence Research Committee.
    [br]
    Bibliography
    1965, "The development of ductile tungsten", Sorby Centennial Symposium on the History of Metallurgy, AIME Metallurgy Society Conference, Vol. 27, ed. Cyril Stanley Smith, Gordon and Breach, pp. 443–9.
    Further Reading
    D.J.Jones and A.Prince, 1985, "Tungsten and high density alloys", Journal of the Historical Metallurgy Society 19(1):72–84.
    ASD

    Biographical history of technology > Coolidge, William David

  • 14 Cort, Henry

    SUBJECT AREA: Metallurgy
    [br]
    b. 1740 Lancaster, England
    d. 1800 Hampstead, near London, England
    [br]
    English ironmaster, inventor of the puddling process and grooved rollers for forming iron into bars.
    [br]
    His father was a mason and brickmaker but, anxious to improve himself, Cort set up in London in 1765 as a navy agent, said to have been a profitable business. He recognized that, at that time, the conversion of pig iron to malleable or wrought iron, which was needed in increasing quantities as developments in industry and mechanical engineering gathered pace, presented a bottleneck in the ironmaking process. The finery hearth was still in use, slow and inefficient and requiring the scarce charcoal as fuel. To tackle this problem, Cort gave up his business and acquired a furnace and slitting mill at Fontley, near Fareham in Hampshire. In 1784 he patented his puddling process, by which molten pig iron on the bed of a reverberatory furnace was stirred with an iron bar and, by the action of the flame and the oxygen in the air, the carbon in the pig iron was oxidized, leaving nearly pure iron, which could be forged to remove slag. In this type of furnace, the fuel and the molten iron were separated, so that the cheaper coal could be used as fuel. It was the stirring action with the iron bar that gave the name "puddling" to the process. Others had realized the problem and reached a similar solution, notably the brothers Thomas and George Cranage, but only Cort succeeded in developing a commercially viable process. The laborious hammering of the ball of iron thus produced was much reduced by an invention of the previous year, 1783. This too was patented. The iron was passed between grooved rollers to form it into bars. Cort entered into an agreement with Samuel Jellico to set up an ironworks at Gosport to exploit his inventions. Samuel's father Adam, Deputy Paymaster of the Navy, advanced capital for this venture, Cort having expended much of his own resources in the experimental work that preceded his inventions. However, it transpired that Jellico senior had, unknown to Cort, used public money to advance the capital; the Admiralty acted to recover the money and Cort lost heavily, including the benefits from his patents. Rival ironmasters were quick to pillage the patents. In 1790, and again the following year, Cort offered unsuccessfully to work for the military. Finally, in 1794, at the instigation of the Prime Minister, William Pitt the Younger, Cort was paid a pension of £200 per year in recognition of the value of his improvements in the technology of ironmaking, although this was reduced by deductions to £160. After his death, the pension to his widow was halved, while some of his children received a pittance. Without the advances made by Cort, however, the iron trade could not have met the rapidly increasing demand for iron during the industrial revolution.
    [br]
    Bibliography
    1787, A Brief State of Facts Relative to the New Method of Making Bar Iron with Raw Pit Coal and Grooved Rollers (held in the Science Museum Library archive collection).
    Further Reading
    H.W.Dickinson, 1941, "Henry Cort's bicentary", Transactions of the Newcomen Society 21: 31–47 (there are further references to grooved rollers and the puddling process in Vol. 49 of the same periodical (1978), on pp. 153–8).
    R.A.Mott, 1983, Henry Con, the Great Finery Creator of Puddled Iron, Sheffield: Historical Metallurgy Society.
    LRD

    Biographical history of technology > Cort, Henry

  • 15 Cushing, Harvey Williams

    SUBJECT AREA: Medical technology
    [br]
    b. 8 April 1869 Cleveland, Ohio, USA
    d. 7 October 1939 New Haven, Connecticut, USA
    [br]
    American neurosurgeon and innovator of antihaemorrhagic techniques including the use of electrocoagulation.
    [br]
    Cushing graduated in medicine from Harvard University in 1895, having already acquired an arts degree at Yale (1891). He held posts in Boston and at Johns Hopkins Hospital, Baltimore, from 1897 until 1890, and then travelled abroad. After studying in Germany and England he returned to Baltimore to become Assistant Professor of Surgery in 1903 working under W.S. Halsted, a post he held until 1912. In 1905 he started specializing in neurosurgery, undertaking much experimental work and developing new instruments and techniques, such as spinal anaesthesia and in particular the electrosurgical methods pioneered by W.T. Bovie.
    Returning to Harvard as Professor of Surgery, he established a renowned school of neurosurgery. He retired from Harvard in 1932, becoming Stirling Professor of Neurosurgery until 1937 and then Director of Studies in the History of Medicine at Yale.
    His researches in neurophysiology were extensive and the eponymous pituitary syndrome is only one of a large number of discoveries in the field. He was awarded numerous honours, both American and international. He was a noted bibliophile, particularly of medical books and manuscripts, and his own extensive collection was bequeathed to Yale, becoming an important part of the Historical Medical Library.
    [br]
    Bibliography
    1928, "Electrosurgery as an aid to the removal of intracranial tumours", Surg. Gynec. Obstet.
    Further Reading
    J.F.Fulton, 1946, Harvey Cushing: A Biography.
    MG

    Biographical history of technology > Cushing, Harvey Williams

  • 16 De Forest, Lee

    [br]
    b. 26 August 1873 Council Bluffs, Iowa, USA
    d. 30 June 1961 Hollywood, California, USA
    [br]
    American electrical engineer and inventor principally known for his invention of the Audion, or triode, vacuum tube; also a pioneer of sound in the cinema.
    [br]
    De Forest was born into the family of a Congregational minister that moved to Alabama in 1879 when the father became President of a college for African-Americans; this was a position that led to the family's social ostracism by the white community. By the time he was 13 years old, De Forest was already a keen mechanical inventor, and in 1893, rejecting his father's plan for him to become a clergyman, he entered the Sheffield Scientific School of Yale University. Following his first degree, he went on to study the propagation of electromagnetic waves, gaining a PhD in physics in 1899 for his thesis on the "Reflection of Hertzian Waves from the Ends of Parallel Wires", probably the first US thesis in the field of radio.
    He then joined the Western Electric Company in Chicago where he helped develop the infant technology of wireless, working his way up from a modest post in the production area to a position in the experimental laboratory. There, working alone after normal working hours, he developed a detector of electromagnetic waves based on an electrolytic device similar to that already invented by Fleming in England. Recognizing his talents, a number of financial backers enabled him to set up his own business in 1902 under the name of De Forest Wireless Telegraphy Company; he was soon demonstrating wireless telegraphy to interested parties and entering into competition with the American Marconi Company.
    Despite the failure of this company because of fraud by his partners, he continued his experiments; in 1907, by adding a third electrode, a wire mesh, between the anode and cathode of the thermionic diode invented by Fleming in 1904, he was able to produce the amplifying device now known as the triode valve and achieve a sensitivity of radio-signal reception much greater than possible with the passive carborundum and electrolytic detectors hitherto available. Patented under the name Audion, this new vacuum device was soon successfully used for experimental broadcasts of music and speech in New York and Paris. The invention of the Audion has been described as the beginning of the electronic era. Although much development work was required before its full potential was realized, the Audion opened the way to progress in all areas of sound transmission, recording and reproduction. The patent was challenged by Fleming and it was not until 1943 that De Forest's claim was finally recognized.
    Overcoming the near failure of his new company, the De Forest Radio Telephone Company, as well as unsuccessful charges of fraudulent promotion of the Audion, he continued to exploit the potential of his invention. By 1912 he had used transformer-coupling of several Audion stages to achieve high gain at radio frequencies, making long-distance communication a practical proposition, and had applied positive feedback from the Audion output anode to its input grid to realize a stable transmitter oscillator and modulator. These successes led to prolonged patent litigation with Edwin Armstrong and others, and he eventually sold the manufacturing rights, in retrospect often for a pittance.
    During the early 1920s De Forest began a fruitful association with T.W.Case, who for around ten years had been working to perfect a moving-picture sound system. De Forest claimed to have had an interest in sound films as early as 1900, and Case now began to supply him with photoelectric cells and primitive sound cameras. He eventually devised a variable-density sound-on-film system utilizing a glow-discharge modulator, the Photion. By 1926 De Forest's Phonofilm had been successfully demonstrated in over fifty theatres and this system became the basis of Movietone. Though his ideas were on the right lines, the technology was insufficiently developed and it was left to others to produce a system acceptable to the film industry. However, De Forest had played a key role in transforming the nature of the film industry; within a space of five years the production of silent films had all but ceased.
    In the following decade De Forest applied the Audion to the development of medical diathermy. Finally, after spending most of his working life as an independent inventor and entrepreneur, he worked for a time during the Second World War at the Bell Telephone Laboratories on military applications of electronics.
    [br]
    Principal Honours and Distinctions
    Institute of Electronic and Radio Engineers Medal of Honour 1922. President, Institute of Electronic and Radio Engineers 1930. Institute of Electrical and Electronics Engineers Edison Medal 1946.
    Bibliography
    1904, "Electrolytic detectors", Electrician 54:94 (describes the electrolytic detector). 1907, US patent no. 841,387 (the Audion).
    1950, Father of Radio, Chicago: WIlcox \& Follett (autobiography).
    De Forest gave his own account of the development of his sound-on-film system in a series of articles: 1923. "The Phonofilm", Transactions of the Society of Motion Picture Engineers 16 (May): 61–75; 1924. "Phonofilm progress", Transactions of the Society of Motion Picture Engineers 20:17–19; 1927, "Recent developments in the Phonofilm", Transactions of the Society of Motion Picture Engineers 27:64–76; 1941, "Pioneering in talking pictures", Journal of the Society of Motion Picture Engineers 36 (January): 41–9.
    Further Reading
    G.Carneal, 1930, A Conqueror of Space (biography).
    I.Levine, 1964, Electronics Pioneer, Lee De Forest (biography).
    E.I.Sponable, 1947, "Historical development of sound films", Journal of the Society of Motion Picture Engineers 48 (April): 275–303 (an authoritative account of De Forest's sound-film work, by Case's assistant).
    W.R.McLaurin, 1949, Invention and Innovation in the Radio Industry.
    C.F.Booth, 1955, "Fleming and De Forest. An appreciation", in Thermionic Valves 1904– 1954, IEE.
    V.J.Phillips, 1980, Early Radio Detectors, London: Peter Peregrinus.
    KF / JW

    Biographical history of technology > De Forest, Lee

  • 17 Gilbert, John

    [br]
    b. 1724 Cotton Hall, Cotton, Staffordshire, England
    d. 3 August 1795 Worsley, Lancashire, England
    [br]
    English land agent, mining engineer and canal entrepreneur.
    [br]
    Younger son of a gentleman farmer, Gilbert was apprenticed to Matthew Boulton, a buckle maker of Birmingham and father of the Matthew Boulton who was associated with James Watt. He also gained mining experience. Through the influence of his older brother, Thomas Gilbert, he became Land Agent to the Duke of Bridgewater (Francis Egerton) for the Worsley estate. He proposed extensions to the underground waterway system and also made a preliminary survey for a canal from Worsley to Salford, a project which Brindley joined as Assistant Engineer. Gilbert was therefore the prime mover in the construction of the Bridgewater Canal, which received its Act in 1759. He then collected evidence for the second Act to permit construction of the aqueduct across the Irwell at Barton. He was involved in a consortium with his brother Thomas and Earl Gower to develop the Earl's East Shropshire mines and to build the Shrewsbury and the Shropshire Coal Canals. He also excavated the Speedwell Mine at Castleton in Derbyshire between 1774 and 1781 and constructed the underground canal to serve the workings. With his brother, he was involved in the promotion of the Trent \& Mersey Canal and was a shareholder in the undertaking. Among his other entrepreneurial activities, he entered the canal-carrying business. His last work was beginning the underground inclined planes at Worsley, but these were not completed until after his death. His important place in the historical development of the inland navigational system in England has been very much overlooked.
    [br]
    Further Reading
    P.Lead, 1990, Agents of Revolution: John and Thomas Gilbert-Entrepreneurs, Keele University Centre for Local History.
    JHB

    Biographical history of technology > Gilbert, John

  • 18 Halske, Johann Georg

    [br]
    b. 30 July 1814 Hamburg, Germany
    d. 18 March 1890 Berlin, Germany
    [br]
    German engineer who introduced precision methods into the manufacture of electrical equipment; co-founder of Siemens \& Halske.
    [br]
    Halske moved to Berlin when he was a young man, and in 1844 was working for the university, at first independently and then jointly with F. Bötticher, developing and building electric medical appliances. In 1845 he met Werner von Siemens and together they became founder members of the Berlin Physics Society. It was in Halske's workshop that Siemens, assisted by the skill of the former, was able to work out his inventions in telegraphy. In 1847 the two men entered into partnership to manufacture telegraph equipment, laying the foundations of the successful firm of Siemens \& Halske. At the outset, before Werner von Siemens gave up his army career, Halske acted as the sole manager of the firm and was also involved in testing the products. Inventions they developed included electric measuring instruments and railway signalling equipment, and they installed many telegraph lines, notably those for the Russian Government. When gutta-percha became available on the market, the two men soon developed an extrusion process for applying this new material to copper conductors. To the disappointment of Halske, who was opposed to mass production, the firm introduced series production and piece wages in 1857. The expansion of the business, particularly into submarine cable laying, caused some anxiety to Halske, who left the firm on amicable terms in 1867. He then worked for a few years developing the Arts and Crafts Museum in Berlin and became a town councillor.
    [br]
    Further Reading
    S. von Weihr and H.Götzeler, 1983, The Siemens Company. Its Historical Role in the Progress of Electrical Engineering 1847–1983, Berlin (provides a full account).
    Neue Deutsche Biographie, 1966, Vol. 7, Berlin, pp. 572–3.
    S.von Weiher, 1972–3, "The Siemens brothers, pioneers of the electrical age in Europe", Transactions of the Newcomen Society 45:1–11.
    GW

    Biographical history of technology > Halske, Johann Georg

  • 19 Haynes, Elwood

    [br]
    b. 14 October 1857 Portland, Indiana, USA
    d. 13 April 1925 Kokomo, Indiana, USA
    [br]
    American inventor ofStellite cobalt-based alloys, early motor-car manufacturer and pioneer in stainless steels.
    [br]
    From his early years, Haynes was a practising Presbyterian and an active prohibitionist. He graduated in 1881 at Worcester, Massachusetts, and a spell of teaching in his home town was interrupted in 1884–5 while he attended the Johns Hopkins University in Baltimore. In 1886 he became permanently diverted by the discovery of natural gas in Portland. He was soon appointed Superintendent of the local gas undertaking, and then in 1890 he was hired by the Indiana Natural Gas \& Oil Company. While continuing his gas-company employment until 1901, Haynes conducted numerous metallurgical experiments. He also designed an automobile: this led to the establishment of the Haynes- Apperson Company at Kokomo as one of the earliest motor-car makers in North America. From 1905 the firm traded as the Haynes Automobile Company, and before its bankruptcy in 1924 it produced more than 50,000 cars. After 1905, Haynes found the first "Stellite" alloys of cobalt and chromium, and in 1910 he was publicizing the patented material. He then discovered the valuable hardening effect of tungsten, and in 1912 began applying the "improved" Stellite to cutting tools. Three years later, the Haynes Stellite Company was incorporated, with Haynes as President, to work the patents. It was largely from this source that Haynes became a millionaire in 1920. In April 1912, Haynes's attempt to patent the use of chromium with iron to render the product rustless was unsuccessful. However, he re-applied for a US patent on 12 March 1915 and, although this was initially rejected, he persevered and finally obtained recognition of his modified claim. The American Stainless Steel Company licensed the patents of Brearley and Haynes jointly in the USA until the 1930s.
    [br]
    Principal Honours and Distinctions
    John Scott Medal 1919 (awarded for useful inventions).
    Bibliography
    Haynes was the author of more than twenty published papers and articles, among them: 1907, "Materials for automobiles", Proceedings of the American Society of Mechanical
    Engineers 29:1,597–606; 1910, "Alloys of nickel and cobalt with chromium", Journal of Industrial Engineering
    and Chemistry 2:397–401; 1912–13, "Alloys of cobalt with chromium and other metals", Transactions of the American Institute of 'Mining Engineers 44:249–55;
    1919–20, "Stellite and stainless steel", Proceedings of the Engineering Society of West
    Pennsylvania 35:467–74.
    1 April 1919, US patent no. 1,299,404 (stainless steel).
    The four US patents worked by the Haynes Stellite Company were: 17 December 1907, patent no. 873,745.
    1 April 1913, patent no. 1,057,423.
    1 April 1913, patent no. 1,057, 828.
    17 August 1915, patent no. 1,150, 113.
    Further Reading
    R.D.Gray, 1979, Alloys and Automobiles. The Life of Elwood Haynes, Indianapolis: Indiana Historical Society (a closely documented biography).
    JKA

    Biographical history of technology > Haynes, Elwood

  • 20 Hetzel, Max

    [br]
    b. 5 March 1921 Basle, Switzerland
    [br]
    Swiss electrical engineer who invented the tuning-fork watch.
    [br]
    Hetzel trained as an electrical engineer at the Federal Polytechnic in Zurich and worked for several years in the field of telecommunications before joining the Bulova Watch Company in 1950. At that time several companies were developing watches with electromagnetically maintained balances, but they represented very little advance on the mechanical watch and the mechanical switching mechanism was unreliable. In 1952 Hetzel started work on a much more radical design which was influenced by a transistorized tuning-fork oscillator that he had developed when he was working on telecommunications. Tuning forks, whose vibrations were maintained electromagnetically, had been used by scientists during the nineteenth century to measure small intervals of time, but Niaudet- Breguet appears to have been the first to use a tuning fork to control a clock. In 1866 he described a mechanically operated tuning-fork clock manufactured by the firm of Breguet, but it was not successful, possibly because the fork did not compensate for changes in temperature. The tuning fork only became a precision instrument during the 1920s, when elinvar forks were maintained in vibration by thermionic valve circuits. Their primary purpose was to act as frequency standards, but they might have been developed into precision clocks had not the quartz clock made its appearance very shortly afterwards. Hetzel's design was effectively a miniaturized version of these precision devices, with a transistor replacing the thermionic valve. The fork vibrated at a frequency of 360 cycles per second, and the hands were driven mechanically from the end of one of the tines. A prototype was working by 1954, and the watch went into production in 1960. It was sold under the tradename Accutron, with a guaranteed accuracy of one minute per month: this was a considerable improvement on the performance of the mechanical watch. However, the events of the 1920s were to repeat themselves, and by the end of the decade the Accutron was eclipsed by the introduction of quartz-crystal watches.
    [br]
    Principal Honours and Distinctions
    Neuchâtel Observatory Centenary Prize 1958. Swiss Society for Chronometry Gold Medal 1988.
    Bibliography
    "The history of the “Accutron” tuning fork watch", 1969, Swiss Watch \& Jewellery Journal 94:413–5.
    Further Reading
    R.Good, 1960, "The Accutron", Horological Journal 103:346–53 (for a detailed technical description).
    J.D.Weaver, 1982, Electrical \& Electronic Clocks \& Watches, London (provides a technical description of the tuning-fork watch in its historical context).
    DV

    Biographical history of technology > Hetzel, Max

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