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Johann

  • 1 Johann

    Czech-English dictionary > Johann

  • 2 Johann

    Jo|hạnn [jo'han, 'joːhan]
    m -s
    John
    * * *
    (der) John
    * * *
    (der) John

    Deutsch-Englisch Wörterbuch > Johann

  • 3 Johann

    m
    John

    Deutsch-Englisches Wörterbuch > Johann

  • 4 Johann Strauss

    m.
    1 Johann Strauss, Strauss the Elder.
    2 Johann Strauss, Strauss the Younger.

    Spanish-English dictionary > Johann Strauss

  • 5 Johann Winckelmann

    m.
    Johann Winckelmann, Johann Joachim Winckelmann.

    Spanish-English dictionary > Johann Winckelmann

  • 6 Johann Mendel

    m.
    Johann Mendel, Gregor Mendel.

    Spanish-English dictionary > Johann Mendel

  • 7 Johann Muller

    m.
    Johann Muller, Regiomontanus.

    Spanish-English dictionary > Johann Muller

  • 8 Johann Heinrich Bernhard

    Names and surnames: JHB

    Универсальный русско-английский словарь > Johann Heinrich Bernhard

  • 9 Johann Sebastian

    Names and surnames: JS

    Универсальный русско-английский словарь > Johann Sebastian

  • 10 Johann Sebastian Bach

    Names and surnames: JSB

    Универсальный русско-английский словарь > Johann Sebastian Bach

  • 11 Böttger, Johann Friedrich

    [br]
    b. 4 February 1682 Scheiz, Germany
    d. 13 March 1719 Dresden, Germany
    [br]
    German inventor of Meissen porcelain.
    [br]
    After the early death of his father, Böttger spent his childhood in Magdeburg, where he received instruction in mathematics, fortification and pyrotechnics. He spent twelve years with the apothecary F.Zorn in Berlin, where there was a flourishing colony of alchemists. Böttger became an adept himself and claimed to have achieved transmutations into gold by 1701.
    In March 1702 Böttger moved near to Dresden, in the service of August II, Elector of Saxony and King of Poland. While there, he made friends with E.W.von Tschirnhaus (1651–1708), scientist and possessor of glass-and ironworks. It was this association that led eventually to the founding of the celebrated Meissen porcelain factory. By 1708, Böttger had succeeded in making fine red stoneware by adding a flux, alabaster or marble, to infusible Saxony clay. By varying his raw materials, and in particular in using white china clay from the Erzgebirge, he obtained the first European true, hard, white porcelain, which had eluded European workers for centuries. At the same time he improved the furnace to achieve a temperature of around 1,350°C. To exploit his discovery, the Meissen factory was set up in 1710 and its products began to be marketed in 1713. Böttger managed the factory until his death in 1719, although throughout the period of experimentation and exploitation he had worked in conditions of great secrecy, in a vain attempt to preserve the secret of the process.
    [br]
    Further Reading
    C.A.Engelhardt, 1837, J.F.Böttger: Erfinder des sachsischen Porzellan, Leipzig; reprinted 1982, Verlag Weidlich (the classic biography).
    K.Hoffman, 1985, Johann Friedrich Böttger: von Alchemistengold zum weissen
    Porzellan, Berlin: Verlag Neues Leben.
    LRD

    Biographical history of technology > Böttger, Johann Friedrich

  • 12 Gensfleisch zum Gutenberg, Johann

    Biographical history of technology > Gensfleisch zum Gutenberg, Johann

  • 13 Glauber, Johann Rudolf

    SUBJECT AREA: Metallurgy
    [br]
    b. 1604 Karlstadt, Germany
    d. March 1670 Amsterdam, Holland
    [br]
    German chemist and metallurgist.
    [br]
    The son of a barber, Glauber took up the study of alchemy and travelled widely in search of its secrets. Around 1639, the political uncertainties of the Thirty Years War persuaded him to leave Germany for a more settled life in Amsterdam. While there, he carried out most of the practical work for which he is famous, including his distillation furnace, which made it possible to reach higher temperatures and to heat substances in a variety of conditions. To earn a living he set up in the wine trade, but he continued his alchemical pursuits, under cover on account of the unpopularity of the would-be gold makers. After the end of the war, he returned to Germany, but in 1655 personal disputes and religious friction drove him back to Amsterdam. He set about constructing the largest and most elaborate chemical laboratory in Europe.
    Glauber's best-known writing, the Furni novi philosophici (1646–9) gives the clearest idea of his practical methods and was influential on some of the leading chemists of the time and later. His name survives today in Glauber's salt for hydrated sodium sulphate. Glauber described several methods for preparing the mineral acids, materials of great importance to the chemist, and obtained the concentrated acids by using his distilling furnace. He tried distilling any substance he could lay hands on, and in the course of this work became probably the first chemist to distil coal and, using hydrochloric acid, obtain benzene and phenol. Glauber was the best practical chemist of the age and the first industrial chemist.
    [br]
    Bibliography
    Further Reading
    K.F.Gugel, 1955, Johann Rudolf Glauber (1604–1670), Leben und Werke, Würzburg (the fullest account of his life; with a bibliography).
    P.Walden, 1929, "Glauber", in Das Buch der grossen Chemiker, ed. G.Bugge, Berlin, pp. 151–72 (the best account of Glauber's practical methods).
    E.Farber, 1961, Great Chemists, New York, pp. 115–31 (an abridged translation of ibid.).
    LRD

    Biographical history of technology > Glauber, Johann Rudolf

  • 14 Gutenberg, Johann Gensfleisch zum

    SUBJECT AREA: Paper and printing
    [br]
    b. c. 1394–9 Mainz, Germany
    d. 3 February 1468 Mainz, Germany
    [br]
    German inventor of printing with movable type.
    [br]
    Few biographical details are known of Johann Gensfleisch zum Gutenberg, yet it has been said that he was responsible for Germany's most notable contribution to civilization. He was a goldsmith by trade, of a patrician family of the city of Mainz. He seems to have begun experiments on printing while a political exile in Strasbourg c. 1440. He returned to Mainz between 1444 and 1448 and continued his experiments, until by 1450 he had perfected his invention sufficiently to justify raising capital for its commercial exploitation.
    Circumstances were propitious for the invention of printing at that time. Rises in literacy and prosperity had led to the formation of a social class with the time and resources to develop a taste for reading, and the demand for reading matter had outstripped the ability of the scribes to satisfy it. The various technologies required were well established, and finally the flourishing textile industry was producing enough waste material, rag, to make paper, the only satisfactory and cheap medium for printing. There were others working along similar lines, but it was Gutenberg who achieved the successful adaptation and combination of technologies to arrive at a process by which many identical copies of a text could be produced in a wide variety of forms, of which the book was the most important. Gutenberg did make several technical innovations, however. The two-piece adjustable mould for casting types of varying width, from T to "M", was ingenious. Then he had to devise an oil-based ink suitable for inking metal type, derived from the painting materials developed by contemporary Flemish artists. Finally, probably after many experiments, he arrived at a metal alloy of distinctive composition suitable for casting type.
    In 1450 Gutenberg borrowed 800 guldens from Johannes Fust, a lawyer of Mainz, and two years later Fust advanced a further 800 guldens, securing for himself a partnership in Gutenberg's business. But in 1455 Fust foreclosed and the bulk of Gutenberg's equipment passed to Peter Schöffer, who was in the service of Fust and later married his daughter. Like most early printers, Gutenberg seems not to have appreciated, or at any rate to have been able to provide for, the great dilemma of the publishing trade, namely the outlay of considerable capital in advance of each publication and the slowness of the return. Gutenberg probably retained only the type for the 42- and 36-line bibles and possibly the Catholicon of 1460, an encyclopedic work compiled in the thirteenth century and whose production pointed the way to printing's role as a means of spreading knowledge. The work concluded with a short descriptive piece, or colophon, which is probably by Gutenberg himself and is the only output of his mind that we have; it manages to omit the names of both author and printer.
    Gutenberg seems to have abandoned printing after 1460, perhaps due to failing eyesight as well as for financial reasons, and he suffered further loss in the sack of Mainz in 1462. He received a kind of pension from the Archbishop in 1465, and on his death was buried in the Franciscan church in Mainz. The only major work to have issued for certain from Gutenberg's workshop is the great 42-line bible, begun in 1452 and completed by August 1456. The quality of this Graaf piece of printing is a tribute to Gutenberg's ability as a printer, and the soundness of his invention is borne out by the survival of the process as he left it to the world, unchanged for over three hundred years save in minor details.
    [br]
    Further Reading
    A.Ruppel, 1967, Johannes Gutenberg: sein Leben und sein Werk, 3rd edn, Nieuwkoop: B.de Graaf (the standard biography), A.M.L.de Lamartine, 1960, Gutenberg, inventeur de l'imprimerie, Tallone.
    Scholderer, 1963, Gutenberg, Inventor of Printing, London: British Museum.
    S.H.Steinberg, 1974, Five Hundred Years of Printing 3rd edn, London: Penguin (provides briefer details).
    LRD

    Biographical history of technology > Gutenberg, Johann Gensfleisch zum

  • 15 Zum Gutenberg, Johann Gensfleisch

    Biographical history of technology > Zum Gutenberg, Johann Gensfleisch

  • 16 Bodmer, Johann Georg

    [br]
    b. 9 December 1786 Zurich, Switzerland
    d. 30 May 1864 Zurich, Switzerland
    [br]
    Swiss mechanical engineer and inventor.
    [br]
    John George Bodmer (as he was known in England) showed signs of great inventive ability even as a child. Soon after completing his apprenticeship to a local millwright, he set up his own work-shop at Zussnacht. One of his first inventions, in 1805, was a shell which exploded on impact. Soon after this he went into partnership with Baron d'Eichthal to establish a cotton mill at St Blaise in the Black Forest. Bodmer designed the water-wheels and all the machinery. A few years later they established a factory for firearms and Bodmer designed special machine tools and developed a system of interchangeable manufacture comparable with American developments at that time. More inventions followed, including a detachable bayonet for breech-loading rifles and a rifled, breech-loading cannon for 12 lb (5.4 kg) shells.
    Bodmer was appointed by the Grand Duke of Baden to the posts of Director General of the Government Iron Works and Inspector of Artillery. He left St Blaise in 1816 and entered completely into the service of the Grand Duke, but before taking up his duties he visited Britain for the first time and made an intensive five-month tour of textile mills, iron works, workshops and similar establishments.
    In 1821 he returned to Switzerland and was engaged in setting up cotton mills and other engineering works. In 1824 he went back to England, where he obtained a patent for his improvements in cotton machinery and set up a mill near Bolton incorporating his ideas. His health failing, he was obliged to return to Switzerland in 1828, but he was soon busy with engineering works there and in France. In 1833 he went to England again, first to Bolton and four years later to Manchester in partnership with H.H.Birley. In the next ten years he patented many more inventions in the fields of textile machinery, steam engines and machine tools. These included a balanced steam engine, a mechanical stoker, steam engine valve gear, gear-cutting machines and a circular planer or vertical lathe, anticipating machines of this type later developed in America by E.P. Bullard. The metric system was used in his workshops and in gearing calculations he introduced the concept of diametral pitch, which then became known as "Manchester Pitch". The balanced engine was built in stationary form and in two locomotives, but although their running was remarkably smooth the additional complication prevented their wider use.
    After the death of H.H.Birley in 1846, Bodmer removed to London until 1848, when he went to Austria. About 1860 he returned to his native town of Zurich. He remained actively engaged in all kinds of inventions up to the end of his life. He obtained fourteen British patents, each of which describes many inventions; two of these patents were extended beyond the normal duration of fourteen years. Two others were obtained on his behalf, one by his brother James in 1813 for his cannon and one relating to railways by Charles Fox in 1847. Many of his inventions had little direct influence but anticipated much later developments. His ideas were sound and some of his engines and machine tools were in use for over sixty years. He was elected a Member of the Institution of Civil Engineers in 1835.
    [br]
    Bibliography
    1845, "The advantages of working stationary and marine engines with high-pressure steam, expansively and at great velocities; and of the compensating, or double crank system", Minutes of the Proceedings of the Institution of Civil Engineers 4:372–99.
    1846, "On the combustion of fuel in furnaces and steam-boilers, with a description of Bodmer's fire-grate", Minutes of the Proceedings of the Institution of Civil Engineers 5:362–8.
    Further Reading
    H.W.Dickinson, 1929–30, "Diary of John George Bodmer, 1816–17", Transactions of the Newcomen Society 10:102–14.
    D.Brownlie, 1925–6, John George Bodmer, his life and work, particularly in relation to the evolution of mechanical stoking', Transactions of the Newcomen Society 6:86–110.
    W.O.Henderson (ed.), 1968, Industrial Britain Under the Regency: The Diaries of Escher, Bodmer, May and de Gallois 1814–1818, London: Frank Cass (a more complete account of his visit to Britain).
    RTS

    Biographical history of technology > Bodmer, Johann Georg

  • 17 Borsig, Johann Carl Friedrich August

    [br]
    b. 25 June 1804 Breslau, Germany (now Wroclaw, Poland)
    d. 7 July 1854 Berlin, Germany
    [br]
    German pioneer manufacturer of locomotives and rails.
    [br]
    Borsig established a small works at Berlin in 1837 that ten years later had expanded sufficiently to employ 1,200 people. In that year it produced sixty-seven locomotives. Borsig copied the long-boiler type then popular in Britain and which had been exported to Germany by British manufacturers: it became the standard goods engine in Germany for many years, and the name Borsig became one of the famous names of locomotive building. In 1847 Borsig established an iron-works near Berlin that from 1851 started to produce good-quality rails; German railways previously had to import these from Britain.
    [br]
    Further Reading
    J.Marshall, 1978, A Biographical Dictionary of Railway Engineers, Newton Abbot: David \& Charles.
    PJGR

    Biographical history of technology > Borsig, Johann Carl Friedrich August

  • 18 Brinell, Johann August

    SUBJECT AREA: Metallurgy
    [br]
    b. 1849 Småland, Sweden
    d. 17 November 1925 Stockholm, Sweden
    [br]
    Swedish metallurgist, inventor of the well-known method of hardness measurement which uses a steel-ball indenter.
    [br]
    Brinell graduated as an engineer from Boräs Technical School, and his interest in metallurgy began to develop in 1875 when he became an engineer at the ironworks of Lesjöfors and came under the influence of Gustaf Ekman. In 1882 he was appointed Chief Engineer at the Fagersta Ironworks, where he became one of Sweden's leading experts in the manufacture and heat treatment of tool steels.
    His reputation in this field was established in 1885 when he published a paper on the structural changes which occurred in steels when they were heated and cooled, and he was among the first to recognize and define the critical points of steel and their importance in heat treatment. Some of these preliminary findings were first exhibited at Stockholm in 1897. His exhibit at the World Exhibition at Paris in 1900 was far more detailed and there he displayed for the first time his method of hardness determination using a steel-ball indenter. For these contributions he was awarded the French Grand Prix and also the Polhem Prize of the Swedish Technical Society.
    He was later concerned with evaluating and developing the iron-ore deposits of north Sweden and was one of the pioneers of the electric blast-furnace. In 1903 he became Chief Engineer of the Jernkontoret and remained there until 1914. In this capacity and as Editor of the Jernkontorets Annaler he made significant contributions to Swedish metallurgy. His pioneer work on abrasion resistance, undertaken long before the term tribology had been invented, gained him the Rinman Medal, awarded by the Jernkontoret in 1920.
    [br]
    Principal Honours and Distinctions
    Member of the Swedish Academy of Science 1902. Dr Honoris Causa, University of Upsala 1907. French Grand Prix, Paris World Exhibition 1900; Swedish Technical Society Polhem Prize 1900; Iron and Steel Institute Bessemer Medal 1907; Jernkontorets Rinman Medal 1920.
    Further Reading
    Axel Wahlberg, 1901, Journal of the Iron and Steel Institute 59:243 (the first English-language description of the Brinell Hardness Test).
    Machinery's Encyclopedia, 1917, Vol. III, New York: Industrial Press, pp. 527–40 (a very readable account of the Brinell test in relation to the other hardness tests available at the beginning of the twentieth century).
    Hardness Test Research Committee, 1916, Bibliography on hardness testing, Proceedings of the Institution of Mechanical Engineers.
    ASD

    Biographical history of technology > Brinell, Johann August

  • 19 Brotan, Johann

    [br]
    b. 24 June 1843 Kattau, Bohemia (now in the Czech Republic)
    d. 20 November 1923 Vienna, Austria
    [br]
    Czech engineer, pioneer of the watertube firebox for steam locomotive boilers.
    [br]
    Brotan, who was Chief Engineer of the main workshops of the Royal Austrian State Railways at Gmund, found that locomotive inner fireboxes of the usual type were both expensive, because the copper from which they were made had to be imported, and short-lived, because of corrosion resulting from the use of coal with high sulphur content. He designed a firebox of which the side and rear walls comprised rows of vertical watertubes, expanded at their lower ends into a tubular foundation ring and at the top into a longitudinal water/steam drum. This projected forward above the boiler barrel (which was of the usual firetube type, though of small diameter), to which it was connected. Copper plates were eliminated, as were firebox stays.
    The first boiler to incorporate a Brotan firebox was built at Gmund under the inventor's supervision and replaced the earlier boiler of a 0−6−0 in 1901. The increased radiantly heated surface was found to produce a boiler with very good steaming qualities, while the working pressure too could be increased, with consequent fuel economies. Further locomotives in Austria and, experimentally, elsewhere were equipped with Brotan boilers.
    Disadvantages of the boiler were the necessity of keeping the tubes clear of scale, and a degree of structural weakness. The Swiss engineer E. Deffner improved the latter aspect by eliminating the forward extension of the water/steam drum, replacing it with a large-diameter boiler barrel with the rear section of tapered wagon-top type so that the front of the water/steam drum could be joined directly to the rear tubeplate. The first locomotives to be fitted with this Brotan-Deffner boiler were two 4−6−0s for the Swiss Federal Railways in 1908 and showed very favourable results. However, steam locomotive development ceased in Switzerland a few years later in favour of electrification, but boilers of the Brotan-Deffner type and further developments of it were used in many other European countries, notably Hungary, where more than 1,000 were built. They were also used experimentally in the USA: for instance, Samuel Vauclain, as President of Baldwin Locomotive Works, sent his senior design engineer to study Hungarian experience and then had a high-powered 4−8−0 built with a watertube firebox. On stationary test this produced the very high figure of 4,515 ihp (3,370 kW), but further development work was frustrated by the trade depression commencing in 1929. In France, Gaston du Bousquet had obtained good results from experimental installations of Brotan-Deffner-type boilers, and incorporated one into one of his high-powered 4−6−4s of 1910. Experiments were terminated suddenly by his death, followed by the First World War, but thirty-five years later André Chapelon proposed using a watertube firebox to obtain the high pressure needed for a triple-expansion, high-powered, steam locomotive, development of which was overtaken by electrification.
    [br]
    Further Reading
    G.Szontagh, 1991, "Brotan and Brotan-Deffner type fireboxes and boilers applied to steam locomotives", Transactions of the Newcomen Society 62 (an authoritative account of Brotan boilers).
    PJGR

    Biographical history of technology > Brotan, Johann

  • 20 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

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