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Experiments with

  • 1 Space Experiments with Particle Accelerators

    Универсальный англо-русский словарь > Space Experiments with Particle Accelerators

  • 2 space experiments with particle accelerators

    Универсальный англо-русский словарь > space experiments with particle accelerators

  • 3 Hawthorne experiments

    Gen Mgt
    a series of studies undertaken at the Hawthorne plant of Western Electric in the United States from which Elton Mayo concluded that an approach emphasizing employee participation can improve productivity. The Hawthorne experiments began in 1924 as a study conducted by the National Research Council into the relationship between workplace lighting and employee efficiency, and was then extended to include wage incentives and rest periods. It was found that whatever variations were applied upward or downward, output rose, and this was termed the Hawthorne effect. The increased productivity was attributed to several causes, including small group size, earnings, the novelty of being part of an experiment, and the increased attention given to the employees being studied. The style of the supervisor, which was relaxed and friendly, in contrast to the then standard practice, was found to be particularly important. In a second group of employees, however, it was observed that, as the experiments progressed, output was restricted, and that whatever the incentive, the group showed a resistance to it. In 1929, and 1930, Elton Mayo visited Hawthorne. He linked supervisory style and levels of morale with productivity. High productivity resulted from an engaged supervisory style that encouraged participation. Low productivity resulted when a supervisor remained remote and retained a traditional supervisory role. The Hawthorne experiments established the importance of management style and interpersonal skills to organizational success.

    The ultimate business dictionary > Hawthorne experiments

  • 4 from his experience with the experiments, N. will write detailed instruction ...

      • из своего опыта с экспериментами, N. составит подробную инструкцию...

    English-Russian dictionary of phrases and cliches for a specialist researcher > from his experience with the experiments, N. will write detailed instruction ...

  • 5 thanks are due to О.C. for assistance with the experiments and to B.N. for valuable discussions ...

      • спасибо О.C. за помощь с экспериментами и Б.Н. за ценный обмен мнениями...

    English-Russian dictionary of phrases and cliches for a specialist researcher > thanks are due to О.C. for assistance with the experiments and to B.N. for valuable discussions ...

  • 6 Lawes, Sir John Bennet

    [br]
    b. 28 December 1814 Rothamsted, Hertfordshire, England
    d. 31 August 1900 Rothamsted, Hertfordshire, England
    [br]
    English scientific agriculturalist.
    [br]
    Lawes's education at Eton and Oxford did little to inform his early taste for chemistry, which he developed largely on his own. By the age of 20 he had fitted up the best bedroom in his house as a fully equipped chemical laboratory. His first interest was in the making of drugs; it was said that he knew the Pharmacopoeia, by heart. He did, however, receive some instruction from Anthony Todd Thomson of University College, London. His father having died in 1822, Lawes entered into possession of the Rothamsted estate when he came of age in 1834. He began experiments with plants with uses as drugs, but following an observation by a neighbouring farmer of the effect of bones on the growth of certain crops Lawes turned to experiments with bones dissolved in sulphuric acid on his turnip crop. The results were so promising that he took out a patent in 1842 for converting mineral and fossil phosphates into a powerful manure by the action of sulphuric acid. The manufacture of these superphosphates became a major industry of tremendous benefit to agriculture. Lawes himself set up a factory at Deptford in 1842 and a larger one in 1857 at Barking Creek, both near London. The profits from these and other chemical manufacturing concerns earned Lawes profits which funded his experimental work at Rothamsted. In 1843, Lawes set up the world's first agricultural experiment station. Later in the same year he was joined by Joseph Henry Gilbert, and together they carried out a considerable number of experiments of great benefit to agriculture, many of the results of which were published in the leading scientific journals of the day, including the Philosophical Transactions of the Royal Society. In all, 132 papers were published, most of them jointly with Gilbert. A main theme of the work on plants was the effect of various chemical fertilizers on the growth of different crops, compared with the effects of farm manure and of no treatment at all. On animal rearing, they studied particularly the economical feeding of animals.
    The work at Rothamsted soon brought Lawes into prominence; he joined the Royal Agricultural Society in 1846 and became a member of its governing body two years later, a position he retained for over fifty years. Numerous distinctions followed and Rothamsted became a place of pilgrimage for people from many parts of the world who were concerned with the application of science to agriculture. Rothamsted's jubilee in 1893 was marked by a public commemoration headed by the Prince of Wales.
    [br]
    Principal Honours and Distinctions
    Baronet 1882. FRS 1854. Royal Society Royal Medal (jointly with Gilbert) 1867.
    Further Reading
    Memoir with portrait published in J. Roy. Agric. Soc. Memoranda of the origin, plan and results of the field and other experiments at Rothamsted, issued annually by the Lawes Agricultural Trust Committee, with a list of Lawes's scientific papers.
    LRD

    Biographical history of technology > Lawes, Sir John Bennet

  • 7 Smith, Oberlin

    [br]
    b. 22 March 1840 Cincinnati, Ohio, USA
    d. 18 July 1926
    [br]
    American mechanical engineer, pioneer in experiments with magnetic recording.
    [br]
    Of English descent, Smith embarked on an education in mechanical engineering, graduating from West Jersey Academy, Bridgeton, New Jersey, in 1859. In 1863 he established a machine shop in Bridgeton, New Jersey, that became the Ferracute Machine Company in 1877, eventually specializing in the manufacture of presses for metalworking. He seems to have subscribed to design principles considered modern even in the 1990s, "always giving attention to the development of artistic form in combination with simplicity, and with massive strength where required" (bibliographic reference below). He was successful in his business, and developed and patented a large number of mechanical constructions.
    Inspired by the advent of the phonograph of Edison, in 1878 Smith obtained the tin-foil mechanical phonograph, analysed its shortcomings and performed some experiments in magnetic recording. He filed a caveat in the US Patent Office in order to be protected while he "reduced the invention to practice". However, he did not follow this trail. When there was renewed interest in practical sound recording and reproduction in 1888 (the constructions of Berliner and Bell \& Tainter), Smith published an account of his experiments in the journal Electrical World. In a corrective letter three weeks later it is clear that he was aware of the physical requirements for the interaction between magnetic coil and magnetic medium, but his publications also indicate that he did not as such obtain reproduction of recorded sound.
    Smith did not try to develop magnetic recording, but he felt it imperative that he be given credit for conceiving the idea of it. When accounts of Valdemar Poulsen's work were published in 1900, Smith attempted to prove some rights in the invention in the US Patent Office, but to no avail.
    He was a highly respected member of both his community and engineering societies, and in later life became interested in the anti-slavery cause that had also been close to the heart of his parents, as well as in the YMCA movement and in women's suffrage.
    [br]
    Bibliography
    Apart from numerous technical papers, he wrote the book Press Working of Metals, 1896. His accounts on the magnetic recording experiments were "Some possible forms of phonograph", Electrical World (8 September 1888): 161 ff, and "Letter to the Editor", Electrical World (29 September 1888): 179.
    Further Reading
    F.K.Engel, 1990, Documents on the Invention of Magnetic Recording in 1878, New York: Audio Engineering Society, Reprint no. 2,914 (G2) (a good overview of the material collected by the Oberlin Smith Society, Bridgeton, New Jersey, in particular as regards the recording experiments; it is here that it is doubted that Valdemar Poulsen developed his ideas independently).
    GB-N

    Biographical history of technology > Smith, Oberlin

  • 8 Talbot, William Henry Fox

    [br]
    b. 11 February 1800 Melbury, England
    d. 17 September 1877 Lacock, Wiltshire, England
    [br]
    English scientist, inventor of negative—positive photography and practicable photo engraving.
    [br]
    Educated at Harrow, where he first showed an interest in science, and at Cambridge, Talbot was an outstanding scholar and a formidable mathematician. He published over fifty scientific papers and took out twelve English patents. His interests outside the field of science were also wide and included Assyriology, etymology and the classics. He was briefly a Member of Parliament, but did not pursue a parliamentary career.
    Talbot's invention of photography arose out of his frustrating attempts to produce acceptable pencil sketches using popular artist's aids, the camera discura and camera lucida. From his experiments with the former he conceived the idea of placing on the screen a paper coated with silver salts so that the image would be captured chemically. During the spring of 1834 he made outline images of subjects such as leaves and flowers by placing them on sheets of sensitized paper and exposing them to sunlight. No camera was involved and the first images produced using an optical system were made with a solar microscope. It was only when he had devised a more sensitive paper that Talbot was able to make camera pictures; the earliest surviving camera negative dates from August 1835. From the beginning, Talbot noticed that the lights and shades of his images were reversed. During 1834 or 1835 he discovered that by placing this reversed image on another sheet of sensitized paper and again exposing it to sunlight, a picture was produced with lights and shades in the correct disposition. Talbot had discovered the basis of modern photography, the photographic negative, from which could be produced an unlimited number of positives. He did little further work until the announcement of Daguerre's process in 1839 prompted him to publish an account of his negative-positive process. Aware that his photogenic drawing process had many imperfections, Talbot plunged into further experiments and in September 1840, using a mixture incorporating a solution of gallic acid, discovered an invisible latent image that could be made visible by development. This improved calotype process dramatically shortened exposure times and allowed Talbot to take portraits. In 1841 he patented the process, an exercise that was later to cause controversy, and between 1844 and 1846 produced The Pencil of Nature, the world's first commercial photographically illustrated book.
    Concerned that some of his photographs were prone to fading, Talbot later began experiments to combine photography with printing and engraving. Using bichromated gelatine, he devised the first practicable method of photo engraving, which was patented as Photoglyphic engraving in October 1852. He later went on to use screens of gauze, muslin and finely powdered gum to break up the image into lines and dots, thus anticipating modern photomechanical processes.
    Talbot was described by contemporaries as the "Father of Photography" primarily in recognition of his discovery of the negative-positive process, but he also produced the first photomicrographs, took the first high-speed photographs with the aid of a spark from a Leyden jar, and is credited with proposing infra-red photography. He was a shy man and his misguided attempts to enforce his calotype patent made him many enemies. It was perhaps for this reason that he never received the formal recognition from the British nation that his family felt he deserved.
    [br]
    Principal Honours and Distinctions
    FRS March 1831. Royal Society Rumford Medal 1842. Grand Médaille d'Honneur, L'Exposition Universelle, Paris, 1855. Honorary Doctorate of Laws, Edinburgh University, 1863.
    Bibliography
    1839, "Some account of the art of photographic drawing", Royal Society Proceedings 4:120–1; Phil. Mag., XIV, 1839, pp. 19–21.
    8 February 1841, British patent no. 8842 (calotype process).
    1844–6, The Pencil of Nature, 6 parts, London (Talbot'a account of his invention can be found in the introduction; there is a facsimile edn, with an intro. by Beamont Newhall, New York, 1968.
    Further Reading
    H.J.P.Arnold, 1977, William Henry Fox Talbot, London.
    D.B.Thomas, 1964, The First Negatives, London (a lucid concise account of Talbot's photograph work).
    J.Ward and S.Stevenson, 1986, Printed Light, Edinburgh (an essay on Talbot's invention and its reception).
    H.Gernsheim and A.Gernsheim, 1977, The History of Photography, London (a wider picture of Talbot, based primarily on secondary sources).
    JW

    Biographical history of technology > Talbot, William Henry Fox

  • 9 Charles, Jacques Alexandre César

    SUBJECT AREA: Aerospace
    [br]
    b. 12 November 1746 Beaugency, France
    d. 7 April 1823 Paris, France
    [br]
    French physicist who developed the first hydrogen balloon, in 1783.
    [br]
    In 1783, following the early experiments with small hot-air balloons by the Montgolfier brothers, there was a growing interest in the prospect of a balloon flight with people on board. The Paris Académie des Sciences encouraged one of their physicists, Charles, to carry out experiments and produce a balloon. Charles enlisted the assistance of two brothers, Anne-Jean and Marie-Noël Robert, who were practical craftsmen with experience of coating silk fabric with rubber to make it impermeable to gases. Charles decided to use the recently discovered lighter-than-air gas, hydrogen, for his experiments rather than hot air. After making several unmanned balloons, he had a manned balloon ready for testing on 1 December 1783. Despite the fact that a Montgolfier balloon had already flown with two passengers, there was enormous public interest in the flight: one estimate suggested that 400,000 people turned out to watch. Charles and Marie-Noël Robert ascended from the gardens of the Tuileries and landed after two hours, having covered 45 km (28 miles). Technically the "Charlière" was far superior to the "Montgolfière" and was therefore used by most subsequent balloonists until the introduction of the modern hot-air balloon by the American Paul E. Yost in the 1960s. Following Meusnier's proposals for a dirigible (steerable) balloon, put forward during 1783–5, Charles and the Robert brothers built an elongated balloon incorporating Meusnier's ballonnet principle. It had a rudder but the method of propulsion, by opening and closing parasols used as paddles, was totally ineffective.
    [br]
    Principal Honours and Distinctions
    Member of the Académie des Sciences 1795.
    Further Reading
    L.T.C.Rolt, 1966, The Aeronauts, London. C.Dollfus, 1961, Balloons, trans. C.Mason, London. J.B.F.Fourier, 1825, Notice.
    JDS

    Biographical history of technology > Charles, Jacques Alexandre César

  • 10 Parsons, Sir Charles Algernon

    [br]
    b. 13 June 1854 London, England
    d. 11 February 1931 on board Duchess of Richmond, Kingston, Jamaica
    [br]
    English eingineer, inventor of the steam turbine and developer of the high-speed electric generator.
    [br]
    The youngest son of the Earl of Rosse, he came from a family well known in scientific circles, the six boys growing up in an intellectual atmosphere at Birr Castle, the ancestral home in Ireland, where a forge and large workshop were available to them. Charles, like his brothers, did not go to school but was educated by private tutors of the character of Sir Robert Ball, this type of education being interspersed with overseas holiday trips to France, Holland, Belgium and Spain in the family yacht. In 1871, at the age of 17, he went to Trinity College, Dublin, and after two years he went on to St John's College, Cambridge. This was before the Engineering School had opened, and Parsons studied mechanics and mathematics.
    In 1877 he was apprenticed to W.G.Armstrong \& Co. of Elswick, where he stayed for four years, developing an epicycloidal engine that he had designed while at Cambridge. He then moved to Kitson \& Co. of Leeds, where he went half shares in a small experimental shop working on rocket propulsion for torpedoes.
    In 1887 he married Katherine Bethell, who contracted rheumatic fever from early-morning outdoor vigils with her husband to watch his torpedo experiments while on their honeymoon! He then moved to a partnership in Clarke, Chapman \& Co. at Gateshead. There he joined the electrical department, initially working on the development of a small, steam-driven marine lighting set. This involved the development of either a low-speed dynamo, for direct coupling to a reciprocating engine, or a high-speed engine, and it was this requirement that started Parsons on the track of the steam turbine. This entailed many problems such as the running of shafts at speeds of up to 40,000 rpm and the design of a DC generator for 18,000 rpm. He took out patents for both the turbine and the generator on 23 April 1884. In 1888 he dissolved his partnership with Clarke, Chapman \& Co. to set up his own firm in Newcastle, leaving his patents with the company's owners. This denied him the use of the axial-flow turbine, so Parsons then designed a radial-flow layout; he later bought back his patents from Clarke, Chapman \& Co. His original patent had included the use of the steam turbine as a means of marine propulsion, and Parsons now set about realizing this possibility. He experimented with 2 ft (61 cm) and 6 ft (183 cm) long models, towed with a fishing line or, later, driven by a twisted rubber cord, through a single-reduction set of spiral gearing.
    The first trials of the Turbinia took place in 1894 but were disappointing due to cavitation, a little-understood phenomenon at the time. He used an axial-flow turbine of 2,000 shp running at 2,000 rpm. His work resulted in a far greater understanding of the phenomenon of cavitation than had hitherto existed. Land turbines of up to 350 kW (470 hp) had meanwhile been built. Experiments with the Turbinia culminated in a demonstration which took place at the great Naval Review of 1897 at Spithead, held to celebrate Queen Victoria's Diamond Jubilee. Here, the little Turbinia darted in and out of the lines of heavy warships and destroyers, attaining the unheard of speed of 34.5 knots. The following year the Admiralty placed their first order for a turbine-driven ship, and passenger vessels started operation soon after, the first in 1901. By 1906 the Admiralty had moved over to use turbines exclusively. These early turbines had almost all been direct-coupled to the ship's propeller shaft. For optimum performance of both turbine and propeller, Parsons realized that some form of reduction gearing was necessary, which would have to be extremely accurate because of the speeds involved. Parsons's Creep Mechanism of 1912 ensured that any errors in the master wheel would be distributed evenly around the wheel being cut.
    Parsons was also involved in optical work and had a controlling interest in the firm of Ross Ltd of London and, later, in Sir Howard Grubb \& Sons. He he was an enlightened employer, originating share schemes and other benefits for his employees.
    [br]
    Principal Honours and Distinctions
    Knighted. Order of Merit 1927.
    Further Reading
    A.T.Bowden, 1966, "Charles Parsons: Purveyor of power", in E.G.Semler (ed.), The Great Masters. Engineering Heritage, Vol. II, London: Institution of Mechanical Engineers/Heinemann.
    IMcN

    Biographical history of technology > Parsons, Sir Charles Algernon

  • 11 Seguin, Marc

    [br]
    b. 20 April 1786 Annonay, Ardèche, France
    d. 24 February 1875 Annonay, Ardèche, France
    [br]
    French engineer, inventor of multi-tubular firetube boiler.
    [br]
    Seguin trained under Joseph Montgolfier, one of the inventors of the hot-air balloon, and became a pioneer of suspension bridges. In 1825 he was involved in an attempt to introduce steam navigation to the River Rhône using a tug fitted with a winding drum to wind itself upstream along a cable attached to a point on the bank, with a separate boat to transfer the cable from point to point. The attempt proved unsuccessful and was short-lived, but in 1825 Seguin had decided also to seek a government concession for a railway from Saint-Etienne to Lyons as a feeder of traffic to the river. He inspected the Stockton \& Darlington Railway and met George Stephenson; the concession was granted in 1826 to Seguin Frères \& Ed. Biot and two steam locomotives were built to their order by Robert Stephenson \& Co. The locomotives were shipped to France in the spring of 1828 for evaluation prior to construction of others there; each had two vertical cylinders, one each side between front and rear wheels, and a boiler with a single large-diameter furnace tube, with a watertube grate. Meanwhile, in 1827 Seguin, who was still attempting to produce a steamboat powerful enough to navigate the fast-flowing Rhône, had conceived the idea of increasing the heating surface of a boiler by causing the hot gases from combustion to pass through a series of tubes immersed in the water. He was soon considering application of this type of boiler to a locomotive. He applied for a patent for a multi-tubular boiler on 12 December 1827 and carried out numerous experiments with various means of producing a forced draught to overcome the perceived obstruction caused by the small tubes. By May 1829 the steam-navigation venture had collapsed, but Seguin had a locomotive under construction in the workshops of the Lyons-Sain t- Etienne Railway: he retained the cylinder layout of its Stephenson locomotives, but incorporated a boiler of his own design. The fire was beneath the barrel, surrounded by a water-jacket: a single large flue ran towards the front of the boiler, whence hot gases returned via many small tubes through the boiler barrel to a chimney above the firedoor. Draught was provided by axle-driven fans on the tender.
    Seguin was not aware of the contemporary construction of Rocket, with a multi-tubular boiler, by Robert Stephenson; Rocket had its first trial run on 5 September 1829, but the precise date on which Seguin's locomotive first ran appears to be unknown, although by 20 October many experiments had been carried out upon it. Seguin's concept of a multi-tubular locomotive boiler therefore considerably antedated that of Henry Booth, and his first locomotive was completed about the same date as Rocket. It was from Rocket's boiler, however, rather than from that of Seguin's locomotive, that the conventional locomotive boiler was descended.
    [br]
    Bibliography
    February 1828, French patent no. 3,744 (multi-tubular boiler).
    1839, De l'Influence des chemins de fer et de l'art de les tracer et de les construire, Paris.
    Further Reading
    F.Achard and L.Seguin, 1928, "Marc Seguin and the invention of the tubular boiler", Transactions of the Newcomen Society 7 (traces the chronology of Seguin's boilers).
    ——1928, "British railways of 1825 as seen by Marc Seguin", Transactions of the Newcomen Society 7.
    J.B.Snell, 1964, Early Railways, London: Weidenfeld \& Nicolson.
    J.-M.Combe and B.Escudié, 1991, Vapeurs sur le Rhône, Lyons: Presses Universitaires de Lyon.
    PJGR

    Biographical history of technology > Seguin, Marc

  • 12 Wenham, Francis Herbert

    SUBJECT AREA: Aerospace
    [br]
    b. 1824 London, England
    d. 11 August 1908 Folkestone, England
    [br]
    English engineer, inventor and pioneer aerodynamicist who built the first wind tunnel.
    [br]
    Wenham trained as a marine engineer and later specialized in screw propellers and high-pressure engines. He had many interests. He took his steamboat to the Nile and assisted the photographer F.Frith to photograph Egyptian tombs by devising a series of mirrors to deflect sunlight into the dark recesses. He experimented with gas engines and produced a hot-air engine. Wenham was a leading, if controversial, figure in the Microscopical Society and a member of the Royal Photographic Society; he developed an enlarger.
    Wenham was interested in both mechanical and lighter-than-air flight. One of his friends was James Glaisher, a well-known balloonist who made many ascents to gather scientific information. When the (Royal) Aeronautical Society of Great Britain was founded in 1866, the Rules were drawn up by Wenham, Glaisher and the Honorary Secretary, F.W.Brearey. At the first meeting of the Society, on 27 June 1866, "On aerial locomotion and the laws by which heavy bodies impelled through the air are sustained" was read by Wenham. In his paper Wenham described his experiments with a whirling arm (used earlier by Cayley) to measure lift and drag on flat surfaces inclined at various angles of incidence. His studies of birds' wings and, in particular, their wing loading, showed that they derived most of their lift from the front portion, hence a long, thin wing was better than a short, wide one. He published illustrations of his glider designs covering his experiments of c. 1858–9. One of these had five slender wings one above the other, an idea later developed by Horatio Phillips. Wenham had some success with a model, but no real success with his full-size gliders.
    In 1871, Wenham and John Browning constructed the first wind tunnel designed for aeronautical research. It utilized a fan driven by a steam engine to propel the air and had a working section of 18 in. (116 cm). Wenham continued to play an important role in aeronautical matters for many years, including a lengthy exchange of ideas with Octave Chanute from 1892 onwards.
    [br]
    Principal Honours and Distinctions
    Honorary Member of the (Royal) Aeronautical Society.
    Bibliography
    Wenham published many reports and papers. These are listed, together with a reprint of his paper "Aerial locomotion", in the Journal of the Royal Aeronautical Society (August 1958).
    Further Reading
    Two papers by J.Laurence Pritchard, 1957, "The dawn of aerodynamics" Journal of the Royal Aeronautical Society (March); 1958, "Francis Herbert Wenham", Journal of the Royal Aeronautical Society (August) (both papers describe Wenham and his work).
    J.E.Hodgson, 1924, History of Aeronautics in Great Britain, London.
    JDS

    Biographical history of technology > Wenham, Francis Herbert

  • 13 Hertz, Heinrich Rudolph

    [br]
    b. 22 February 1857 Hamburg, Germany
    d. 1 January 1894 Bonn, Germany
    [br]
    German physicist who was reputedly the first person to transmit and receive radio waves.
    [br]
    At the age of 17 Hertz entered the Gelehrtenschule of the Johaneums in Hamburg, but he left the following year to obtain practical experience for a year with a firm of engineers in Frankfurt am Main. He then spent six months at the Dresden Technical High School, followed by year of military service in Berlin. At this point he decided to switch from engineering to physics, and after a year in Munich he studied physics under Helmholtz at the University of Berlin, gaining his PhD with high honours in 1880. From 1883 to 1885 he was a privat-dozent at Kiel, during which time he studied the electromagnetic theory of James Clerk Maxwell. In 1885 he succeeded to the Chair in Physics at Karlsruhe Technical High School. There, in 1887, he constructed a rudimentary transmitter consisting of two 30 cm (12 in.) rods with metal balls separated by a 7.5 mm (0.3 in.) gap at the inner ends and metallic plates at the outer ends, the whole assembly being mounted at the focus of a large parabolic metal mirror and the two rods being connected to an induction coil. At the other side of his laboratory he placed a 70 cm (27½ in.) diameter wire loop with a similar air gap at the focus of a second metal mirror. When the induction coil was made to create a spark across the transmitter air gap, he found that a spark also occurred at the "receiver". By a series of experiments he was not only able to show that the invisible waves travelled in straight lines and were reflected by the parabolic mirrors, but also that the vibrations could be refracted like visible light and had a similar wavelength. By this first transmission and reception of radio waves he thus confirmed the theoretical predictions made by Maxwell some twenty years earlier. It was probably in his experiments with this apparatus in 1887 that Hertz also observed that the voltage at which a spark was able to jump a gap was significantly reduced by the presence of ultraviolet light. This so-called photoelectric effect was subsequently placed on a theoretical basis by Albert Einstein in 1905. In 1889 he became Professor of Physics at the University of Bonn, where he continued to investigate the nature of electric discharges in gases at low pressure until his death after a long and painful illness. In recognition of his measurement of radio and other waves, the international unit of frequency of an oscillatory wave, the cycle per second, is now universally known as the Hertz.
    [br]
    Principal Honours and Distinctions
    Royal Society Rumford Medal 1890.
    Bibliography
    Much of Hertz's work, including his 1890 paper "On the fundamental equations of electrodynamics for bodies at rest", is recorded in three collections of his papers which are available in English translations by D.E.Jones et al., namely Electric Waves (1893), Miscellaneous Papers (1896) and Principles of Mechanics (1899).
    Further Reading
    J.G.O'Hara and W.Pricha, 1987, Hertz and the Maxwellians, London: Peter Peregrinus. J.Hertz, 1977, Heinrich Hertz, Memoirs, Letters and Diaries, San Francisco: San Francisco Press.
    KF

    Biographical history of technology > Hertz, Heinrich Rudolph

  • 14 Bergius, Friedrich Carl Rudolf

    [br]
    b. 11 October 1884 Goldschmieden, near Breslau, Germany
    d. 31 March Buenos Aires, Argentina
    [br]
    [br]
    After studying chemistry in Breslau and Leipzig and assisting inter alia at the institute of Fritz Haber in Karlsruhe on the catalysis of ammonia under high pressure, in 1909 he went to Hannover to pursue his idea of turning coal into liquid hydrocarbon under high hydrogen pressure (200 atm) and high temperatures (470° C). As experiments with high pressure in chemical processes were still in their initial stages and the Technical University could not support him sufficiently, he set up a private laboratory to develop the methods and to construct the equipment himself. Four years later, in 1913, his process for producing liquid or organic compounds from coal was patented.
    The economic aspects of this process were apparent as the demand for fuels and lubricants increased more rapidly than the production of oil, and Bergius's process became even more important after the outbreak of the First World War. The Th. Goldschmidt company of Essen contracted him and tried large-scale production near Mannheim in 1914, but production failed because of the lack of capital and experience to operate with high pressure on an industrial level. Both capital and experience were provided jointly by the BASF company, which produced ammonia at Merseburg, and IG Farben, which took over the Bergius process in 1925, the same year that the synthesis of hydrocarbon had been developed by Fischer-Tropsch. Two years later, at the Leuna works, almost 100,000 tonnes of oil were produced from coal; during the following years, several more hydrogenation plants were to follow, especially in the eastern parts of Germany as well as in the Ruhr area, while the government guaranteed the costs. The Bergius process was extremely important for the supply of fuels to Germany during the Second World War, with the monthly production rate in 1943–4 being more than 700,000 tonnes. However, the plants were mostly destroyed at. the end of the war and were later dismantled.
    As a consequence of this success Bergius, who had gained an international reputation, went abroad to work as a consultant to several foreign governments. Experiments aiming to reduce the costs of production are still continued in some countries. By 1925, after he had solved all the principles of his process, he had turned to the production of dextrose by hydrolyzing wood with highly concentrated hydrochloric acid.
    [br]
    Principal Honours and Distinctions
    Nobel Prize 1931. Honorary doctorates, Heidelberg, Harvard and Hannover.
    Bibliography
    1907, "Über absolute Schwefelsäure als Lösungsmittel", unpublished thesis, Weida. 1913, Die Anwendung hoher Drucke bei chemischen Vorgängen und eine Nachbildung
    des Entstehungsprozesses der Steinkohle, Halle. 1913, DRP no. 301, 231 (coal-liquefaction process).
    1925, "Verflüssigung der Kohle", Zeitschrift des Vereins Deutscher Ingenieure, 69:1313–20, 1359–62.
    1933, "Chemische Reaktionen unter hohem Druck", Les Prix Nobel en 1931, Stockholm, pp. 1–37.
    Further Reading
    Deutsches Bergbau-Museum, 1985, Friedrich Bergius und die Kohleverflüssigung. Stationen einer Entwicklung, Bochum (gives a comprehensive and illustrated description of the man and the technology).
    H.Beck, 1982, Friedrich Bergius, ein Erfinderschicksal, Munich: Deutsches Museum (a detailed biographical description).
    W.Birkendfeld, 1964, Der synthetische Treibstoff 1933–1945. Ein Beitragzur nationalsozialistischen Wirtschafts-und Rüstungspolitik, Göttingen, Berlin and Frankfurt (describes the economic value of synthetic fuels for the Third Reich).
    WK

    Biographical history of technology > Bergius, Friedrich Carl Rudolf

  • 15 Lenoir, Jean Joseph Etienne

    [br]
    b. 1822 Mussey-la-Ville, Belgium
    d. 1900 Verenna Saint-Hildar, France
    [br]
    Belgian (naturalized French in 1870) inventor of internal combustion engines, an electroplating process and railway telegraphy systems.
    [br]
    Leaving his native village for Paris at the age of 16, Lenoir became a metal enameller. Experiments with various electroplating processes provided a useful knowledge of electricity that showed in many of his later ideas. Electric ignition, although somewhat unreliable, was a feature of the Lenoir gas engine which appeared in 1860. Resembling the steam engine of the day, Lenoir engines used a non-compression cycle of operations, in which the gas-air mixture of about atmospheric pressure was being ignited at one-third of the induction stroke. The engines were double acting. About five hundred of Lenoir's engines were built, mostly in Paris by M.Hippolyte Marinoni and by Lefébvre; the Reading Ironworks in England built about one hundred. Many useful applications of the engine are recorded, but the explosive shock that occurred on ignition, together with the unreliable ignition systems, prevented large-scale acceptance of the engine in industry. However, Lenoir's effort and achievements stimulated much discussion, and N.A. Otto is reported to have carried out his first experiments on a Lenoir engine.
    [br]
    Principal Honours and Distinctions
    Académie des Sciences Prix Montyon Prize 1870. Société d'Encouragement, Silver Prize of 12,000 francs. Légion d'honneur 1881 (for his work in telegraphy).
    Bibliography
    8 February 1860, British patent no. 335 (the first Lenoir engine).
    1861, British patent no. 107 (the Lenoir engine).
    Further Reading
    Dugald Clerk, 1895, The Gas and Oil Engine, 6th edn, London, pp. 13–15, 30, 118, 203.
    World Who's Who in Science, 1968 (for an account of Lenoir's involvement in technology).
    KAB

    Biographical history of technology > Lenoir, Jean Joseph Etienne

  • 16 Reis, (Johann) Philipp

    SUBJECT AREA: Telecommunications
    [br]
    b. 7 January 1834 Geinherusen, Hesse-Kassel, Germany
    d. 14 January 1874 Friedrichsdorf, Germany
    [br]
    German schoolteacher and inventor who constructed an early form of telephone.
    [br]
    Reis entered the Garniers Institute in Friedrichsdorf in 1844 and then the Hassels Institute in Frankfurt. There he developed an interest in science, but on leaving school in 1850 he was apprenticed to the colour trade by his uncle. This involved study at the trade school and Dr Poppe's Institute in Frankfurt; while there he joined the Frankfurt Physical Society. Following military service in 1855 he studied to be a teacher. After his graduation he obtained a post at Garniers, where he began to pursue experiments with electricity and the development of hearing aids. In 1859 he sent a paper on the radiation of electricity to the editor of Annalen der Physik, but this was rejected, as was a later submission. Undeterred, he continued his experiments and by 1861 he had designed several instruments for the transmission of sound. The transmitter consisted of a membrane on which rested a metal strip that made contact with a metal point and completed an electrical circuit under the action of sound. The receiver consisted of an iron needle surrounded by a coil and resting on a sounding box, the operation probably being achieved by magnetostriction. The invention, which he described in a lecture to the Frankfurt Physical Society on 26 October 1861 and in a published paper, could produce tones and probably also speech, but was largely rejected by the scientific fraternity. The claim to produce speech was discounted in subsequent court cases that upheld the patents of Alexander Bell.
    [br]
    Principal Honours and Distinctions
    On 8 December 1878 a monument to Reis was erected in the Friedrichsdorf Cemetery by the Physical Society of Frankfurt.
    Bibliography
    1860–1, "Über Telephone durch den galvani-schen Strom", Jahresbericht der Physikalische 57.
    Further Reading
    J.Munro, 1891, Heroes of the Telegraph.
    Silvanus P.Thompson, 1883, Philipp Reis. Inventor of the Telephone.
    B.B.Bauer, 1962, "A century of the microphone", Proceedings of the Institute of Radio Engineers: 720.
    KF

    Biographical history of technology > Reis, (Johann) Philipp

  • 17 Li Gao (Li Kao)

    SUBJECT AREA: Ports and shipping
    [br]
    fl. 752/820 China
    [br]
    Chinese physicist, technologist and patron of engineers.
    [br]
    Li Gao was Prince of Cao (Tshao). He was interested in acoustics and carried out experiments on both hydrostatic and air pressure. He constructed "trick" hydrostatic vessels that could take up different positions according to the amount of water in them. Such vessels had been known since the third century BC and were popular at court for over a thousand years: Li's were made of lacquered wood, c. 790, probably in quantity. He made successful use of paddle warships operated by treadmills. Similar vessels may have been in use as early as the late fifth century, but this is not at all certain. Li Gao's ships are therefore the first practical achievement of an idea for ship propulsion that, probably independently, had been mooted but not realized in early Byzantine times in Europe. His experiments with this type of vessel were made during 782 to 785, while he was Governor of Hungchow. It was said that the ships "went like the wind", faster than a charging horse.
    [br]
    Further Reading
    J.Needham, Science and Civilisation in China, Cambridge: Cambridge University Press, 1962, Vols IV. 1, pp. 38, 62; 1965, IV. 2, pp. 417–18, 433, 435; Clerks and Craftsmen in China and the West, 1970, pp. 25, 127–8.
    LRD

    Biographical history of technology > Li Gao (Li Kao)

  • 18 Deering, William

    [br]
    b. 1826 USA
    d. 1913 USA
    [br]
    American entrepreneur who invested in the developing agricultural machinery manufacturing industry and became one of the founders of the International Harvester Company.
    [br]
    Deering began work in his father's woollen mill and, with this business experience, developed Deering, Milliken \& Co., a wholesale dry goods business. Deering invested $40,000 in the Marsh reaper business in 1870, and became a partner in 1872. In 1880 he gained full control of the company and took up residence in Chicago, where he set up a factory. In 1878 he saw the Appleby binders, and in November of that year he negotiated a licence agreement for their manufacture. Deering was aware that with only two twine manufacturers operating in the US, the high price of twine was discouraging sales of binders. He therefore entered into an agreement with Edwin H.Fitler of Philadelphia for the production of very large quantities of twine, and in so doing dramatically reduced its price. In 1880 Deering released onto the market 3,000 binders and ten cartloads of twine that he had manufactured secretly. By 1890 McCormick and Deering were market leaders; Deering anticipated McCormick in a number of technical areas and also diversified his business into ore, timber, and a rolling and casting mill. After several false starts, a merger between the two companies took place on 12 August 1902 to form the International Harvester Company, with Deering as chairman of the voting trust which was established to control it. The company expanded into Canada in 1903 and into Europe in 1905. It began its first experiments with tractors in that same year and produced the first production models in 1906. The company went into truck production in 1907.
    [br]
    Further Reading
    C.H.Wendell, 1981, 150 Years of International Harvester, Crestlink Publishing (though more concerned with the machinery produced by International Harvester, this gives an account of its originating companies, and the personalities behind them).
    H.N.Casson, 1908, The Romance of the Reaper, Doubleday Page (deals with McCormick, Deering and the formation of International Harvester).
    AP

    Biographical history of technology > Deering, William

  • 19 Jacquard, Joseph-Marie

    SUBJECT AREA: Textiles
    [br]
    b. 7 July 1752 Lyons, France
    d. 7 August 1834 Oullines, France
    [br]
    French developer of the apparatus named after him and used for selecting complicated patterns in weaving.
    [br]
    Jacquard was apprenticed at the age of 12 to bookbinding, and later to type-founding and cutlery. His parents, who had some connection with weaving, left him a small property upon their death. He made some experiments with pattern weaving, but lost all his inheritance; after marrying, he returned to type-founding and cutlery. In 1790 he formed the idea for his machine, but it was forgotten amidst the excitement of the French Revolution, in which he fought for the Revolutionists at the defence of Lyons. The machine he completed in 1801 combined earlier inventions and was for weaving net. He was sent to Paris to demonstrate it at the National Exposition and received a bronze medal. In 1804 Napoleon granted him a patent, a pension of 1,500 francs and a premium on each machine sold. This enabled him to study and work at the Conservatoire des Arts et Métiers to perfect his mechanism for pattern weaving. A method of selecting any combination of leashes at each shoot of the weft had to be developed, and Jacquard's mechanism was the outcome of various previous inventions. By taking the cards invented by Falcon in 1728 that were punched with holes like the paper of Bouchon in 1725, to select the needles for each pick, and by placing the apparatus above the loom where Vaucanson had put his mechanism, Jacquard combined the best features of earlier inventions. He was not entirely successful because his invention failed in the way it pressed the card against the needles; later modifications by Breton in 1815 and Skola in 1819 were needed before it functioned reliably. However, the advantage of Jacquard's machine was that each pick could be selected much more quickly than on the earlier draw looms, which meant that John Kay's flying shuttle could be introduced on fine pattern looms because the weaver no longer had to wait for the drawboy to sort out the leashes for the next pick. Robert Kay's drop box could also be used with different coloured wefts. The drawboy could be dispensed with because the foot-pedal operating the Jacquard mechanism could be worked by the weaver. Patterns could be changed quickly by replacing one set of cards with another, but the scope of the pattern was more limited than with the draw loom. Some machines that were brought into use aroused bitter hostility. Jacquard suffered physical violence, barely escaping with his life, and his machines were burnt by weavers at Lyons. However, by 1812 his mechanism began to be generally accepted and had been applied to 11,000 draw-looms in France. In 1819 Jacquard received a gold medal and a Cross of Honour for his invention. His machines reached England c.1816 and still remain the basic way of weaving complicated patterns.
    [br]
    Principal Honours and Distinctions
    French Cross of Honour 1819. National Exposition Bronze Medal 1801.
    Further Reading
    C.Singer (ed.), 1958, A History of Technology, Vol. IV, Oxford: Clarendon Press.
    R.L.Hills, 1970, Power in the Industrial Revolution, Manchester (covers the introduction of pattern weaving and the power loom).
    RLH

    Biographical history of technology > Jacquard, Joseph-Marie

  • 20 Stuart, Herbert Akroyd

    [br]
    b. 1864 Halifax, England
    d. 1927 Perth, Australia
    [br]
    English inventor of an oil internal-combustion engine.
    [br]
    Stuart's involvement with engines covered a period of less than ten years and was concerned with a means of vaporizing the heavier oils for use in the so-called oil engines. Leaving his native Yorkshire for Bletchley in Buckinghamshire, Stuart worked in his father's business, the Bletchley Iron and Tin Plate works. After finishing grammar school, he worked as an assistant in the Mechanical Engineering Department of the City and Guilds of London Technical College. He also formed a connection with the Finsbury Technical College, where he became acquainted with Professor William Robinson, a distinguished engineer eminent in the field of internal-combustion engines.
    Resuming work at Bletchley, Stuart carried out experiments with engines. His first patent was concerned with new methods of vaporizing the fuel, scavenging systems and improvement of speed control. Two further patents, in 1890, specified substantial improvements and formed the basis of later engine designs. In 1891 Stuart joined forces with R.Hornsby and Sons of Grantham, a firm founded in 1815 for the manufacture of machinery and steam engines. Hornsby acquired all rights to Stuart's engine patents, and their superior technical resources ensured substantial improvements to Stuart's early design. The Hornsby-Ackroyd engines, introduced in 1892, were highly successful and found wide acceptance, particularly in agriculture. With failing health, Stuart's interest in his engine work declined, and in 1899 he emigrated to Australia, where in 1903 he became a partner in importing gas engines and gas-producing plants. Following his death in 1927, under the terms of his will he was interred in England; sadly, he also requested that all papers and materials pertaining to his engines be destroyed.
    [br]
    Bibliography
    July 1886, British patent no. 9,866 (fuel vapourization methods, scavenging systems and improvement of speed control; the patent describes Stuart as Mechanical Engineer of Bletchley Iron Works).
    1890, British patent no. 7,146 and British patent no. 15,994 (describe a vaporizing chamber connected to the working cylinder by a small throat).
    Further Reading
    D.Clerk, 1895, The Gas and Oil Engine, 6th edn, London, pp. 420–6 (provides a detailed description of the Hornsby-Ackroyd engine and includes details of an engine test).
    T.Hornbuckle and A.K.Bruce, 1940, Herbert Akroyd Stuart and the Development of the Heavy Oil Engine, London: Diesel Engine Users'Association, p. 1.
    KAB

    Biographical history of technology > Stuart, Herbert Akroyd

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