Books on the topic 'Thermionics'

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1

National Research Council (U.S.). Committee on Thermionic Research and Technology. Thermionics Quo Vadis?: An assessment of the DTRA's advanced thermionics research and development program. Washington, D.C: National Academy Press, 2001.

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2

Bros, Peter King. Thermionics: The formation, movement, and dissipation of matter in the universe : a conceptual unification of the macrocosmic and microcosmic nature of measurable and observable physical phenomena. [Upper Marlboro, Md.]: B & B Records Center, 1986.

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3

Stakhanov, I. P. Fizika termoėmissionnogo preobrazovateli͡a︡. Moskva: Ėnergoatomizdat, 1985.

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4

History of thermionic devices (conference proceedings) (23 April 1994 Apr 1994 London). Conference proceedings: History of thermionic devices. London: The Society, 1995.

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5

Srivastava, M. K. Redistribution of thermal x-ray radiation in cavities: View-factor method and comparison with DSn calculations. Mumbai: Bhabha Atomic Research Centre, 1999.

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6

Benke, Steven M. Operational testing and thermal modeling of a TOPAZ-II single cell thermionic fuel element test stand. Monterey, Calif: Naval Postgraduate School, 1994.

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7

Thermionics Quo Vadis? Washington, D.C.: National Academies Press, 2001. http://dx.doi.org/10.17226/10254.

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8

(US), National Research Council. Thermionics Quo Vadis?: An Assessment of the Dtra's Advanced Thermionics Research and Development Program (Compass series). Natl Academy Pr, 2001.

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9

Richardson, O. W. (Thermionic) Emission From Hot Bodies. Wexford College Press, 2003.

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10

Beck, A. H. W. Thermionic Valves: Their Theory and Design. University of Cambridge ESOL Examinations, 2015.

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11

Hendrik, J. Van Der Bijl. The Thermionic Vacuum Tube And Its Applications. Merchant Books, 2005.

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12

Bijl, H. J. Van Der. The Thermionic Vacuum Tube-Physics and Electronics. Wexford College Press, 2003.

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13

Field, Thermionic and Secondary Electron Emission Spectroscopy. Springer, 2013.

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14

McKay, M. Randy. The emission of atoms and molecules accompanying the fracture of single crystal magnesium oxide. 1986.

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15

S, Kresanov V., ed. Vysokoėffektivnyĭ ėmitter ėlektronov na osnove geksaborida lantana. Moskva: Ėnergoatomizdat, 1987.

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16

Solymar, L., D. Walsh, and R. R. A. Syms. The free electron theory of metals. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198829942.003.0006.

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The model of the free electron theory is presented. The density of states and the Fermi–Dirac distribution function are discussed, leading to the specific heat of the electrons, the work function, thermionic emission, and the Schottky effects. As examples of applications the field-emission microscope and quartz–halogen lamps are discussed. The photoelectric effect and the energy diagrams relating to the junction between two metals are also discussed.
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17

Myers, Jennifer L. Electron temperature relaxation in a thermionically assisted Ar-Cs plasma as a function of cathode temperature. 1988.

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18

Dickinson, Jeffrey Wade. Computer modeling and analysis of single and multicell thermionic fuel elements. 1994.

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19

Arguello, William R. The radiation effects of high energy electrons upon thermionic integrated circuits. 1985.

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20

Lee, Hsing Hui. System modeling and reactor design study of an advanced incore thermionic space reactor. 1992.

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21

Kheliewi, Abdullah S. Modeling transient thermalhydraulic behavior of a thermionic fuel element for nuclear space reactors. 1993.

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22

United States. National Aeronautics and Space Administration., ed. Design of a power management and distribution system for a thermionic-diode powered spacecraft. [Washington, D.C: National Aeronautics and Space Administration, 1996.

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23

United States. National Aeronautics and Space Administration., ed. Thermion: Verification of a thermionic heat pipe in microgravity, Utah State University, 1990-1991. [Washington, DC: National Aeronautics and Space Administration, 1991.

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24

Wright, A. G. PMT background. Oxford University Press, 2017. http://dx.doi.org/10.1093/oso/9780199565092.003.0006.

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Photomultiplier (PMT) background derives from sources of photons, and from photoelectrons generation within a PMT. These may also act as a source of optical and radioactive background for neighbouring detectors. Dark count and dark current are reconciled by allowing for leakage currents flowing into the anode. The optimal gain setting follows from these considerations. Sources of background generated by the photocathode include thermionic emission; light generated within the PMT; gamma rays; muons and minimum ionizing particles (MIPs); insulator glow in the region of the anode; and residual gas. Pulse height distributions for dark counts, in terms of photoelectrons equivalent, reveal the size and magnitude distributions of the various contributions. Temperature and gain dependence are also covered. PMTs constructed from low radioactive glass provide ultra-low background.
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25

Scott, Peter. Britain’s Inter-War Radio Industry. Oxford University Press, 2017. http://dx.doi.org/10.1093/oso/9780198783817.003.0006.

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Radio experienced even faster diffusion in Britain than in the United States. The stakes for control over the industry’s profits were thus particularly high. Marconi initially used its monopoly over fundamental payments to extract huge rents from the set makers. Then in the 1930s, when Marconi’s fundamental patents began to expire, the two major producers of radio valves (thermionic tubes) sought to use patents to gain control over the industry—offering packages of radio patents to manufacturers in return for tying the manufacturer to buying their valves. Yet this strategy proved unsuccessful, as independent firms such as Ekco, Pye, and Murphy were able to develop strong brands that counteracted the market power of the valve manufacturers, eventually giving them the upper hand in patent negotiations. This chapter explores the battle for control of the radio value chain.
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26

Abdul-hamid, Shahab A. Monte Carlo burnup analysis code development and application to an incore thermionic space nuclear power system. 1993.

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27

Group, Research. The 2000 World Market Forecasts for Imported Thermionic, Cold Cathode and Photocathode Valves, Tubes, and Parts. Icon Group International, 2000.

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28

Ivor, Brodie, and United States. National Aeronautics and Space Administration, eds. Thermionic noise measurements for on-line dispenser cathode diagnostics for linear beam microwave tubes: Final report. Menlo Park, CA: SRI International, 1985.

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29

TOPAZ II space nuclear power program: Management, funding, and contracting problems. Washington, D.C. (P.O. Box 37050, Washington, D.C. 20013): The Office, 1997.

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30

Lewis, Bryan R. Development of systems analysis program for space reactor studies. 1993.

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31

Gedeon, Stephen R. Nuclear design analysis of low-power (1-30 KWe) space nuclear reactor systems. 1993.

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32

Group, Research, Parts Research Group, and Tubes Photocathode Valves. The 2000 World Forecasts of Thermionic, Cold Cathode and Photocathode Valves, Tubes, and Parts Export Supplies (World Trade Report). 2nd ed. Icon Group International, 2000.

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33

Group, Parts Research, Photocathode Valves Tubes, and Cold Cathode And Pho The Thermionic. The 2000 Import and Export Market for Thermionic, Cold Cathode and Photocathode Valves, Tubes, and Parts in Africa (World Trade Report). 2nd ed. Icon Group International, 2000.

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34

Group, Parts Research, Tubes Photocathode Valves, and Cold Cathode And Pho The Thermionic. The 2000 Import and Export Market for Thermionic, Cold Cathode and Photocathode Valves, Tubes, and Parts in Asia (World Trade Report). 2nd ed. Icon Group International, 2000.

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35

Group, Parts Research, Photocathode Valves Tubes, and Cold Cathode And Pho The Thermionic. The 2000 Import and Export Market for Thermionic, Cold Cathode and Photocathode Valves, Tubes, and Parts in Europe (World Trade Report). 2nd ed. Icon Group International, 2000.

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36

Group, Parts Research, Tubes Photocathode Valves, and Cold Cathode And Pho The Thermionic. The 2000 Import and Export Market for Thermionic, Cold Cathode and Photocathode Valves, Tubes, and Parts in Oceana (World Trade Report). 2nd ed. Icon Group International, 2000.

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37

Group, Parts Research, Tubes Photocathode Valves, and Cold Cathode And Pho The Thermionic. The 2000 Import and Export Market for Thermionic, Cold Cathode and Photocathode Valves, Tubes, and Parts in Latin America (World Trade Report). 2nd ed. Icon Group International, 2000.

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38

Group, Parts Research, Photocathode Valves Tubes, and Cold Cathode And Pho The Thermionic. The 2000 Import and Export Market for Thermionic, Cold Cathode and Photocathode Valves, Tubes, and Parts in N. America & Caribbean (World Trade Report). 2nd ed. Icon Group International, 2000.

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39

Group, Parts Research, Tubes Photocathode Valves, and Cold Cathode And Pho The Thermionic. The 2000 Import and Export Market for Thermionic, Cold Cathode and Photocathode Valves, Tubes, and Parts in The Middle East (World Trade Report). 2nd ed. Icon Group International, 2000.

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40

R, Thrower Keith, Institution of Electrical Engineers, Newcomen Society (Great Britain), and Science Museum (Great Britain), eds. History of thermionic devices: Conference proceedings, 23 April 1995 ; Newcomen Society, in conjunction with The Science Museum (London) and The Institution of Electrical Engineers. London: Newcomen Society, 1995.

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