Books on the topic 'High temperature shock'

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1

Chen, Yanan. High Temperature Shock Technology. Singapore: Springer Nature Singapore, 2023. http://dx.doi.org/10.1007/978-981-19-8124-1.

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2

Brun, Raymond, ed. High Temperature Phenomena in Shock Waves. Berlin, Heidelberg: Springer Berlin Heidelberg, 2012. http://dx.doi.org/10.1007/978-3-642-25119-1.

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3

Brun, Raymond. High Temperature Phenomena in Shock Waves. Berlin, Heidelberg: Springer Berlin Heidelberg, 2012.

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4

Singh, N. Studies on equatorial shock formation during plasmaspheric refilling: Grant NAGW-2128. [Washington, DC: National Aeronautics and Space Administration, 1993.

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5

P, Raĭzer I͡U, ed. Physics of shock waves and high-temperature hydrodynamic phenomena. Mineola, N.Y: Dover Publications, 2002.

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6

American Physical Society Topical Conference on Shock Waves in Condensed Matter (4th 1985 Spokane, Wash.). Shock waves in condensed matter. New York: Plenum Press, 1986.

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7

Davison, Lee. High-Pressure Shock Compression of Solids V: Shock Chemistry with Applications to Meteorite Impacts. New York, NY: Springer New York, 2003.

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8

Ill.) American Physical Society Topical Conference on Shock Compression of Condensed Matter (2011 Chicago. Shock compression of condensed matter--2011: Proceedings of the Conference of the American Physical Society Topical Group on Shock Compression of Condensed Matter, held in Chicago Illinois, USA, June 26-July 1, 2011. Edited by Elert Mark and American Physical Society. Topical Group on Shock Compression of Condensed Matter. Melville, N.Y: American Institute of Physics, 2012.

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9

American, Physical Society Topical Conference on Shock Compression of Condensed Matter (12th 2001 Atlanta Ga ). Shock compression of condensed matter--2001: Proceedings of the Conference of the American Physical Society Topical Group on Shock Compression of Condensed Matter held in Atlanta, Georgia, June 24-29, 2001. Melville, N.Y: American Institute of Physics, 2002.

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10

Brun, Raymond. High Temperature Phenomena in Shock Waves. Springer, 2014.

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11

High Temperature Phenomena In Shock Waves. Springer, 2012.

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12

Gaydon, Alfred Gordon, and Ian Roy Hurle. The Shock Tube In High Temperature Chemical Physics. Literary Licensing, LLC, 2013.

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13

Hayes, Wallace. Physics of Shock Waves and High-Temperature Hydrodynamic Phenomena. Elsevier Science & Technology Books, 2012.

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14

Chen, YaNan. High Temperature Shock Technology: Ultra-Fast Micro-Nano Manufacturing. Springer, 2023.

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15

Raizer, Yu P., and Ya B. Zel'dovich. Physics of Shock Waves and High-Temperature Hydrodynamic Phenomena. Dover Publications, Incorporated, 2012.

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16

Raizer, Yu P. Physics of Shock Waves and High-Temperature Hydrodynamic Phenomena. Dover Publications, Incorporated, 2012.

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17

United States. National Aeronautics and Space Administration., ed. Studies on equatorial shock formation during plasmaspheric refilling: Third year funding request and annual report for NAGW-2128. [Huntsville, Ala.]: University of Alabama in Huntsville, 1994.

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18

Center, Ames Research, ed. Molecular processes in a high temperature shock layer: Final technical report, May 1, 1984 - July 31, 1987. Moffett Field, CA: NASA Ames Research Center, 1987.

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19

Molecular processes in a high temperature shock layer: Semi-annual status report, May 1, 1985-October 31, 1985. Stoneham, MA: Institute for Science Research, 1985.

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20

Muk, Hwang Soon, Rabinowitz Martin Jay, and United States. National Aeronautics and Space Administration., eds. Shock tube and modeling study of the H + O₂ = OH + O reaction over a wide range of composition, pressure, and temperature. [Washington, DC: National Aeronautics and Space Administration, 1995.

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21

Fisher, David. Mechanical Properties of MAX Phases. Materials Research Forum LLC, 2021. http://dx.doi.org/10.21741/9781644901274.

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MAX Phase Materials are uniquely structured carbide and nitride materials which combine the rigidity, oxidation-resistance and high-temperature strength of ceramic materials with such metallic properties as good machinability, thermal-shock resistance, damage-tolerance and good transport properties. Potential applications include microelectronic layers, coatings for electrical contacts, thermal shock-resistant refractories, high-temperature heating elements, neutron-irradiation resistant nuclear applications, thermal barriers, protective aerospace coatings, and bio-compatible materials. The book reviews theoretical and experimental research up to early 2021 and references 185 original resources with their direct web links for in-depth reading.
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22

Effects of shocks on emission from central engines of active galactic nuclei. I. [Washington, DC: National Aeronautics and Space Administration, 1996.

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23

D, Caditz, Tsuruta Sachiko, and United States. National Aeronautics and Space Administration., eds. Effects of shocks on emission from central engines of active galactic nuclei. I. [Washington, DC: National Aeronautics and Space Administration, 1996.

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24

Wright, A. G. Environmental considerations. Oxford University Press, 2017. http://dx.doi.org/10.1093/oso/9780199565092.003.0012.

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Magnetic fields, with a magnitude comparable with that of the earth (10−4 tesla), affect trajectories of electrons and hence gain and collection efficiency. The inclusion of a high-permeability shield usually offers sufficient protection. Photomultiplier (PMT) performance is affected by electric field gradients generated by the proximity of a metal housing. The design criteria of such housings are discussed. Strong magnetic fields of the order of a tesla require special devices. Operation in harsh environments such as those encountered in oil well logging requires performance at high temperature (200 °C) and in situations of high shock and vibration expressed in terms of power spectral density. Rugged PMTs can meet all these requirements. Applications at cryogenic temperatures, such as liquid argon, can also be met with special PMTs.
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25

Muk, Hwang Soon, DeWitt Kenneth J, and United States. National Aeronautics and Space Administration., eds. High temperature kinetic study of the reactions H + O₂ = OH + O and O + H₂ = OH + H in H₂/O₂ system by shock tube - laser absorption spectroscopy. [Washington, D.C.]: National Aeronautics and Space Administration, 1995.

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26

National Aeronautics and Space Administration (NASA) Staff. High Temperature Kinetic Study of the Reactions H + O2 = Oh + o and o + H2 = Oh + H in H2/O2 System by Shock Tube-Laser Absorption Spectroscopy. Independently Published, 2018.

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27

Thadani, Naresh, Lee Davison, and Yasuyuki Horie. High-Pressure Shock Compression of Solids VI: Old Paradigms and New Challenges. Springer New York, 2013.

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28

Davison, Lee, Yasuyuki Horie, and Toshimori Sekine. High-Pressure Shock Compression of Solids V: Shock Chemistry with Applications to Meteorite Impacts. Springer, 2012.

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29

Johnson, J. N., and S. C. Schmidt. Shock Compression of Condensed Matter 1989: Proceedings of the American Physical Society Topical Conference Held Albuquerque Nm, August 14-17, 1989. North-Holland, 1990.

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30

C, Schmidt S., Johnson James N, Davison L. W, American Physical Society, and American Physical Society Topical Conference on Shock Waves in Condensed Matter (6th : 1989 : Albuquerque, N.M.), eds. Shock compression of condensed matter--1989: Proceedings of the American Physical Society Topical Conference held in Albuquerque, New Mexico, August 14-17, 1989. Amsterdam: North-Holland, 1990.

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31

(Editor), Michael D. Furnish, Naresh N. Thadhani (Editor), and Yasuyuki Horie (Editor), eds. Shock Compression of Condensed Matter - 2001: Proceedings of the Conference of the American Physical Society, Topical Group on Shock Compression of Condensed ... 24-29, 2001 (AIP Conference Proceedings). American Institute of Physics, 2002.

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