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1

Saad, Michel A. Compressible fluid flow. 2nd ed. Englewood Cliffs, N.J: Prentice Hall, 1993.

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2

Oosthuizen, P. H. Compressible fluid flow. New York: McGraw-Hill, 1997.

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3

Ockendon, Hilary, and John R. Ockendon. Waves and Compressible Flow. New York, NY: Springer New York, 2016. http://dx.doi.org/10.1007/978-1-4939-3381-5.

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4

Palmer, James, Kenneth Ramsden, and Eric Goodger. Compressible Flow Tables for Engineers. London: Macmillan Education UK, 1987. http://dx.doi.org/10.1007/978-1-349-09724-1.

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5

Talwar, Mahesh. Multiphase, compressible, and incompressible flow. Houston: Gulf Pub. Co., Book Division, 1985.

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6

Sayers, A. T. Hydraulic and compressible flow turbomachines. London: McGraw-Hill, 1990.

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7

Hugh L. Dryden Flight Research Center., ed. Unsteady aerodynamics: Subsonic compressible inviscid case. Edwards, Calif: National Aeronautics and Space Administration, Dryden Flight Research Center, 1999.

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8

Sarkar, Sutanu. Compressible homogeneous shear: simulation and modeling. Hampton, Va: Institute for Computer Applications in Science and Engineering, 1992.

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9

Erlebacher, Gordon. The analysis and simulation of compressible turbulence. Hampton, Va: Institute for Computer Applications in Science and Engineering, 1990.

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10

Roe, P. L. Error estimates for cell-vertex solutions of the compressible Euler equations. Hampton, Va: ICASE, 1987.

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11

Gajjar, J. S. B. The upper-branch stability of compressible boundary layer flows. Cleveland, Ohio: Institute for Computational Mechanics in Propulsion, 1989.

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12

Joint Institute for Aeronautics and Acoustics., ed. Self-similar compressible free vortices. [Stanford, Calif.]: Joint Institute for Aeronautics and Acoustics, National Aeronautics and Space Administration, Ames Research Center, 1998.

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13

Joint Institute for Aeronautics and Acoustics., ed. Self-similar compressible free vortices. [Stanford, Calif.]: Joint Institute for Aeronautics and Acoustics, National Aeronautics and Space Administration, Ames Research Center, 1998.

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14

Yahya, S. M. Gas tables for compressible flow calculations. 5th ed. New Delhi: New Age International (P) Ltd., Publishers, 2006.

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15

Wang, B. Y. Compressible laminar boundary-layer flows of a dusty gas over a semi-infinite flat plate. [S.l.]: [s.n.], 1988.

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16

Erlebacher, Gordon. Toward the large-eddy simulations of compressible turbulent flows. Hampton, Va: ICASE, 1987.

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17

Foster, Jeffry. Study of compressible flow through a rectangular-to-semiannular transition duct. Cleveland, Ohio: Lewis Research Center, 1995.

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18

Erlebacher, Gordon. Toward the large-eddy simulation of compressible turbulent flows. Hampton, Va: Institute for Computer Applications in Science and Engineering, 1990.

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19

Sarkar, Sutanu. Direct simulation of compressible turbulence in a shear flow. Hampton, Va: Institute for Computer Applications in Science and Engineering, 1991.

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20

1957-, Erlebacher Gordon, Hussaini M. Yousuff, and Langley Research Center, eds. Compressible homogeneous shear: Simulation and modeling. Hampton, Va: National Aeronautics and Space Administration, Langley Research Center, 1992.

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21

Dando, Andrew. The inviscid compressible Gortler problem. Hampton, Va: Institute for Computer Applications in Science and Engineering, 1991.

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22

Dodbele, Simha S. Design optimization of natural laminar flow bodies in compressible flow. Hampton, Va: Langley Research Center, 1993.

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23

E, Grosch C., and Institute for Computer Applications in Science and Engineering., eds. Inviscid spatial stability of a compressible mixing layer. Hampton, VA: Institute for Computer Applications in Science and Engineering, NASA Langley Research Center, 1989.

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24

Bayliss, Alvin. Wave phenomena in a high Reynolds number compressible boundary layer. Hampton, Va: ICASE, 1985.

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25

Yeh, Chou, Bertoglio Jean-Pierre, and Institute for Computer Applications in Science and Engineering., eds. Energy transfer in compressible turbulence. Hampton, VA: Institute for Computer Applications in Science and Engineering, NASA Langley Research Center, 1995.

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26

Dulikravich, George S. Theory of unsteady compressible irrotational flows including heat conductivity and longitudinal viscosity. New York: American Institute of Aeronautics and Astronautics, 1988.

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27

Guzʹ, Aleksandr Nikolaevich. Dinamika szhimaemoĭ vi︠a︡zkoĭ zhidkosti: Dynamics of compressible viscous fluid. Kiev: "A.S.K.", 1998.

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28

Sibanda, Precious. Boundary layer stability and cross-flow vortices in compressible flows. Manchester: University of Manchester, 1996.

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29

Finley, P. J. The Preston tube in adiabatic compressible flow. London: Imperial College of Science, Technology and Medicine, Department of Aeronautics, 1994.

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30

J, Felcman, and Straškraba I, eds. Mathematical and computational methods for compressible flow. Oxford: Clarendon Press, 2003.

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31

E, Carscallen William, ed. Solutions manual to accompany Compressible fluid flow. New York: McGraw-Hill, 1997.

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32

Brower, William B. Theory, tables, and data for compressible flow. New York: Hemisphere Pub. Corp., 1990.

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33

Tidriri, M. D. Schwarz-based algorithms for compressible flows. Hampton, Va: Institute for Computer Applications in Science and Engineering, 1996.

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34

Escudier, Marcel. Compressible pipe flow. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198719878.003.0013.

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In this chapter gas flow through pipes is analysed, taking account of compressibility and either friction or heat exchange with the fluid. It is shown that in all cases the key parameter is the Mach number. The analyses are based upon the conservation laws for mass, momentum, and energy, together with an equation of state. So that significant results can be achieved, the flowing fluid is treated as a perfect gas, and the flow as one dimensional. Adiabatic pipe flow with wall friction is termed Fanno flow. Frictionless pipe flow with heat transfer is termed Rayleigh flow. It is found that both flows, and also isothermal pipe flow with wall friction, can be limited by choking.
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35

Escudier, Marcel. Compressible fluid flow. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198719878.003.0011.

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Compressible-gas flow through convergent and convergent-divergent nozzles is analysed in this chapter based upon the conservation laws for mass, momentum, and energy, together with considerations of thermodynamics. It is shown that in both cases the key parameter in describing the flow is the Mach number, which is used to distinguish between subsonic and supersonic flow. So that significant results can be achieved, the flowing fluid is treated as a perfect gas, and the flow as one dimensional. Flow through a convergent nozzle and the choking limitation is discussed. Flow through a normal shockwave, which is an important feature of supersonic flow, is also analysed. No account is taken of surface friction or heat transfer, and the flow upstream and downstream of a shockwave is treated as isentropic. In addition, the conditions are discussed under which a shockwave arises in compressible flow through a convergent-divergent nozzle.
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36

Anderson, John. Modern Compressible Flow. OPEN UNIVERSITY PRES, 2004.

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37

Oosthuizen, Patrick H., William Carscallen, and Patrick Oosthuizen. Compressible Fluid Flow. McGraw-Hill Science/Engineering/Math, 2003.

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38

Anderson, John. Modern Compressible Flow. OPEN UNIVERSITY PRES, 2004.

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39

Compressible fluid flow. Englewood Cliffs, N.J: Prentice-Hall, 1985.

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40

Modern Compressible Flow. Tata McGrawhill India Pvt Ltd, 2012.

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41

Waves and Compressible Flow. New York: Springer-Verlag, 2004. http://dx.doi.org/10.1007/b97537.

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42

Ockendon, John R., and Hilary Ockendon. Waves and Compressible Flow. Springer, 2016.

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43

Finite Element Compressible Flow. Blurb, 2013.

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44

Ames, Forrest E., and Clement C. Tang. Introduction to Compressible Flow. Taylor & Francis Group, 2021.

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45

Ockendon, John R., and Hilary Ockendon. Waves and Compressible Flow. Springer London, Limited, 2006.

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46

Ames, Forrest E., and Clement C. Tang. Introduction to Compressible Flow. Taylor & Francis Group, 2021.

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47

Ockendon, John R., and Hilary Ockendon. Waves and Compressible Flow. Springer London, Limited, 2016.

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48

Ockendon, John R., and Hilary Ockendon. Waves and Compressible Flow. Springer New York, 2010.

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49

Ames, Forrest. Introduction to Compressible Flow. Momentum Press, 2018.

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50

Ockendon, John R., and Hilary Ockendon. Waves and Compressible Flow. Springer New York, 2018.

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