References
1. M. A. Saad, Compressible Fluid Flow, (Prentice-Hall, Inc., Englewood Cliffs, New Jersey
1985), Chapter 4
2. J. Billingham, A.C. King, Wave Motion (Cambridge University Press, New York, 2000)
3. C.E. Needham, Blast Waves (Springer, Berlin, Heidelberg, 2010) Chapter 3
4. V. Babu, Fundamentals of Gas Dynamics, 2nd edn. (John Wiley & Sons Ltd., Chichester,
United Kingdom, 2015) Chapter 3
5. O. Regev, O.M. Umurhan, P.A. Yecko, Modern Fluid Dynamics for Physics and Astrophysics
(Springer, New York, 2016) Section 6.5.2
6. J.H.S. Lee, The Gas Dynamics of Explosions (Cambridge University Press, New York, 2016)
Chapter 1
7. R. Blum, Normal Shock Waves in a Compressible Fluid. Am. J. Physiol. 35, 428 (1967)
8. L.D. Landau, E. M. Lifshitz (Fluid Mechanics, Pergamon Press, London, 1966) Chapter 9
9. N. Curle, H. J. Davies, Modern Fluid Dynamics, vol.2, (Van Nostrand Reinhold Company,
London, 1971), Chapter 3
10. R. C. Binder, Advanced Fluid Mechanics, vol. 1, (Prentice-Hall, 1958), Chapter 2
11. J.D. Anderson, Modern Compressible Flow with Historical Perspective, 3rd edn. (McGrawHill, New York, 2003) Chapter 7
12. R. von Mises, Mathematical Theory of Compressible Fluid Flow (Dover Publications, Inc.,
Mineola, New York, 2004), Chapter 3
13. J.D. Anderson Jr., Computational Fluid Dynamics: The Basics with Applications (McGraw
Hill, New York, 1995) Chapter 2
14. F. H. Harlow, LA-2412 Report (Los Alamos Scientific Laboratory of the University of California, Los Alamos, New Mexico, 1960), Chapter 9
15. R.K. Anand, H.C. Yadav, The effects of viscosity on the structure of shock waves in a non-ideal
gas. Acta Phys. Pol. A 129, 28 (2016)
130
3 Conditions Across the Shock: The Rankine-Hugoniot Equations
1. M. A. Saad, Compressible Fluid Flow, (Prentice-Hall, Inc., Englewood Cliffs, New Jersey
1985), Chapter 4
2. J. Billingham, A.C. King, Wave Motion (Cambridge University Press, New York, 2000)
3. C.E. Needham, Blast Waves (Springer, Berlin, Heidelberg, 2010) Chapter 3
4. V. Babu, Fundamentals of Gas Dynamics, 2nd edn. (John Wiley & Sons Ltd., Chichester,
United Kingdom, 2015) Chapter 3
5. O. Regev, O.M. Umurhan, P.A. Yecko, Modern Fluid Dynamics for Physics and Astrophysics
(Springer, New York, 2016) Section 6.5.2
6. J.H.S. Lee, The Gas Dynamics of Explosions (Cambridge University Press, New York, 2016)
Chapter 1
7. R. Blum, Normal Shock Waves in a Compressible Fluid. Am. J. Physiol. 35, 428 (1967)
8. L.D. Landau, E. M. Lifshitz (Fluid Mechanics, Pergamon Press, London, 1966) Chapter 9
9. N. Curle, H. J. Davies, Modern Fluid Dynamics, vol.2, (Van Nostrand Reinhold Company,
London, 1971), Chapter 3
10. R. C. Binder, Advanced Fluid Mechanics, vol. 1, (Prentice-Hall, 1958), Chapter 2
11. J.D. Anderson, Modern Compressible Flow with Historical Perspective, 3rd edn. (McGrawHill, New York, 2003) Chapter 7
12. R. von Mises, Mathematical Theory of Compressible Fluid Flow (Dover Publications, Inc.,
Mineola, New York, 2004), Chapter 3
13. J.D. Anderson Jr., Computational Fluid Dynamics: The Basics with Applications (McGraw
Hill, New York, 1995) Chapter 2
14. F. H. Harlow, LA-2412 Report (Los Alamos Scientific Laboratory of the University of California, Los Alamos, New Mexico, 1960), Chapter 9
15. R.K. Anand, H.C. Yadav, The effects of viscosity on the structure of shock waves in a non-ideal
gas. Acta Phys. Pol. A 129, 28 (2016)
130
3 Conditions Across the Shock: The Rankine-Hugoniot Equations
