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Astrophysical blastwaves

Jeremiah P. Ostriker and Christopher F. McKee

Jeremiah P. Ostriker

  • Princeton University Observatory, Princeton, New Jersey 08544

Christopher F. McKee

  • Department of Physics, University of California, Berkeley, California 94720

Rev. Mod. Phys. 60, 1 – Published 1 January, 1988

DOI: https://doi.org/10.1103/RevModPhys.60.1

Abstract

The authors present a general discussion of spherical, nonrelativistic blastwaves in an astrophysical context. A variety of effects has been included: expansion of the ambient medium, gravitation, and an embedded fluid of clouds capable of exchanging mass, energy, or momentum with the medium. The authors also consider cases of energy injection due either to a central source or to detonations. Cosmological solutions are extensively treated. Most attention is devoted to problems in which it is permissible to assume self-similarity, as in the prototype Sedov-Taylor blastwave. A general virial theorem for blastwaves is derived. For self-similar blastwaves, the radius varies as a power of the time, Rstη. The integral properties of the solution are completely specified by two dimensionless numbers measuring the relative importance of thermal and kinetic energy. The authors find certain exact kinematical relations and a variety of analytic approximations to determine these numbers with varying degrees of accuracy. The approximations may be based on assumptions about the internal density distributions (e.g., shell-like), pressure distribution, or velocity distribution. In many cases exact conditions from, for example, boundary conditions or other constraints may be used to determine unspecified parameters. One new set of exact integral constraints has been derived. The various approximation schemes are tested with known solutions. The authors find that for blastwaves in which the flow extends to the origin, the assumption that the internal velocity is linear with radius is reasonably accurate. For blastwaves in which an interior vacuum develops, the equally simple approximation of constant interior velocity is accurate. These lowest-order approximations are shown to give numerical coefficients in the relation R=const×tη which are accurate to about 1-2%. The higher-order approximations show an accuracy that in some cases equals that obtained, to date, by direct numerical integration. In addition to the new methods presented, the authors have obtained new results for evaporative blastwaves, impeded blastwaves, blastwaves with cloud crushing, bubbles, cosmological blastwaves (self-similar and non-self-similar, radiative and nonradiative), blastwaves in a wind, and detonations. Some of the new results found are exact. Included are the radiative, cosmological self-similar solution, appropriate to the universe (z>10) when inverse Compton cooling is efficient [lnR=const+(lnt)(15+17)24], and certain properties of the solutions mentioned above. In a series of appendixes several related issues are treated: energy conservation for multicomponent fluid in an expanding universe; central and edge derivatives of physical quantities in self-similar adiabatic blastwaves; shock jump conditions including energy input (detonations), and a variety of other matters.

References (108)

  1. Avedisova, F. S., 1971, Astron. Zh. 48, 894
  2. Axford, W. I., E. Leer, and A. Skadron, 1977, in Proceedings of the 15th International Cosmic Ray Conference, Plovdiv, Bulgaria (Bulgarian Academy of Sciences, Plovdiv), Vol. 11, p. 32
  3. Balbus, S. A., and C. F. McKee, 1982, Astrophys. J. 252, 529
  4. Barenblatt, G. I., 1979, Similarity, Self-Similarity, and Intermediate Asymptotics (Consultants Bureau, New York)
  5. Barenblatt, G. I., and Ya. B. Zel'dovich, 1972, Annu. Rev. Fluid Mech. 3, 285
  6. Bell, A. R., 1978, Mon. Not. R. Astron. Soc. 182, 147
  7. Bertschinger, E. W., 1983, Astrophys. J. 268, 17
  8. Bertschinger, E. W., 1985a, Astrophys. J. Suppl. 58, 1
  9. Bertschinger, E. W., 1985b, Astrophys. J. 295, 1
  10. Blandford, R. D., and L. L. Cowie, 1982, Astrophys. J. 260, 625
  11. Blandford, R. D., and C. F. McKee, 1976, Phys. Fluids 19, 1130
  12. Blandford, R. D., and J. P. Ostriker, 1978, Astrophys. J. 221, L29
  13. Blandford, R. D., and J. P. Ostriker, 1979, Astrophys. J. 232, 34
  14. Bond, J. R., and A. S. Szalay, 1983, Astrophys. J. 277, 443
  15. Castor, J., R. McCray, and R. Weaver, 1975, Astrophys. J. 200, L107
  16. Cavaliere, A., and A. Messina, 1976, Astrophys. J. 209, 424
  17. Chernyi, G. G., 1957, Dokl. Akad. Nauk SSSR 112, 213
  18. Chevalier, R. A., 1974, Astrophys. J. 188, 501
  19. Chevalier, R. A., 1981, Fundam. Cosmic Phys. 7, 1
  20. Chevalier, R. A., 1982, Astrophys. J. 258, 790
  21. Chevalier, R. A., 1983, Astrophys. J. 272, 765
  22. Chevalier, R. A., 1984, Astrophys. J. 280, 797
  23. Chieze, J. P., and B. Lazareff, 1981, Astron. Astrophys. 95, 194
  24. Cioffi, D., C. F. McKee, and E. Bertschinger, 1988, Astrophys. J. (in press)
  25. Courant, R., and K. O. Friedrichs, 1948, Supersonic Flow and Shock Waves (Interscience, New York), p. 424
  26. Cowie, L. L., 1976, Ph.D. thesis (Harvard University)
  27. Cowie, L. L., 1977, Astrophys. J. 215, 226
  28. Cowie, L. L., and C. F. McKee, 1977, Astrophys. J. 211, 135
  29. Cowie, L. L., C. F. McKee, and J. P. Ostriker, 1981, Astrophys. J. 247, 908 (paper III)
  30. Cowie, L. L., and G. B. Rybicki, 1982, Astrophys. J. 260, 504
  31. Cox, D. P., 1972, Astrophys. J. 178, 159
  32. Cox, D. P., 1979, Astrophys. J. 234, 863
  33. Cox, D. P., 1983, private communication
  34. Cox, D. P., 1986, Astrophys. J. 304, 771
  35. Cox, D. P., and P. R. Anderson, 1982, Astrophys. J. 253, 268
  36. Cox, D. P., and R. J. Edgar, 1983, Astrophys. J. 265, 443
  37. Cox, D. P., and J. Franco, 1981, Astrophys. J. 251, 687
  38. Draine, B. T., 1980, Astrophys. J. 241, 1021
  39. Drury, L., and H. J. Volk, 1981, Astrophys. J. 248, 344
  40. Dryer, M., 1974, Space Sci. Rev. 15, 403
  41. Edgar, R. J., and D. P. Cox, 1984, Astrophys. J. 283, 833
  42. Fillmore, J. A., and P. Goldreich, 1984, Astrophys. J. 281, 9
  43. Gaffet, B., 1978, Astrophys. J. 225, 442
  44. Gaffet, B., 1981a, Astrophys. J. 249, 761
  45. Gaffet, B., 1981b, "The virial theorem in fluid dynamics. Invariance transformation of the Euler equations and of the Navier Stokes equations for monatomic gases," Research Institute for Fundamental Physics, Kyoto, Preprint No. RIFP-442
  46. Gaffet, B., 1983, Astrophys. J. 273, 267
  47. Habe, A., S. Ikeuchi, and Y. D. Tanaka, 1981, Publ. Astron. Soc. Jpn. 33, 23
  48. Hausman, M. A., D. W. Olson, and B. D. Roth, 1983, Astrophys. J. 270, 351
  49. Hoffman, G. L., E. E. Salpeter, and I. Wasserman, 1983, Astrophys. J. 268, 527
  50. Hoyle, F., and W. Fowler, 1960, Astrophys. J. 132, 565
  51. Ikeuchi, S., 1981, Publ. Astron. Soc. Jpn. 33, 211
  52. Ikeuchi, S., K. Tomisaka, and J. P. Ostriker, 1983, Astrophys. J. 265, 583
  53. Kahn, F. D., 1969, Physica 14, 172
  54. Kahn, F. D., 1975, in Proceedings of the 14th International Cosmic Ray Conference, Munich, edited by K. Pinkau (Max-Planck-Institut, München), Vol. 11, p. 3566
  55. Kahn, F. D., 1976, Astron. Astrophys. 50, 145
  56. Kazhdan, Ya. M., 1986, Sov. Astron. 30, 261
  57. Königl, A., 1983, Mon. Not. R. Acad. Soc. 205, 471
  58. Korobeinikov, V. P., 1956, Dokl. Akad. Nauk SSSR 109, 271
  59. Korobeinikov, V. P., N. S. Melnikova, and Ye. V. Ryazanov, 1962, The Theory of Point Explosion (U.S. Department of Commerce, Washington, D.C.), Chap. 7 (English translation)
  60. Lake, K., and R. Pim, 1985, Astrophys. J. 298, 439
  61. Landau, L. D., and E. Lifshitz, 1959, Fluid Mechanics (Pergamon, London)
  62. Laumbach, D. D., and R. F. Probstein, 1969, J. Fluid Mech. 35, Part I, p. 53
  63. Lerche, I., and V. Vasyliunas, 1976, Astrophys. J. 210, 85
  64. Maeda, K., and H. Sato, 1983a, Prog. Theor. Phys. 119, 70
  65. Maeda, K., and H. Sato, 1983b, Prog. Theor. Phys. 119, 772
  66. Maeda, K., and H. Sato, 1983c, Prog. Theor. Phys. 119, 1276
  67. Mansfield, V. N., and E. E. Salpeter, 1974, Astrophys. J. 190, 305
  68. Max, C. E., and C. F. McKee, 1977, Phys. Rev. Lett. 39, 1336
  69. McKee, C. F., 1974, Astrophys. J. 188, 335
  70. McKee, C. F., 1982, in Supernovae, A Survey of Current Research, edited by M. Rees and R. Stoneham (Reidel, Dordrecht), p. 433
  71. McKee, C. F., and L. L. Cowie, 1975, Astrophys. J. 195, 715
  72. McKee, C. F., L. L. Cowie, and J. P. Ostriker, 1978, Astrophys. J. 219, L23 (paper II)
  73. McKee, C. F., and J. P. Ostriker, 1977, Astrophys. J. 218, 148 (paper I)
  74. McKee, C. F., and J. P. Ostriker, 1987, in preparation
  75. McKee, C. F., D. Van Buren, and B. Lazareff, 1984, Astrophys. J. 278, L115
  76. Morita, K., and S. Sakashita, 1978, Prog. Theor. Phys. 59, 763
  77. Mueller, M. W., and W. D. Arnett, 1976, Astrophys. J. 210, 670
  78. Naidu, G. N., M. P. R. Rao, and H. L. Yadav, 1983, Astrophys. Space Sci. 89, 77
  79. Oort, J. H., 1951, in Problems of Cosmical Aerodynamics (Central Air Documents Office, Dayton, OH), p. 118
  80. Ostriker, J. P., and L. L. Cowie, 1981, Astrophys. J. 243, L127
  81. Ostriker, J. P., C. Thompson, and E. Witten, 1986, Phys. Lett. B 180, 231
  82. Ozernoi, L. M., and V. V. Chernomordik, 1978, Astron. Zh. 55, 236
  83. Parker, E. N., 1963, Interplanetary Dynamical Processes (Wiley, New York), p. 92ff
  84. Peebles, P. J. E., 1982, Astrophys. J. 257, 438
  85. Pikel'ner, S. E., and P. V. Shcheglov, 1969, Sov. Astron.-AJ 12, 757
  86. Raymond, J. C., D. P. Cox, and B. W. Smith, 1976, Astrophys. J. 204, 290
  87. Schwarz, J., J. P. Ostriker, and A. Yahil, 1975, Astrophys. J. 202, 1
  88. Sedov, L. I., 1946, Prikl. Mat. Mekh. 10, 241, No. 2
  89. Sedov, L. I., 1959, Similarity and Dimensional Methods in Mechanics (Academic, New York)
  90. Seiden, R. E., and H. Gerola, 1979, Astrophys. J. 233, 56
  91. Shu, F. H., V. Milione, W. Gebel, C. Yuan, D. W. Goldsmith, and W. W. Roberts, 1972, Astrophys. J. 173, 557
  92. Simon, M., and W. I. Axford, 1966, Planet. Space Sci. 14, 901
  93. Solinger, A., S. Rappaport, and J. Buff, 1975, Astrophys. J. 201, 381
  94. Spitzer, L., 1962, Physics of Fully Ionized Gases, 2nd ed. (Wiley, New York)
  95. Spitzer, L., 1978, Physical Processes in the Interstellar Medium (Wiley, New York)
  96. Stanyukovich, K. P., 1960, Unsteady Motion of Continuous Media (Pergamon, New York)
  97. Steigman, G., P. A. Strittmatter, and R. E. Williams, 1975, Astrophys. J. 198, 575
  98. Taylor, G. I., 1950, Proc. R. Soc. London, Ser. A 201, 175
  99. Van Buren, D., B. Lazareff, and C. F. McKee, 1987, in preparation
  100. Vishniac, E. T., 1983, Astrophys. J. 274, 152
  101. Vishniac, E. T., J. P. Ostriker, and E. Bertschinger, 1985, Astrophys. J. 291, 399
  102. von Neumann, J., 1947, Blast Wave (Los Alamos Scientific Laboratory Technical Series 7, Part II, Chap. 2) reprinted in Collected Works, edited by A. H. Taub (Pergamon, New York, 1963), Vol. 6, p. 219
  103. Weaver, R., R. McCray, J. Castor, P. Shapiro, and R. Moore, 1977, Astrophys. J. 218, 377
  104. Woodward, P. R., 1976, Astrophys. J. 207, 484
  105. Woodward, P. R., 1983, private communication
  106. Yuan, C., and C. Y. Wang, 1982, Astrophys. J. 252, 508
  107. Zel'dovich, Ya. B., and A. Kompanyets, 1960, Theory of Detonation (Academic, New York)
  108. Zel'dovich, Ya. B., and Yu. P. Raizer, 1966, Physics of Shock Waves and High-Temperature Hydrodynamic Phenomena (Academic, New York)

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