Dynamics of relativistic shock waves subject to a strong radiation drag: Similarity solutions and numerical simulations

We examine the effect of the Compton drag on the dynamics of a relativistic shock wave. Similarity solutions describing a radiation-supported shock are obtained for certain profiles of the external radiation intensity and the density of the unshocked ejecta and are compared with 1D numerical simulat...

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Published inPhysics of fluids (1994) Vol. 29; no. 8
Main Authors Leitus, Ilia, Levinson, Amir
Format Journal Article
LanguageEnglish
Published Melville American Institute of Physics 01.08.2017
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ISSN1070-6631
1089-7666
DOI10.1063/1.4986005

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Abstract We examine the effect of the Compton drag on the dynamics of a relativistic shock wave. Similarity solutions describing a radiation-supported shock are obtained for certain profiles of the external radiation intensity and the density of the unshocked ejecta and are compared with 1D numerical simulations of a blast wave expanding into an ambient medium containing isotropic seed radiation. Both the analytic model and the simulations indicate that under realistic conditions the radiation drag should strongly affect the dynamics and structure of the shocked layer. In particular, our calculations show significant strengthening of the reverse shock and weakening of the forward shock over time of the order of the inverse Compton cooling time. We conclude that the effect of the radiation drag on the evolution of the emitting plasma should affect the resultant light curves and, conceivably, spectra of the observed emission during strong blazar flares.
AbstractList We examine the effect of the Compton drag on the dynamics of a relativistic shock wave. Similarity solutions describing a radiation-supported shock are obtained for certain profiles of the external radiation intensity and the density of the unshocked ejecta and are compared with 1D numerical simulations of a blast wave expanding into an ambient medium containing isotropic seed radiation. Both the analytic model and the simulations indicate that under realistic conditions the radiation drag should strongly affect the dynamics and structure of the shocked layer. In particular, our calculations show significant strengthening of the reverse shock and weakening of the forward shock over time of the order of the inverse Compton cooling time. We conclude that the effect of the radiation drag on the evolution of the emitting plasma should affect the resultant light curves and, conceivably, spectra of the observed emission during strong blazar flares.
Author Levinson, Amir
Leitus, Ilia
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10.1088/0004-637x/785/2/132
10.1086/173633
10.1088/0004-637x/705/2/l213
10.1086/173251
10.1086/513316
10.1086/175338
10.1093/mnras/280.1.67
10.1063/1.861619
10.1080/03091920903479742
10.1088/0004-637x/704/1/38
10.1088/0004-637x/727/1/21
10.1088/0004-637x/809/1/23
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Snippet We examine the effect of the Compton drag on the dynamics of a relativistic shock wave. Similarity solutions describing a radiation-supported shock are...
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SubjectTerms Computer simulation
Cooling effects
Drag
Ejecta
Ejection
Elastic scattering
Emission spectra
Fluid dynamics
Mathematical models
Physics
Relativism
Relativistic effects
Shock waves
Similarity
Similarity solutions
Simulation
Spectral emittance
Title Dynamics of relativistic shock waves subject to a strong radiation drag: Similarity solutions and numerical simulations
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