Self-similarity of the third type in ultra-relativistic blastwaves

Author:

Faran Tamar1ORCID,Gruzinov Andrei2,Sari Re'em3ORCID

Affiliation:

1. Department of Astrophysical Sciences, Princeton University 1 , Princeton, New Jersey 08544, USA

2. CCPP, Physics Department, New York University 2 , 726 Broadway, New York, New York 10003, USA

3. Racah Institute of Physics, Hebrew University 3 , Jerusalem 91904, Israel

Abstract

A new type of self-similarity is found in the problem of a plane-parallel, ultra-relativistic blastwave, propagating in a power-law density profile of the form ρ∝z−k. Self-similar solutions of the first kind can be found for k < 7∕4 using dimensional considerations. For steeper density gradients with k > 2, second type solutions are obtained by eliminating a singularity from the equations. However, for intermediate power-law indices 7/4<k<2, the flow does not obey any of the known types of self-similarity. Instead, the solutions belong to a new class in which the self-similar dynamics are dictated by the non-self-similar part of the flow. We obtain an exact solution to the ultra-relativistic fluid equations and find that the non-self-similar flow is described by a relativistic expansion into vacuum, composed of (1) an accelerating piston that contains most of the energy and (2) a leading edge of a fast material that coincides with the interiors of the blastwave and terminates at the shock. The dynamics of the piston itself are self-similar and universal and do not depend on the external medium. The exact solution of the non-self-similar flow is used to solve for the shock in the new class of solutions.

Funder

Israel Science Foundation

Division of Astronomical Sciences

Publisher

AIP Publishing

Reference17 articles.

1. Self-similarity—Similarity and intermediate asymptotics;Radiofizika,1976

2. The formation of a blast wave by a very intense explosion. II. the atomic explosion of 1945;Proc. R. Soc. London, Ser. A,1950

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