English

A Numerical Study of Relativistic Oblique Shock Reflection

High Energy Astrophysical Phenomena 2023-09-25 v2 Solar and Stellar Astrophysics Fluid Dynamics

Abstract

Shocks are ubiquitous in astrophysical sources, many of which involve relativistic bulk motions, leading to the formation of relativistic shocks. Such relativistic shocks have so far been studied mainly in one dimension, for simplicity, but the complex nature of the relevant astrophysical flows often requires higher dimensional studies. Here we study the two-dimensional problem of the reflection of a planer shock off of a wall for a general incidence angle and a cold unshocked medium. We use primarily relativistic hydrodynamic numerical simulations, and elaborately compare the results to an analytic treatment. The simulations are performed both in the rest frame S of the unshocked fluid, where the dimensionless proper speed of the singly shocked fluid is u1=Γ1β1u_1=\Gamma_1\beta_1 and the shock incidence angle is α1\alpha_1, and in the rest frame S^\prime of the point P of intersection of the incident shock and the wall for regular reflection (RR). Good agreement is obtained between the simulations in these two frames and with the analytic solution. The establishment of a steady flow in frame S^\prime is explored, along with the transition between the strong and weak shock RR solutions. The transition line between RR and Mach reflection (MR) is studied numerically in the u1u_1-α1\alpha_1 plane and found to coincide with the analytic detachment/sonic line. The flow properties along the sonic line are investigated in detail focusing on how they vary between the Newtonian and relativistic limits.

Keywords

Cite

@article{arxiv.2309.11199,
  title  = {A Numerical Study of Relativistic Oblique Shock Reflection},
  author = {Prasanta Bera and Jonathan Granot and Michael Rabinovich and Paz Beniamini},
  journal= {arXiv preprint arXiv:2309.11199},
  year   = {2023}
}

Comments

Submitted to MNRAS

R2 v1 2026-06-28T12:27:03.936Z