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Long-term Evolution of Relativistic Unmagnetized Collisionless Shocks

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arxiv 2401.02392 v2 pith:TVVC5AEV submitted 2024-01-04 astro-ph.HE physics.plasm-ph

Long-term Evolution of Relativistic Unmagnetized Collisionless Shocks

classification astro-ph.HE physics.plasm-ph
keywords shockmagneticsimulationvarepsiloncollisionlessfieldfieldsfraction
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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We study a relativistic collisionless electron-positron shock propagating into an unmagnetized ambient medium using 2D particle-in-cell simulations of unprecedented duration and size. The shock generates intermittent magnetic structures of increasingly larger size as the simulation progresses. Toward the end of our simulation, at around 26,000 plasma times, the magnetic coherence scale approaches $\lambda\sim 100$ plasma skin depths, both ahead and behind the shock front. We anticipate a continued growth of $\lambda$ beyond the time span of our simulation, as long as the shock accelerates particles to increasingly higher energies. The post-shock field is concentrated in localized patches, which maintain a local magnetic energy fraction $\varepsilon_B\sim 0.1$. Particles randomly sampling the downstream fields spend most of their time in low field regions ($\varepsilon_B\ll 0.1$), but emit a large fraction of the synchrotron power in the localized patches with strong fields ($\varepsilon_B\sim 0.1$). Our results have important implications for models of gamma-ray burst afterglows.

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  1. Ultra-long simulations of collisionless relativistic shocks in front-comoving frame: evidence for a steady state and its properties

    astro-ph.HE 2026-07 conditional novelty 7.0

    In ultra-long front-comoving PIC simulations of relativistic pair shocks, the downstream region reaches a steady state controlled only by the upstream temperature, and Fermi acceleration saturates with no power-law ta...