Magnetized collisionless shocks in the Universe and the laboratory
ORAL · Invited
Abstract
Kinetic simulations have been used to model both (quasi-)perpendicular and (quasi-)parallel shocks. We have found that perpendicular shocks, which are readily achievable on kiloJoule, TeraWatt laser systems such as OMEGA EP, are mediated by a modified two-stream instability.
Quasi-parallel shocks are more difficult to form in the laboratory and to simulate because of their large spatial scales and long formation times. Our simulations show that the early stages of quasi-parallel shock formation are achievable in the ongoing Discovery Science experiments on the National Ignition Facility, and that particles accelerated by diffusive shock acceleration are expected to be observable in the experiments.
Energy partition between electrons and ions in collisionless shocks has long been an open question. In the shock simulations, significant energy exchange between ions and electrons is observed, which implies a collisionless electron heating mechanism. A multi-fluid dispersion relation indicates that resonances between electron whistler and ion magnetohydrodynamic waves provide the mechanism that accounts for the energy exchange between ions and electrons.
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Publication: [1] Zhang et al., Phys. Plasmas 28, 072111 (2021)<br>[2] Zhang et al., Phys. Plasmas 31, 082303 (2024)<br>[3] Zhang et al., "Collisionless ion-electron energy exchange in magnetized shocks." Phys. Rev. Lett., in review [Zhang, Y., et al., arXiv:2504.17774 (2025)]
Presenters
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Yu (Victor) Zhang
Laboratory for Laser Energetics
Authors
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Yu (Victor) Zhang
Laboratory for Laser Energetics
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Peter V Heuer
Laboratory for Laser Energetics (LLE), University of Rochester
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Han Wen
University of Rochester
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Jonathan R Davies
University of Rochester
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Chuang Ren
University of Rochester
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Fernando Garcia Rubio
Pacific Fusion Corporation, Pacific Fusion
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Derek B Schaeffer
University of California, Los Angeles
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Antoine Bret
Univeristy de Castilla-La Mancha
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Junchi Zhang
Laboratory for Laser Energetics