Simulations of strong radiatively cooled magnetic reconnection for the MARZ campaign on Z
POSTER
Abstract
We present 2D resistive MHD simulations of the MARZ platform using GORGON, which includes realistic cooling curves and separate ion and electron energy equations. In these simulations, a current sheet develops with a Lundquist number ∽800, containing plasmoids generated by the tearing instability. As the drive strength increases, the layer density and the radiative cooling also increase, leading to a rapid loss of thermal energy within the current sheet. This triggers a sudden collapse of the layer, quashing the plasmoids and stalling the reconnection process. We use the XP2 code to post-process these simulations, enabling photometric predictions for synthetic diagnostics at the Z facility.
Presenters
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Jack D Hare
Massachusetts Institute of Technology MI, Massachusetts Institute of Technology, MIT PSFC
Authors
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Jack D Hare
Massachusetts Institute of Technology MI, Massachusetts Institute of Technology, MIT PSFC
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Clayton E Myers
Sandia National Laboratories
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Jeremy P Chittenden
Imperial College London
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Aidan C Crilly
Imperial College London, CIFS, The Blackett Laboratory, Imperial College London
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Rishabh Datta
Massachusetts Institute of Technology
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William R Fox
Princeton Plasma Physics Laboratory, Princeton Plasma Physics Laboratory (PPPL), USA, Princeton University
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Jack W Halliday
Imperial College London
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Christopher A Jennings
Sandia National Laboratories
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Hantao Ji
Princeton University
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Carolyn C Kuranz
University of Michigan
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Sergey V Lebedev
Imperial College London
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Raul F Melean
University of Michigan
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Dmitri A Uzdensky
University of Colorado, Boulder