Magnetohydrodynamics simulation of magnetic reconnection process based on the laser-driven Helmholtz capacitor-coil targets

IF 1.9 3区 物理与天体物理 Q2 PHYSICS, MULTIDISCIPLINARY Frontiers in Physics Pub Date : 2024-05-28 DOI:10.3389/fphy.2024.1380844
Chunqing Xing, Yongli Ping, Xu Zhao, Weiming An, Jiayong Zhong
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Abstract

Magnetic reconnection is an important rapid energy release mechanism in astrophysics. Magnetic energy can be effectively converted into plasma kinetic energy, thermal energy, and radiation energy. This study is based on the magnetohydrodynamics simulation method and utilizes the FLASH code to investigate the laser-driven magnetic reconnection physical process of the Helmholtz capacitor-coil target. The simulation model incorporates the laser driving effect, and the external magnetic field consistent with the Helmholtz capacitor-coil target is written in. This approach achieves a magnetic reconnection process that is more consistent with the experiment. By changing the resistivity, subtle differences in energy conversion during the evolution of magnetic reconnection are observed. Under conditions of low resistivity, there is a more pronounced increase in the thermal energy of ions compared to other energy components. In simulations with high resistivity, the increase in electrons thermal energy is more prominent. The simulation gives the evolution trajectory of magnetic reconnection, which is in good agreement with the experimental results. This has important reference value for experimental research on the low-β magnetic reconnection.
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基于激光驱动亥姆霍兹电容线圈目标的磁重联过程磁流体力学模拟
磁重联是天体物理学中一种重要的快速能量释放机制。磁能可以有效地转化为等离子体动能、热能和辐射能。本研究基于磁流体力学模拟方法,利用 FLASH 代码研究亥姆霍兹电容线圈靶的激光驱动磁重联物理过程。仿真模型包含了激光驱动效应,并写入了与亥姆霍兹电容线圈靶一致的外部磁场。这种方法实现了与实验更加一致的磁重联过程。通过改变电阻率,可以观察到磁重联演化过程中能量转换的细微差别。在低电阻率条件下,与其他能量成分相比,离子热能的增加更为明显。在高电阻率模拟中,电子热能的增加更为突出。模拟结果给出了磁重联的演化轨迹,与实验结果非常吻合。这对于低β磁重联的实验研究具有重要的参考价值。
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来源期刊
Frontiers in Physics
Frontiers in Physics Mathematics-Mathematical Physics
CiteScore
4.50
自引率
6.50%
发文量
1215
审稿时长
12 weeks
期刊介绍: Frontiers in Physics publishes rigorously peer-reviewed research across the entire field, from experimental, to computational and theoretical physics. This multidisciplinary open-access journal is at the forefront of disseminating and communicating scientific knowledge and impactful discoveries to researchers, academics, engineers and the public worldwide.
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