Influence of ambient gas to flute instability produced at the interface between laser plasma and external magnetic field

IF 0.8 4区 物理与天体物理 Q3 PHYSICS, MULTIDISCIPLINARY
Zhang Zhen-Chi, Tang Hui-Bo, Wang Jin-Chan, Si Hua-Chong, Wang Zhi, Lan Xiang, Hu Guang-Yue
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Abstract

Diamagnetic cavity and flute instability generated by plasma expansion in an external magnetic field are important phenomena in space and fusion physics.We use a nanosecond laser to irradiate a carbon planar target to generate plasma, and at the same time apply a 7T transverse pulsed strong magnetic field to the plasma. The flute instability generated on the surface of the diamagnetic cavity when the plasma expands in an external magnetic field is studied experimentally. Data analysis shows that under our experimental parameters, the radius of gyration of electrons(ρe) is much smaller than the density gradient scale length of the diamagnetic cavity(Ln), while the ion's gyration radius(ρi) is much larger than Ln, indicating that the electrons are magnetized while the ions are non magnetized. The relative drift between electrons and ions provides free energy for the development of instability.The drift velocity is composed of the gravity drift velocity and the diamagnetic gradient drift velocity. The calculation shows that the gravity drift velocity is much larger than the diamagnetic gradient drift velocity in our experiment, so the instability belongs to the Large Larmor Radius Instability. By filling the target chamber with helium, we found that the background gas can significantly inhibit the development of flute instability. When the background gas pressure exceeds 50Pa (about 1% of the interface plasma density), the flute instability is almost is completely suppressed. Kinetic dispersion equations show that ion-ion collisions and electron-ion collision effects are the main factors that inhibit the development of instability. Calculations on the dispersion equation show that ion-ion collisions are the main factor that inhibits the development of instabilities.
环境气体对激光等离子体与外磁场界面产生的凹槽不稳定性的影响
等离子体在外磁场中膨胀产生的抗磁腔和抗磁槽不稳定性是空间和核聚变物理中的重要现象。利用纳秒激光照射碳平面靶产生等离子体,同时对等离子体施加7T的横向脉冲强磁场。实验研究了等离子体在外加磁场作用下膨胀时,在抗磁腔表面产生的凹槽不稳定性。数据分析表明,在我们的实验参数下,电子的旋转半径(ρe)远小于反磁腔的密度梯度尺度长度(Ln),而离子的旋转半径(ρi)远大于Ln,说明电子被磁化而离子未被磁化。电子和离子之间的相对漂移为不稳定性的发展提供了自由能。漂移速度由重力漂移速度和反磁梯度漂移速度组成。计算表明,实验中重力漂移速度远大于反磁梯度漂移速度,因此不稳定性属于大拉莫尔半径不稳定性。通过向靶室充入氦气,我们发现背景气体可以显著抑制靶腔不稳定性的发展。当背景气体压力超过50Pa(约为界面等离子体密度的1%)时,凹槽的不稳定性几乎被完全抑制。动力学色散方程表明,离子-离子碰撞和电子-离子碰撞效应是抑制不稳定性发展的主要因素。对色散方程的计算表明,离子-离子碰撞是抑制不稳定性发展的主要因素。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
物理学报
物理学报 物理-物理:综合
CiteScore
1.70
自引率
30.00%
发文量
31245
审稿时长
1.9 months
期刊介绍: Acta Physica Sinica (Acta Phys. Sin.) is supervised by Chinese Academy of Sciences and sponsored by Chinese Physical Society and Institute of Physics, Chinese Academy of Sciences. Published by Chinese Physical Society and launched in 1933, it is a semimonthly journal with about 40 articles per issue. It publishes original and top quality research papers, rapid communications and reviews in all branches of physics in Chinese. Acta Phys. Sin. enjoys high reputation among Chinese physics journals and plays a key role in bridging China and rest of the world in physics research. Specific areas of interest include: Condensed matter and materials physics; Atomic, molecular, and optical physics; Statistical, nonlinear, and soft matter physics; Plasma physics; Interdisciplinary physics.
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