Kinetic study of transverse electron-scale interface instability in relativistic shear flows

Interfacial magnetic field structures induced by transverse electron-scale shear instability (mushroom instability) are found to be strongly associated with electron and ion dynamics, which in turn will influence the development of the instability itself. We find that high-frequency electron oscilla...

Full description

Bibliographic Details
Main Authors: Peilin Yao, Hongbo Cai, Xinxin Yan, Wenshuai Zhang, Bao Du, Jianmin Tian, Enhao Zhang, Xuewu Wang, Shaoping Zhu
Format: Article
Language:English
Published: AIP Publishing LLC 2020-09-01
Series:Matter and Radiation at Extremes
Online Access:http://dx.doi.org/10.1063/5.0017962
id doaj-f1308b10e44b4c94ba56254242448483
record_format Article
spelling doaj-f1308b10e44b4c94ba562542424484832020-11-25T01:49:42ZengAIP Publishing LLCMatter and Radiation at Extremes2468-080X2020-09-0155054403054403-810.1063/5.0017962Kinetic study of transverse electron-scale interface instability in relativistic shear flowsPeilin Yao0Hongbo Cai1Xinxin Yan2Wenshuai Zhang3Bao Du4Jianmin Tian5Enhao Zhang6Xuewu Wang7Shaoping Zhu8Department of Engineering Physics, Tsinghua University, Beijing 100084, ChinaInstitute of Applied Physics and Computational Mathematics, Beijing 100094, ChinaCenter for Applied Physics and Technology, HEDPS, School of Physics, and College of Engineering, Peking University, Beijing 100871, ChinaInstitute of Applied Physics and Computational Mathematics, Beijing 100094, ChinaInstitute of Applied Physics and Computational Mathematics, Beijing 100094, ChinaGraduate School, China Academy of Engineering Physics, Beijing 100088, ChinaGraduate School, China Academy of Engineering Physics, Beijing 100088, ChinaDepartment of Engineering Physics, Tsinghua University, Beijing 100084, ChinaInstitute of Applied Physics and Computational Mathematics, Beijing 100094, ChinaInterfacial magnetic field structures induced by transverse electron-scale shear instability (mushroom instability) are found to be strongly associated with electron and ion dynamics, which in turn will influence the development of the instability itself. We find that high-frequency electron oscillations are excited normal to the shear interface. Also, on a larger time scale, the bulk of the ions are gradually separated under the influence of local magnetic fields, eventually reaching an equilibrium related to the initial shear conditions. We present a theoretical model of this behavior. Such separation on the scale of the electron skin depth will prevent different ions from mixing and will thereafter restrain the growth of higher-order instabilities. We also analyze the role of electron thermal motion in the generation of the magnetic field, and we find an increase in the instability growth rate with increasing plasma temperature. These results have potential for providing a more realistic description of relativistic plasma flows.http://dx.doi.org/10.1063/5.0017962
collection DOAJ
language English
format Article
sources DOAJ
author Peilin Yao
Hongbo Cai
Xinxin Yan
Wenshuai Zhang
Bao Du
Jianmin Tian
Enhao Zhang
Xuewu Wang
Shaoping Zhu
spellingShingle Peilin Yao
Hongbo Cai
Xinxin Yan
Wenshuai Zhang
Bao Du
Jianmin Tian
Enhao Zhang
Xuewu Wang
Shaoping Zhu
Kinetic study of transverse electron-scale interface instability in relativistic shear flows
Matter and Radiation at Extremes
author_facet Peilin Yao
Hongbo Cai
Xinxin Yan
Wenshuai Zhang
Bao Du
Jianmin Tian
Enhao Zhang
Xuewu Wang
Shaoping Zhu
author_sort Peilin Yao
title Kinetic study of transverse electron-scale interface instability in relativistic shear flows
title_short Kinetic study of transverse electron-scale interface instability in relativistic shear flows
title_full Kinetic study of transverse electron-scale interface instability in relativistic shear flows
title_fullStr Kinetic study of transverse electron-scale interface instability in relativistic shear flows
title_full_unstemmed Kinetic study of transverse electron-scale interface instability in relativistic shear flows
title_sort kinetic study of transverse electron-scale interface instability in relativistic shear flows
publisher AIP Publishing LLC
series Matter and Radiation at Extremes
issn 2468-080X
publishDate 2020-09-01
description Interfacial magnetic field structures induced by transverse electron-scale shear instability (mushroom instability) are found to be strongly associated with electron and ion dynamics, which in turn will influence the development of the instability itself. We find that high-frequency electron oscillations are excited normal to the shear interface. Also, on a larger time scale, the bulk of the ions are gradually separated under the influence of local magnetic fields, eventually reaching an equilibrium related to the initial shear conditions. We present a theoretical model of this behavior. Such separation on the scale of the electron skin depth will prevent different ions from mixing and will thereafter restrain the growth of higher-order instabilities. We also analyze the role of electron thermal motion in the generation of the magnetic field, and we find an increase in the instability growth rate with increasing plasma temperature. These results have potential for providing a more realistic description of relativistic plasma flows.
url http://dx.doi.org/10.1063/5.0017962
work_keys_str_mv AT peilinyao kineticstudyoftransverseelectronscaleinterfaceinstabilityinrelativisticshearflows
AT hongbocai kineticstudyoftransverseelectronscaleinterfaceinstabilityinrelativisticshearflows
AT xinxinyan kineticstudyoftransverseelectronscaleinterfaceinstabilityinrelativisticshearflows
AT wenshuaizhang kineticstudyoftransverseelectronscaleinterfaceinstabilityinrelativisticshearflows
AT baodu kineticstudyoftransverseelectronscaleinterfaceinstabilityinrelativisticshearflows
AT jianmintian kineticstudyoftransverseelectronscaleinterfaceinstabilityinrelativisticshearflows
AT enhaozhang kineticstudyoftransverseelectronscaleinterfaceinstabilityinrelativisticshearflows
AT xuewuwang kineticstudyoftransverseelectronscaleinterfaceinstabilityinrelativisticshearflows
AT shaopingzhu kineticstudyoftransverseelectronscaleinterfaceinstabilityinrelativisticshearflows
_version_ 1725005452958236672