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Effects of electron trapping on nonlinear electron-acoustic waves excited by an electron beam via particle-in-cell simulations

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【作者】 A A ABID陆全明陈华岳柯阳光S ALI王水

【Author】 A A ABID;Quanming LU;Huayue CHEN;Yangguang KE;S ALI;Shui WANG;CAS Key Laboratory of Geospace Environment,Department of Geophysics and Planetary Science,University of Science and Technology of China;National Centre for Physics (NCP) at Quaid-e-Azam University Campus;Hefei National Laboratory for Physical Sciences at the Microscale and Department of Physics,University of Science and Technology of China;

【通讯作者】 陆全明;

【机构】 CAS Key Laboratory of Geospace Environment,Department of Geophysics and Planetary Science,University of Science and Technology of ChinaNational Centre for Physics (NCP) at Quaid-e-Azam University CampusHefei National Laboratory for Physical Sciences at the Microscale and Department of Physics,University of Science and Technology of China

【摘要】 By performing one-dimensional particle-in-cell simulations, the nonlinear effects of electronacoustic(EA) waves are investigated in a multispecies plasma, whose constituents are hot electrons, cold electrons, and beam electrons with immobile neutralized positive ions. Numerical analyses have identified that EA waves with a sufficiently large amplitude tend to trap cold electrons. Because EA waves are dispersive, where the wave modes with different wavenumbers have different phase velocities, the trapping may lead to the mixing of cold electrons. The cold electrons finally get thermalized or heated. The investigation also shows that the excited EA waves give rise to a broad range of wave frequencies, which may be helpful for understanding the broadband-electrostatic-noise spectrum in the Earth’s auroral region.

【Abstract】 By performing one-dimensional particle-in-cell simulations, the nonlinear effects of electronacoustic(EA) waves are investigated in a multispecies plasma, whose constituents are hot electrons, cold electrons, and beam electrons with immobile neutralized positive ions. Numerical analyses have identified that EA waves with a sufficiently large amplitude tend to trap cold electrons. Because EA waves are dispersive, where the wave modes with different wavenumbers have different phase velocities, the trapping may lead to the mixing of cold electrons. The cold electrons finally get thermalized or heated. The investigation also shows that the excited EA waves give rise to a broad range of wave frequencies, which may be helpful for understanding the broadband-electrostatic-noise spectrum in the Earth’s auroral region.

【基金】 the support from Chinese Academy of Science(CAS);TWAS for his Ph.D studies at the University of Science and Technology of China in the category of a 2016 CAS-TWAS President’s Fellowship Awardee(Series No.2016-172);partially supported by National Natural Science Foundation of China(Nos.41331067,41774169,and 41527804);the Key Research Program of Frontier Sciences,CAS(QYZDJ-SSW-DQC010)
  • 【文献出处】 Plasma Science and Technology ,等离子体科学和技术(英文版) , 编辑部邮箱 ,2019年05期
  • 【分类号】O53
  • 【下载频次】7
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