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Electron heating and energy inventory during asymmetric reconnection in a laboratory plasma

机译:电子加热和能源库存期间不对称的重新连接在实验室等离子体

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Electron heating and the energy inventory during asymmetric reconnection are studied in the laboratory plasma with a density ratio of about 8 across the current sheet. Features of asymmetric reconnection such as the large density gradients near the low-density side separatrices, asymmetric in-plane electric field, and bipolar out-of-plane magnetic field are observed. Unlike the symmetric case, electrons are also heated near the low-density side separatrices. The measured parallel electric field may explain the observed electron heating. Although large fluctuations driven by lower hybrid drift instabilities are also observed near the low-density side separatrices, laboratory measurements and numerical simulations reported here suggest that they do not play a major role in electron energization. The average electron temperature increase in the exhaust region is proportional to the incoming magnetic energy per an electron/ion pair but exceeds scalings of the previous space observations. This discrepancy is explained by differences in the boundary condition and system size. The profile of electron energy gain from the electric field shows that there is additional electron energy gain associated with the electron diamagnetic current besides a large energy gain near the X line. This additional energy gain increases electron enthalpy, not the electron temperature. Finally, a quantitative analysis of the energy inventory during asymmetric reconnection is conducted. Unlike the symmetric case where the ion energy gain is about twice more than the electron energy gain, electrons and ions obtain a similar amount of energy during asymmetric reconnection.
机译:电子加热和库存期间的能量研究了不对称重新连接实验室等离子体密度比约8在当前的表。重新连接,如大的密度梯度低密度附近的分界线,不对称平面电场,和双相平面外磁场。对称的情况下,电子也激烈低密度附近的分界线。测量平行电场可以解释观察到电子加热。波动的降低混合漂移不稳定也观察到附近的低密度分隔号,实验室测量和数值模拟报告这表明他们不扮演重要的角色在电子激发。排气温度增加地区与传入的磁能/成正比电子/离子对但超过落下的石块以前的空间观测。用边界上的差异来解释条件和系统大小。电子从电场获得能量表明,有额外的电子能量获得相关的电子抗磁性目前除了附近的一个大型能源获得X线。电子焓,而不是电子温度。最后,定量分析的能量库存在不对称重新连接进行的。离子能量增益的两倍多获得一个电子能量增益,电子和离子在非对称相似的能量重新连接。

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