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首页> 外文期刊>Journal of Geophysical Research, A. Space Physics: JGR >Plasma particle simulations on stray photoelectron current flows around a spacecraft
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Plasma particle simulations on stray photoelectron current flows around a spacecraft

机译:航天器周围杂散光电子电流的等离子体粒子模拟

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摘要

In tenuous space plasmas, photoelectron flows produce complex current paths among multiple conducting elements of spacecraft, which may influence the current-voltage characteristics of double-probe electric field sensors. We performed full-particle simulations on this effect by assuming a sensor configuration that is typical of recent designs like those on Cluster, THEMIS, and BepiColombo/MMO; the spherical probe is separated from a conducting boom by biased electrodes known as the 'stub' and the 'guard'. The assumed bias potential scheme corresponds to that planned for BepiColombo/MMO and is different from those used in the other satellites. The analysis focuses on stray photoelectron currents flowing from these electrodes and a spacecraft body. Photoelectrons approaching the probe are commonly repelled by the guard, the potential of which is strongly biased negatively, and are subsequently affected by the probe potential. Consequently, the photoelectron current magnitude increases with increasing probe potential regardless of their origins, when the probe operates between the plasma and floating spacecraft potentials. The result indicates that both photoelectron currents from the spacecraft body and biased electrodes can be minimized by selecting the probe working potential as close as possible to the plasma potential. We also examine the photoelectron current dependence on the presence or absence of the guard electrode operation and confirm a positive effect of reducing the photoelectron current from the spacecraft. However, negative side effects of the guard operation enhance the photoelectron currents from the stub and guard, when the probe operates nearly at the plasma potential.
机译:在脆弱的空间等离子体中,光电子流在航天器的多个导电元件之间产生复杂的电流路径,这可能会影响双探针电场传感器的电流-电压特性。我们通过假设传感器配置是最近设计中的典型配置,例如Cluster,THEMIS和BepiColombo / MMO上的传感器,对这种效果进行了全粒子模拟。球形探针通过称为“短截线”和“防护”的偏置电极与导电臂分开。假定的偏电势方案与针对BepiColombo / MMO的方案相对应,并且与其他卫星使用的方案不同。分析着眼于从这些电极和航天器主体流出的杂散光电子电流。接近探头的光电子通常被防护装置排斥,其电位强烈地负向偏置,随后受到探头电位的影响。因此,当探针在等离子和浮动航天器电位之间操作时,无论其起源如何,光电子电流的大小都会随探针电位的增加而增加。结果表明,通过选择尽可能接近等离子体电势的探针工作电势,可以最小化来自航天器主体和偏置电极的光电子电流。我们还检查了光电子电流对保护电极操作是否存在的依赖性,并确认了减少航天器产生的光电子电流的积极作用。但是,当探针几乎以等离子体电势工作时,保护操作的负面影响会增强来自短线和保护装置的光电子电流。

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