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The geometric factor of electrostatic plasma analyzers: A case study from the Fast Plasma Investigation for the Magnetospheric Multiscale mission

机译:静电等离子体分析仪的几何因素:以磁层多尺度任务的快速等离子体研究为例

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摘要

We report our findings comparing the geometric factor (GF) as determined simulations and laboratory measurements of the new Dual Electron Spectrometer (DES) being developed at NASA Goddard Space Flight Center as part of the Fast Plasma Investigation on NASA’s Magnetospheric Multiscale mission. Particle simulations are increasingly playing an essential role in the design and calibration of electrostatic analyzers, facilitating the identification and mitigation of the many sources of systematic error present in laboratory calibration. While equations for laboratory measurement of the GF have been described in the literature, these are not directly applicable to simulation since the two are carried out under substantially different assumptions and conditions, making direct comparison very challenging. Starting from first principles, we derive generalized expressions for the determination of the GF in simulation and laboratory, and discuss how we have estimated errors in both cases. Finally, we apply these equations to the new DES instrument and show that the results agree within errors. Thus we show that the techniques presented here will produce consistent results between laboratory and simulation, and present the first description of the performance of the new DES instrument in the literature.
机译:我们报告了我们的发现,将几何因子(GF)作为NASA戈达德太空飞行中心开发的新型双电子光谱​​仪(DES)的确定的模拟和实验室测量结果进行了比较,这是对NASA磁层多尺度任务进行快速等离子体调查的一部分。粒子模拟在静电分析仪的设计和校准中起着越来越重要的作用,从而有助于识别和减轻实验室校准中存在的许多系统误差源。尽管文献中已经描述了用于实验室测量GF的方程,但是这些方程不能直接应用于模拟,因为这两个实验是在完全不同的假设和条件下进行的,因此直接比较非常具有挑战性。从第一原理开始,我们得出了用于在模拟和实验室中确定GF的通用表达式,并讨论了我们如何估计两种情况下的误差。最后,我们将这些方程式应用于新的DES仪器,并证明结果在误差范围内是一致的。因此,我们证明了此处介绍的技术将在实验室和仿真之间产生一致的结果,并在文献中首次介绍了新型DES仪器的性能。

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