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Temperature of the plasmasphere fromVan Allen Probes HOPE

机译:温度的等离子体层fromVan艾伦探针的希望

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We introduce two novel techniques for estimating temperatures of very low energy space plasmas using, primarily, in situ data from an electrostatic analyzer mounted on a charged and moving spacecraft. The techniques are used to estimate proton temperatures during intervals where the bulk of the ion plasma is well below the energy bandpass of the analyzer. Both techniques assume that the plasma may be described by a one-dimensional E × B drifting Maxwellian and that the potential field and motion of the spacecraft may be accounted for in the simplest possible manner, i.e., by a linear shift of coordinates. The first technique involves the application of a constrained theoretical fit to a measured distribution function. The second technique involves the comparison of total and partial-energy number densities. Both techniques are applied to Van Allen Probes Helium, Oxygen, Proton, and Electron (HOPE) observations of the proton component of the plasmasphere during two orbits on 15 January 2013. We find that the temperatures calculated from these two order-of-magnitude-type techniques are in good agreement with typical ranges of the plasmaspheric temperature calculated using retarding potential analyzer-based measurements—generally between 0.2 and 2 eV (2000–20,000 K). We also find that the temperature is correlated with L shell and hot plasma density and is negatively correlated with the cold plasma density. We posit that the latter of these three relationships may be indicative of collisional or wave-driven heating of the plasmasphere in the ring current overlap region. We note that these techniques may be easily applied to similar data sets or used for a variety of purposes.
机译:我们介绍两个估计的新技术非常低的能量空间等离子体的高温从一个使用为主,现场数据静电分析仪安装在一个带电移动的航天器。估计中质子的温度区间大量的离子等离子体在哪里远低于能量分析器的带通。技术假定等离子体描述一维E×B漂流麦克斯韦的势场运动的飞船可能占了最简单的方式,即由一个线性的转变的坐标。涉及到的应用受到限制理论适合测量分布函数。总额的比较和偏能号码密度。艾伦探针氦、氧、质子和电子(希望)的质子分量的观测等离子体层中两个轨道1月15日2013. 从这两个order-of-magnitude-type技术是在良好的协议与典型的范围plasmaspheric温度计算减速电位analyzer-basedmeasurements-generally 0.2至2电动汽车(2000 - 20000 K),我们也发现温度与L壳牌和热等离子体密度和负相关冷等离子体密度。这三个关系可能暗示的碰撞或wave-driven加热的等离子体层的环电流重叠区域。我们注意到,这些技术可能会很容易应用于类似的数据集或用于各种各样的目的。

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