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Laboratory investigations of the near surface plasma field and charging at the lunar terminator.

机译:月球终结者近地等离子场和电荷的实验室研究。

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摘要

The objective of this dissertation is to study the near surface plasma environment and surface charging environment at the lunar terminator through experimental, analytical and numerical investigations. Specifically, this dissertation investigates: 1) the plasma wake expansion process, 2) regolith surface charging, and 3) regolith grain charging.;In the first area, the potential and density of the plume emitted from a gridded ion source is investigated. A capability for efficient two-dimensional measurements of the plume profile is developed. The effects of plume expansion, plume charge-exchange plasma, and facility background plasma on plume characteristics are quantified. It is found that the propellant charge-exchange plasma is the primary factor that terminates the plume expansion process, and thus largely controls the magnitude of the plume potential with respect to the ambient. The plasma plume wake expansion process is then controlled to experimentally simulate low angle of attack lunar plasma flow and surface charging. The control method is validated by analytical and numerical models.;In the second area, conductors, planar dielectrics, and dust dielectric surfaces are charged under mesothermal plasma flux. Charging experiments are conducted in both the main plasma beam and the simulated lunar plasma environment. The effects of high energy ion flux, low energy ion flux, and low electron flux are quantified as a function of angle of attack, material properties, and surface properties. It is found that a dielectric dust surface will charge to a significantly more positive surface potential than a planar dielectric surface of the chemical same composition and thickness, when the ion and electron flux is of the same order. Further, this effect is found to be driven by ion-induced secondary electron emission and ion charge deposition mechanisms. The high ion-driven potential of dust surfaces compared to planar surfaces may be contributing to lunar terminator region charged dust motion and transport.;In the third area, dusty surface layer individual grain charge is compared to the charge of a single, isolated dust grain at the same potential. Dusty surface layer potentials are recorded experimentally, and individual grain charge is derived using a capacitance system model. The results are compared to isolated grain charge that is calculated using the free space capacitance model and the experimental surface potential. It is shown that the charge of dust grains comprising a dusty surface layer is one to two orders of magnitude lower than the charge of an isolated dust grain. This demonstrates the packed dust grain capacitive effect on dusty surface layers such as the lunar regolith, and will lead to significantly different predictions of electrostatic levitation and dust transport dynamics on the lunar surface.
机译:本文的目的是通过实验,分析和数值研究来研究月球终结者附近的近地等离子体环境和表面电荷环境。具体而言,本论文研究了:1)等离子尾流膨胀过程; 2)变硬颗粒表面带电; 3)变硬颗粒颗粒带电。;在第一个区域中,研究了从网格离子源发出的羽流的电势和密度。开发了用于羽状轮廓的有效二维测量的功能。量化羽流膨胀,羽流电荷交换等离子体和设施背景等离子体对羽流特性的影响。已经发现,推进剂电荷交换等离子体是终止羽流膨胀过程的主要因素,因此很大程度上控制了羽流相对于周围环境的大小。然后控制等离子体羽流的膨胀过程,以实验方式模拟低攻角的月球等离子体流和表面电荷。通过分析和数值模型验证了该控制方法。在第二区域,导体,平面电介质和粉尘电介质表面在等温等离子体通量的作用下带电。在主等离子体束和模拟月球等离子体环境中均进行了充电实验。高能离子通量,低能离子通量和低电子通量的影响可以根据攻角,材料特性和表面特性来量化。已经发现,当离子和电子通量为相同数量级时,电介质尘埃表面将比化学成分和厚度相同的平面电介质表面具有明显更高的正表面电势。此外,发现这种效应是由离子诱导的二次电子发射和离子电荷沉积机制驱动的。与平面相比,尘埃表面具有较高的离子驱动电势,这可能有助于月球终结者区域带电的尘埃运动和传输。在第三区域中,将尘土表面层的单个颗粒电荷与单个孤立的尘埃颗粒的电荷进行比较具有相同的潜力。实验记录尘土表面层电势,并使用电容系统模型导出单个晶粒电荷。将结果与使用自由空间电容模型和实验表面电势计算出的孤立颗粒电荷进行比较。结果表明,构成尘土表面层的尘埃颗粒的电荷比孤立尘埃颗粒的电荷低一到两个数量级。这证明了尘埃颗粒堆积在尘土表面层(例如月球表面粉尘)​​上的电容效应,并且将导致对月球表面静电悬浮和尘埃传输动力学的不同预测。

著录项

  • 作者

    Polansky, John L.;

  • 作者单位

    University of Southern California.;

  • 授予单位 University of Southern California.;
  • 学科 Engineering Aerospace.;Physics Fluid and Plasma.
  • 学位 Ph.D.
  • 年度 2013
  • 页码 172 p.
  • 总页数 172
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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