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Using a helicon source to simulate atmospheric re-entry plasma densities and temperatures in a laboratory setting

机译:在实验室环境中使用螺旋线源模拟大气再入等离子体的密度和温度

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The purpose of this research is to develop a plasma system capable of reproducing plasma densities found during atmospheric re-entry of a capsule. We developed a 150 mm diameter helicon source at the University of Michigan Plasmadynamics and Electric Propulsion Laboratory (PEPL) and used a Langmuir probe to characterize plasma properties downstream. The helicon source was operated with argon gas at a background pressure of 0.6 mTorr. We used a commercial RF-compensated single Langmuir probe to measure ion number density and electron temperature in the region downstream of the helicon source where we want to create conditions similar to those found during hypersonic flight within the atmosphere. We measured these values with and without the presence of a large 450 mm wide by 550 mm long surface downstream in the horizontal plane to simulate a vehicle surrounded by plasma in order to determine how the downstream body affects plasma properties. We found that the presence of a surface downstream of the helicon source lowers the downstream plasma density range from between 1.7 × 10~(17) and 3.3 × 10~(17) m~(-3) down to 0.55 × 10~(17) and 1.3 × 10~(17) m~(-3). In addition, the peak plasma potential decreases from 65 to 55 V, but the electron temperature remains unchanged ranging between 1.5 and 6.5 eV.
机译:这项研究的目的是开发一种等离子体系统,该系统能够再现在大气中再次进入胶囊时发现的等离子体密度。我们在密歇根大学等离子体动力学和电力推进实验室(PEPL)开发了直径为150 mm的螺旋源,并使用Langmuir探针表征下游的等离子体特性。螺线管源是在0.6 mTorr的背景压力下用氩气操作的。我们使用了商用射频补偿的单个Langmuir探针来测量螺旋线源下游区域中的离子数密度和电子温度,在该区域中我们想要创建类似于大气中高超音速飞行期间所发现的条件。我们在有水平面和无水平面的情况下,在水平面下游有一个450mm宽乘550mm长的大表面时测量了这些值,以模拟被等离子体包围的载具,以确定下游物体如何影响等离子体性能。我们发现螺旋源下游表面的存在将下游等离子体密度范围从1.7×10〜(17)和3.3×10〜(17)m〜(-3)降低到0.55×10〜(17) )和1.3×10〜(17)m〜(-3)。此外,峰值等离子体电势从65 V降至55 V,但电子温度保持在1.5至6.5 eV之间不变。

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