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Mechanisms of anode power deposition in a low pressure free burning arc

机译:低压自由燃烧电弧中阳极功率沉积的机理

摘要

Anode power deposition is a dominant power loss mechanism for arc jets and MPD thrusters. In this study, a free burning arc experiment was operated at pressures and current densities similar to those in arc jets and MPD thrusters in an attempt to identify the physics controlling this loss mechanism. Use of a free burning arc allowed for the isolation of independent variables controlling anode power deposition and provided a convenient and flexible way to cover a broad range of currents, anode surface pressures, and applied magnetic field strengths and orientations using an argon gas. Test results showed that anode power deposition decreased with increasing anode surface pressure up to 6.7 Pa (0.05 torr) and then became insensitive to pressure. Anode power increased with increasing arc current while the electron number density near the anode surface increased linearity. Anode power also increased with increasing applied magnetic field strength due to an increasing anode fall voltage. Applied magnetic field orientation had an effect only at high currents and low anode surface pressures, where anode power decreased when applied field lines intercepted the anode surface. The results demonstrated that anode power deposition was dominated by the current carrying electrons and that the anode fall voltage was the largest contributor. Furthermore, the results showed that anode power deposition can be reduced by operating at increased anode pressures, reduced arc currents, and applied magnetic field strengths and with magnetic field lines intercepting the anode.
机译:阳极功率沉积是电弧射流和MPD推进器的主要功率损耗机制。在这项研究中,在类似于电弧喷射器和MPD推进器的压力和电流密度下进行了自由燃烧电弧实验,以试图确定控制这种损失机理的物理机制。自由燃烧电弧的使用允许隔离控制阳极功率沉积的自变量,并提供了一种方便灵活的方式来覆盖宽范围的电流,阳极表面压力以及使用氩气施加的磁场强度和方向。测试结果表明,随着阳极表面压力增加到6.7 Pa(0.05 torr),阳极功率沉积降低,​​然后对压力不敏感。阳极功率随着电弧电流的增加而增加,而阳极表面附近的电子数密度增加了线性。由于增加的阳极下降电压,阳极功率也随着施加的磁场强度的增加而增加。施加的磁场方向仅在高电流和低阳极表面压力下才有作用,当施加的磁力线截断阳极表面时,阳极功率会降低。结果表明,阳极功率沉积受到载流电子的支配,并且阳极下降电压是最大的贡献者。此外,结果表明,可以通过在增大的阳极压力,减小的电弧电流和施加的磁场强度下以及在磁场线拦截阳极的情况下进行操作来减少阳极功率沉积。

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