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Performance characterization and optimization of a diverging cusped field thruster with a calibrated counter-weighted millinewton thrust stand

机译:性能表征和优化的发散的尖头场推进器与校准的反加权millinewton推力支架

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摘要

The previously developed Diverging Cusped Field Thruster (DCFT) has undergone further investigations and performance characterization. The DCFT is a magnetically conned plasma thruster that uses cusped magnetic fields to confine electron ow and reduce losses to the walls. The magnetic confinement of the plasma away from the walls also reduces wall erosion to increase thruster lifetime. Additionally, modifications to the original DCFT have increased robustness and decreased mass to become more desirable for space flight. Research on reducing the plasma plume divergence of the thruster by altering the magnetic field has also been performed. The DCFT has exhibited competitive thrust and eciency performance when compared to typical Hall thrusters of similar size. Specifically, the anode eciency reached a maximum of 39.3% providing 11.8 mN of thrust with a specific impulse of 1436 s. The xenon mass ow rate to the anode was 8.5 standard cubic centimeters per minute, and the power consumption was 210 W. Two distinct modes, as well as a "mixed" mode, were observed during performance testing and had signicant, though not completely predictable, effects on thruster performance. The modes differ in plasma diffusivity and anode current. Facility effects, such as chamber back pressure and cathode coupling, on performance were also briefly y researched. In order to characterize the performance of the DCFT, the Milli-Newton Thrust Stand (MiNTS) was developed. The MiNTS is a non-conventional torsional-style thrust stand capable of measuring thrust in the range of 3 to 20 mN with an accuracy of up to 0.2 mN. Calibration of the stand is necessary to map the output of the MiNTS to the force felt by it. A calibration stand was designed to apply a known force to the MiNTS using weights. The MiNTS is controlled by a Labview Virtual Instrument that can measure and counteract the force of the DCFT. Drift forces due to external connections to the MiNTS and thermal transfer from the DCFT are also studied, and processes for negating the drift forces are provided.
机译:先前开发的发散固定场推进器(DCFT)已经过进一步的研究和性能表征。 DCFT是一种电磁等离子体推进器,它利用尖峰磁场限制电子流并减少壁损耗。等离子体远离壁的磁性限制也减少了壁腐蚀,从而延长了推进器的寿命。另外,对原始DCFT的修改具有增强的鲁棒性和减小的质量,从而成为太空飞行所希望的。还已经进行了通过改变磁场来减小推进器的等离子体羽流散度的研究。与类似尺寸的典型霍尔推力器相比,DCFT展现出具有竞争力的推力和效率性能。具体来说,阳极效率最高可达到39.3%,可提供11.8 mN的推力,比冲为1436 s。氙气的阳极质量流量为每分钟8.5标准立方厘米,功耗为210W。在性能测试过程中,观察到两种不同的模式以及一种“混合”模式,它们具有显着意义,尽管不能完全预测对推进器性能的影响。这些模式在等离子体扩散率和阳极电流方面有所不同。还简要研究了设备性能(例如腔室背压和阴极耦合)对性能的影响。为了表征DCFT的性能,开发了Milli-Newton推力架(MiNTS)。 MiNTS是一种非常规的扭力式推力架,能够测量3至20 mN范围内的推力,精度高达0.2 mN。必须对支架进行校准,才能将MiNTS的输出映射到其所感受到的力。设计了校准台,以使用砝码将已知力施加到MiNTS。 MiNTS由可测量和抵消DCFT力的Labview虚拟仪器控制。还研究了由于与MiNTS的外部连接和DCFT的热传递而产生的漂移力,并提供了消除漂移力的方法。

著录项

  • 作者

    Daspit Ryan M;

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  • 年度 2012
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  • 原文格式 PDF
  • 正文语种 eng
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