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Effect of magnetic and physical nozzles on plasma thruster performance

机译:电磁喷嘴和物理喷嘴对等离子推进器性能的影响

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Plasma cross-field diffusion in a magnetic nozzle is inhibited by increasing the magnetic field strength in a helicon plasma thruster attached to a pendulum thrust balance, while maintaining constant plasma density and electron temperature in the source tube, i.e. a constant plasma injection into the magnetic nozzle, where the field strength near the radio frequency (rf) antenna is less than 210G and the operating argon pressure in the vacuum chamber is 0.8mTorr. Inhibition of the cross-field diffusion yields a higher electron pressure in the magnetic nozzle and a resultant larger thrust. The thrust component arising from the magnetic nozzle approaches the theoretical limit derived from an ideal magnetic nozzle approximation where no plasma is lost from the nozzle and there is an azimuthal plasma current originating from the electron diamagnetic drift. It is also shown that the momentum of the plasma lost from the magnetic nozzle is captured by a physical nozzle attached at the source exit resulting in a larger thrust. Two physical nozzles of different sizes (nozzle 1: 10.5 cm in length with a maximum diameter of 20 cm, nozzle 2: 26 cm in length with a maximum diameter of 36 cm) are tested. The maximum thrust of 20 ± 1mN is obtained for 25 sccm argon propellant and 2 kW rf power with a reflection power less than 5W, which gives a specific impulse of 2750 ± 165 s and a thrust efficiency of 13.5 ± 1.5%.
机译:通过增加与钟摆推力平衡器相连的螺旋等离子体推力器中的磁场强度,同时保持源管中恒定的等离子体密度和电子温度,即向等离子体中恒定的等离子体注入,可以抑制磁性喷嘴中的等离子体跨场扩散。喷嘴,其中射频(rf)天线附近的场强小于210G,真空室内的工作氩气压力为0.8mTorr。抑制交叉场扩散会在磁性喷嘴中产生更高的电子压力,并产生更大的推力。由磁性喷嘴产生的推力分量接近于理想磁性喷嘴近似值得出的理论极限,在理想的磁性喷嘴近似值下,没有等离子体从喷嘴中流失,并且存在来自电子反磁性漂移的方位角等离子体电流。还示出了从磁性喷嘴损失的等离子体的动量被附接在源出口处的物理喷嘴捕获,从而导致更大的推力。测试了两个不同大小的物理喷嘴(喷嘴1:长度为10.5厘米,最大直径为20厘米;喷嘴2:长度为26厘米,最大直径为36厘米)。对于25 sccm的氩气推进剂和2 kW射频功率,反射功率小于5W,可获得最大推力20±1mN,这将产生2750±165 s的比脉冲和13.5±1.5%的推力效率。

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