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Laser induced fluorescence measurements of the cylindrical Hall thruster plume

机译:圆柱霍尔推力器羽流的激光诱导荧光测量

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An investigation of a fully cylindrical Hall thruster was performed using laser induced fluorescence (LIF) to measure ion velocity profiles in the plume. The measurements confirm a previously reported 9% increase in the exhaust energy when the cathode keeper draws an excess current (overrun mode). Furthermore, the velocity directions in the plume remain relatively unchanged for the cusped and direct magnetic field configuration in both overrun and nonoverrun modes. Previously reported plume narrowing in the overrun mode was confirmed and found to be due to the shift of the acceleration and ionization regions toward the anode. The electric field inferred from the LIF measurements allowed calculation of the electron E×B drift. Close to the centerline of the thruster, electrons drift azimuthally with velocity decreasing away from the centerline, thus creating shear. This shear can be a source of plasma instabilities and influence electron transport. Further away from the centerline, electrons drift in the opposite direction with their velocity increasing with increasing radius. In that region, electrons rotate without shear.
机译:使用激光诱导荧光(LIF)对全圆柱形霍尔推力器进行了研究,以测量羽流中的离子速度分布。这些测量结果证实了先前报道的当阴极保持架汲取过量电流(超速运行模式)时,排气能量增加了9%。此外,对于超限和非超限模式下的尖峰和直接磁场配置,羽流中的速度方向保持相对不变。确认了先前报道的在超速模式下的羽流变窄,这是由于加速区和电离区向阳极的移动所致。从LIF测量推断出的电场允许计算电子E×B漂移。靠近推进器的中心线,电子沿方位角漂移,速度逐渐远离中心线,从而产生剪切力。这种剪切可能是等离子体不稳定的来源,并影响电子传输。远离中心线,电子沿相反的方向漂移,其速度随着半径的增加而增加。在该区域,电子旋转而没有剪切。

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