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The Current Analysis of Electrospray Process on a Single Emitter with Ionic Liquid for Micro Propulsion

机译:微液体液体喷射器电喷雾过程的电流分析

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The ionic liquid electrospray thruster is one of the most promising candidates of micro propulsion which is in urgent need with the rapid development of micro/nano satellites. The current characteristics of a single emitter are important to understand the ionic liquid electrospray which promotes the improvement of thruster performance. A porous nickel emitter was tested with l-ethyl-3-methylimidazolium tetrafluoroborate ([EMIM][BF_4]) to fully obtain the current characteristics responded to square-wave voltage. The voltage-current characteristics, the pulsation characteristic and the onset delay were investigated to further understand the electrospray with a passively supplied emitter. The results shown that the voltage-current relationship was neither linear nor exponential. The pulsation characteristics in intermittent regime shown great difference with reported modes. A flow impedance model for porous emitter was derived to compute the viscous drag coefficient, so that the onset delay time can be predicted. The experimental results were located within the theoretical band by varying the radius of curvature. The flow impedance and viscous drag coefficient were sensitive to radius of curvature, which shown that the dynamics response will be greatly affected by tip geometry. All these results are worthwhile to understand the ionic liquid electrospray and operate ionic liquid electrospray thruster in suitable operating conditions.
机译:离子液体电喷雾推进器是微型/纳米卫星的快速发展迫切需要的微型推进师最有希望的微型推进剂之一。单个发射器的电流特性对于了解促进推进器性能提高的离子液体电喷雾非常重要。用L-乙基-3-甲基咪唑鎓四氟硼酸盐(ε)测试多孔镍发射器,以完全获得响应方波电压的电流特性。研究了电压 - 电流特性,脉动特性和起始延迟,以通过被动供应的发射器进一步了解电喷雾。结果表明电压 - 电流关系既不是线性也不是指数。间歇性方案中的脉动特性显示了报告的模式差异。导出用于多孔发射器的流动阻抗模型以计算粘性拖动系数,从而可以预测起始延迟时间。通过改变曲率半径,实验结果位于理论带内。流量阻抗和粘性阻力系数对曲率半径敏感,表明动力学响应将受到尖端几何的大大影响。所有这些结果都值得了解离子液体电喷雾,并在合适的操作条件下操作离子液体电喷雾推进器。

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