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Nanoengineered thrusters for the next giant leap in space exploration

机译:纳米工程推进器为太空探索的下一个巨大飞跃

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摘要

The physics underlying operation of cold (room-temperature) ionic-liquid emitter sources for use in propulsion shows that such thrusters are advantaged relative to all other rockets because of the direct scaling of power with emitter array density. Nanomaterials and their integration through nano- and microfabrication can propel these charged-particle sources to the forefront and open up new applications including mass-efficient in-orbit satellite propulsion and high-thrust-density deep-space exploration. Analyses of electrostatic, fluid-dynamic, and electrochemical limits all suggest that arrays of such ionic-liquid thrusters can reach thrust densities beyond most in-space propulsion concepts, with a limit on nanoporous thruster packing density of approximate to 1 m due to ionic-liquid viscous flow and electrochemistry. Nanoengineered materials and manufacturing schemes are suggested for the implementation of microfabricated and nanostructured thruster arrays.
机译:用于推进的冷(室温)离子液体发射器源的物理基础操作表明,这种推力器相对于所有其他火箭而言是有利的,因为功率随发射器阵列密度的增加而直接成比例。纳米材料及其通过纳米和微细加工的集成可以将这些带电粒子源推向最前沿,并开辟新的应用,包括具有质量效益的在轨卫星推进和高推力密度深空探测。静电,流体动力学和电化学极限的分析都表明,这种离子液体推进器阵列可以达到大多数空间推进概念之外的推力密度,由于离子-离子推进器的存在,纳米多孔推进器的填充密度限制约为1 m。液体粘性流动和电化学。建议使用纳米工程材料和制造方案来实现微制造和纳米结构推进器阵列。

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