A Methodology for the Preliminary Design of a High-Efficiency Multistage Plasma Thruster

Nicola Puca, Mario Panelli, Francesco Battista
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Abstract

Space electric propulsion represents a class of power-limited systems that utilize the interaction of electromagnetic fields with ionized inert gas propellants to generate thrust. This technology has emerged as a highly fuel-efficient and sustainable alternative to chemical propulsion systems, particularly for satellite constellations. However, the miniaturization potential of EP systems is impeded by certain limitations, necessitating the exploration of novel architectures. The high-efficiency multistage plasma thruster (HEMP-T) stands as a promising contender for stand-alone missions due to its employment of a cusped magnetic-field topology, which effectively mitigates plasma-wall interactions and enhances overall efficiency even at low thrust levels. Despite the growing interest in HEMP-Ts, there is a dearth of comprehensive and streamlined preliminary design procedures for these systems. Prior research has predominantly focused on extensive numerical analyses, neglecting the development of efficient and accessible design tools. To bridge this gap, this paper presents a novel preliminary design tool derived from integrating established analytical models available in the literature. The proposed design tool also incorporates an iterative procedure that refines geometric properties using a 2D magnetostatic solver. Through the application of this tool, a 4 mN HEMP thruster was analyzed. This finally exhibited a specific impulse of approximately 2000s and a good efficiency level of 23%. Also, the results obtained for a 10 mN application align closely with those achieved by other types of EP thrusters.

高效多级等离子推进器初步设计方法学
空间电力推进是一类功率有限的系统,利用电磁场与电离惰性气体推进剂的相互作用产生推力。该技术已成为化学推进系统的一种高燃料效率和可持续的替代技术,尤其适用于卫星星座。然而,EP 系统的微型化潜力受到某些限制,因此有必要探索新型结构。高效多级等离子推进器(HEMP-T)由于采用了尖顶磁场拓扑结构,即使在低推力水平下也能有效减轻等离子体壁的相互作用并提高整体效率,因此在独立任务中是一个很有前途的竞争者。尽管人们对 HEMP-T 的兴趣与日俱增,但针对这些系统的全面、简化的初步设计程序却十分匮乏。之前的研究主要集中在大量的数值分析上,而忽略了开发高效、易用的设计工具。为了弥补这一不足,本文介绍了一种新型的初步设计工具,该工具综合了文献中已有的分析模型。拟议的设计工具还包含一个迭代程序,利用二维磁静力求解器完善几何特性。通过应用该工具,对 4 mN HEMP 推进器进行了分析。该推进器最终表现出约 2000s 的比冲和 23% 的良好效率。此外,10 毫牛顿的应用所获得的结果与其他类型的 EP 推进器所获得的结果非常接近。
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