多向等离子体推进器中碘流量控制的热节流数值模拟

Pavel Savelev, Aslan Pashaev, Andrei Shumeiko
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摘要

背景:近年来,电推进领域出现了一个新的发展方向——多向等离子体推力器。这些推进器能够在多个方向上产生推进力。这些推进器被提议用于轨道维护和改变、编队飞行和空间人造物体的行星际飞行,其大小从立方体卫星到聚变动力行星际航天器不等。本文介绍了多向等离子体推力器碘推进剂供给系统的数值模拟结果。方法:通过改变推进剂供给系统各元件的几何参数和温度参数,确定碘推进剂在推进器气体放电室内的稳定喷射模式。发现热节流器和过滤器的温度可确保碘质量流速率在0.1 ~ 1.5 mg/s范围内。热节流和过滤器的温度相应地在65至200°C和65至100°C的范围内变化。结果:质量流量严重依赖于过滤器温度和碘饱和蒸汽压,以及过滤器和节流几何形状。所需的碘流量值已经通过使用节流阀直径0.5毫米和60毫米的长度和一个过滤器56个孔,每个孔直径为0.2毫米,和温度90 C - 200 C。结论:根据获得的数据,存储和碘供应系统最好配备一个热水瓶节流阀,它提供了流量的精确控制,以及减少急剧上升的流量时,滤波器的温度变化。首选过滤器几何形状:56孔,每个孔直径0.2毫米。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Numerical simulation of thermo-throttle for iodine flow rate control in multidirectional plasma thruster
Background: Recently, a new direction in the field of electric propulsion has emerged – the multidirectional plasma thrusters. These thrusters are capable of producing propulsive forces in multiple directions. The thrusters are proposed to be used for orbit maintenance and alterations, formation flights, and interplanetary flights of space artificial objects ranging in size from CubeSats to fusion-powered interplanetary spacecraft. In this paper, the results of numerical simulation of the iodine propellant supply system for the multidirectional plasma thruster are presented. Methods: The geometry and temperature parameters of propellant supply system various elements are varied to determine the stable modes of iodine propellant ejection into the gas discharge chamber of the thruster. The temperatures of the thermo throttle and filter are found to ensure iodine mass flow rate in the range of 0.1 to 1.5 mg/s. The thermo throttle and filter temperatures are altered in the range of 65 to 200 °C and 65 to 100 °C, correspondingly. Results: The mass flow rate is critically dependent on the filter temperature and iodine saturated vapor pressure, as well as the filter and throttle geometries. The required values of iodine flow rate have been achieved by using the throttle with a diameter of 0.5 mm and a length of 60 mm and a filter with 56 holes, each hole diameter is 0.2 mm, and temperature from 90 C to 200 C. Conclusions: According to the data obtained, the iodine storage and supply system is preferably equipped with a thermos throttle, which provides precise control of the flow rate, as well as reduces sharp jumps of the flow rate when the temperature of the filter changes. Preferred filter geometry: 56 holes, each hole 0.2 mm in diameter.
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