基于mems的固体微推力器设计研究进展

IF 0.5 Q4 ENGINEERING, AEROSPACE
Harshit Shukla, Velidi V. S. S. Gurunadh
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引用次数: 2

摘要

在过去的几十年里,空间技术已经朝着使用许多小卫星集群工作的方向发展,而不是为太空任务制造单个卫星。纳米或微型卫星增加了任务的可靠性,同时将成本降至最低,而不是一颗大型卫星增加了任何给定空间任务的成本和失效风险。考虑到小型卫星集群的情况,与单个卫星相比,在任何危险期间管理任务需求更容易,复杂性更低。这使得微纳卫星在空间工程中的应用越来越广泛。这些小卫星由微推进器产生的微推进力推动。目前,液体、气体和电动推进器是最常见的。本文主要介绍了MEMS微推力器领域的最新进展。MEMS(微机电系统)推进器以各种方式用于小型卫星,需要很小的推力。在本文的讨论中,描述了基于mems的固体推进剂微推进器。文章中指出了MEMS固体推进器的所有进展,致力于安装方案,设计方法和各种性能测试实验。这项技术的主要挑战是燃烧,它发生在极小的体积内。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A STUDY ON THE RECENT ADVANCES IN THE DESIGN OF MEMS-BASED SOLID MICROTHRUSTERS
In the past few decades, space technology has moved toward using many small satellites working in a cluster instead of making individual satellites for space missions. Nano or microsatellites increase the reliability of the mission while minimizing cost, rather than having one large satellite increasing both the cost and the failure risk for any given space mission. Considering the case of a small satellite cluster, it is easy to manage mission requirements with less complexity during any hazard, compared to an individual satellite. All of this has led to the increasing application of micro and nanosatellites in space engineering. These small satellites are propelled by micropropulsion created by microthrusters. Currently, liquid, gas, and electrical thrusters are the most common. This paper mainly describes the recent advancements in the field of MEMS microthrusters. MEMS (microelectromechanical system) thrusters are used in small satellites in a variety of ways that require very little thrust. In the paper discussion, MEMS-based solid-propellant microthrusters (SPMs) are delineated. All advancements in the MEMS solid thrusters are indicated in the article, dedicated to mounting schemes, designing approaches, and various performance testing experiments. The main challenge in this technology is combustion, which takes place in an exceptionally small volume.
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来源期刊
CiteScore
1.20
自引率
14.30%
发文量
22
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