航天推进技术研究院主办
ZUO Kun,WANG Min,et al.Research overview of commercial satellite platform with all-electric propulsion system[J].Journal of Rocket Propulsion,2015,41(02):13-20.
全电推商业卫星平台研究综述
- Title:
- Research overview of commercial satellite platform with all-electric propulsion system
- Keywords:
- electric propulsion; all-electric propulsion satellite platform; orbit transfer; station keeping; attitude control
- 分类号:
- V439.4-34
- 文献标志码:
- A
- 摘要:
- 近年来,电推进技术在空间推进中的应用越来越普遍,电推进系统主要应用于低地球轨道、同步地球轨道和星际任务三个方面。在轨道转移过程中,与传统双组元化学推进系统需消耗数吨推进剂相比,全电推进完成从地球转移轨道到同步地球轨道的变轨过程仅需数百千克推进剂,从而能够有效降低发射质量,显著提高商业效益。基于全电推进的商业卫星平台能够较大限度地提升卫星荷载比、充分发挥卫星平台承载能力,并提升卫星平台综合性能。从调研电推进系统研制和应用现状入手,介绍了国外全电推商业卫星平台开发情况,借鉴国外发展模式并结合我国电推力器研制基础和能力,提出了国内全电推商业卫星平台总体方案。
- Abstract:
- In recent years, the application of electric propulsion technology has been more and more popular in space propulsion, especially in missions of low earth orbit, geosynchronous earth orbit and interplanetary space. During the satellite transfer, compared with the traditional bipropellant chemical propulsion systems consuming tons of propellant, the all-electric propulsion system only consumes hundreds of kilograms propellant in the process of geosynchronous earth orbit transfer, which reduces the launch mass effectively and improves the business benefit obviously. With all-electric propulsion system, the commercial satellite platform can increase its loading ratio, give full play to its carrying capacity, and improve its combination property. Proceeding from investigation of the electric propulsion system development and application situation, the development status of the electric propulsion commercial satellites abroad is introduced. A detailed program for domestic commercial satellite platform based on all-electric propulsion is presented by conferring the development mode abroad, and in combination with the developing foundation and capability of electric propulsion in China, so that it could make a useful reference for further study in China.
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备注/Memo
收稿日期:2014-11-04;修回日期:2015-01-27 作者简介:左坤(1982—),男,硕士研究生,研究领域为空间全电推技术