王健1,2, 肖若凡2, 刘人郢2, 平安2, 刘继奎3, 李庆民1,2
收稿日期:
2021-07-13
修回日期:
2021-08-04
发布日期:
2021-11-23
通讯作者:
王健,E-mail:wangjian31791@ncepu.edu.cn
E-mail:wangjian31791@ncepu.edu.cn
基金资助:
WANG Jian1,2, XIAO Ruofan2, LIU Renying2, PING An2, LIU Jikui3, LI Qingmin1,2
Received:
2021-07-13
Revised:
2021-08-04
Published:
2021-11-23
Supported by:
摘要: 聚酰亚胺具有优良的耐高温度梯度、高绝缘及耐辐射特性,在航天器电传输器件及设备中应用广泛。目前空间站、太空电站等空天大功率电传输场景又对聚酰亚胺材料提出了更高的可靠性要求,因此亟待揭示空天极端环境对聚酰亚胺材料的损伤作用,并针对性地提高其综合性能。首先介绍并回顾了聚酰亚胺在航天器电传输装备中的应用;然后分析归纳了聚酰亚胺在充放电效应、电晕放电效应、原子氧侵蚀效应与极端温度环境下的不同损伤特性及失效机理;进一步介绍并分析了现有的改性调控方法及梯度设计制备方法;最后指出现有航天器电传输用聚酰亚胺材料改性调控及梯度绝缘优化研究存在的不足和可能的有效解决途径。
中图分类号:
王健, 肖若凡, 刘人郢, 平安, 刘继奎, 李庆民. 空天电传输用聚酰亚胺改性与优化研究进展[J]. 航空学报, 2022, 43(12): 26102.
WANG Jian, XIAO Ruofan, LIU Renying, PING An, LIU Jikui, LI Qingmin. Research progress in modification and optimization of polyimide for space electricity transmission[J]. ACTA AERONAUTICAET ASTRONAUTICA SINICA, 2022, 43(12): 26102.
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