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Development of 400 V Solar Array Technology for Low Earth Orbit Plasma Environment

机译:用于低地球轨道等离子体环境的400 V太阳电池阵列技术的开发

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To realize a 400 V operation in low Earth orbit (LEO), problems of arcing caused by interaction between spacecraft and surrounding LEO plasma must be overcome. This paper is a summary report of the laboratory tests carried out to develop a 400 V solar array technology. Among various designs tested, a design of covering a solar array surface with transparent film, called film coupon, was the most promising mitigation method to prevent arc inception. The authors carried out various tests on the film coupons considering a realistic situation encountered in orbit. The coupon biased to -400 V in LEO-like plasma had no arc for more than 25 h. Other tests involved UV exposure, atomic-oxygen exposure, thermal cycling, and debris impact. Conductive substrate made of carbon fiber reinforced plastic suffered many arcs at -400 V. Sustained arc between a solar cell and the substrate was also observed upon a simulated debris impact. Therefore, the use of flexible substrate is adequate for 400 V solar array in LEO environment. To avoid the snapover effect near the positive end of the array circuit, only the negative part of the array circuit exceeding the arc-inception threshold should be covered by film, or an electron collector should be deployed
机译:为了在低地球轨道(LEO)中实现400 V的运行,必须克服由航天器与周围LEO等离子体之间的相互作用引起的电弧放电问题。本文是为开发400 V太阳能电池阵列技术而进行的实验室测试的总结报告。在经过测试的各种设计中,用透明薄膜覆盖太阳能电池阵列表面的设计(称为薄膜试样)是防止起弧的最有希望的缓解方法。考虑到在轨道上遇到的实际情况,作者对胶片优惠券进行了各种测试。在类似LEO的等离子体中偏压到-400 V的试样在超过25小时内没有电弧。其他测试包括紫外线暴露,原子氧暴露,热循环和碎屑冲击。由碳纤维增强塑料制成的导电基材在-400 V时遭受许多电弧。在模拟碎片撞击下,还观察到太阳能电池与基材之间的持续电弧。因此,在LEO环境中使用柔性基板足以满足400 V太阳能电池阵列的需求。为了避免在阵列电路的正端附近发生跳线效应,只有覆盖电弧起始阈值以上的阵列电路的负部分才应覆盖薄膜,或应部署电子收集器

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