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电离辐照诱发面阵电荷耦合器暗信号增大试验 被引量:4
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作者 王祖军 罗通顶 +2 位作者 杨少华 刘敏波 盛江坤 《中国空间科学技术》 EI CSCD 北大核心 2014年第4期72-78,共7页
针对电荷耦合器件(CCD)在空间轨道环境中应用时易受到辐射损伤的影响,对面阵CCD的电离辐照损伤效应问题进行了试验研究。首先,通过开展面阵CCD60Coγ射线电离辐照效应试验,在暗场条件下测试了面阵CCD辐照后输出信号随积分时间的变化,并... 针对电荷耦合器件(CCD)在空间轨道环境中应用时易受到辐射损伤的影响,对面阵CCD的电离辐照损伤效应问题进行了试验研究。首先,通过开展面阵CCD60Coγ射线电离辐照效应试验,在暗场条件下测试了面阵CCD辐照后输出信号随积分时间的变化,并拟合计算出暗信号斜率。然后,对比分析了不同偏置条件下辐照后暗信号退化的试验规律;分析了不同偏置条件下辐照后暗信号的退火恢复情况;分析了不同积分时间、不同总剂量下的暗信号不均匀性的变化规律。最后,阐述了电离辐照损伤诱发面阵CCD暗信号增大的物理机制。结果表明:面阵CCD对电离辐照损伤很敏感,在进行航天器成像系统设计时,要充分考虑CCD受电离辐照损伤带来的影响。 展开更多
关键词 面阵电荷耦合器件 电离辐照 暗信号 退火 空间轨道环境
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Numerical study on the response of the Earth's magnetosphere-ionosphere system to a super solar storm 被引量:3
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作者 WANGChi LI Hui +2 位作者 GUO XiaoCheng DING Kai HUANG ZhaoHui 《Science China Earth Sciences》 SCIE EI CAS 2012年第6期1037-1042,共6页
With the approaching of the 24th solar cycle peak year (2012-2014), the impacts of super solar storms on the geospace envi- ronment have drawn attentions. Based on the geomagnetic field observations during Carringto... With the approaching of the 24th solar cycle peak year (2012-2014), the impacts of super solar storms on the geospace envi- ronment have drawn attentions. Based on the geomagnetic field observations during Carrington event in 1859, we estimate the interplanetary solar wind conditions at that time, and investigate the response of the magnetosphere-ionosphere system to this extreme solar wind conditions using global 3D MHD simulations. The main findings include: l) The day-side magnetopause and bow shock are compressed to 4.3 and 6.0 Re (Earth radius), and their flanks are also strongly compressed. The magneto- pause shifts inside the geosynchronous orbit, exposing geosynchronous satellites in the solar wind in the magnetosheath. 2) During the storm, the region-1 current increases by about 60 times, and the cross polar potential drop increases by about 80 times; the reconnection voltage is about 5 to 6 times larger than the average storms, which means a larger amount of the solar wind energy enters the magnetosphere, resulting in strong space weather phenomena. 展开更多
关键词 space weather solar storm magnetosphere-ionosphere system numerical simulation
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