论文标题

中国的天旺-1传输任务到火星的太阳能粒子事件的第一报道

First report of a solar energetic particle event observed by China's Tianwen-1 mission in transit to Mars

论文作者

Fu, Shuai, Ding, Zheyi, Zhang, Yongjie, Zhang, Xiaoping, Li, Cunhui, Li, Gang, Tang, Shuwen, Zhang, Haiyan, Xu, Yi, Wang, Yuming, Guo, Jingnan, Zhao, Lingling, Wang, Yi, Hu, Xiangyu, Luo, Pengwei, Sun, Zhiyu, Yu, Yuhong, Xie, Lianghai

论文摘要

太阳能颗粒(SEP)与耀斑和/或冠状质量弹出(CME)驱动的冲击会对太空探索施加急性辐射危害。为了测量近十五人空间中的能量颗粒,设计了火星能量颗粒分析仪(MEPA)仪器在中国的tianwen-1(TW-1)任务上。在这里,我们报告了2020年11月29日TW-1在MARS过境时发生的广泛的SEP事件的首次MEPA测量值。当TW-1和地球在磁性良好的连接(称为Hohmann-Parker效应上)时,发生了这一事件,从而提供了一个难得的机会来理解潜在的粒子加速和运输过程。来自TW-1和近地太空飞船的测量表现出相似的双功能法光谱以及SEP峰强度的径向依赖性。此外,不同位置的时间强度曲线的衰减阶段清楚地显示了储层效应。我们得出的结论是,双功率法频谱很可能是在加速位点产生的,并且很小但有限的跨场扩散对于了解Sep储层现象的形成至关重要。这些结果提供了对与CME驱动的冲击相关的粒子加速度和运输的见解,这可能有助于改善相关的物理模型。

Solar energetic particles (SEPs) associated with flares and/or coronal mass ejection (CME)-driven shocks can impose acute radiation hazards to space explorations. To measure energetic particles in near-Mars space, the Mars Energetic Particle Analyzer (MEPA) instrument onboard China's Tianwen-1 (TW-1) mission was designed. Here, we report the first MEPA measurements of the widespread SEP event occurring on 29 November 2020 when TW-1 was in transit to Mars. This event occurred when TW-1 and Earth were magnetically well connected, known as the Hohmann-Parker effect, thus offering a rare opportunity to understand the underlying particle acceleration and transport process. Measurements from TW-1 and near-Earth spacecraft show similar double-power-law spectra and a radial dependence of the SEP peak intensities. Moreover, the decay phases of the time-intensity profiles at different locations clearly show the reservoir effect. We conclude that the double-power-law spectrum is likely generated at the acceleration site, and that a small but finite cross-field diffusion is crucial to understand the formation of the SEP reservoir phenomenon. These results provide insight into particle acceleration and transport associated with CME-driven shocks, which may contribute to the improvement of relevant physical models.

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