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用于太空生物实验设计的宇宙射线相互作用数据。

Cosmic-ray interaction data for designing biological experiments in space.

机构信息

NASA Ames Research Center, Moffett Field, CA 94035, USA.

NASA Langley Research Center, Hampton, VA 23681, USA.

出版信息

Life Sci Space Res (Amst). 2017 May;13:51-59. doi: 10.1016/j.lssr.2017.04.002. Epub 2017 Apr 24.

Abstract

There is growing interest in flying biological experiments beyond low-Earth orbit (LEO) to measure biological responses potentially relevant to those expected during a human mission to Mars. Such experiments could be payloads onboard precursor missions, including unmanned private-public partnerships, as well as small low-cost spacecraft (satellites) designed specifically for biosentinel-type missions. It is the purpose of this paper to provide physical cosmic-ray interaction data and related information useful to biologists who may be planning such experiments. It is not the objective here to actually design such experiments or provide radiobiological response functions, which would be specific for each experiment and biological endpoint. Nuclide-specific flux and dose rates were calculated using OLTARIS and these results were used to determine particle traversal rates and doses in hypothetical biological targets. Comparisons are provided between GCR in interplanetary space and inside the ISS. Calculated probabilistic estimates of dose from solar particle events are also presented. Although the focus here is on biological experiments, the information provided may be useful for designing other payloads as well if the space radiation environment is a factor to be considered.

摘要

人们对在低地球轨道 (LEO) 以外进行飞行生物实验越来越感兴趣,以测量可能与人类火星任务预期相关的生物反应。此类实验可以作为先驱任务的有效载荷,包括无人的公私合作,以及专门设计用于生物监测任务的小型低成本航天器(卫星)。本文旨在为可能正在计划此类实验的生物学家提供有用的物理宇宙射线相互作用数据和相关信息。本文的目的不是实际设计此类实验或提供针对特定实验和生物终点的放射生物学响应函数。使用 OLTARIS 计算了特定核素的通量和剂量率,这些结果用于确定假设生物靶标的粒子穿透率和剂量。比较了行星际空间中的 GCR 和国际空间站内的 GCR。还给出了来自太阳粒子事件的剂量的概率估计。尽管这里的重点是生物实验,但如果空间辐射环境是需要考虑的因素,提供的信息也可能对设计其他有效载荷有用。

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