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火星太空任务期间生物芯片所遭遇辐射环境的蒙特卡罗模拟。

Monte Carlo simulation of the radiation environment encountered by a biochip during a space mission to Mars.

作者信息

Le Postollec A, Incerti S, Dobrijevic M, Desorgher L, Santin G, Moretto P, Vandenabeele-Trambouze O, Coussot G, Dartnell L, Nieminen P

机构信息

Laboratoire d'Astrophysique de Bordeaux (LAB), Université Bordeaux 1, Floirac, France.

出版信息

Astrobiology. 2009 Apr;9(3):311-23. doi: 10.1089/ast.2008.0255.

Abstract

Simulations with a Monte Carlo tool kit have been performed to determine the radiation environment a specific device, called a biochip, would face if it were placed into a rover bound to explore Mars' surface. A biochip is a miniaturized device that can be used to detect organic molecules in situ. Its specific detection part is constituted of proteins whose behavior under cosmic radiation is completely unknown and must be investigated to ensure a good functioning of the device under space conditions. The aim of this study is to define particle species and energy ranges that could be relevant to investigate during experiments on irradiation beam facilities. Several primary particles have been considered for galactic cosmic ray (GCR) and solar energetic particle (SEP) contributions. Ionizing doses accumulated in the biochip and differential fluxes of protons, alphas, neutrons, gammas, and electrons have been established for both the Earth-Mars transit and the journey at Mars' surface. Neutrons and gammas appear as dominant species on martian soil, whereas protons dominate during the interplanetary travel. Depending on solar event occurrence during the mission, an ionizing dose of around a few Grays (1 Gy = 100 rad) is expected.

摘要

利用蒙特卡罗工具包进行了模拟,以确定一种名为生物芯片的特定设备,如果放置在前往火星表面进行探测的漫游车中会面临的辐射环境。生物芯片是一种小型化设备,可用于原位检测有机分子。其特定检测部分由蛋白质构成,而这些蛋白质在宇宙辐射下的行为完全未知,必须进行研究以确保该设备在太空条件下能正常运行。本研究的目的是确定在辐照束流设施实验中可能相关的粒子种类和能量范围。对于银河宇宙射线(GCR)和太阳高能粒子(SEP)的贡献,已考虑了几种初级粒子。已确定了生物芯片中积累的电离剂量以及质子、α粒子、中子、γ射线和电子的微分通量,包括地火转移过程和火星表面行程中的情况。中子和γ射线在火星土壤中似乎是主要粒子种类,而质子在行星际旅行期间占主导地位。根据任务期间太阳事件的发生情况,预计电离剂量约为几格雷(1戈瑞 = 100拉德)。

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