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Monte Carlo simulations for the space radiation superconducting shield project (SR2S)

机译:空间辐射超导屏蔽工程(SR2S)的蒙特卡罗模拟

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摘要

Astronauts on deep-space long-duration missions will be exposed for long time to galactic cosmic rays (GCR) and Solar Particle Events (SPE). The exposure to space radiation could lead to both acute and late effects in the crew members and well defined countermeasures do not exist nowadays. The simplest solution given by optimized passive shielding is not able to reduce the dose deposited by GCRs below the actual dose limits, therefore other solutions, such as active shielding employing superconducting magnetic fields, are under study. In the framework of the EU FP7 SR2S Project - Space Radiation Superconducting Shield - a toroidal magnetic system based on MgB2 superconductors has been analyzed through detailed Monte Carlo simulations using Geant4 interface GRAS. Spacecraft and magnets were modeled together with a simplified mechanical structure supporting the coils. Radiation transport through magnetic fields and materials was simulated for a deep-space mission scenario, considering for the first time the effect of secondary particles produced in the passage of space radiation through the active shielding and spacecraft structures. When modeling the structures supporting the active shielding systems and the habitat, the radiation protection efficiency of the magnetic field is severely decreasing compared to the one reported in previous studies, when only the magnetic field was modeled around the crew. This is due to the large production of secondary radiation taking place in the material surrounding the habitat
机译:深空长期任务的宇航员将长时间曝光到银河宇宙射线(GCR)和太阳粒子事件(SPE)。暴露于空间辐射可能导致船员构件中的急性和晚期效果,并且现在不存在明确的对策。优化的被动屏蔽给出的最简单解决方案不能降低GCR低于实际剂量限制的剂量,因此正在研究采用超导磁场的其他解决方案,例如有源屏蔽。在EU FP7 SR2S项目 - 空间辐射超导屏蔽的框架中,通过使用GEANT4接口GRAS进行详细的蒙特卡罗模拟分析了基于MGB2超导体的环形磁系统。航天器和磁铁与支撑线圈的简化机械结构一起建模。通过磁场和材料进行辐射运输,用于深空的使命场景,首次考虑通过主动屏蔽和航天器结构在空间辐射通道中产生的二次粒子的效果。在建模支持主动屏蔽系统和栖息地的结构时,与先前研究中报告的磁场相比,磁场的辐射保护效率严重降低,当在船员周围仅磁场时。这是由于栖息地围绕栖息地的次级辐射生产

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