空间辐射屏蔽中的二次质子堆积

IF 4.6 Q2 MATERIALS SCIENCE, BIOMATERIALS ACS Applied Bio Materials Pub Date : 2024-02-19 DOI:10.1016/j.lssr.2024.02.005
J.M. DeWitt , E.R. Benton
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引用次数: 0

摘要

长期暴露于空间辐射所造成的风险是人类长期空间探索的一个重大障碍。在银河宇宙射线频谱中存在的离子种类中,相对论质子是最丰富的,因此是参与未来月球、火星及其他地区长期任务的太空人员辐射防护的相关关注点。这项研究比较了与未来航天器或行星表面栖息地的设计和开发有关的一些标准材料和复合材料的屏蔽效果。利用位于纽约布鲁克海文国家实验室的 NASA 太空辐射实验室提供的 1 GeV 标称能量质子束,在不同成分和深度的屏蔽目标后使用 Al2O3:C 光激发发光剂量计测量了吸收剂量。使用多用途蒙特卡洛辐射传输代码 FLUKA 进行的计算机模拟得出的吸收剂量与通过屏蔽实验获得的测量结果非常吻合。本研究中测试和模拟的所有屏蔽材料都无法将吸收剂量降至低于(无屏蔽)前探测器测得的水平,即使在深度达到 30 g/cm2 时也是如此。考虑到银河宇宙射线频谱中质子能量的广泛范围,以及这种空间辐射对未来人类空间探索可能造成的健康和安全隐患,这些结果可能值得注意。
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Secondary proton buildup in space radiation shielding

The risk posed by prolonged exposure to space radiation represents a significant obstacle to long-duration human space exploration. Of the ion species present in the galactic cosmic ray spectrum, relativistic protons are the most abundant and as such are a relevant point of interest with regard to the radiation protection of space crews involved in future long-term missions to the Moon, Mars, and beyond. This work compared the shielding effectiveness of a number of standard and composite materials relevant to the design and development of future spacecraft or planetary surface habitats. Absorbed dose was measured using Al2O3:C optically stimulated luminescence dosimeters behind shielding targets of varying composition and depth using the 1 GeV nominal energy proton beam available at the NASA Space Radiation Laboratory at the Brookhaven National Laboratory in New York. Absorbed dose scored from computer simulations performed using the multi-purpose Monte Carlo radiation transport code FLUKA agrees well with measurements obtained via the shielding experiments. All shielding materials tested and modeled in this study were unable to reduce absorbed dose below that measured by the (unshielded) front detector, even after depths as large as 30 g/cm2. These results could be noteworthy given the broad range of proton energies present in the galactic cosmic ray spectrum, and the potential health and safety hazard such space radiation could represent to future human space exploration.

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来源期刊
ACS Applied Bio Materials
ACS Applied Bio Materials Chemistry-Chemistry (all)
CiteScore
9.40
自引率
2.10%
发文量
464
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