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Study of dose distribution in a human body in international space station compartments with the tissue-equivalent spherical phantom

机译:具有组织等效球体模型的国际空间站舱室中人体剂量分布的研究

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摘要

Space radiation is known to be key hazard of manned space mission. To estimate accurately radiation health risk detailed study of dose distribution inside human body by means of human phantom is conducted. In the space experiment MATROSHKA-R, the tissue-equivalent spherical phantom (32 kg mass, 35 cm diameter and 10 cm central spherical cave) made in Russia has been used on board the ISS for more than 8 years. Owing to the specially chosen phantom shape and size, the chord length distributions of the detector locations are attributed to self-shielding properties of the critical organs in a real human body. If compared with the anthropomorphic phantom Rando used inside and outside the ISS, the spherical phantom has lower mass, smaller size and requires less crew time for the detector installation/retrieval; its tissue-equivalent properties are closer to the standard human body tissue than the Rando-phantom material. Originally the spherical phantom was installed in the star board crew cabin of the ISS Service Module, then in the Piers-1, MIM-2 and MIM-1 modules of the ISS Russian segment, and finally in JAXA Kibo module. Total duration of the detector exposure is more than 1700 days in 8 sessions.In the first phase of the experiment with the spherical phantom, the dose measurements were realized with only passive detectors (thermoluminescent and solid-state track detectors). The detectors are placed inside the phantom along the axes of 20 containers and on the phantom outer surface in 32 pockets of the phantom jacket. After each session the passive detectors are returned to the ground. The results obtained show the dose difference on the phantom surface as much as a factor of 2, the highest dose being observed close to the outer wall of the compartment, and the lowest dose being in the opposite location along the phantom diameter. Maximum dose rate measured in the phantom is obviously due to the galactic cosmic ray (GCR) and Earth' radiation belt contribution on the ISS trajectory. Minimum dose rate is caused mainly by the strongly penetrating GCR particles and is observed behind more than 5 g/cm2 tissue shielding. Critical organ doses, mean-tissue and effective doses of a crew member in the ISS compartments are also estimated with the spherical phantom data. The estimated effective dose rate is found to be from 10 to 15% lower than the averaged dose on the phantom surface as dependent on the attitude of the critical organs.The spherical phantom proved its effectiveness to measure the critical organ doses together with the effective dose in-flight and if supplied with active dosimeters can be recommended for future exploratory manned missions to monitor continuously the effective dose.
机译:众所周知,空间辐射是载人航天飞行的主要危险。为了准确估计辐射健康风险,通过人体模型对人体内部剂量分布进行了详细研究。在太空实验MATROSHKA-R中,俄罗斯制造的等效于组织的球形体模(32千克质量,35厘米直径和10厘米中心球形洞穴)已在国际空间站上使用了8年以上。由于特殊选择的幻像形状和大小,探测器位置的弦长分布归因于真实人体中关键器官的自我屏蔽特性。与国际空间站内部和外部使用的拟人化体模兰多相比,球形体模质量更轻,尺寸更小,并且需要更少的人员来安装/检索探测器。它的组织等效特性比Rando-phantom材料更接近标准人体组织。最初,球形幻影安装在ISS服务模块的星空乘员舱中,然后安装在ISS俄罗斯分部的Piers-1,MIM-2和MIM-1模块中,最后安装在JAXA Kibo模块中。在8个疗程中,探测器暴露的总持续时间超过1700天。在球形体模实验的第一阶段,仅使用被动探测器(热发光和固态轨道探测器)即可实现剂量测量。探测器沿20个容器的轴线放置在体模内部,并在体模外套的32个口袋中的体模外表面上。每次会话之后,无源检测器将返回地面。所获得的结果表明,在体模表面上的剂量差异高达2倍,在靠近隔室外壁的位置观察到最高剂量,而在体模直径的相反位置观察到最低剂量。幻影中测得的最大剂量率显然是由于银河宇宙射线(GCR)和地球辐射带对ISS轨迹的贡献。最小剂量率主要由强渗透性GCR颗粒引起,并且在超过5 g / cm 2 组织屏蔽后观察到。 ISS舱室中机组人员的关键器官剂量,平均组织剂量和有效剂量也可以通过球形体模数据进行估算。根据关键器官的姿势,估计的有效剂量率比模型表面的平均剂量低10%至15%。球形模型证明了它可以有效地测量关键器官剂量和有效剂量对于未来的有人值守任务,建议在飞行中并且如果配备主动剂量计,则建议连续监测有效剂量。

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