Space radiation quality factor for Galactic Cosmic Rays and typical space mission scenarios using a microdosimetric approach.

IF 1.5 4区 环境科学与生态学 Q3 BIOLOGY Radiation and Environmental Biophysics Pub Date : 2023-05-01 DOI:10.1007/s00411-023-01023-6
Alexis Papadopoulos, Ioanna Kyriakou, Sébastien Incerti, Giovanni Santin, Petteri Nieminen, Ioannis A Daglis, Weibo Li, Dimitris Emfietzoglou
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Abstract

Space radiation exposure from omnipresent Galactic Cosmic Rays (GCRs) in interplanetary space poses a serious carcinogenic risk to astronauts due to the-limited or absent-protective effect of the Earth's magnetosphere and, in particular, the terrestrial atmosphere. The radiation risk is directly influenced by the quality of the radiation, i.e., its pattern of energy deposition at the micron/DNA scale. For stochastic biological effects, radiation quality is described by the quality factor, [Formula: see text], which can be defined as a function of Linear Energy Transfer (LET) or the microdosimetric lineal energy ([Formula: see text]). In the present work, the average [Formula: see text] of GCR for different mission scenarios was calculated using a modified version of the microdosimetric Theory of Dual Radiation Action (TDRA). NASA's OLTARIS platform was utilized to generate the radiation environment behind different aluminum shielding (0-30 g/cm2) for a typical mission scenario in low-earth orbit (LEO) and in deep space. The microdosimetric lineal energy spectra of ions ([Formula: see text]) in 1 μm liquid water spheres were calculated by a generalized analytical model which considers energy-loss fluctuations and δ-ray transport inside the irradiated medium. The present TDRA-based [Formula: see text]-values for the LEO and deep space missions were found to differ by up to 10% and 14% from the corresponding ICRP-based [Formula: see text]-values and up to 3% and 6% from NASA's [Formula: see text]-model. In addition, they were found to be in good agreement with the [Formula: see text]-values measured in the International Space Station (ISS) and by the Mars Science Laboratory (MSL) Radiation Assessment Detector (RAD) which represent, respectively, a LEO and deep space orbit.

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使用微剂量学方法的银河宇宙射线和典型空间任务情景的空间辐射质量因子。
由于地球磁层,特别是地球大气层的保护作用有限或缺乏保护作用,星际空间中无所不在的银河宇宙射线(GCRs)的空间辐射暴露对宇航员构成严重的致癌风险。辐射的质量,即在微米/DNA尺度上的能量沉积模式直接影响辐射风险。对于随机生物效应,辐射质量用质量因子来描述,[公式:见文],它可以定义为线性能量传递(LET)或微剂量线性能量([公式:见文])的函数。在本工作中,使用双辐射作用微剂量学理论(TDRA)的修正版本计算了不同任务情景下GCR的平均值[公式:见文本]。NASA的OLTARIS平台用于在低地球轨道(LEO)和深空的典型任务场景中生成不同铝屏蔽(0-30 g/cm2)背后的辐射环境。采用考虑辐照介质内能量损失波动和δ射线输运的广义解析模型,计算了1 μm液态水球中离子([公式:见文])的微剂量线性能谱。研究发现,目前基于tdra的近地轨道和深空任务的[公式:见文本]值与相应的基于icrp的[公式:见文本]值相差高达10%和14%,与NASA的[公式:见文本]模型相差高达3%和6%。此外,它们被发现与国际空间站(ISS)和火星科学实验室(MSL)辐射评估探测器(RAD)测量的值(分别代表近地轨道和深空轨道)非常吻合。
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来源期刊
CiteScore
4.00
自引率
5.90%
发文量
53
审稿时长
>36 weeks
期刊介绍: This journal is devoted to fundamental and applied issues in radiation research and biophysics. The topics may include: Biophysics of ionizing radiation: radiation physics and chemistry, radiation dosimetry, radiobiology, radioecology, biophysical foundations of medical applications of radiation, and radiation protection. Biological effects of radiation: experimental or theoretical work on molecular or cellular effects; relevance of biological effects for risk assessment; biological effects of medical applications of radiation; relevance of radiation for biosphere and in space; modelling of ecosystems; modelling of transport processes of substances in biotic systems. Risk assessment: epidemiological studies of cancer and non-cancer effects; quantification of risk including exposures to radiation and confounding factors Contributions to these topics may include theoretical-mathematical and experimental material, as well as description of new techniques relevant for the study of these issues. They can range from complex radiobiological phenomena to issues in health physics and environmental protection.
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