空间辐射场中核相互作用的二次带电碎片传递给微体积的能量分布。

IF 1.5 4区 环境科学与生态学 Q3 BIOLOGY Radiation and Environmental Biophysics Pub Date : 2023-08-01 DOI:10.1007/s00411-023-01034-3
S N Fedotov, V V Kushin
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引用次数: 0

摘要

近地轨道宇宙辐射场具有复杂的组成。它总是含有二次带电粒子的成分,这是一次高能辐射与航天器的屏蔽材料、电子元件和航天器上的生物物质的原子核相互作用的产物。这种二次辐射的产生可以在一些轨道探测器中观察到,其形式是由具有共同顶点的轨道碎片形成的“恒星”。在相互作用顶点附近的区域,由于多个粒子碎片的相交,介质吸收的能量会达到异常高的值。在本文中,考虑了一种方法来计算这种碎片在水介质中传递给球形敏感体积的能量。计算了三种碎片事件在不同顶点位置相对于球体的能量分布。对得到的数据进行了分析,并与二次粒子均匀影响的分布进行了比较。结果表明,当碎片顶点接近敏感微体边界时,发生比单个碎片能量更高的异常高能量转移事件的概率增加。该方法可用于计算不同元素组成介质中二次辐射吸收能量的分布。在未来,应用该方法研究从二次碎片传递到硅介质的能量,量化电子元件中单事件扰动的数量是很有兴趣的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Distributions of energy imparted to a micro-volume by secondary charged fragments of nuclear interactions in space radiation field.

The field of cosmic radiation at low-Earth orbit (LEO) has a complex composition. It always contains a component of secondary charged particles, formed by the products of nuclear interactions of the primary high-energy radiation with the nuclei of spacecraft's shielding material, electronic components and biological matter on board. Generation of this secondary radiation can be observed in some track detectors in the form of "stars" formed by tracks-fragments with a common vertex. The energy absorbed by the medium in the region adjacent to the interaction vertex can reach abnormally high values because of its intersection by several particle fragments. In the present paper, a methodology is considered to calculate the energy imparted by such fragments to a spherical sensitive volume in an aqueous medium. The energy distributions for three fragment events were calculated for different positions of the vertex relative to the spherical volume. The obtained data were analyzed and were compared with the distribution for a uniform fluence of secondary particles. It was shown that as the fragmentation vertex approaches the boundary of the sensitive micro-volume, the probability of events with anomalously high energy transfers, higher than the energies from single fragments, increases. The method can be applied to calculate absorbed energy distributions from secondary radiation in media of different elemental composition than that used in the present work. In the future, it is of interest to apply the method for example to study the energy imparted from secondary fragments to a silicon medium, to quantify the number of single event upsets in electronic components.

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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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