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Practical Applications of Cosmic Ray Science: Spacecraft, Aircraft, Ground-Based Computation and Control Systems, and Human Health and Safety

机译:宇宙射线科学的实际应用:航天器,飞机,地基计算和控制系统以及人类健康与安全

摘要

Three twentieth century technological developments, 1) high altitude commercial and military aircraft; 2) manned and unmanned spacecraft; and 3) increasingly complex and sensitive solid state micro-electronics systems, have driven an ongoing evolution of basic cosmic ray science into a set of practical engineering tools needed to design, test, and verify the safety and reliability of modern complex technological systems. The effects of primary cosmic ray particles and secondary particle showers produced by nuclear reactions with the atmosphere, can determine the design and verification processes (as well as the total dollar cost) for manned and unmanned spacecraft avionics systems. Similar considerations apply to commercial and military aircraft operating at high latitudes and altitudes near the atmospheric Pfotzer maximum. Even ground based computational and controls systems can be negatively affected by secondary particle showers at the Earth s surface, especially if the net target area of the sensitive electronic system components is large. Finally, accumulation of both primary cosmic ray and secondary cosmic ray induced particle shower radiation dose is an important health and safety consideration for commercial or military air crews operating at high altitude/latitude and is also one of the most important factors presently limiting manned space flight operations beyond low-Earth orbit (LEO). In this paper we review the discovery of cosmic ray effects on the performance and reliability of microelectronic systems as well as human health and the development of the engineering and health science tools used to evaluate and mitigate cosmic ray effects in ground-based atmospheric flight, and space flight environments. Ground test methods applied to microelectronic components and systems are used in combinations with radiation transport and reaction codes to predict the performance of microelectronic systems in their operating environments. Similar radiation transport codes are used to evaluate possible human health effects of cosmic ray exposure, however, the health effects are based on worst-case analysis and extrapolation of a very limited human exposure data base combined with some limited experimental animal data. Finally, the limitations on human space operations beyond low-Earth orbit imposed by long term exposure to galactic cosmic rays are discussed.
机译:二十世纪三世纪的技术发展,1)高空商用和军用飞机; 2)载人和无人航天器; 3)日益复杂和敏感的固态微电子系统,已将基础宇宙射线科学的不断发展带入了设计,测试和验证现代复杂技术系统的安全性和可靠性所需的一组实用工程工具。大气中核反应产生的主要宇宙射线粒子和次要粒子阵雨的影响,可以确定有人和无人航天器航空电子系统的设计和验证过程(以及总的美元成本)。类似的考虑也适用于在高纬度和高空Pfotzer最大值附近运行的商业和军用飞机。即使是基于地面的计算和控制系统,也会受到地球表面次级粒子阵雨的负面影响,特别是如果敏感电子系统组件的净目标面积较大时。最后,对于在高海拔/高纬度工作的商业或军事机组人员来说,一次宇宙射线和二次宇宙射线引起的粒子阵雨辐射剂量的累积是重要的健康和安全考虑,并且也是目前限制载人航天的最重要因素之一在低地球轨道(LEO)之外的行动。在本文中,我们回顾了宇宙射线对微电子系统性能和可靠性以及人类健康的影响的发现,以及用于评估和减轻地面大气飞行中宇宙射线影响的工程和健康科学工具的发展,以及太空飞行环境。将应用于微电子元件和系统的地面测试方法与辐射传输和反应代码结合使用,以预测微电子系统在其工作环境中的性能。类似的辐射传输代码用于评估宇宙射线暴露对人类健康的可能影响,但是,健康影响是基于最坏情况分析和非常有限的人类暴露数据库与一些有限的实验动物数据的外推得出的。最后,讨论了长期暴露于银河宇宙射线对低空轨道以外的人类空间运行的限制。

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