Proton Spectra for the Interplanetary Space Derived From Different Environmental Models

E. Klein, M. Sznajder, P. Seefeldt
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引用次数: 1

Abstract

Knowledge about the space radiation environment is crucial for the design and selection of materials and components used for space applications. This environment is characterized not only by the Sun’s electromagnetic radiation but also by charged particles categorized into solar wind, solar energetic particles (SEP) and galactic cosmic rays (GCR). Especially for material engineering and qualification testing, differential and integral spectra for particle energies ranging from keVs to GeVs are required. Up to now, a wide variety of models is available, whereas it is difficult to keep the overview. Although, e.g., the European Cooperation for Space Standardization (ECSS) standard includes instructions on how to investigate particle radiation, it does not provide an overall view. This paper shall support those in need of a comprehensive overview and provide comprehensive information about proton radiation spectra that can potentially be of use for space engineering tasks ranging from mission analysis to material and component design as well as qualification testing. The publicly accessible platforms OLTARIS, SPENVIS, and OMERE were examined for available proton spectra to be used. Exemplary, the particle radiation of solar cycle 23 is considered, which comprehends the years 1996–2008. A common drawback of the available models is their restriction to the MeV-range. Particularly when materials are directly exposed to the space environment, low energetic particles, specifically, the keV-range, are of high interest, since these particle transfer all their energy to the material. Therefore, additional data sources were used in order to include the usually neglected low energy protons into the derived spectrum. The data was transferred to common set of units and eventually could be compared and merged together. This includes a comparison of the most common models, incorporating data foundation, applicability, and accessibility. As a result, extensive and continues spectra are fitted that take all different models with its different energies and fluxes into account. Each covered year is represented by a fitted spectrum including confidence level as applicable. For solar active and quite times spectra are provided.
不同环境模型下行星际空间的质子光谱
关于空间辐射环境的知识对于设计和选择用于空间应用的材料和部件至关重要。这种环境不仅以太阳的电磁辐射为特征,而且以太阳风、太阳高能粒子(SEP)和银河宇宙射线(GCR)等带电粒子为特征。特别是在材料工程和鉴定测试中,需要从kev到gev的粒子能量的微分和积分光谱。到目前为止,可用的模型种类繁多,但很难保持概述。虽然,例如,欧洲空间标准化合作(ECSS)标准包括关于如何调查粒子辐射的说明,但它并没有提供一个全面的观点。本文将支持那些需要全面概述和提供有关质子辐射光谱的全面信息的人,这些信息可能用于从任务分析到材料和部件设计以及资格测试的空间工程任务。对可公开访问的平台OLTARIS、SPENVIS和OMERE进行了检查,以寻找可用的质子光谱。以1996-2008年太阳周期23的粒子辐射为例。现有型号的一个共同缺点是它们对mev范围的限制。特别是当材料直接暴露在空间环境中时,低能粒子,特别是k - k范围,是高度感兴趣的,因为这些粒子将它们所有的能量转移到材料中。因此,为了将通常被忽略的低能质子纳入推导谱,使用了额外的数据源。数据被传送到共同的单元集合,最终可以进行比较和合并。这包括对最常见模型的比较,结合数据基础、适用性和可访问性。从而拟合出了考虑不同能量和通量的所有不同模型的广谱和连续谱。每个覆盖年份都用拟合谱表示,包括适用的置信水平。提供了太阳活动谱和静时谱。
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