设计用于航天器辐射防护的人工磁场发生器系统的基于模型的系统工程方法

Charles J. Baker, Dr. Steven J. Simske
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引用次数: 0

摘要

以宇宙辐射和太阳辐射为主的危险太空环境对航天器及其乘员构成了重大威胁。传统的辐射屏蔽方法,如被动材料,在重量和效果上都有局限性。人工磁场发生器系统是一个很有前途的解决方案,它可以复制地球的磁层,提供保护性磁屏蔽,抵御有害辐射。(Dick, Launius, 2007)本文介绍了一种基于模型的系统工程(MBSE)方法,用于这种系统的整体建模和设计。利用 MBSE 方法,本研究对系统的组件、它们之间的相互作用以及所提供的服务进行建模,其中包括辐射监测、磁屏蔽、电源管理、系统健康& 诊断和乘员通信服务。概念数据模型捕捉关键实体及其关系,确保系统各部分的协调整合。活动图表说明了操作流程,清晰地展示了系统在不同辐射条件和电力储备下的动态行为。MBSE 方法的应用具有诸多优势,包括系统复杂性的统一可视化、加强利益相关者的沟通以及简化验证和确认流程。此外,MBSE 方法固有的灵活性可确保系统能根据技术进步或任务要求的变化轻松更新或扩展。(ECLIPSE Suite, 2022)将 MBSE 方法应用于航天器人工磁场发生器系统的设计,提供了一种稳健而系统的方法,可确保在危险的太空领域实现最佳性能、安全性和适应性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Model-Based Systems Engineering Approach for Designing an Artificial Magnetic Field Generator System for Spacecraft Radiation Protection

The hazardous environment of space, dominated by cosmic and solar radiation, poses a significant threat to spacecraft and their occupants. Traditional radiation shielding methods, like passive materials, have limitations in weight and effectiveness. An artificial magnetic field generator system emerges as a promising solution to replicate Earth's magnetosphere, providing a protective magnetic shield against harmful radiation. (Dick, Launius, 2007) This paper presents a Model-Based Systems Engineering (MBSE) approach to the holistic modeling and design of such a system.

Utilizing the MBSE approach, this study models the system's components, their interactions, and the offered services, incorporating Radiation Monitoring, Magnetic Shielding, Power Management, System Health & Diagnostics, and Crew Communication services. The conceptual data model captures key entities and their relationships, ensuring a coherent integration of the system's parts. The activity diagram illustrates the operational flow, providing clarity on the system's dynamic behavior under varying radiation conditions and power reserves. A services taxonomy is developed to hierarchically categorize and ensure the comprehensive functionality of the system.

The application of MBSE methodology provides numerous advantages, including a unified visualization of the system's complexities, enhanced stakeholder communication, and a streamlined validation and verification process. Furthermore, the flexibility inherent in the MBSE approach ensures that the system can be easily updated or scaled based on advancements in technology or changing mission requirements. (ECLIPSE Suite, 2022) The MBSE approach's application to the design of an artificial magnetic field generator system for spacecraft presents a robust and systematic method to ensure optimal performance, safety, and adaptability in the perilous realm of space.

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