多壁航天器屏蔽的弹道极限方程简史

Q1 Physics and Astronomy
REACH Pub Date : 2016-03-01 DOI:10.1016/j.reach.2016.06.001
William P. Schonberg
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引用次数: 10

摘要

所有绕地球轨道运行的航天器都容易受到轨道碎片颗粒的撞击,这种撞击可能以极高的速度发生,并可能损坏飞行和任务关键系统。针对这种威胁,传统的减损防护设计包括一个“缓冲器”,该缓冲器放置在距离航天器主“内壁”相对较小的距离处。超高速冲击护盾性能的典型特征是其弹道极限方程,该方程通常被绘制为后壁穿孔和无穿孔区域之间的分界线;当用图形表示时,它通常被称为弹道极限曲线。一旦开发出来,这些方程和曲线可用于优化航天器壁参数的设计,使所得到的护罩能够承受轨道碎片的各种高速撞击。本文对用于预测双壁结构系统在超高速弹丸冲击下的响应的三部分弹道极限方程的发展进行了一些评论和观察。论文最后对NASA当前MMOD风险分析代码的局限性提出了一些见解,并就如何对其进行修改提出了一些建议,例如,可以将其用作概率风险评估练习的一个组成部分。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Concise history of ballistic limit equations for multi-wall spacecraft shielding

All earth-orbiting spacecraft are susceptible to impacts by orbital debris particles, which can occur at extremely high speeds and can damage flight- and mission-critical systems. The traditional damage mitigating shield design for this threat consists of a “bumper” that is placed at a relatively small distance away from the main “inner wall” of the spacecraft. The performance of a hypervelocity impact shield is typically characterized by its ballistic limit equation, which is typically drawn as a line of demarcation between regions of rear-wall perforation and no perforation; when graphically represented, it is often referred to as a ballistic limit curve. Once developed, these equations and curves can be used to optimize the design of spacecraft wall parameters so that the resulting shields can withstand a wide variety of high-speed impacts by orbital debris. This paper presents some comments and observations on the development of the three-part ballistic limit equation used to predict the response of dual-wall structural systems under hypervelocity projectile impact. The paper concludes with some insights into the limitations of NASA’s current MMOD risk analysis code, and offers several suggestions regarding how it could be modified so that, for example, it could be used as an integral part of a probabilistic risk assessment exercise.

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来源期刊
REACH
REACH Engineering-Aerospace Engineering
CiteScore
2.00
自引率
0.00%
发文量
4
期刊介绍: The Official Human Space Exploration Review Journal of the International Academy of Astronautics (IAA) and the International Astronautical Federation (IAF) REACH – Reviews in Human Space Exploration is an international review journal that covers the entire field of human space exploration, including: -Human Space Exploration Mission Scenarios -Robotic Space Exploration Missions (Preparing or Supporting Human Missions) -Commercial Human Spaceflight -Space Habitation and Environmental Health -Space Physiology, Psychology, Medicine and Environmental Health -Space Radiation and Radiation Biology -Exo- and Astrobiology -Search for Extraterrestrial Intelligence (SETI) -Spin-off Applications from Human Spaceflight -Benefits from Space-Based Research for Health on Earth -Earth Observation for Agriculture, Climate Monitoring, Disaster Mitigation -Terrestrial Applications of Space Life Sciences Developments -Extreme Environments REACH aims to meet the needs of readers from academia, industry, and government by publishing comprehensive overviews of the science of human and robotic space exploration, life sciences research in space, and beneficial terrestrial applications that are derived from spaceflight. Special emphasis will be put on summarizing the most important recent developments and challenges in each of the covered fields, and on making published articles legible for a non-specialist audience. Authors can also submit non-solicited review articles. Please note that original research articles are not published in REACH. The Journal plans to publish four issues per year containing six to eight review articles each.
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