关闭行星保护知识缺口 关闭知识缺口 实现载人火星任务
James A Spry1, Bette Siegel2, Corien Bakermans3
1SETI Institute, Mountain View, California, USA.
Astrobiology
|March 20, 2024
概括
对于载人火星任务的行星保护是可行的. 这项研究解决了微生物监测,污染传输和控制系统的知识差距,为人类安全探索和防止生物污染铺平了道路.
科学领域:
- 星球保护:确保科学完整性,防止在火星探索期间的生物污染.
- 天体生物学:了解火星上生命的潜力以及前向和后向污染的影响.
背景情况:
- 从机器人到载人火星任务的过渡需要强大的行星保护策略.
- 国际航天研究委员会 (COSPAR) 的国际指导方针从机器人到人类任务的考虑发展了.
- 之前的定性准则要求对航天器设计和任务实施做出定量建议.
研究的目的:
- 解决载人和混合火星任务的行星保护方面的"知识差距" (KG).
- 适应和扩展现有的人类探索政策.
- 确定并提出关闭已确定KG的解决方案.
主要方法:
- 召开由COSPAR赞助的多年跨学科会议.
- 专注于三个主要主题领域:微生物监测,火星上的陆地运输和污染控制技术.
- 编制了一个KG数据表,以用于未来的进展.
主要成果:
- 确定了用于微生物监测航天器和机组人员健康的可靠解决方案.
- 评估火星上陆地微生物的自然运输和生存.
- 详细的技术和操作策略,用于航天器污染控制.
- 在载人火星任务中证明了行星保护的可行性.
结论:
- 载人火星任务的行星保护可以通过既定参数和基于风险的方法实现.
- 定义的参数包括区域划分,排放,运输和陆地生物污染的生存.
- 建议采用基于风险的合规方法,供航天实体采用.
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