来自DART任务的动量转移对小行星Dimorphos的动力冲击
Andrew F Cheng1, Harrison F Agrusa2, Brent W Barbee3
1Applied Physics Laboratory, Johns Hopkins University, Laurel, MD, USA. andy.cheng@jhuapl.edu.
Nature
|March 1, 2023
概括
美国宇航局的双重小行星转向测试 (DART) 任务成功证明了小行星的偏移. 动力冲击产生了喷射物, 显著增强了行星防御的动量转移.
科学领域:
- 星球科学
- 天体物理学
- 航空航天工程
背景情况:
- 美国宇航局的双重小行星转向测试 (DART) 任务是作为行星防御测试而设计的.
- 这是一次对二进制小行星迪迪莫斯的月亮小行星的动力撞击.
- 这次任务是首次对小行星进行超高速撞击实验,
研究的目的:
- 验证动力冲击作为一个可行的小行星偏移方法.
- 在动力冲击事件中转移到小行星的动量.
- 评估DART任务在改变小行星轨迹方面的有效性.
主要方法:
- 对撞击后迪迪莫斯系统二进制轨道周期变化的分析.
- 计算Dimorphos轨道轨道速度的瞬间变化.
- 根据弹射反弹和小行星密度确定动量增强因子 (β).
主要成果:
- 测量了Dimorphos轨道速度组成部分的2.70±0.10毫米/秒的瞬间减少.
- 发现动量增强因子 (β) 在2. 2到4. 9之间,这取决于Dimorphos的质量和密度.
- 这些结果表明从喷射物转移的动量大于DART飞船的撞击动量.
结论:
- DART的动力冲击在偏离小行星Dimorphos方面非常有效.
- 撞击产生的弹射在增强动力转移中起到了至关重要的作用.
- 这些发现证实了动力冲击技术作为一个有前途的小行星偏移和行星防御策略.
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