双小行星中的 BYORP 和耗散:DART 的启示

IF 3.8 Q2 ASTRONOMY & ASTROPHYSICS
Matija Ćuk, Harrison Agrusa, Rachel H. Cueva, Fabio Ferrari, Masatoshi Hirabayashi, Seth A. Jacobson, Jay McMahon, Patrick Michel, Paul Sánchez, Daniel J. Scheeres, Stephen Schwartz, Kevin J. Walsh and Yun Zhang
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引用次数: 0

摘要

2022 年 9 月,近地双小行星 Didymos 成为行星防御演示任务 DART 的目标。该航天器撞击了较小的双星部分--Dimorphos,以测量动能撞击碎石堆时的动量传递。DART 和相关的地基观测活动提供了有关迪迪莫斯-迪莫莫非斯双星的大量科学数据。DART发现,在撞击之前,迪莫弗斯的形状基本上是扁球形和椭圆形的,而撞击后的观测结果表明,迪莫弗斯现在的形状是长圆形的。在这里,我们将这些数据点与小型双星小行星的已知特性相结合,并提出了辐射双星亚科夫斯基-奥基弗-拉齐耶夫斯基-帕达克(BYORP)效应以及小型双星潮汐耗散的新范式。我们发现,像迪莫弗斯(Dimorphos)这样由小碎片组成的相对球形的天体,可能会经历比以前想象的更弱、更依赖于尺寸的BYORP效应。这可以解释在几个特征明显的双星中观测到的周期漂移值。我们还提出,小型双星中的能量耗散主要是由(可能是表面)物质相对短暂的大尺度运动引起的,而不是长期的稳态潮汐耗散。我们认为,DART撞击在Dimorphos上引发了一次这样的事件。根据这种高耗散机制的持续时间,Dimorphos在执行Hera任务时有可能会比撞击后的几周内更加动态松弛。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
BYORP and Dissipation in Binary Asteroids: Lessons from DART
The near-Earth binary asteroid Didymos was the target of the planetary defense demonstration mission DART in 2022 September. The smaller binary component, Dimorphos, was impacted by the spacecraft in order to measure momentum transfer in kinetic impacts into rubble piles. DART and associated Earth-based observation campaigns have provided a wealth of scientific data on the Didymos–Dimorphos binary. DART revealed the largely oblate and ellipsoidal shape of Dimorphos before the impact, while the postimpact observations suggest that Dimorphos now has a prolate shape. Here we add those data points to the known properties of small binary asteroids and propose new paradigms of the radiative binary Yarkovsky–O’Keefe–Radzievskii–Paddack (BYORP) effect as well as tidal dissipation in small binaries. We find that relatively spheroidal bodies like Dimorphos made of small debris may experience a weaker and more size-dependent BYORP effect than previously thought. This could explain the observed values of period drift in several well-characterized binaries. We also propose that energy dissipation in small binaries is dominated by relatively brief episodes of large-scale movement of (likely surface) materials, rather than long-term steady-state tidal dissipation. We propose that one such episode was triggered on Dimorphos by the DART impact. Depending on the longevity of this high-dissipation regime, it is possible that Dimorphos will be more dynamically relaxed in time for the Hera mission than it was in the weeks following the impact.
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来源期刊
The Planetary Science Journal
The Planetary Science Journal Earth and Planetary Sciences-Geophysics
CiteScore
5.20
自引率
0.00%
发文量
249
审稿时长
15 weeks
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