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Probing the internal structure of the asteriod Didymoon with a passive seismic investigation

机译:用被动地震探测探测小行星迪迪翁的内部结构

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摘要

Understanding the internal structure of an asteroid has important implications for interpreting its evolutionary history, for understanding its continuing geological evolution, and also for asteroid deflection and in-situ space resource utilisation. Given the strong evidence that asteroids are seismically active, an in-situ passive seismic experiment could provide information about the asteroid surface and interior properties. Here, we discuss the natural seismic activity that may be present on Didymoon, the secondary component of asteroid (65803) Didymos. Our analysis of the tidal stresses in Didymoon shows that tidal quakes are likely to occur if the secondary has an eccentric orbit. Failure occurs most easily at the asteroid poles and close to the surface for both homogeneous and layered internal structures. Simulations of seismic wave propagation in Didymoon show that the seismic moment of even small meteoroid impacts can generate clearly observable body and surface waves if the asteroid's internal structure is homogeneous. The presence of a regolith layer over a consolidated core can result in the seismic energy becoming trapped in the regolith due to the strong impedance contrast at the regolith-core boundary. The inclusion of macroporosity (voids) further complexifies the wavefield due to increased scattering. The most prominent seismic waves are always found to be those traveling along the surface of the asteroid and those focusing in the antipodal point of the seismic source. We find also that the waveforms and ground acceleration spectra allow discrimination between the different internal structure models.udAlthough the science return of a passive seismic experiment would be enhanced by having multiple seismic stations, one single seismic station can already vastly improve our knowledge about the seismic environment and sub-surface structure of an asteroid. We describe several seismic measurement techniques that could be applied in order to study the asteroid internal structure with one three-component seismic station.
机译:理解小行星的内部结构对于解释其演化历史,理解其持续的地质演化以及小行星偏转和原位空间资源利用都具有重要意义。鉴于有力的证据表明小行星具有地震活性,因此原位被动地震实验可以提供有关小行星表面和内部特性的信息。在这里,我们讨论了小行星(65803)Didymos的次要组件Didymoon上可能存在的自然地震活动。我们对Didymoon潮汐应力的分析表明,如果次生层具有偏心轨道,则可能会发生潮汐地震。对于均质和分层的内部结构,最容易发生在小行星极点并靠近表面的故障。在迪迪蒙地震波传播的模拟表明,如果小行星的内部结构是均匀的,即使是小型流星体撞击的地震矩也可以产生可观察到的体波和面波。固结岩心上存在的软膏岩层会导致地震能量由于在软膏岩-岩心边界处的强阻抗差异而被困在软膏岩中。由于散射增加,大孔隙(空隙)的存在进一步使波场复杂化。总是发现最突出的地震波是沿着小行星表面传播的那些和聚焦在地震源的对映点上的那些。我们还发现,波形和地面加速度谱可以区分不同的内部结构模型。 ud尽管通过拥有多个地震台站可以提高被动地震实验的科学回报,但一个地震台站已经可以大大改善我们对地震台站的了解。小行星的地震环境和地下结构。我们描述了几种地震测量技术,这些技术可用于研究具有一个三分量地震台的小行星内部结构。

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