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Numerical simulations of granular dynamics II: Particle dynamics in a shaken granular material

机译:颗粒动力学的数值模拟II:振动的颗粒材料中的颗粒动力学

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摘要

Surfaces of planets and small bodies of our Solar System are often covered by a layer of granular material that can range from a fine regolith to a gravel-like structure of varying depths. Therefore, the dynamics of granular materials are involved in many events occurring during planetary and small-body evolution thus contributing to their geological properties. We demonstrate that the new adaptation of the parallel N-body hard-sphere code pkdgrav has the capability to model accurately the key features of the collective motion of bidisperse granular materials in a dense regime as a result of shaking. As a stringent test of the numerical code we investigate the complex collective ordering and motion of granular material by direct comparison with laboratory experiments. We demonstrate that, as experimentally observed, the scale of the collective motion increases with increasing small-particle additive concentration. We then extend our investigations to assess how self-gravity and external gravity affect collective motion. In our reduced-gravity simulations both the gravitational conditions and the frequency of the vibrations roughly match the conditions on asteroids subjected to seismic shaking, though real regolith is likely to be much more heterogeneous and less ordered than in our idealised simulations. We also show that collective motion can occur in a granular material under a wide range of inter-particle gravity conditions and in the absence of an external gravitational field. These investigations demonstrate the great interest of being able to simulate conditions that are to relevant planetary science yet unreachable by Earth-based laboratory experiments.
机译:行星表面和我们太阳系的小物体通常被一层颗粒材料覆盖,颗粒材料的范围从细的块状石到深度不同的砾石状结构。因此,颗粒物质的动力学涉及行星和小物体演化过程中发生的许多事件,从而有助于它们的地质特性。我们证明,平行N体硬球体代码pkdgrav的新改编具有精确建模由于振动导致的双分散颗粒材料在致密状态下集体运动的关键特征的能力。作为对数字代码的严格测试,我们通过与实验室实验直接比较来研究颗粒材料的复杂集体排序和运动。我们证明,正如实验观察到的那样,集体运动的规模随着小颗粒添加剂浓度的增加而增加。然后,我们扩大研究范围,以评估自重和外部重力如何影响集体运动。在我们的重力降低模拟中,重力条件和振动频率都大致匹配经受地震震动的小行星的条件,尽管与我们理想化的模拟相比,真实的重石块可能具有更大的异质性和更少的有序性。我们还表明,在大范围的粒子间重力条件下并且没有外部重力场的情况下,集体运动可以在粒状材料中发生。这些研究表明,能够模拟与相关行星科学相关但地球实验室无法达到的条件非常感兴趣。

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