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Experimental dynamos and the dynamics of planetary cores

机译:实验动力与行星核心动力学

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Laboratory experiments using liquid metals and nonmetallic liquids reveal a rich set of dynamical processes active in Earth's core and in the cores of other terrestrial planets. These processes include thermochemical convection and a variety of instabilities driven by irregularities in rotation, such as precession, libration, and tides. The spectrum of fluid motions in these experiments ranges from turbulence and inertial wave motions at high frequencies to global-scale zonal flows at low frequencies, and they result from the interplay between buoyant forces, rotational effects, melting and solidification, magnetic fields, and the spherical geometry of the core. This review summarizes strengths and limitations of laboratory fluid experiments for modeling core dynamics, identifies the key physical parameters, and highlights recent advances in understanding the complex flows that control the evolution of the core. Special emphasis is given to ongoing efforts to develop self-sustaining fluid dynamos.
机译:使用液态金属和非金属液体的实验室实验揭示了在地球核心和其他地球行星的核心中活跃的一组丰富的动力学过程。这些过程包括热化学对流和由旋转不规则引起的各种不稳定性,例如旋进,解放和潮汐。在这些实验中,流体运动的频谱范围从高频的湍流和惯性波运动到低频的全局尺度纬向流,它们是由浮力,旋转作用,熔化和凝固,磁场以及核心的球形几何形状。这篇综述总结了用于模拟岩心动力学的实验室流体实验的优势和局限性,确定了关键的物理参数,并重点介绍了在了解控制岩心演化的复杂流动方面的最新进展。特别强调不断发展自我维持的流体动力的努力。

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