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A long-lived lunar dynamo powered by core crystallization

机译:由核心结晶驱动的长寿月球发电机

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摘要

The Moon does not possess an internally generated magnetic field at the present day, but extensive evidence shows that such a field existed between at least 4.2 and 3.56 Ga ago. The existence of a metallic lunar core is now firmly established, and we investigate the influence of inner core growth on generating a lunar core dynamo. We couple the results of a 3-D spherical thermochemical convection model of the lunar mantle to a 1-D thermodynamic model of its core. The energy and entropy budget of the core are computed to determine the inner core growth rate and its efficiency to power a dynamo. Sulfur is considered to be the main alloying element and we investigate how different sulfur abundances and initial core temperatures affect the model outcomes. For reasonable initial conditions, a solid inner core between 100 and 200 km is always produced. During its growth, a surface magnetic field of about 0.3 μT is generated and is predicted to last several billion years. Though most simulations predict the existence of a core dynamo at the present day, one way to stop magnetic field generation when the inner core is growing is by a transition between a bottom-up and top-down core crystallization scheme when the sulfur content becomes high enough in the outer core. According to this hypothesis, a model with about 6 to 8 wt.% sulfur in the core would produce a 120-160 km inner core and explain the timing of the lunar dynamo as constrained by paleomagnetic data.
机译:目前,月球没有内部产生的磁场,但是大量证据表明,这种磁场至少存在于4.2 Ga和3.56 Ga之前。现在已经牢固地确定了金属月球核的存在,并且我们研究了内核生长对产生月球核发电机的影响。我们将月球幔的3-D球形热化学对流模型的结果与其核心的1-D热力学模型耦合。计算核心的能量和熵预算,以确定内部核心的增长率及其为发电机供电的效率。硫被认为是主要的合金元素,我们研究了不同的硫含量和初始核心温度如何影响模型结果。在合理的初始条件下,始终会产生100至200 km之间的坚固内芯。在其生长期间,会产生约0.3μT的表面磁场,并预计将持续数十亿年。尽管大多数模拟都预测当今存在核发电机,但当内核生长时,停止磁场产生的一种方法是当硫含量变高时,由下而上和自上而下的核心结晶方案之间过渡。在外部核心足够。根据该假设,在岩心中含有约6至8 wt。%硫的模型将产生120-160 km的内核,并解释受古地磁数据约束的发电机的时机。

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