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Effects of Earth's rotation on the early differentiation of a terrestrial magma ocean

机译:地球自转对陆地岩浆海洋早期分化的影响

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Similar to other terrestrial planets like Moon and Mars, Earth experienced a magma ocean period about 4.5 billion years ago. On Earth differentiation processes in the magma ocean set the initial conditions for core formation and mantle evolution. During the magma ocean period Earth was rotating significantly faster than today. Further, the viscosity of the magma was low, thus that planetary rotation potentially played an important role for differentiation. However, nearly all previous studies neglect rotational effects. All in all, our results suggest that planetary rotation plays an important role for magma ocean crystallization. We employ a 3-D numerical model to study crystal settling in a rotating and vigorously convecting early magma ocean. We show that crystal settling in a terrestrial magma ocean is crucially affected by latitude as well as by rotational strength and crystal density. Due to rotation an inhomogeneous accumulation of crystals during magma ocean solidification with a distinct crystal settling between pole and equator could occur. One could speculate that this may have potentially strong effects on the magma ocean solidification time and the early mantle composition. It could support the development of a basal magma ocean and the formation of anomalies at the core-mantle boundary in the equatorial region, reaching back to the time of magma ocean solidification.
机译:与月球和火星等其他地球行星相似,地球经历了大约45亿年前的岩浆海洋时期。在地球上,岩浆海洋的分化过程为岩心形成和地幔演化设定了初始条件。在岩浆海洋时期,地球自转的速度比今天快得多。此外,岩浆的粘度较低,因此行星自转可能对差异化起重要作用。但是,几乎所有以前的研究都忽略了旋转效应。总而言之,我们的结果表明,行星自转对于岩浆海洋结晶起着重要作用。我们使用3-D数值模型研究在旋转且剧烈对流的早期岩浆海洋中的晶体沉降。我们表明,在岩浆海洋中的晶体沉降受纬度以及旋转强度和晶体密度的影响很大。由于旋转,在岩浆海洋凝固过程中会发生不均匀的晶体堆积,并在极点和赤道之间形成明显的晶体沉降。可以推测这可能对岩浆海洋的凝固时间和早期地幔组成有潜在的强烈影响。它可以支持基底岩浆海洋的发展以及赤道地区岩心-幔边界处异常的形成,可以追溯到岩浆海洋凝固的时期。

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