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Whole-mantle convection with tectonic plates preserves long-term global patterns of upper mantle geochemistry

机译:构造板块的全地幔对流保留了上地幔地球化学的长期全球模式

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摘要

The evolution of the planetary interior during plate tectonics is controlled by slow convection within the mantle. Global-scale geochemical differences across the upper mantle are known, but how they are preserved during convection has not been adequately explained. We demonstrate that the geographic patterns of chemical variations around the Earth’s mantle endure as a direct result of whole-mantle convection within largely isolated cells defined by subducting plates. New 3D spherical numerical models embedded with the latest geological paleo-tectonic reconstructions and ground-truthed with new Hf-Nd isotope data, suggest that uppermost mantle at one location (e.g. under Indian Ocean) circulates down to the core-mantle boundary (CMB), but returns within ≥100 Myrs via large-scale convection to its approximate starting location. Modelled tracers pool at the CMB but do not disperse ubiquitously around it. Similarly, mantle beneath the Pacific does not spread to surrounding regions of the planet. The models fit global patterns of isotope data and may explain features such as the DUPAL anomaly and long-standing differences between Indian and Pacific Ocean crust. Indeed, the geochemical data suggests this mode of convection could have influenced the evolution of mantle composition since 550 Ma and potentially since the onset of plate tectonics.
机译:板块构造过程中行星内部的演化受地幔内部对流的缓慢控制。上地幔的全球范围地球化学差异是已知的,但是对流过程中如何保存它们却没有得到充分的解释。我们证明了地球地幔周围化学变化的地理格局是由俯冲板所定义的很大程度上孤立的单元内的整个地幔对流直接造成的。嵌入了最新的地质古构造重建并利用新的Hf-Nd同位素进行地面实测的新3D球面数值模型表明,一个位置(例如印度洋下方)的最上地幔向下循环到了芯幔边界(CMB) ,但会通过大规模对流并在≥100rsMyrs内返回到其近似的起始位置。建模的示踪剂汇聚在CMB,但不会在其周围无处不在。同样,太平洋下面的地幔也不会扩散到地球的周围地区。这些模型符合同位素数据的全球格局,并且可以解释诸如DUPAL异常以及印度洋和太平洋洋壳之间长期存在的差异等特征。确实,地球化学数据表明,自550 Ma以来以及板块构造开始以来,这种对流模式可能已经影响了地幔成分的演化。

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