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Double layering of a thermochemical plume in the upper mantle beneath Hawaii

机译:在夏威夷下面的上地幔中双层热化学羽流

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摘要

According to classical plume theory, purely thermal upwellings rise through the mantle, pond in a thin layer beneath the lithosphere, and generate hotspot volcanism. Neglected by this theory, however, are the dynamical effects of compositional heterogeneity carried by mantle plumes even though this heterogeneity has been commonly identified in sources of hotspot magmas. Numerical models predict that a hot, compositionally heterogeneous mantle plume containing a denser eclogite component tends to pool at ∼300–410 km depth before rising to feed a shallower sublithospheric layer. This double-layered structure of a thermochemical plume is more consistent with seismic tomographic images at Hawaii than the classical plume model. The thermochemical structure as well as time dependence of plume material rising from the deeper into the shallower layer can further account for long-term fluctuations in volcanic activity and asymmetry in bathymetry, seismic structure, and magma chemistry across the hotspot track, as are observed.
机译:根据经典羽流理论,纯热上升流穿过地幔上升,在岩石圈下方的薄层中蓄积,并产生热点火山作用。然而,尽管通常在热点岩浆源中已经确认到这种异质性,但被地幔柱携带的成分异质性的动力效应却被这一理论所忽视。数值模型预测,含有浓密榴辉岩成分的热,成分不均一的地幔柱趋向于聚集在约300-410 km深度,然后才上升以供入较浅的岩石圈以下层。这种热化学羽状流的双层结构比经典的羽状流模型更符合夏威夷的地震层析图像。如所观察到的,羽状物质从深层到浅层上升的热化学结构以及时间依赖性可以进一步说明火山活动的长期波动以及测深,地震结构和岩浆化学在整个热点轨道上的不对称性。

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