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首页> 外文期刊>Earth and Planetary Science Letters: A Letter Journal Devoted to the Development in Time of the Earth and Planetary System >The role of seamounts in the transport of heat and fluids: Relations among seamount size, circulation patterns, and crustal heat flow
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The role of seamounts in the transport of heat and fluids: Relations among seamount size, circulation patterns, and crustal heat flow

机译:海山在热量和流体的传输中的作用:海山大小,环流模式和地壳热流之间的关系

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摘要

To evaluate the role of seamounts in the transport of heat and fluids, we performed numerical simulations of hydrothermal circulation within and around seamounts that protrude through low-permeability sedimentary layers. A cylindrical flat-top seamount model enables us to take into account crustal heat flow, and the radius and height (i.e., the radius/height ratio) of the seamount. We found that the flow patterns depend primarily on the aspect ratio of the seamount, and secondarily on crustal heat flow. A large seamount, with a radius of several tens of kilometers, cools itself by convection cells that form within the seamount, and this behavior is independent of crustal heat flow. In contrast, a small seamount, with a radius of several hundreds of meters, works as a fluid passageway, either as a fluid exit by discharging hydrothermal fluids at low crustal heat flows, or as a fluid entrance by recharging seawater at high crustal heat flows. The role of a medium-sized seamount varies according to crustal heat flow: it is cooled by a convection cell at low heat flows and works as a fluid entrance at high heat flows. We also found that an increase in crustal heat flow has the same effect on the fluid flow pattern as does an increase in seamount permeability or sediment thickness.
机译:为了评估海山在热和流体的传输中的作用,我们对通过低渗透性沉积层突伸的海山内外的热液循环进行了数值模拟。圆柱形平顶海山模型使我们能够考虑地壳热流以及海山的半径和高度(即半径/高度比)。我们发现,流型主要取决于海山的纵横比,其次取决于地壳热流。半径为几十公里的大海山通过海山内形成的对流单元对自身进行冷却,这种行为与地壳热流无关。相反,半径为几百米的小海山作为流体通道,要么作为地壳热量低时排出热液的流体出口,要么作为通过地壳热量高时补充海水的流体入口。 。中型海山的作用因地壳热流而异:在低热流下由对流单元冷却,在高热流下作为流体入口。我们还发现,地壳热流的增加对流体流动模式的影响与海山渗透率或沉积物厚度增加的影响相同。

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