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Rapid hydrothermal cooling above the axial melt lens at fast-spreading mid-ocean ridge

机译:在快速扩张的中洋脊上,轴向熔融晶状体上方的快速水热冷却

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摘要

Axial melt lenses sandwiched between the lower oceanic crust and the sheeted dike sequences at fast-spreading mid-ocean ridges are assumed to be the major magma source of oceanic crust accretion. According to the widely discussed "gabbro glacier'' model, the formation of the lower oceanic crust requires efficient cooling of the axial melt lens, leading to partial crystallization and crystal-melt mush subsiding down to lower crust. These processes are believed to be controlled by periodical magma replenishment and hydrothermal circulation above the melt lens. Here we quantify the cooling rate above melt lens using chemical zoning of plagioclase from hornfelsic recrystallized sheeted dikes drilled from the East Pacific at the Integrated Ocean Drilling Program Hole 1256D. Weestimate the cooling rate using a forward modelling approach based on CaAl-NaSi interdiffusion in plagioclase. The results show that cooling from the peak thermal overprint at 1000-10506 degrees C to 6006 degrees C are yielded within about 10-30 years as a result of hydrothermal circulation above melt lens during magma starvation. The estimated rapid hydrothermal cooling explains how the effective heat extraction from melt lens is achieved at fast-spreading mid-ocean ridges.
机译:轴向熔融透镜夹在快速扩散的中洋洋脊下部大洋地壳与成片的堤防序列之间,被认为是海洋地壳增生的主要岩浆源。根据广泛讨论的“ gabbro冰川”模型,下部大洋地壳的形成需要轴向熔融透镜的有效冷却,从而导致部分结晶和晶体熔体沉入下部地壳,这些过程被认为是可以控制的。通过周期性的岩浆补充和熔融透镜上方的热液循环,这里我们使用从东太平洋综合海洋钻探计划孔1256D钻出的角铁质重结晶薄片堤防中斜长石的化学分区来量化熔融透镜上方的冷却速率。 CaAl-NaSi在斜长石中互扩散的正演模拟方法,结果表明,由于熔融透镜上方的水热循环,在约10-30年内产生了从峰值热叠印(从1000-10506摄氏度到6006摄氏度)的冷却。在岩浆饥饿期间,估计的快速水热冷却解释了如何有效地提取热量在快速扩散的中海洋脊上实现融化透镜成像。

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