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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 >Low degree melting under the Southwest Indian Ridge: the roles of mantle temperature, conductive cooling and wet melting
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Low degree melting under the Southwest Indian Ridge: the roles of mantle temperature, conductive cooling and wet melting

机译:西南印第安海岭下的低度融化:地幔温度,传导性冷却和湿融化的作用

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摘要

Both low mantle temperatures and conductive cooling have been suggested as the cause of the atypically thin oceanin crust and the incompatible element enrichment characteristic of very slow-spreading ridges. Here we present a model of melting under the Southwest Indian Ridge (SWIR), which takes into account mantle temperature, conductive cooling, source composition and wet melting. The model parameters are constrained by oceanin crustal thickness, lava chemistry and isotopic composition and water content. The results suggest that conductive cooling to a depth of around 20 km, expected in areas with a full spreading rate of 15 mm/yr, is necessary to generate the SWIR lava chemistry, but not that from faster spreading rate ridges at 23°N on the Mid-Atlantic Ridge or 45°N on the Juan de Fuca Ridge. The mantle potential temperatures of ~ 1280 ℃, estimated for the SWIR lavas, are close to the global average of the upper mantle. Mantle water contents of 150-300 ppm can explain the observed melt water contents and allow sufficient melting at depth to explain the observed heavy rare earth element depletions in the melts.
机译:地幔温度低和传导冷却都被认为是造成典型的大洋地壳薄弱的原因,也是极缓慢扩展的山脊元素富集特征不兼容的原因。在这里,我们介绍了西南印第安海岭(SWIR)下的融化模型,该模型考虑了地幔温度,传导冷却,源组成和湿融化。模型参数受海洋地壳厚度,熔岩化学以及同位素组成和水含量的限制。结果表明,要产生SWIR熔岩化学物质,必须进行传导冷却至20 km左右的深度,这在全扩散速率为15 mm / yr的区域中是必需的,但不是从23°N的较快扩散速率脊产生的大西洋中脊或胡安德富卡脊上的45°N。 SWIR熔岩估计的地幔潜在温度为1280℃,接近上地幔的全球平均水平。地幔水含量为150-300 ppm可以解释观察到的熔体水含量,并允许在深度处进行充分熔融,以解释观察到的熔体中重稀土元素的消耗。

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