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Deep Lithospheric Thickening and Refertilization beneath Continental Arcs: Case Study of the P, T and Compositional Evolution of Peridotite Xenoliths from the Sierra Nevada, California

机译:大陆弧下的深层岩石圈增厚和蚀变作用:来自加利福尼亚内华达山脉的钙橄榄岩异岩的P,T和组成演化的案例研究

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Thickening of arc lithosphere influences the extent of magmatic differentiation and is thereby important for the evolution of juvenile arcs into mature continental crust. Here, we use mantle xenoliths from the late Mesozoic Sierra Nevada continental arc in California (USA) to constrain the pressure, temperature, and compositional evolution of the deep lithosphere beneath a mature arc. These xenoliths consist of spinel peridotites and garnet-bearing spinel peridotites. The former are characterized by coarse-grained protogranular textures having bulk compositions indicative of high-degree melting. The latter are characterized by porphyroclastic textures, garnet coronas around spinels, garnet exsolution lamellae in pyroxenes, and pyroxenes with high-Al cores and low-Al rims. The garnet-bearing spinel peridotites range from depleted to fertile compositions, but the high Cr-numbers [molar Cr/(Cr + Al)] of spinel cores reflect high-degree melting. These observations suggest that the protoliths of the garnet-bearing spinel peridotites were melt-depleted spinel peridotites. Constraints from geothermobarometry and bulk compositions coupled with mantle melting models suggest that the protoliths underwent shallow melt depletion (1–2 GPa, 1300–1400°C), followed by compression, cooling, and final equilibration within the garnet stability field (~3 GPa, 800°C). The deepest equilibrated samples are the most refertilized, suggesting that refertilization occurred during compression. We interpret this P–T–composition path to reflect progressive thickening of the Sierran arc lithosphere perhaps as a result of magmatic inflation or tectonic thickening. We hypothesize that newly formed arc lithospheric mantle thickens enough to pinch out the asthenospheric wedge, juxtaposing Sierran arc lithosphere against the subducting oceanic plate. This could have terminated arc magmatism and initiated cooling of the deep Sierran lithosphere.
机译:弧形岩石圈的增厚影响着岩浆分异的程度,因此对于少年弧向成熟大陆壳的演化至关重要。在这里,我们使用来自加利福尼亚(美国)中生代内华达山脉内陆晚弧的地幔异岩来限制成熟弧下深层岩石圈的压力,温度和成分演化。这些异岩由尖晶石橄榄石和带有石榴石的尖晶石橄榄石组成。前者的特征是粗粒状的原始颗粒质地,具有表明高度熔融的松散成分。后者的特征是有卟啉的质地,尖晶石周围的石榴石电晕,辉石中的石榴石析出薄片以及具有高铝核和低铝轮辋的辉石。带有石榴石的尖晶石橄榄岩的组成从贫乏到富饶,但尖晶石核的高Cr值[摩尔Cr /(Cr + Al)]反映了高度熔化。这些观察结果表明,带有石榴石的尖晶石橄榄石的原石是贫化的尖晶石橄榄石。地热大气法和大块成分以及地幔融化模型的约束表明,原石经历了浅层熔体耗竭(1-2 GPa,1300-1400°C),然后在石榴石稳定性场内压缩,冷却并最终达到平衡(〜3 GPa) ,<800°C)。平衡最深的样品具有最高的溶解度,表明在压缩过程中发生了溶解作用。我们解释这种P–T–组成路径是为了反映Sierran弧岩石圈的逐渐增厚,可能是岩浆膨胀或构造增厚的结果。我们假设新形成的弧形岩石圈地幔增厚到足以挤压软流圈楔形物,将Sierran弧形岩石圈与俯冲的洋洋板并列。这可能已经终止了弧岩浆作用,并开始了对深西拉然岩石圈的冷却。

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  • 来源
    《Journal of Petrology》 |2012年第3期|p.477-511|共35页
  • 作者单位

    1Department of Earth Science, Rice University MS-126, 6100 Main Street, Houston, TX 77005, USA 2Department of Geology and Geophysics, MS 3115, Texas A&

    M University, College Station, TX 77843, USA;

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