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The structure of oceanic core complexes controlled by the depth distribution of magmaemplacement

机译:岩浆侵位深度分布控制的海洋核心复合物结构

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At mid-ocean spreading centres, extension can be accommodated by slip on large, long-lived (1-2 Myr) detachment faults that expose large tracts of lower crustal gabbroic rocks and mantle peridotite. These structures are known as oceanic core complexes. The development of detachment faults is controlled by the rate at which magma is injected into the brittle lithosphere as intrusive dykes. Recent modelling studies suggested that oceanic core complexes form under low magma injection rates, when only 30-50% of total plate separation is accommodated by the injection of magma into the lithosphere. Yet, paradoxically, field observations document oceanic core complexes that have formed under a spectrum of magma injection rates, from amagmatic to fully magmatic conditions. Here we present a numerical model of oceanic core complex formation that explicitly considers magma intrusion not only in the brittle lithospheric layer, as in earlier simulations, but also in the underlying ductile asthenosphere. We find that the rate of magma intrusion into the brittle layer controls fault evolution, whereas the rate of intrusion below the brittle-ductile transition has no influence on fault development, but controls the volume of gabbro exhumed. Our findings suggest that oceanic core complexes can form under high magma intrusion rates if intrusion is accommodated mainly by the ductile asthenosphere, thus reconciling the disparity between prevailing models and field observations.
机译:在大洋中部扩散中心,可以通过大型的,长寿的(1-2 Myr)分离断层的滑动来适应扩展,这些断层暴露出大片下地壳辉长岩和地幔橄榄岩。这些结构被称为海洋核心复合体。脱离断层的发育受岩浆作为侵入性堤坝注入脆性岩石圈的速率控制。最近的建模研究表明,当岩浆注入岩石圈仅能容纳总板块分离的30%至50%时,低岩浆注入速率就会形成海洋岩心复合体。然而,自相矛盾的是,现场观测记录了在岩浆注入速率范围内(从岩浆条件到完全岩浆条件)形成的海洋核心复合体。在这里,我们提供了一个海洋核心复合物形成的数值模型,该模型明确地考虑了不仅在较早的模拟中在脆性岩石圈层中的岩浆侵入,而且在下面的韧性软流圈中也考虑了岩浆侵入。我们发现岩浆侵入脆性层的速度控制着断层的演化,而脆性-韧性过渡带以下的侵入率对断层的发展没有影响,但控制了辉长岩的发掘量。我们的研究结果表明,如果岩浆侵入层主要由韧性软流圈调节,那么在高岩浆侵入速率下就可以形成海洋岩心复合体,从而解决了主流模型与野外观测之间的差异。

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