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Microfracturing during primary migration in shales

机译:在Shales的主要迁移期间微折术

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In several geological environments, chemical reactions are coupled to rock deformation and the associated stresses induced locally interact with the far field loading. This is the case in immature shales that undergo burial and diagenesis, where the organic matter evolves with temperature into hydrocarbons which induces local volume expansion. At large scale, this mechanism is responsible for the transport of hydrocarbons from source to reservoir rocks, a process referred to as primary migration. However, how the interactions between local fluid production, microfracturing, and transport are coupled remain to be understood. Here, we analyze this coupling phenomenon by developing a discrete element model where the generation of local overpressures occurring in kerogen patches is simulated, while the surrounding rock is subjected to external loading. It is shown that, due to local fluid overpressure; microfracturing occurs and brings the fluids to migrate through the medium. The numerical results are confirmed by laboratory experiments where the network of microfractures induced in an immature Green River shale sample heated under small differential stress was imaged in three dimensions using X-ray microtomography. Moreover, the numerical simulations identify that the state of differential stress and the initial kerogen distribution constitute two key parameters that control the formation of the three-dimensional percolating microfracture network and could thus explain primary migration in shale rocks. (C) 2016 Elsevier B.V. All rights reserved.
机译:在若干地质环境中,化学反应耦合到岩石变形,并且诱导与远场负荷局部相互作用的相关应力。这种情况是经历埋葬和成岩作用的未成熟节子,其中有机物质随温度发展成碳氢化合物,诱导局部体积膨胀。在大规模中,这种机制负责从源到储层岩石的烃,作为主要迁移的过程。然而,局部流体生产,微粘接和传输之间的相互作用是如何应理解的。这里,我们通过开发模拟在后凸贴片中发生的局部超压的离散元素模型来分析该偶联现象,而周围岩石受到外部负荷。结果表明,由于局部流体过度压力;微折术发生并使流体通过介质迁移。通过实验室实验证实了数值结果,其中使用X射线微微映图在小差分应力下加热的未成熟的绿河页岩样品中诱导的微裂缝网络中的三维成像。此外,数值模拟标识差分应力和初始后凸分布的状态构成了控制三维渗透微折衷网络的形成的两个关键参数,从而可以解释页岩岩石的主要迁移。 (c)2016年Elsevier B.v.保留所有权利。

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