论文标题

基于分层微结构均质化的页岩的各向异性粘膜塑性模型

An anisotropic viscoplasticity model for shale based on layered microstructure homogenization

论文作者

Choo, Jinhyun, Semnani, Shabnam J., White, Joshua A.

论文摘要

在许多地下应用中经常观察到页岩的粘塑性变形。许多研究表明,这种粘塑性行为是各向异性的 - 特别是横向的各向同性---与微观层面的分层复合结构密切相关。在这项工作中,我们开发了一个针对页岩的两尺度构成模型,其中各向异性粘膜塑性行为自然来自双层微结构的半分析均匀化。微结构被建模为软层的复合物,代表由粘土和有机物和硬层形成的延性基质,与由硬矿物质组成的脆性基质相对应。这种分层的微观结构也使宏观行为各向异性,即使单个层是用各向同性本构定律建模的。使用粘土与有机含量之间的共同相关性以及蠕变的幅度,我们将粘膜化修饰的CAM-Clay可塑性模型应用于软层,同时将硬层视为线性弹性材料,以最大程度地减少校准参数的数量。然后,我们在标准材料更新子例程中描述了所提出的模型的实现。该模型已通过实验室蠕变数据验证了三个气体页岩地层的样品。我们还通过在带有不同床上用平面方向的页岩形成中模拟了时间相关的钻孔闭合,从而证明了所提出的模型的计算行为。

Viscoplastic deformation of shale is frequently observed in many subsurface applications. Many studies have suggested that this viscoplastic behavior is anisotropic---specifically, transversely isotropic---and closely linked to the layered composite structure at the microscale. In this work, we develop a two-scale constitutive model for shale in which anisotropic viscoplastic behavior naturally emerges from semi-analytical homogenization of a bi-layer microstructure. The microstructure is modeled as a composite of soft layers, representing a ductile matrix formed by clay and organics, and hard layers, corresponding to a brittle matrix composed of stiff minerals. This layered microstructure renders the macroscopic behavior anisotropic, even when the individual layers are modeled with isotropic constitutive laws. Using a common correlation between clay and organic content and magnitude of creep, we apply a viscoplastic Modified Cam-Clay plasticity model to the soft layers, while treating the hard layers as a linear elastic material to minimize the number of calibration parameters. We then describe the implementation of the proposed model in a standard material update subroutine. The model is validated with laboratory creep data on samples from three gas shale formations. We also demonstrate the computational behavior of the proposed model through simulation of time-dependent borehole closure in a shale formation with different bedding plane directions.

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