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Multiscale and multiresolution modeling of shales and their flow and morphological properties

机译:页岩的多尺度和多分辨率建模及其流动和形态特征

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摘要

The need for more accessible energy resources makes shale formations increasingly important. Characterization of such low-permeability formations is complicated, due to the presence of multiscale features, and defies conventional methods. High-quality 3D imaging may be an ultimate solution for revealing the complexities of such porous media, but acquiring them is costly and time consuming. High-quality 2D images, on the other hand, are widely available. A novel three-step, multiscale, multiresolution reconstruction method is presented that directly uses 2D images in order to develop 3D models of shales. It uses a high-resolution 2D image representing the small-scale features to reproduce the nanopores and their network, a large scale, low-resolution 2D image to create the larger-scale characteristics, and generates stochastic realizations of the porous formation. The method is used to develop a model for a shale system for which the full 3D image is available and its properties can be computed. The predictions of the reconstructed models are in excellent agreement with the data. The method is, however, quite general and can be used for reconstructing models of other important heterogeneous materials and media. Two biological examples and from materials science are also reconstructed to demonstrate the generality of the method.
机译:对更多可利用能源的需求使得页岩地层变得越来越重要。由于存在多尺度特征,这种低渗透性地层的表征很复杂,并且不符合常规方法。高质量3D成像可能是揭示此类多孔介质复杂性的最终解决方案,但获取它们既昂贵又费时。另一方面,高质量2D图像可广泛获得。提出了一种新颖的三步,多尺度,多分辨率重建方法,该方法直接使用2D图像来开发页岩的3D模型。它使用代表小尺度特征的高分辨率2D图像重现纳米孔及其网络,使用大尺度,低分辨率2D图像创建较大尺度的特征,并生成多孔构造的随机实现。该方法用于为页岩系统开发模型,该模型可获得完整的3D图像,并且可以计算其属性。重建模型的预测与数据非常吻合。但是,该方法非常通用,可用于重建其他重要的异质材料和介质的模型。还重建了两个生物学实例以及来自材料科学的实例,以证明该方法的通用性。

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