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具有原子力显微镜表征力学性能的可变形微凝胶颗粒通过微孔的传输机制

Transport mechanism of deformable micro-gel particle through micropores with mechanical properties characterized by AFM.

作者信息

Lei Wenhai, Xie Chiyu, Wu Tianjiang, Wu Xingcai, Wang Moran

机构信息

Department of Engineering Mechanics, Tsinghua University, Beijing, 100084, China.

Department of Petroleum and Geosystems Engineering, The University of Texas at Austin, Austin, Texas, 78712, USA.

出版信息

Sci Rep. 2019 Feb 5;9(1):1453. doi: 10.1038/s41598-018-37270-7.

Abstract

Deformable micro-gel particles (DMP) have been used to enhanced oil recovery (EOR) in reservoirs with unfavourable conditions. Direct pore-scale understanding of the DMP transport mechanism is important for further improvements of its EOR performance. To consider the interaction between soft particle and fluid in complex pore-throat geometries, we perform an Immersed Boundary-Lattice Boltzmann (IB-LB) simulation of DMP passing through a throat. A spring-network model is used to capture the deformation of DMP. In order to obtain appropriate simulation parameters that represent the real mechanical properties of DMP, we propose a procedure via fitting the DMP elastic modulus data measured by the nano-indentation experiments using Atomic Force Microscope (AFM). The pore-scale modelling obtains the critical pressure of the DMP for different particle-throat diameter ratios and elastic modulus. It is found that two-clog particle transport mode is observed in a contracted throat, the relationship between the critical pressure and the elastic modulus/particle-throat diameter ratio follows a power law. The particle-throat diameter ratio shows a greater impact on the critical pressure difference than the elastic modulus of particles.

摘要

可变形微凝胶颗粒(DMP)已被用于在条件不利的油藏中提高采收率(EOR)。直接从孔隙尺度理解DMP的运移机制对于进一步提高其EOR性能至关重要。为了考虑复杂孔喉几何形状中软颗粒与流体之间的相互作用,我们对DMP通过喉道进行了浸入边界-格子玻尔兹曼(IB-LB)模拟。采用弹簧网络模型来捕捉DMP的变形。为了获得代表DMP真实力学性能的合适模拟参数,我们提出了一种通过拟合使用原子力显微镜(AFM)的纳米压痕实验测量的DMP弹性模量数据的方法。孔隙尺度建模得到了不同颗粒-喉道直径比和弹性模量下DMP的临界压力。发现在收缩喉道中观察到双堵塞颗粒运移模式,临界压力与弹性模量/颗粒-喉道直径比之间的关系遵循幂律。颗粒-喉道直径比对临界压差的影响比颗粒的弹性模量更大。

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