Theoretical Analysis and Semi-Analytical Formulation for Efficient Thermal-Hydraulic-Mechanical Reservoir Simulation

Shihao Wang, Yushu Wu, X. Wen
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引用次数: 1

Abstract

The research of multiphysical thermal-hydraulic-mechanical (THM) simulation has achieved significant progress in the past decade. Currently, two general approaches for poromechanical simulation co-exist in the reservoir simulation community, namely the stress approach with stress as the primary variable for the mechanical governing equations and the displacement approach with displacement as the primary variable. In this work, we aim to provide a theoretical foundation and a practical semi-analytical solution for the stress approach based on the Navier-Beltrami-Michell Equations. Moreover, we will clarify the relationship (and equivalence) between the two approaches. We have firstly proven the existence and uniqueness of the stress solution of Navier-Beltrami-Michell equation with given pressure and temperature field. Moreover, we have demonstrated the equivalence of the stress formulation to the displacement formulation. Based on Fourier's expansion, we have developed a general semi-analytical solution for thermal-hydraulic-mechanical process. The semi-analytical solution takes the pressure solution from the hydraulic simulation module (or a commercial reservoir simulator) and directly predicts the stress tensor of the multiphysical system. As such, the solution can be programmed fully coupled with the hydraulic simulation module to predict the stress field with varying pressure and temperature of homogeneous poroelastic rocks under given stress boundary conditions. From the work above, we have laid a theoretical foundation for the stress approach. The derived semi-analytical solution of the stress field shows excellent accuracy. The solution has been used to predict the transient stress field of a dual-porosity system during primary depletion. This paper is arguably the first trial to clarify the relationship between the stress approach and the displacement approach. Moreover, the derived semi-analytical solution provides a convenient yet precise way to obtain the stress field without time-consuming numerical simulation.
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高效热-液-机油藏模拟的理论分析与半解析公式
近十年来,多物理场热-液压-机械仿真的研究取得了重大进展。目前,油藏模拟界存在两种孔隙力学模拟方法,即以应力为主要变量的力学控制方程的应力法和以位移为主要变量的位移法。在这项工作中,我们旨在为基于navier - beltrami - michel方程的应力方法提供理论基础和实用的半解析解。此外,我们将澄清这两种方法之间的关系(和等价性)。首先证明了给定压力和温度场下navier - beltrami - michel方程应力解的存在唯一性。此外,我们还证明了应力公式与位移公式的等价性。基于傅里叶展开,我们提出了热-液-机械过程的一般半解析解。半解析解采用水力模拟模块(或商业油藏模拟器)的压力解,直接预测多物理系统的应力张量。因此,该解可与水力模拟模块完全耦合编程,在给定应力边界条件下预测均质孔隙弹性岩石随压力和温度变化的应力场。通过以上工作,为应力法奠定了理论基础。推导出的应力场半解析解具有较好的精度。该解已用于预测双孔隙度体系初次衰竭时的瞬态应力场。本文可以说是阐明应力法和位移法之间关系的第一次尝试。此外,推导出的半解析解提供了一种方便而精确的方法来获得应力场,而无需耗时的数值模拟。
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