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首页> 外文期刊>Transport in Porous Media >Development of an Analytical Time-Dependent Matrix/Fracture Shape Factor for Coimtercurrent Imbibition in Simulation of Fractured Reservoirs
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Development of an Analytical Time-Dependent Matrix/Fracture Shape Factor for Coimtercurrent Imbibition in Simulation of Fractured Reservoirs

机译:裂缝性储层模拟的并流吸运分析时变矩阵/裂缝形状因子的开发

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摘要

In dual porosity modeling of naturally fractured reservoirs, fluids exchange between the high porous matrix blocks and high permeable fracture systems is governed by transfer function. Therefore, transfer function, and specially shape factor as the main part of it, control fluids flow behavior, which certainly have significant effects on development and management plan of naturally fractured reservoirs. Also several formulations have been proposed for shape factor by a number of researchers, nearly all of them derived for expansion mechanism. But, shape factor is a phase sensitive parameter that can greatly affect results of simulation. Moreover, several shortcomings are inherent in the derived expressions of shape factor for imbibition process. The main aim of this work is to develop a new time-dependent matrix-fracture shape factor specific to countercurrent imbibition. In this study, fluid saturation distribution within a matrix block is analytically derived by solving capillary-diffusion equation under different imposed boundary conditions for the process where countercurrent imbibition is the dominant oil drive mechanism. The validity of the solutions is checked against literature experimental data (Bourbiaux and Kalaydjian, SPERE 5, 361-368, SPE 18283,1990) and also by performing single porosity fine grid simulations. Then, the concept of analogy between the transport phenomena is employed to propose a new expression for matrix-fracture transfer function that is used to derive transient shape factor. It is illustrated in this article that time variation of imbibtion rate and shape factor can be used to diagnose different states of imbibition process. Although, the displacement process and employed approaches are completely different in this and other studies (Chang, Technical report, 1993; Kazemi and Gilman (eds.) Flow and contaminant transport in fractured rock. Academic Press, San Diego, 1993; Zimmerman et al., Water Resour Res, 29,2127-2137,1993; Lim and Aziz, J Pet Sci Eng 13, 169-178, 1995), but we arrived at the consistent values of shape factor under limiting condition of pseudo steady state flow. This means that after establishment of pseudo steady state, shape factor is only controlled by matrix geometry regardless of the displacement process, i.e., expansion or imbibition mechanism, However, shape factor is completely phase sensitive and process dependent during unsteady and late-transient states. Finally, boundary condition dependency of shape factor is investigated.
机译:在天然裂缝储层的双重孔隙度建模中,高孔隙度基质区块和高渗透性裂缝系统之间的流体交换受传递函数控制。因此,传递函数,特别是形状因数作为其主要部分,控制着流体的流动行为,这无疑对天然裂缝性油藏的开发和管理计划有重要影响。此外,许多研究人员还提出了几种形状因数的公式,几乎所有这些公式都是出于膨胀机理。但是,形状因数是一个相位敏感参数,会极大地影响仿真结果。此外,在吸取过程的形状因子的推导表达式中固有的一些缺点。这项工作的主要目的是开发一种特定于逆流吸收的新的随时间变化的基质断裂形状因子。在这项研究中,通过求解在不同强加边界条件下的毛细管扩散方程,以逆流吸收为主要驱油机理的过程,可以解析得出基质块内的流体饱和度分布。对照文献实验数据(Bourbiaux和Kalaydjian,SPERE 5,361-368,SPE 18283,1990)并通过执行单孔隙度细网格模拟,检验解决方案的有效性。然后,采用输运现象之间的类比概念,为矩阵-断裂传递函数提出了一种新的表达式,该表达式用于导出瞬态形状因子。本文表明,吸水率和形状因子的时间变化可用于诊断吸水过程的不同状态。尽管在这项研究和其他研究中,位移过程和采用的方法是完全不同的(Chang,技术报告,1993; Kazemi和Gilman(编辑)。裂隙岩石中的流动和污染物运移,圣地亚哥,Academic Press,1993; Zimmerman等) ,Water Resour Res,29,2127-2137,1993; Lim和Aziz,J Pet Sci Eng 13,169-178,1995),但是在拟稳态流的限制条件下,我们得到了形状因数的一致值。这意味着在建立伪稳态之后,形状因子仅受矩阵几何形状的控制,而与位移过程(即膨胀或吸收机制)无关,但是,形状因子完全是相位敏感的,并且在非稳态和瞬态状态下与过程相关。最后,研究了形状因子的边界条件依赖性。

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