Transient pressure response of fractured horizontal wells in tight gas reservoirs with arbitrary shapes by the boundary element method

被引:0
作者
Yu-long Zhao
Shou-chang Xie
Xiao-long Peng
Lie-hui Zhang
机构
[1] Southwest Petroleum University,State Key Laboratory of Oil and Gas Reservoir Geology and Exploitation
[2] Development Company of Xinjiang Oilfield,undefined
[3] PetroChina,undefined
[4] University of Regina,undefined
来源
Environmental Earth Sciences | 2016年 / 75卷
关键词
Fractured horizontal well; Pressure response; Arbitrary shaped reservoir; Boundary element method;
D O I
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中图分类号
学科分类号
摘要
Horizontal wells and hydraulic fracturing are the key techniques to develop tight gas reservoirs efficiently, but the related researches on the pressure of such wells in arbitrary shaped reservoirs are rare. On this background, this paper extends the boundary element method (BEM) into application to study a multiple fractured horizontal well (MFHW) in arbitrary shaped tight gas reservoirs. By discretizing the outer boundary as well as the fractures, the boundary integral equation can be derived through coupling the fundamental solution of the Helmholtz equation with the dimensionless diffusivity equation. Thereafter, the coefficient matrix, including the fluxes and pressure on the boundaries, can be assembled, and the bottomhole pressure can be computed simultaneously. In this study, by comparison with some semi-analytical solution cases, the accuracy of the results from the BEM was validated. Also, the pressure response and its derivative type curves for a MFHW in an elliptical drainage area were also analyzed, and the effects of reservoir shape, fracture number together with fracture distribution on type curves were examined, respectively. The results suggest that the reservoir shape has a weak effect on the type curves for a MFHW in a large drainage area. If the reservoir size is not large enough comparing to the size of MFHW, the effects of boundary shape could become more obvious and the pressure wave would propagate to the closer boundary (i.e., the minor axis is small) in a relatively short time, which leads to earlier boundary reflection flow period.
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[1]  
Al-Hussainy R(1966)The flow of real gases through porous media J Pet Technol 18 624-636
[2]  
Ramey HJ(2014)A fractal approach to low velocity non-Darcy flow in a low permeability porous medium Chin Phys B 23 385-389
[3]  
Crawford PB(2013)Pressure transient analysis for a reservoir with a finite-conductivity fault CT & F-Ciencia Tecnología y Futuro 5 5-18
[4]  
Cai JC(2007)Pressure transient analysis of arbitrarily shaped fractured reservoirs Pet Sci 4 66-70
[5]  
Escobar FH(1973)The use of source and Green’s functions in solving unsteady-flow problems in reservoirs SPE J 5 285-295
[6]  
Martinez JA(1989)Application of boundary element method to reservoir engineering problems J Pet Sci Eng 3 229-241
[7]  
Matilde MM(2004)Asymptotic description of vertically fractured wells within the boundary element method J Can Pet Technol 43 31-36
[8]  
Gao HM(2012)A new analytical method for analyzing linear flow in tight/shale gas reservoirs: constant-flowing-pressure boundary condition (SPE-143989) SPE Reservoir Eval Eng 15 370-384
[9]  
He YF(2012)Simplified forecasting of tight, shale–gas production in linear flow J Can Pet Technol 51 476-486
[10]  
Jiang HQ(1991)New solutions for well-test-analysis problems: part 1—analytical considerations SPE Form Eval 42 359-368