Arid
DOI10.1016/j.jngse.2017.01.005
Composite linear flow model for multi-fractured horizontal wells in heterogeneous shale reservoir
Zeng, Jie1,2; Wang, Xiangzeng3; Guo, Jianchun2; Zeng, Fanhua1
通讯作者Guo, Jianchun ; Zeng, Fanhua
来源期刊JOURNAL OF NATURAL GAS SCIENCE AND ENGINEERING
ISSN1875-5100
EISSN2212-3865
出版年2017
卷号38页码:527-548
英文摘要

Multi-stage fracturing is currently key technique to develop shale reservoirs. Different analytical models have been proposed to fast investigate post-fracturing pressure-and rate-transient behaviors, and hence, estimate key parameters that affect well performance. However, previous analytical models generally neglect reservoir heterogeneity or typical seepage characters of shale, such as adsorption/desorption, gas slippage, and diffusion effects. This paper presents an analytical model for pressure-and rate-transient analysis of multi-stage fractured shale reservoir, considering heterogeneity, typical seepage characters and, specifically, fluids flow from upper/lower reservoir when vertical fractures partially penetrate the formation.


This model is similar to five-region-flow model, but subdivides the reservoir into seven parts, namely, two upper/lower-reservoir regions, two outer-reservoir regions, two inner-reservoir regions, arid hydraulic fracture region, which are all transient dual porosity media except the hydraulic fracture. As reservoir heterogeneity along the horizontal wellbore is included, the fracture distribution can be various. Fracture interference is simulated by locating a no-flow boundary between two adjacent fractures. The actual locations of these no-flow boundaries of a specific heterogeneous reservoir are determined based on the pressure value which varies with time and space. Thus, the two sides of this boundary has minimum pressure difference, satisfying the no-flow assumption. Adsorption/desorption, gas slippage and diffusion effects are included for rigorous modeling of flow in shale.


This model is validated by comparing with commercial well testing software, obtaining a good match in most flow regimes. Log-log dimensionless pressure, pressure derivative and production type curves are generated to conduct sensitivity analysis. Results suggest that larger desorption coefficient causes smaller pressure and its derivative value as a larger proportion of gas is desorbed in formation and contributes to productivity. Solutions from Azari’s (1990, 1991) work, where the effect of fracture height is merely treated as a skin factor are investigated as well. Results show that our model is more accurate in partially penetrating cases, and errors of Azari’s method become particularly nbticeable in early-middle time response. The influence of other parameters, such as matrix permeability, matrix block size, secondary fracture permeability and hydraulic fracture conductivity, are also discussed. Optimal fracture pattern is selected based on cumulative production. Besides, field data are analyzed and compared graphically with modeling solutions, and reliable results are obtained.


As numerical and semianalytical methods require extensive computing processing, this model is a practical alternative to predict well-testing results and select optimal well pattern of shale reservoirs. Reservoir heterogeneities in vertical direction can be further added to our model by vertically subdividing the reservoir into more parts. (C) 2017 Elsevier B.V. All rights reserved.


英文关键词Shale heterogeneous reservoir Multifractured horizontal well Transient rate and pressure behavior Partially penetrating fracture
类型Article
语种英语
国家Canada ; Peoples R China
收录类别SCI-E
WOS记录号WOS:000394062000041
WOS关键词PRESSURE TRANSIENT ANALYSIS ; GAS-RESERVOIRS ; SEMIANALYTICAL MODEL ; MATRIX ; PERMEABILITY ; PERFORMANCE ; DIFFUSION ; MECHANISMS ; NANOPORES ; NETWORKS
WOS类目Energy & Fuels ; Engineering, Chemical
WOS研究方向Energy & Fuels ; Engineering
资源类型期刊论文
条目标识符http://119.78.100.177/qdio/handle/2XILL650/200690
作者单位1.Univ Regina, Petr Syst Engn, Regina, SK S4S 0A2, Canada;
2.Southwest Petr Univ, State Key Lab Oil & Gas Reservoir Geol & Exploita, 8 Xindu Ave, Chengdu 610500, Peoples R China;
3.Yanchang Petr Grp, Xian 710614, Shaanxi, Peoples R China
推荐引用方式
GB/T 7714
Zeng, Jie,Wang, Xiangzeng,Guo, Jianchun,et al. Composite linear flow model for multi-fractured horizontal wells in heterogeneous shale reservoir[J],2017,38:527-548.
APA Zeng, Jie,Wang, Xiangzeng,Guo, Jianchun,&Zeng, Fanhua.(2017).Composite linear flow model for multi-fractured horizontal wells in heterogeneous shale reservoir.JOURNAL OF NATURAL GAS SCIENCE AND ENGINEERING,38,527-548.
MLA Zeng, Jie,et al."Composite linear flow model for multi-fractured horizontal wells in heterogeneous shale reservoir".JOURNAL OF NATURAL GAS SCIENCE AND ENGINEERING 38(2017):527-548.
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