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Transient Pressure Behavior of Complex Fracture Networks in Unconventional Reservoirs
Author(s) -
Gou Feifei,
Chuanxi Liu,
Zongxiao Ren,
Zhan Qu,
Sukai Wang,
Xuejie Qin,
Wenchao Fang,
Ping Wang,
Wang Xinzhu
Publication year - 2021
Publication title -
geofluids
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.44
H-Index - 56
eISSN - 1468-8123
pISSN - 1468-8115
DOI - 10.1155/2021/6273822
Subject(s) - fracture (geology) , complex fracture , hydraulic fracturing , geology , flow (mathematics) , geotechnical engineering , transient (computer programming) , petroleum engineering , mechanics , tortuosity , complex geometry , computer science , geometry , mathematics , physics , porosity , operating system
Unconventional resources have been successfully exploited with technological advancements in horizontal-drilling and multistage hydraulic-fracturing, especially in North America. Due to preexisting natural fractures and the presence of stress isotropy, several complex fracture networks can be generated during fracturing operations in unconventional reservoirs. Using the DVS method, a semianalytical model was created to analyze the transient pressure behavior of a complex fracture network in which hydraulic and natural fractures interconnect with inclined angles. In this model, the complex fracture network can be divided into a proper number of segments. With this approach, we are able to focus on a detailed description of the network properties, such as the complex geometry and varying conductivity of the fracture. The accuracy of the new model was demonstrated by ECLIPSE. Using this method, we defined six flow patterns: linear flow, fracture interference flow, transitional flow, biradial flow, pseudoradial flow, and boundary response flow. A sensitivity analysis was conducted to analyze each of these flow regimes. This work provides a useful tool for reservoir engineers for fracture designing as well as estimating the performance of a complex fracture network.

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