Numerical Simulation of Fluid Flow through Fractal-Based Discrete Fractured Network
Abstract: In recent years, multi-stage hydraulic fracturing technologies have greatly facilitated the development of unconventional oil and gas resources. However, a quantitative description of the “complexity” of the fracture network created by the hydraulic fracturing is confronted with many unsol...
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doaj-3eb011e6d2a14bdd8548a045690e40ff2020-11-24T22:01:59ZengMDPI AGEnergies1996-10732018-01-0111228610.3390/en11020286en11020286Numerical Simulation of Fluid Flow through Fractal-Based Discrete Fractured NetworkWendong Wang0Yuliang Su1Bin Yuan2Kai Wang3Xiaopeng Cao4School of Petroleum Engineering, China University of Petroleum (East China), Qingdao 266580, ChinaSchool of Petroleum Engineering, China University of Petroleum (East China), Qingdao 266580, ChinaDepartment of Geoscience, University of Calgary, Calgary, AB T2N1N4, CanadaMewbourne School of Petroleum and Geological Engineering, University of Oklahoma, Norman, OK 73019, USAShengli Oil Field Exploration and Development Research Institute, Dongying 257000, ChinaAbstract: In recent years, multi-stage hydraulic fracturing technologies have greatly facilitated the development of unconventional oil and gas resources. However, a quantitative description of the “complexity” of the fracture network created by the hydraulic fracturing is confronted with many unsolved challenges. Given the multiple scales and heterogeneity of the fracture system, this study proposes a “bifurcated fractal” model to quantitatively describe the distribution of induced hydraulic fracture networks. The construction theory is employed to generate hierarchical fracture patterns as a scaled numerical model. With the implementation of discrete fractal-fracture network modeling (DFFN), fluid flow characteristics in bifurcated fractal fracture networks are characterized. The effects of bifurcated fracture length, bifurcated tendency, and number of bifurcation stages are examined. A field example of the fractured horizontal well is introduced to calibrate the accuracy of the flow model. The proposed model can provide a more realistic representation of complex fracture networks around a fractured horizontal well, and offer the way to quantify the “complexity” of the fracture network in shale reservoirs. The simulation results indicate that the geometry of the bifurcated fractal fracture network model has a significant impact on production performance in the tight reservoir, and enhancing connectivity of each bifurcate fracture is the key to improve the stimulation performance. In practice, this work provides a novel and efficient workflow for complex fracture characterization and production prediction in naturally-fractured reservoirs of multi-stage fractured horizontal wells.http://www.mdpi.com/1996-1073/11/2/286numerical simulationfractal theorydiscrete fractal-fracture networkfractured horizontal well |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Wendong Wang Yuliang Su Bin Yuan Kai Wang Xiaopeng Cao |
spellingShingle |
Wendong Wang Yuliang Su Bin Yuan Kai Wang Xiaopeng Cao Numerical Simulation of Fluid Flow through Fractal-Based Discrete Fractured Network Energies numerical simulation fractal theory discrete fractal-fracture network fractured horizontal well |
author_facet |
Wendong Wang Yuliang Su Bin Yuan Kai Wang Xiaopeng Cao |
author_sort |
Wendong Wang |
title |
Numerical Simulation of Fluid Flow through Fractal-Based Discrete Fractured Network |
title_short |
Numerical Simulation of Fluid Flow through Fractal-Based Discrete Fractured Network |
title_full |
Numerical Simulation of Fluid Flow through Fractal-Based Discrete Fractured Network |
title_fullStr |
Numerical Simulation of Fluid Flow through Fractal-Based Discrete Fractured Network |
title_full_unstemmed |
Numerical Simulation of Fluid Flow through Fractal-Based Discrete Fractured Network |
title_sort |
numerical simulation of fluid flow through fractal-based discrete fractured network |
publisher |
MDPI AG |
series |
Energies |
issn |
1996-1073 |
publishDate |
2018-01-01 |
description |
Abstract: In recent years, multi-stage hydraulic fracturing technologies have greatly facilitated the development of unconventional oil and gas resources. However, a quantitative description of the “complexity” of the fracture network created by the hydraulic fracturing is confronted with many unsolved challenges. Given the multiple scales and heterogeneity of the fracture system, this study proposes a “bifurcated fractal” model to quantitatively describe the distribution of induced hydraulic fracture networks. The construction theory is employed to generate hierarchical fracture patterns as a scaled numerical model. With the implementation of discrete fractal-fracture network modeling (DFFN), fluid flow characteristics in bifurcated fractal fracture networks are characterized. The effects of bifurcated fracture length, bifurcated tendency, and number of bifurcation stages are examined. A field example of the fractured horizontal well is introduced to calibrate the accuracy of the flow model. The proposed model can provide a more realistic representation of complex fracture networks around a fractured horizontal well, and offer the way to quantify the “complexity” of the fracture network in shale reservoirs. The simulation results indicate that the geometry of the bifurcated fractal fracture network model has a significant impact on production performance in the tight reservoir, and enhancing connectivity of each bifurcate fracture is the key to improve the stimulation performance. In practice, this work provides a novel and efficient workflow for complex fracture characterization and production prediction in naturally-fractured reservoirs of multi-stage fractured horizontal wells. |
topic |
numerical simulation fractal theory discrete fractal-fracture network fractured horizontal well |
url |
http://www.mdpi.com/1996-1073/11/2/286 |
work_keys_str_mv |
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