Quantitative investigation into the relationship between the fracture geometry and the well production during near-wellbore temporary plugging and diverting fracturing
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作者:
Zhang, Li
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China Univ Petr, Karamay Campus Petr Inst, Karamay 834000, Peoples R ChinaChina Univ Petr, Karamay Campus Petr Inst, Karamay 834000, Peoples R China
Zhang, Li
[1
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Yuan, Lishan
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机构:
PetroChina Res Inst Petr Explorat & Dev, Beijing, Peoples R ChinaChina Univ Petr, Karamay Campus Petr Inst, Karamay 834000, Peoples R China
Yuan, Lishan
[2
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Wang, Bo
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China Univ Petr, Karamay Campus Petr Inst, Karamay 834000, Peoples R ChinaChina Univ Petr, Karamay Campus Petr Inst, Karamay 834000, Peoples R China
Wang, Bo
[1
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Zhou, Hang
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China Univ Petr, State Key Lab Petr Resources & Engn, Beijing 102249, Peoples R ChinaChina Univ Petr, Karamay Campus Petr Inst, Karamay 834000, Peoples R China
Zhou, Hang
[3
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Zhou, Fujian
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China Univ Petr, State Key Lab Petr Resources & Engn, Beijing 102249, Peoples R ChinaChina Univ Petr, Karamay Campus Petr Inst, Karamay 834000, Peoples R China
Zhou, Fujian
[3
]
机构:
[1] China Univ Petr, Karamay Campus Petr Inst, Karamay 834000, Peoples R China
[2] PetroChina Res Inst Petr Explorat & Dev, Beijing, Peoples R China
[3] China Univ Petr, State Key Lab Petr Resources & Engn, Beijing 102249, Peoples R China
During near-wellbore temporary plugging and diverting fracturing (NWTDF), the old fractures can be plugged, and the new fractures can be generated and propagated along the direction perpendicular to the old fractures. The fracture geometry after NWTDF determines the stimulated volume and the well productivity. Studying the quantitative relationship between fracture geometry and well production during NWTDF is of great significance for NWTDF optimization. Based on the large-scale true tri-axial fracturing equipment, this work carried out the fracture propagation experiments of NWTDF. The experiment results confirmed the feasibility of forming diversion fractures by plugging the old fractures. The extended finite element method obtained the overall fracture geometry under various conditions. Moreover, based on the propagation pattern of fracture geometries, a reservoir seepage model was established and applied to predict oil well production. The results show that: (1) The fracture diversion radius (FDR) significantly affects well production. When the diversion radius increases from 20m to 110m, the well production increases by 17.2%. (2) When the FDR increases from 20m to 50m, the area of the pressure sweep region increases by about 7.5%; when the FDR increases to 80 and 110m, the degree of the area and the productivity uplift is not apparent. There is an optimal value of the FDR. (3) Well productivity significantly increases with diversion frequency, while when it reaches 9, the degree of the well productivity uplift is small. The diversion frequency should be optimized to obtain a desirable stimulated volume. The research results provide a theoretical basis for the optimization design of NWTDF.