Insight into the Effect of Natural Fracture Density in a Shale Reservoir on Hydraulic Fracture Propagation: Physical Model Testing
Here, laboratory tests were conducted to examine the effects of natural fracture density (NFD) on the propagation of hydraulic fracture (HF), HF and natural fracture (NF) interaction, and the formation of the stimulated reservoir volume (SRV). Laboratory methods were proposed to prepare samples with...
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MDPI AG
2023-01-01
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Online Access: | https://www.mdpi.com/1996-1073/16/2/612 |
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author | Jihuan Wu Xuguang Li Yu Wang |
author_facet | Jihuan Wu Xuguang Li Yu Wang |
author_sort | Jihuan Wu |
collection | DOAJ |
description | Here, laboratory tests were conducted to examine the effects of natural fracture density (NFD) on the propagation of hydraulic fracture (HF), HF and natural fracture (NF) interaction, and the formation of the stimulated reservoir volume (SRV). Laboratory methods were proposed to prepare samples with dense, medium and spare discrete orthogonal fracture networks. After conducting a true triaxial hydraulic fracturing experiment on the synthetic blocks, the experimental results were analyzed by qualitative failure morphology descriptions, and the quantitative analysis used two proposed new indices. On the pump pressure profiles, it reflected the non-linear interactions between HFs and NFs well. For rock blocks with a dense DFN density, pump pressure curves present fluctuation shape and the degree of interaction between HF and NF is strong; however, for model blocks with a sparse DFN density, the pump pressure curves present a sudden drop shape. In addition, different propagation behaviors of NFs—offset, divert, branch, and cross NF—can be observed from the fractured model blocks. By using a proposed index of “<i>P-SRV</i>”, the relationship between NFD and the fracturing effectiveness was further confirmed. Furthermore, the most striking finding is that mixed mode I–II and I–III fracture types can be formed in the naturally fractured model blocks. The experimental results are beneficial for grasping the influential mechanism of NFD on the propagation of HF and for developing more accurate and full 3D-coupled simulation models for unconventional oil and gas development. |
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institution | Directory Open Access Journal |
issn | 1996-1073 |
language | English |
last_indexed | 2024-03-09T12:55:17Z |
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spelling | doaj.art-cd090907d0584487abe49bd1564327f02023-11-30T22:01:33ZengMDPI AGEnergies1996-10732023-01-0116261210.3390/en16020612Insight into the Effect of Natural Fracture Density in a Shale Reservoir on Hydraulic Fracture Propagation: Physical Model TestingJihuan Wu0Xuguang Li1Yu Wang2Shenyang Center of Geological Survey, China Geological Survey, Shenyang 110034, ChinaShenyang Center of Geological Survey, China Geological Survey, Shenyang 110034, ChinaBeijing Key Laboratory of Urban Underground Space Engineering, Department of Civil Engineering, School of Civil and Resource Engineering, University of Science and Technology Beijing, Beijing 100083, ChinaHere, laboratory tests were conducted to examine the effects of natural fracture density (NFD) on the propagation of hydraulic fracture (HF), HF and natural fracture (NF) interaction, and the formation of the stimulated reservoir volume (SRV). Laboratory methods were proposed to prepare samples with dense, medium and spare discrete orthogonal fracture networks. After conducting a true triaxial hydraulic fracturing experiment on the synthetic blocks, the experimental results were analyzed by qualitative failure morphology descriptions, and the quantitative analysis used two proposed new indices. On the pump pressure profiles, it reflected the non-linear interactions between HFs and NFs well. For rock blocks with a dense DFN density, pump pressure curves present fluctuation shape and the degree of interaction between HF and NF is strong; however, for model blocks with a sparse DFN density, the pump pressure curves present a sudden drop shape. In addition, different propagation behaviors of NFs—offset, divert, branch, and cross NF—can be observed from the fractured model blocks. By using a proposed index of “<i>P-SRV</i>”, the relationship between NFD and the fracturing effectiveness was further confirmed. Furthermore, the most striking finding is that mixed mode I–II and I–III fracture types can be formed in the naturally fractured model blocks. The experimental results are beneficial for grasping the influential mechanism of NFD on the propagation of HF and for developing more accurate and full 3D-coupled simulation models for unconventional oil and gas development.https://www.mdpi.com/1996-1073/16/2/612hydraulic fracturingfracture network densityshale reservoirhydraulic fracture propagation |
spellingShingle | Jihuan Wu Xuguang Li Yu Wang Insight into the Effect of Natural Fracture Density in a Shale Reservoir on Hydraulic Fracture Propagation: Physical Model Testing Energies hydraulic fracturing fracture network density shale reservoir hydraulic fracture propagation |
title | Insight into the Effect of Natural Fracture Density in a Shale Reservoir on Hydraulic Fracture Propagation: Physical Model Testing |
title_full | Insight into the Effect of Natural Fracture Density in a Shale Reservoir on Hydraulic Fracture Propagation: Physical Model Testing |
title_fullStr | Insight into the Effect of Natural Fracture Density in a Shale Reservoir on Hydraulic Fracture Propagation: Physical Model Testing |
title_full_unstemmed | Insight into the Effect of Natural Fracture Density in a Shale Reservoir on Hydraulic Fracture Propagation: Physical Model Testing |
title_short | Insight into the Effect of Natural Fracture Density in a Shale Reservoir on Hydraulic Fracture Propagation: Physical Model Testing |
title_sort | insight into the effect of natural fracture density in a shale reservoir on hydraulic fracture propagation physical model testing |
topic | hydraulic fracturing fracture network density shale reservoir hydraulic fracture propagation |
url | https://www.mdpi.com/1996-1073/16/2/612 |
work_keys_str_mv | AT jihuanwu insightintotheeffectofnaturalfracturedensityinashalereservoironhydraulicfracturepropagationphysicalmodeltesting AT xuguangli insightintotheeffectofnaturalfracturedensityinashalereservoironhydraulicfracturepropagationphysicalmodeltesting AT yuwang insightintotheeffectofnaturalfracturedensityinashalereservoironhydraulicfracturepropagationphysicalmodeltesting |