The Propagation Behavior of Hydraulic Fracture in Rock Mass with Cemented Joints

The formation of the fracture network in shale hydraulic fracturing is the key to the successful development of shale gas. In order to analyze the mechanism of hydraulic fracturing fracture propagation in cemented fractured formations, a numerical simulation about fracture behavior in cemented joint...

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Main Authors: Yongxiang Zheng, Jianjun Liu, Yun Lei
Format: Article
Language:English
Published: Hindawi-Wiley 2019-01-01
Series:Geofluids
Online Access:http://dx.doi.org/10.1155/2019/5406870
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spelling doaj-1a99d54c155c4257a727e407e6746b4b2020-11-24T22:15:26ZengHindawi-WileyGeofluids1468-81151468-81232019-01-01201910.1155/2019/54068705406870The Propagation Behavior of Hydraulic Fracture in Rock Mass with Cemented JointsYongxiang Zheng0Jianjun Liu1Yun Lei2School of Geoscience and Technology, Southwest Petroleum University, Chengdu 610500, ChinaSchool of Geoscience and Technology, Southwest Petroleum University, Chengdu 610500, ChinaShenyang Research Institute, China Coal Technology & Engineering Group Corp., Fushun 113122, ChinaThe formation of the fracture network in shale hydraulic fracturing is the key to the successful development of shale gas. In order to analyze the mechanism of hydraulic fracturing fracture propagation in cemented fractured formations, a numerical simulation about fracture behavior in cemented joints was conducted based firstly on the block discrete element. And the critical pressure of three fracture propagation modes under the intersection of hydraulic fracturing fracture and closed natural fracture is derived, and the parameter analysis is carried out by univariate analysis and the response surface method (RSM). The results show that at a low intersecting angle, hydraulic fractures will turn and move forward at the same time, forming intersecting fractures. At medium angles, the cracks only turn. At high angles, the crack will expand directly forward without turning. In conclusion, low-angle intersecting fractures are more likely to form complex fracture networks, followed by medium-angle intersecting fractures, and high-angle intersecting fractures have more difficulty in forming fracture networks. The research results have important theoretical guiding significance for the hydraulic fracturing design.http://dx.doi.org/10.1155/2019/5406870
collection DOAJ
language English
format Article
sources DOAJ
author Yongxiang Zheng
Jianjun Liu
Yun Lei
spellingShingle Yongxiang Zheng
Jianjun Liu
Yun Lei
The Propagation Behavior of Hydraulic Fracture in Rock Mass with Cemented Joints
Geofluids
author_facet Yongxiang Zheng
Jianjun Liu
Yun Lei
author_sort Yongxiang Zheng
title The Propagation Behavior of Hydraulic Fracture in Rock Mass with Cemented Joints
title_short The Propagation Behavior of Hydraulic Fracture in Rock Mass with Cemented Joints
title_full The Propagation Behavior of Hydraulic Fracture in Rock Mass with Cemented Joints
title_fullStr The Propagation Behavior of Hydraulic Fracture in Rock Mass with Cemented Joints
title_full_unstemmed The Propagation Behavior of Hydraulic Fracture in Rock Mass with Cemented Joints
title_sort propagation behavior of hydraulic fracture in rock mass with cemented joints
publisher Hindawi-Wiley
series Geofluids
issn 1468-8115
1468-8123
publishDate 2019-01-01
description The formation of the fracture network in shale hydraulic fracturing is the key to the successful development of shale gas. In order to analyze the mechanism of hydraulic fracturing fracture propagation in cemented fractured formations, a numerical simulation about fracture behavior in cemented joints was conducted based firstly on the block discrete element. And the critical pressure of three fracture propagation modes under the intersection of hydraulic fracturing fracture and closed natural fracture is derived, and the parameter analysis is carried out by univariate analysis and the response surface method (RSM). The results show that at a low intersecting angle, hydraulic fractures will turn and move forward at the same time, forming intersecting fractures. At medium angles, the cracks only turn. At high angles, the crack will expand directly forward without turning. In conclusion, low-angle intersecting fractures are more likely to form complex fracture networks, followed by medium-angle intersecting fractures, and high-angle intersecting fractures have more difficulty in forming fracture networks. The research results have important theoretical guiding significance for the hydraulic fracturing design.
url http://dx.doi.org/10.1155/2019/5406870
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