Influence of injection rate and fracturing fluid viscosity on hydraulic fracture geometry in coal

被引:20
作者
机构
[1] Coll. of Mechanical and Oil-Gas Storage and Transportation Eng. in China Univ. of Petroleum, Beijing
[2] College of Petroleum Engineering in China University of Petroleum, Beijing
来源
Zhang, Guangqing | 1600年 / University of Petroleum, China卷 / 38期
关键词
Coalbed fracturing physical simulation; Coalbed methane; Fracturing fluid viscosity; Hydraulic fracture geometry; Injection rate;
D O I
10.3969/j.issn.1673-5005.2014.04.017
中图分类号
学科分类号
摘要
Injection rate and fracturing fluid viscosity are two important controllable parameters in the fracturing design of coalbed methane (CBM) well. They not only are the factors that affect the breakdown pressure of the borehole and treatment pressure during the fracturing treatment, but also can control the geometry of hydraulic fracture. Through several groups of large scale true tri-axial tests, influences of injection rate and fracturing fluid viscosity on hydraulic fracture geometry and treatment pressure in coal specimens collected from Daning-Jixian coal field, southeast of Ordos Basin were studied. The results show that low injection rate and low fracturing fluid viscosity reopen the coal cleats, and branch joints connect with the main fractures to form fracture networks with a dominating direction along the direction of maximum horizontal stress. With injection rate or fracturing fluid viscosity increasing, hydraulic fracture complexity is greatly reduced and a planar fracture tends to form. Increasing injection rate or fracturing fluid viscosity will also increase the treatment pressure. Optimal design of the injection rate and fracturing fluid viscosity can enhance the drainage volume of single CBM well by generating a complex fracture network at a certain distance from the wellbore after the creation of a planar fracture near the wellbore.
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收藏
页码:117 / 123
页数:6
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