个人信息Personal Information
教授
博士生导师
硕士生导师
性别:男
毕业院校:大连理工大学
学位:博士
所在单位:能源与动力学院
学科:能源与环境工程
办公地点:能动大楼810
联系方式:songyc@dlut.edu.cn
电子邮箱:songyc@dlut.edu.cn
Numerical simulation of gas recovery from a low-permeability hydrate reservoir by depressurization
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论文类型:期刊论文
发表时间:2019-09-15
发表刊物:APPLIED ENERGY
收录刊物:EI、SCIE
卷号:250
页面范围:7-18
ISSN号:0306-2619
关键字:Low permeability; Hydrate reservoir; Depressurization; Gas production; Physical properties; Geomechanics
摘要:A successful gas production trial in the South China Sea in 2017 proves that low-permeability hydrate reservoirs have great gas production potential. To improve the efficiency of energy exploitation in the future commercial hydrate production, it is necessary to predict the gas/water production rate and the multiphysical responses of the low permeability reservoirs to the gas production induced by depressurization. In this study, a Mohr-Coulomb geomechanical model based on the test data of the low permeability silty hydrate deposits is embedded into a fully coupled thermo-hydro-mechanical model, which is applied to systematically investigate the responses of hydrate reservoir including the pore pressure, temperature, and hydrate saturation, as well as the mechanical behaviors of the hydrate reservoir during one year of gas production by depressurization using a horizontal wellbore at GMGS3-W19 site in the South China Sea. The simulation results show that the gas production rate increases at the beginning of production then rapidly decreases after no further reduction in the downhole pressure, finally remains at 100 m(3)/day. Due to the low permeability, the decreased pressure propagates to 100 m, which is not very far from the wellbore. One year of gas production by horizontal wellbore does not severely disturb the reservoir. However, the stress relaxation due to the hydrate dissociation may induce stress redistribution leading to the deposits displacement of 0.35 m around the wellbore, which potentially results in the deformation of production well, further affecting the safety and efficiency of the gas production.