Thermal Shock Effect on Acoustic Emission Response During Laboratory Hydraulic Fracturing in Laizhou Granite

被引:0
作者
Ning Li
Shicheng Zhang
Haibo Wang
Shan Wu
Yushi Zou
Xinfang Ma
Tong Zhou
机构
[1] SINOPEC Petroleum Exploration and Production Research Institute,State Key Laboratory of Petroleum Resource and Prospecting
[2] China University of Petroleum,undefined
[3] Southern University of Science and Technology,undefined
来源
Rock Mechanics and Rock Engineering | 2021年 / 54卷
关键词
Geothermal energy; Hot dry rock; Cyclic thermal shock; Breakdown pressure; Acoustic emission;
D O I
暂无
中图分类号
学科分类号
摘要
To investigate the thermal shock effect on microseismic response during hydraulic fracturing in hot dry rock, laboratory hydraulic fracturing experiments combined with acoustic emission (AE) monitoring were performed on granite after heating and rapid water-cooling treatments. Thereafter, the influence of thermal treatment level and the number of cycles on hydraulic fracture geometry, injection pressure curve, and the spatial distribution and focal mechanism was analyzed. Besides, the maximum AE amplitude and the localization results of large AE events with amplitudes larger than 7.0 mV were further investigated to discuss the thermal shock effect on reducing breakdown-induced seismicity. Experimental results show that the thermal shock effect was beneficial for reducing the maximum amplitude of AE events during laboratory fracturing experiments on Laizhou granite. After single-cycle thermal treatment, large AE events tended to disperse far away from rather than located around the open-hole section only when the thermal treatment level exceeded the threshold temperature (300 °C). At the thermal treatment level of 300 °C, increasing the number of cycles had a little influence on reducing the breakdown-induced seismicity due to the limited reduction of breakdown pressure. Most of the large AE events are still mainly detected during the occurrence of breakdown and located around the open-hole section. At the thermal treatment level of 400 °C, shear events were dominant. Even though a complex fracture network was created, no obvious cluster of large AE events was detected around the open-hole section.
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页码:4793 / 4807
页数:14
相关论文
共 371 条
[1]  
Bennour Z(2015)Crack extension in hydraulic fracturing of shale cores using viscous oil, water, and liquid carbon dioxide Rock Mech Rock Eng 48 1463-1473
[2]  
Ishida T(2013)A systematic review of enhanced (or engineered) geothermal systems: past, present and future Geoth Energ 1 1-27
[3]  
Nagaya Y(2013)Temperature influence on the physical and mechanical properties of a porous rock: San Julian's calcarenite Eng Geol 167 117-127
[4]  
Chen YQ(2015)Observation of fractures induced by hydraulic fracturing in anisotropic granite Rock Mech Rock Eng 48 1455-1461
[5]  
Nara Y(2013)An experimental investigation into hydraulic fracture propagation under different applied stresses in tight sands using acoustic emissions J Pet Sci Eng 108 151-161
[6]  
Chen Q(2018)An investigation of thermal effects on micro-properties of granite by X-ray CT technique Appl Therm Eng 140 505-519
[7]  
Sekine K(1979)Fracture propagation in rock by transient cooling Int J Rock Mech Min Sci Geomech Abstr 16 11-21
[8]  
Nagano Y(2010)Contribution of the exploration of deep crystalline fractured reservoir of Soultz to the knowledge of enhanced geothermal systems (EGS) CR Geosci 342 502-516
[9]  
Breede K(2012)A review of come rock mechanics issues in geothermal reservoir development Geotech Geol Eng 30 647-664
[10]  
Dzebisashvili K(2019)Performance of enhanced geothermal system (EGS) in fractured geothermal reservoirs with CO Appl Therm Eng 152 215-230