Zhao Kai, Wang Xiaoyun, Feng Yongcun, Gao Wei, Song Wenjie, Dou Liangbin, Jiang Hailong
College of Petroleum Engineering, Xi'an Shiyou University, Xi'an 710065, China.
State Key Laboratory of Oil and Gas Reservoir Geology and Exploitation, Chengdu University of Technology, Chengdu 610059, China.
ACS Omega. 2023 Feb 14;8(8):8078-8091. doi: 10.1021/acsomega.2c08111. eCollection 2023 Feb 28.
Due to the nature of hot dry rock resources and the particularity of the development methods, the fault activation induced by injection and production of hot dry rocks involves a complex multifield coupling mechanism. Traditional methods cannot effectively evaluate the fault activation behavior in hot dry rock injection and production. Aiming at the above-mentioned problems, a thermal-hydraulic-mechanical coupling mathematical model of injection and production of hot dry rocks is established and solved by a finite element method. At the same time, the fault slip potential (FSP) is introduced to quantitatively evaluate the risk of fault activation induced by injection and production of hot dry rocks under different injection and production conditions and geological conditions. The results show that under the same geological conditions, the greater the well spacing of injection and production wells, the greater the risk of fault activation induced by injection and production and the greater the injection flow, the greater the risk of fault activation. Under the same geological conditions, the lower the reservoir permeability, the greater the fault activation risk and the higher the initial reservoir temperature, the greater the fault activation risk. Different fault occurrences result in different risks of fault activation. These results provide a certain theoretical reference for the safe and efficient development of hot dry rock reservoirs.
由于干热岩资源的性质和开发方式的特殊性,干热岩注采诱发的断层活化涉及复杂的多场耦合机制。传统方法无法有效评估干热岩注采过程中的断层活化行为。针对上述问题,建立了干热岩注采热-流-固耦合数学模型,并采用有限元方法进行求解。同时,引入断层滑动势(FSP)来定量评估不同注采条件和地质条件下干热岩注采诱发断层活化的风险。结果表明,在相同地质条件下,注采井井距越大,注采诱发断层活化的风险越大,注入流量越大,断层活化风险越大。在相同地质条件下,储层渗透率越低,断层活化风险越大,储层初始温度越高,断层活化风险越大。不同的断层产状导致不同的断层活化风险。这些结果为干热岩储层的安全高效开发提供了一定的理论参考。