[1] |
刘长宇, 丛立春, 龙增伟, 等. 低渗裂缝性薄层储层改造技术研究[J]. 钻采工艺, 2008, 31(5):73-75.
|
|
LIU Changyu, CONG Lichun, LONG Zengwei, et al. Research on hydraulic fracturing technology in thin fractured layers with low permeability[J]. Drilling & Production Technology, 2008, 31(5):73-75.
|
[2] |
闫相祯, 宋根才, 王同涛, 等. 低渗透薄互层砂岩油藏大型压裂裂缝扩展模拟[J]. 岩石力学与工程学报, 2009, 28(7):1425-1431.
|
|
YAN Xiangzhen, SONG Gencai, WANG Tongtao, et al. Simulation of fracture propagation in large-scale reservoir with low permeability and thin interbedded sandstone[J]. Chinese Journal of Rock Mechanics and Engineering, 2009, 28(7):1425-1431.
|
[3] |
程正华, 艾池, 张军, 等. 胶结型天然裂缝对水力压裂裂缝延伸规律的影响[J]. 新疆石油地质, 2022, 43(4):433-439.
|
|
CHENG Zhenghua, AI Chi, ZHANG Jun, et al. Influences of cemented natural fractures on propagation of hydraulic fractures[J]. Xinjiang Petroleum Geology, 2022, 43(4):433-439.
|
[4] |
戴俊生, 冯建伟, 李明, 等. 砂泥岩间互地层裂缝延伸规律探讨[J]. 地学前缘, 2011, 18(2):277-283.
|
|
DAI Junsheng, FENG Jianwei, LI Ming, et al. Discussion on the extension law of structural fracture in sand-mud interbed formation[J]. Earth Science Frontiers, 2011, 18(2):277-283.
|
[5] |
WU Baocheng, WEI Xiaochen, WANG Wanbin, et al. Effect of stress and material barriers on hydraulic fracture height containment in layered formations[J]. Environmental Earth Sciences, 2022, 81(9):1-16.
doi: 10.1007/s12665-021-10123-9
|
[6] |
商琳, 戴俊生, 冯建伟, 等. 砂泥岩互层裂缝发育的地层厚度效应[J]. 新疆石油地质, 2015, 36(1):35-41.
|
|
SHANG Lin, DAI Junsheng, FENG Jianwei, et al. Effect of strata thickness on fracture development in sand-mud interbed[J]. Xinjiang Petroleum Geology, 2015, 36(1):35-41.
|
[7] |
马军, 王丽峰, 鱼文军, 等. 金龙2井区无隔层控底水压裂技术的研究与应用[J]. 新疆石油天然气, 2020, 16(3):56-61.
|
|
MA Jun, WANG Lifeng, YU Wenjun, et al. Research on bottom water fracturing technology without interlayer in Jinlong 2 well area and its application[J]. Xinjiang Oil & Gas, 2020, 16(3):56-61.
|
[8] |
GU Hongren, SIEBRITS E. Effect of formation modulus contrast on hydraulic fracture height containment[J]. SPE Production & Operations, 2008, 23(2):170-176.
|
[9] |
陈治喜, 陈勉, 黄荣樽, 等. 层状介质中水力裂缝的垂向扩展[J]. 石油大学学报(自然科学版), 1997, 21(4):23-26.
|
|
CHEN Zhixi, CHEN Mian, HUANG Rongzun, et al. Vertical growth of hydraulic fracture in layered formations[J]. Journal of the University of Petroleum,China, 1997, 21(4):23-26.
|
[10] |
潘丽燕, 阮东, 惠峰, 等. 玛湖凹陷风城组薄互层分层压裂优化方法[J]. 新疆石油地质, 2022, 43(2):221-226.
|
|
PAN Liyan, RUAN Dong, HUI Feng, et al. Methods for separate-layer fracturing optimization of thin interbeds in Fengcheng formation,Mahu sag[J]. Xinjiang Petroleum Geology, 2022, 43(2):221-226.
|
[11] |
侯冰, 陈勉, 刁策, 等. 砂泥交互储层定向井压裂裂缝穿层扩展真三轴实验研究[J]. 科学技术与工程, 2015, 15(26):54-59.
|
|
HOU Bing, CHEN Mian, DIAO Ce, et al. True triaxial experimental study of hydraulic fracture penetrating sand and mud interbedding in deviated wellbore[J]. Science Technology and Engineering, 2015, 15(26):54-59.
|
[12] |
VANDAMME L, JEFFREY R G, CURRAN J H. Pressure distribution in three-dimensional hydraulic fractures[J]. SPE Production Engineering, 1986, 3(2):181-186.
doi: 10.2118/15265-PA
|
[13] |
SETTGAST R R, FU Pengcheng, WALSH S D C, et al. A fully coupled method for massively parallel simulation of hydraulically driven fractures in 3‐dimensions[J]. International Journal for Numerical and Analytical Methods in Geomechanics, 2017, 41(5):627-653.
doi: 10.1002/nag.v41.5
|
[14] |
周彤, 王海波, 李凤霞, 等. 层理发育的页岩气储集层压裂裂缝扩展模拟[J]. 石油勘探与开发, 2020, 47(5):1039-1051.
doi: 10.11698/PED.2020.05.18
|
|
ZHOU Tong, WANG Haibo, LI Fengxia, et al. Numerical simulation of hydraulic fracture propagation in laminated shale reservoirs[J]. Petroleum Exploration and Development, 2020, 47(5):1039-1051.
|
[15] |
李浩哲, 姜在炳, 舒建生, 等. 水力裂缝在煤岩界面处穿层扩展规律的数值模拟[J]. 煤田地质与勘探, 2020, 48(2):106-113.
|
|
LI Haozhe, JIANG Zaibing, SHU Jiansheng, et al. Numerical simulation of layer-crossing propagation behavior of hydraulic fractures at coal-rock interface[J]. Coal Geology & Exploration, 2020, 48(2):106-113.
|
[16] |
李军, 翟文宝, 陈朝伟, 等. 基于零厚度内聚力单元的水力裂缝随机扩展方法研究[J]. 岩土力学, 2021, 42(1):265-279.
|
|
LI Jun, ZHAI Wenbao, CHEN Zhaowei, et al. Research on random propagation method of hydraulic fracture based on zero-thickness cohesive element[J]. Rock and Soil Mechanics, 2021, 42(1):265-279.
|
[17] |
潘睿, 张广清. 层状岩石断裂能各向异性对水力裂缝扩展路径影响研究[J]. 岩石力学与工程学报, 2018, 37(10):2309-2318.
|
|
PAN Rui, ZHANG Guangqing. The influence of fracturing energy anisotropy on hydraulic fracturing path in layered rocks[J]. Chinese Journal of Rock Mechanics and Engineering, 2018, 37(10):2309-2318.
|
[18] |
王瀚, 刘合, 张劲, 等. 水力裂缝的缝高控制参数影响数值模拟研究[J]. 中国科学技术大学学报, 2011, 41(9):820-825.
|
|
WANG Han, LIU He, ZHANG Jin, et al. Numerical simulation of hydraulic fracture height control with different parameters[J]. Journal of University of Science and Technology of China, 2011, 41(9):820-825.
|
[19] |
CARRIER B, GRANET S. Numerical modeling of hydraulic fracture problem in permeable medium using cohesive zone model[J]. Engineering Fracture Mechanics, 2012, 79:312-328.
doi: 10.1016/j.engfracmech.2011.11.012
|
[20] |
CHEN Zuorong, BUNGER A P, ZHANG Xi, et al. Cohesive zone finite element-based modeling of hydraulic fractures[J]. Acta Mechanica Solida Sinica, 2009, 22(5):443-452.
doi: 10.1016/S0894-9166(09)60295-0
|
[21] |
YUE Kaimin, OLSON J E, SCHULTZ R A. The effect of layered modulus on hydraulic-fracture modeling and fracture-height containment[J]. SPE Drilling & Completion, 2019, 34(4):356-371.
|
[22] |
吴锐, 邓金根, 蔚宝华, 等. 临兴区块石盒子组致密砂岩气储层压裂缝高控制数值模拟研究[J]. 煤炭学报, 2017, 42(9):2393-2401.
|
|
WU Rui, DENG Jingen, YU Baohua, et al. Numerical modeling of hydraulic fracture containment of tight gas reservoir in Shihezi formation,Linxing block[J]. Journal of China Coal Society, 2017, 42(9):2393-2401.
|