In situ stress variation and coal reservoir permeability response of the Jurassic Yan'an formation in the southwestern Ordos basin, China: Its impact on coalbed methane development
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[1] Wei Ju,et al. In Situ Stress Distribution in Cretaceous Ultra-Deep Gas Field From 1D Mechanical Earth Model and 3D Heterogeneous Geomechanical Model, Kuqa Depression, Tarim Basin, NW China , 2022, Frontiers in Earth Science.
[2] Hui Zhang,et al. Effect of Coalification and Maceration on Pore Differential Development Characteristics of High-Volatile Bituminous Coal , 2022, SSRN Electronic Journal.
[3] G. Wang,et al. Effects of simulated surface freshwater environment on in situ microorganisms and their methanogenesis after tectonic uplift of a deep coal seam , 2022, International Journal of Coal Geology.
[4] Jianguo Yang,et al. Compatibility characteristics of fracturing fluid and shale oil reservoir: A case study of the first member of Qingshankou Formation, northern Songliao Basin, Northeast China , 2022, Journal of Petroleum Science and Engineering.
[5] Yong Qin,et al. Pore structure, adsorptivity and influencing factors of high-volatile bituminous coal rich in inertinite , 2021 .
[6] Yong Qin,et al. In-situ stress and permeability causality model of a low-rank coalbed methane reservoir in southwestern Ordos Basin, China , 2021 .
[7] Yong Qin,et al. Characteristics of Modern Geostress and Removability of No. 15 Coal Reservoir, Yangquan Mining Area, China , 2021, Natural Resources Research.
[8] Xianglong Wang,et al. Influence of In Situ Stress on Well Test Permeability and Hydraulic Fracturing of the Fanzhuang Block, Qinshui Basin , 2021 .
[9] Yong Qin,et al. Experimental Research on Dynamic Variation of Permeability and Porosity of Low-Rank Inert-Rich Coal Under Stresses , 2020, ACS omega.
[10] Wei Ju,et al. Predicting the present-day in situ stress distribution within the Yanchang Formation Chang 7 shale oil reservoir of Ordos Basin, central China , 2020, Petroleum Science.
[11] J. Esterle,et al. Subsurface fractures, in-situ stress and permeability variations in the Walloon Coal Measures, eastern Surat Basin, Queensland, Australia , 2020 .
[12] Jian Shen,et al. Resources and geology of coalbed methane in China: a review , 2018, Coal Geology of China.
[13] Zhaoping Meng,et al. Characteristics of in-situ stress distribution in Zhengzhuang Region, Southern Qinshui Basin, China and its stress path during depletion , 2020 .
[14] Guoqing Li,et al. Implications of the pore pressure and in situ stress for the coalbed methane exploration in the southern Junggar Basin, China , 2019, Engineering Geology.
[15] Haijiao Fu,et al. Characteristics of in situ stress and its influence on coalbed methane development: A case study in the eastern part of the southern Junggar Basin, NW China , 2019, Energy Science & Engineering.
[16] Q. Gan,et al. In situ stress distribution and its impact on CBM reservoir properties in the Zhengzhuang area, southern Qinshui Basin, North China , 2019, Journal of Natural Gas Science and Engineering.
[17] Wenjing Lin,et al. In-situ stress distribution and its influence on the coal reservoir permeability in the Hancheng area, eastern margin of the Ordos Basin, China , 2019, Journal of Natural Gas Science and Engineering.
[18] Wei Ju,et al. Variation of in situ stress regime in coal reservoirs, eastern Yunnan region, South China: Implications for coalbed methane production , 2018, AAPG Bulletin.
[19] W. Ding,et al. Methodology for predicting reservoir breakdown pressure and fracture opening pressure in low-permeability reservoirs based on an in situ stress simulation , 2018, Engineering Geology.
[20] Wei Ju,et al. In situ stress field in the FZ Block of Qinshui Basin,China: Implications for the permeability and coalbed methane production , 2018, Journal of Petroleum Science and Engineering.
[21] L. Yanfei,et al. Geological conditions of deep coalbed methane in the eastern margin of the Ordos Basin, China: Implications for coalbed methane development , 2018 .
[22] Hao Xu,et al. In-situ stress measurements and stress distribution characteristics of coal reservoirs in major coalfields in China: Implication for coalbed methane (CBM) development , 2017 .
[23] O. Heidbach,et al. The present-day stress field of Australia , 2017 .
[24] Hao Xu,et al. Fluid velocity sensitivity of coal reservoir and its effect on coalbed methane well productivity: A case of Baode Block, northeastern Ordos Basin, China , 2017 .
[25] O. Heidbach,et al. Prediction of the present-day stress field in the Australian continental crust using 3D geomechanical–numerical models , 2017 .
[26] J. Rutqvist,et al. Effects of in situ stress measurement uncertainties on assessment of predicted seismic activity and risk associated with a hypothetical industrial-scale geologic CO2 sequestration operation , 2016 .
[27] Youbiao Hu,et al. In-situ stress measurements by hydraulic fracturing and its implication on coalbed methane development in Western Guizhou, SW China , 2016 .
[28] Wenjing Lin,et al. Characteristic of In Situ Stress and Its Control on the Coalbed Methane Reservoir Permeability in the Eastern Margin of the Ordos Basin, China , 2016, Rock Mechanics and Rock Engineering.
[29] Seth Busetti,et al. Geomechanics of hydraulic fracturing microseismicity: Part 1. Shear, hybrid, and tensile events , 2014 .
[30] Z. Reches,et al. Geomechanics of hydraulic fracturing microseismicity: Part 2. Stress state determination , 2014 .
[31] Hao Xu,et al. In-situ stress distribution and its implication on coalbed methane development in Liulin area, eastern Ordos basin, China , 2014 .
[32] Yang Shu. Analysis of the characteristics of measured stress in Chinese mainland and its active blocks and North-South seismic belt , 2012 .
[33] S. Paul,et al. Determination of in-situ stress direction from cleat orientation mapping for coal bed methane exploration in south-eastern part of Jharia coalfield, India , 2011 .
[34] Yan Zhi-feng,et al. Effect of crustal stress on hydraulic fracturing in coalbed methane wells , 2011 .
[35] Zhaoping Meng,et al. In-situ stress, pore pressure and stress-dependent permeability in the Southern Qinshui Basin , 2011 .
[36] Liu Yuankun. RESEARCH ON DISTRIBUTION RULE OF SHALLOW CRUSTAL GEOSTRESS IN CHINA MAINLAND , 2007 .
[37] Zhang Yikai. CHARACTERISTICS AND TECTONIC SETTING OF TECTONO-STRESS FIELD OF ORDOS BASIN , 2006 .
[38] M. Zoback,et al. Determination of stress orientation and magnitude in deep wells , 2003 .
[39] Mark D. Zoback,et al. Drilling-induced tensile wall-fractures: implications for determination of in-situ stress orientation and magnitude , 1999 .
[40] K. Heffer,et al. Novel techniques show links between reservoir flow directionality, earth stress, fault structure and geomechanical changes in mature waterfloods , 1997 .
[41] E. Hoek,et al. Trends in relationships between measured in-situ stresses and depth , 1978 .
[42] W. S. Keys,et al. Hydraulic fracturing to determine the regional in situ stress field, Piceance Basin, Colorado , 1976 .
[43] W. H. Somerton,et al. Effect of stress on permeability of coal , 1975 .
[44] C. Fairhurst,et al. In-Situ Stress Determination At Great Depth By Means Of Hydraulic Fracturing , 1969 .