Earth stress and reservoir quality evaluation in high and steep structure: The Lower Cretaceous in the Kuqa Depression, Tarim Basin, China
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Qingyong Luo | Guiwen Wang | Chengwen Xiao | Dong Li | Guiwen Wang | Ziqiang Qin | Jin Lai | Xiaolong Hao | C. Xiao | Jin Lai | Ziqiang Qin | Dong Li | Xiaolong Hao | Lingbin Lai | Q. Luo | Lingbin Lai
[1] Hao Xu,et al. In-situ stress distribution and its implication on coalbed methane development in Liulin area, eastern Ordos basin, China , 2014 .
[2] Jia Chengzao,et al. Petroleum geology of Kela-2, the most productive gas field in China , 2008 .
[3] Ben A. Eaton,et al. Fracture Gradient Prediction and Its Application in Oilfield Operations , 1969 .
[4] Stefan M. Luthi,et al. Fracture apertures from electrical borehole scans , 1990 .
[5] M. Ghafoori,et al. Reservoir geomechanical modeling: In-situ stress, pore pressure, and mud design , 2017 .
[6] M. S. King,et al. In situ stress prediction using differential strain analysis and ultrasonic shear-wave splitting , 1998, Geological Society, London, Special Publications.
[7] Shiqi Liu,et al. Characteristics of an in situ stress field and its control on coal fractures and coal permeability in the Gucheng block, southern Qinshui Basin, China , 2016 .
[8] Bezalel C. Haimson,et al. Polyaxial strength criteria and their use in estimating in situ stress magnitudes from borehole breakout dimensions , 1997 .
[9] Min Xiang,et al. Extracting array acoustic logging signal information by combining fractional Fourier transform and Choi–Williams distribution , 2015 .
[10] Xiaojiao Pang,et al. A review on the applications of image logs in structural analysis and sedimentary characterization , 2018, Marine and Petroleum Geology.
[11] Lianbo Zeng,et al. Fracture responses of conventional logs in tight-oil sandstones: A case study of the Upper Triassic Yanchang Formation in southwest Ordos Basin, China , 2016 .
[12] O. Heidbach,et al. Present‐day stress orientation in the Clarence‐Moreton Basin of New South Wales, Australia: a new high density dataset reveals local stress rotations , 2017 .
[13] Chao Li,et al. In-situ stress state in the Linxing region, eastern Ordos Basin, China: Implications for unconventional gas exploration and production , 2017 .
[14] Zhijun Jin,et al. The tectonics and petroleum system of the Qiulitagh fold and thrust belt, northern Tarim basin, NW China , 2008 .
[15] Ronald A. Nelson,et al. Geologic Analysis of Naturally Fractured Reservoirs , 1986 .
[16] Shuichang Zhang,et al. Geochemistry of Palaeozoic marine petroleum from the Tarim Basin, NW China: Part 1. Oil family classification , 2005 .
[17] Terry Engelder,et al. Stress Regimes in the Lithosphere , 1992 .
[18] Xiaojiao Pang,et al. Investigation of pore structure and petrophysical property in tight sandstones , 2018 .
[19] Guiwen Wang,et al. Deep burial diagenesis and reservoir quality evolution of high-temperature, high-pressure sandstones: Examples from Lower Cretaceous Bashijiqike Formation in Keshen area, Kuqa depression, Tarim basin of China , 2017 .
[20] D. Schmitt,et al. Crustal stress determination from boreholes and rock cores: Fundamental principles , 2012 .
[21] Chandong Chang,et al. Heterogeneous in situ stress magnitudes due to the presence of weak natural discontinuities in granitic rocks , 2015 .
[22] Ziyuan Wang,et al. Fracture detection in oil-based drilling mud using a combination of borehole image and sonic logs , 2017 .
[23] Mohsen Masihi,et al. A modified method for predicting the stresses around producing boreholes in an isotropic in-situ stress field , 2017 .
[24] Ruyue Wang,et al. 3D geomechanical modeling and numerical simulation of in-situ stress fields in shale reservoirs: A case study of the lower Cambrian Niutitang formation in the Cen'gong block, South China , 2017 .
[25] Lianbo Zeng,et al. Impacts of the tectonic stress field on natural gas migration and accumulation: A case study of the Kuqa Depression in the Tarim Basin, China , 2010 .
[26] Guiting Hou,et al. Fracture zones constrained by neutral surfaces in a fault-related fold: Insights from the Kelasu tectonic zone, Kuqa Depression , 2017 .
[27] R. Chatterjee. Effect of normal faulting on in-situ stress: A case study from Mandapeta Field, Krishna-Godavari basin, India , 2008 .
[28] Wei Ju,et al. A preliminary study of the present-day in-situ stress state in the Ahe tight gas reservoir, Dibei Gasfield, Kuqa Depression , 2018, Marine and Petroleum Geology.
[29] Stefan Bachu,et al. In situ stress magnitude and orientation estimates for Cretaceous coal-bearing strata beneath the plains area of central and southern Alberta , 2003 .
[30] R. Hillis,et al. Present-day stress and neotectonics of Brunei: Implications for petroleum exploration and production , 2009 .
[32] S. Assous,et al. Phase-based dispersion analysis for acoustic array borehole logging data. , 2014, The Journal of the Acoustical Society of America.
[33] C. Hanks,et al. In situ stress variations associated with regional changes in tectonic setting, Northeastern Brooks Range and eastern North Slope of Alaska , 2014 .
[34] Jianwei Feng,et al. Quantitative prediction of fracture distribution using geomechanical method within Kuqa Depression, Tarim Basin, NW China , 2018 .
[35] Jincai Zhang,et al. Lithology-dependent minimum horizontal stress and in-situ stress estimate , 2017 .
[36] M. Hand,et al. Incompatible stress regimes from geological and geomechanical datasets: Can they be reconciled? An example from the Carnarvon Basin, Western Australia , 2016 .
[37] G. Shi,et al. The use of artificial neural network analysis and multiple regression for trap quality evaluation: a case study of the Northern Kuqa Depression of Tarim Basin in western China , 2004 .
[38] Tao Nian,et al. Determination of in-situ stress orientation and subsurface fracture analysis from image-core integration: an example from ultra-deep tight sandstone (BSJQK Formation) in the Kelasu Belt, Tarim Basin , 2016 .
[39] Andreas Barth,et al. Global crustal stress pattern based on the World Stress Map database release 2008 , 2010 .
[40] Z. Rahim,et al. Diverse fracture properties and their impact on performance in conventional and tight-gas reservoirs, Saudi Arabia: The Unayzah, South Haradh case study , 2012 .
[41] Cécile Massiot,et al. Processing and analysis of high temperature geothermal acoustic borehole image logs in the Taupo Volcanic Zone, New Zealand , 2015 .
[42] Tom R. Bratton,et al. Forward modeling of fracture-induced sonic anisotropy using a combination of borehole image and sonic logs , 2007 .
[43] D. Schmitt,et al. A revised crustal stress orientation database for Canada , 2014 .
[44] P. Peng,et al. Characteristics and origin of natural gases in the Kuqa Depression of Tarim Basin, NW China , 2006 .
[45] Larry G. Mastin,et al. Well bore breakouts and in situ stress , 1985 .
[46] Wei Wang,et al. Effect of basement structure and salt tectonics on deformation styles along strike: An example from the Kuqa fold–thrust belt, West China , 2018 .
[47] R. Prioul,et al. Fracture characterization at multiple scales using borehole images, sonic logs, and walkaround vertical seismic profile , 2009 .
[48] J. Zhao,et al. Effective evaluation of gas migration in deep and ultra-deep tight sandstone reservoirs of Keshen structural belt, Kuqa depression , 2017 .
[49] Honghan Chen,et al. Responses of two lithosomes of Lower Cretaceous coarse clastic rocks to tectonism in Kuqa foreland sub-basin, Northern Tarim Basin, Northwest China , 2013 .
[50] 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.
[51] J. Kaiser. Erkenntnisse und Folgerungen aus der Messung von Geräuschen bei Zugbeanspruchung von metallischen Werkstoffen , 1953 .
[52] A. Moradzadeh,et al. Comparison of Several Different Methods of in situ stress determination , 2014 .
[53] Guiwen Wang,et al. Fractal analysis of tight gas sandstones using high-pressure mercury intrusion techniques , 2015 .
[54] Zhe Wang,et al. Quantitative prediction of fractures using the finite element method: A case study of the lower Silurian Longmaxi Formation in northern Guizhou, South China , 2018 .
[55] M. Zoback,et al. Determination of stress orientation and magnitude in deep wells , 2003 .
[56] Mark D. Zoback,et al. Stress orientation, pore pressure and least principal stress in the Norwegian sector of the North Sea , 2001, Petroleum Geoscience.
[57] M. Manga,et al. Initiation of the Lusi mudflow disaster , 2015 .
[58] Mark D. Zoback,et al. State of stress in the conterminous United States , 1980 .
[59] Ali Yaghoubi,et al. Determination of magnitude and orientation of the in-situ stress from borehole breakout and effect of pore pressure on borehole stability — Case study in Cheshmeh Khush oil field of Iran , 2009 .
[60] Lianbo Zeng,et al. Unreliable determination of in situ stress orientation by borehole breakouts in fractured tight reservoirs: A case study of the upper Eocene Hetaoyuan Formation in the Anpeng field, Nanxiang Basin, China , 2015 .
[61] O. Heidbach,et al. The present-day state of tectonic stress in the Darling Basin, Australia: Implications for exploration and production , 2016 .
[62] E. Sarris,et al. Constraining the in-situ stresses in a tectonically active offshore basin in Eastern Mediterranean , 2017 .
[63] Richard E. Lewis,et al. Downhole well log and core montages from the Mount Elbert Gas Hydrate Stratigraphic Test Well, Alaska North Slope , 2011 .
[64] B. Bohloli,et al. Subsurface fracture analysis and determination of in-situ stress direction using FMI logs: An example from the Santonian carbonates (Ilam Formation) in the Abadan Plain, Iran , 2010 .
[65] O. Heidbach,et al. The present-day stress field of New South Wales, Australia , 2016 .
[66] S. Nelskamp,et al. 3D spatial variation in vertical stress in on- and offshore Netherlands; integration of density log measurements and basin modeling results , 2016 .
[67] Mark D. Zoback,et al. Drilling-induced tensile wall-fractures: implications for determination of in-situ stress orientation and magnitude , 1999 .
[68] Tao Nian,et al. The in situ stress determination from borehole image logs in the Kuqa Depression , 2016 .
[69] Tao Nian,et al. Open tensile fractures at depth in anticlines: A case study in the Tarim basin, NW China , 2017 .
[70] D. I. Gough,et al. Northeast-southwest compressive stress in Alberta evidence from oil wells , 1979 .
[71] Weichao Yan,et al. Imbibition inducing tensile fractures and its influence on in-situ stress analyses: A case study of shale gas drilling , 2015 .
[72] M. Tingay,et al. Present-day stress-field rotations associated with evaporites in the offshore Nile Delta , 2011 .
[73] Xiangxiang Zhang,et al. How does the pore-throat size control the reservoir quality and oiliness of tight sandstones? The case of the Lower Cretaceous Quantou Formation in the southern Songliao Basin, China , 2016 .
[74] Yanting Chang,et al. An overview of rock stress measurement methods , 2003 .
[75] Tao Nian,et al. Characterization of braided river-delta facies in the Tarim Basin Lower Cretaceous: Application of borehole image logs with comparative outcrops and cores , 2018, Marine and Petroleum Geology.
[76] Valerie Smith,et al. Developing a model discrete fracture network, drilling, and enhanced oil recovery strategy in an unconventional naturally fractured reservoir using integrated field, image log, and three-dimensional seismic data , 2015 .
[77] Lianbo Zeng,et al. Fractured tight sandstone oil and gas reservoirs: A new play type in the Dongpu depression, Bohai Bay Basin, China , 2013 .
[78] W. Narr,et al. Origin of Fracture Porosity--Example from Altamont Field, Utah , 1982 .
[79] Jing Chen,et al. Brittleness index estimation in a tight shaly sandstone reservoir using well logs , 2015 .