Zhang Ligang, Tao Xin, Yan Tie, Jin Ming, Wang Tao. Horizontal Bedding Shale in-Situ Stress Calculation Inverted from Adjacent Beds[J]. Petroleum Drilling Techniques, 2015, 43(5): 26-30. DOI: 10.11911/syztjs.201505005
Citation: Zhang Ligang, Tao Xin, Yan Tie, Jin Ming, Wang Tao. Horizontal Bedding Shale in-Situ Stress Calculation Inverted from Adjacent Beds[J]. Petroleum Drilling Techniques, 2015, 43(5): 26-30. DOI: 10.11911/syztjs.201505005

Horizontal Bedding Shale in-Situ Stress Calculation Inverted from Adjacent Beds

More Information
  • Received Date: July 14, 2015
  • Revised Date: September 08, 2015
  • Due to rock friability and the strong difference of rock mechanical characteristics between parallel and vertical bedding directions of the horizontal bedding shale, existing in-situ stress calculation methods could not meet the accuracy requirements and it is difficult to perform laboratory in-situ tests on the cores. Therefore, shale in-situ stress evaluation methods were studied in this paper so as to provide the effective guidance for well drilling and fracturing design. The shale elasticity parameters in different bedding directions were obtained by means of uniaxial compression tests, and the transversely isotropic characteristics were presented obviously. Based on the constitutive relation of transversely isotropic materials, the model for horizontal bedding shale in-situ stress inverted from its adjacent sand-shale in-situ stress was established, after it was assumed that there was no relative displacement between the formations in the process of the deposition and later tectonic movement. An analysis was conducted on sensitivity factors and influence laws. It is shown that the shale in-situ stress was controlled by its own elastic parameters and the elastic modulus, Poisson’s ratio and in-situ stress value of its adjacent sand-shale beds. The two horizontal in-situ stresses calculated with this method were higher than those obtained with the Terzaghi and Newberry models, and they were between the upper and lower limits of Huang Rongzun model.The research results in this paper provided a new method for evaluating the in-situ stress of horizontal bedding shale.
  • [1]
    邹才能,董大忠,王社教,等.中国页岩气形成机制,地质特征及资源潜力[J].石油勘探与开发,2010,37(6):641-653. Zou Caineng,Dong Dazhong,Wang Shejiao,et al.Geological characteristics,formation mechanism and resource potential of shale gas in China[J].Petroleum Exploration and Development,2010,37(6):641-653.
    [2]
    袁俊亮,邓金根,蔚宝华,等.页岩气藏水平井井壁稳定性研究[J].天然气工业,2012,32(9):66-70. Yuan Junliang,Deng Jingen,Yu Baohua,et al.Wellbore stability of horizontal wells in shale gas reservoirs[J].Natural Gas Industry,2012,32(9):66-70.
    [3]
    张斌,杨佳玲,解琪,等.地应力分析在鄂西渝东地区页岩气开发中的应用[J].天然气勘探与开发,2012,35(12):33-37. Zhang Bin,Yang Jialing,Xie Qi,et al.Application of ground stress analysis to shale gas development in Western Hubei and Eastern Chongqing Region[J].Natural Gas Exploration Development,2012,35(12):33-37.
    [4]
    Matthews W R,Kelly J.How to predict formation pressure and fracture gradient[J].Oil and Gas,1967,65(8):92-106.
    [5]
    Anderson R A,Ingram D S,Zanier A M.Determining fracture pressure gradient from well logs[J].JPT,1973,25(11):1259-1268.
    [6]
    黄荣樽.地层破裂压力预测模式的探讨[J].华东石油学院学报,1984,8(4):335-347. Huang Rongzun.A model for prediction formation fracture pressure[J].Journal of Huadong Petroleum Institute,1984,8(4):335-347.
    [7]
    王倩,王鹏,项德贵,等.页岩力学参数各向异性研究[J].天然气工业,2012,32(12):62-66. Wang Qian,Wang Peng,Xiang Degui,et al.Anisotropic property of mechanical parameters of shales[J].Natural Gas Industry,2012,32(12):62-66.
    [8]
    Sayers C M.Seismic anisotropy of shales[J].Geophysical Prospecting,2005,53(5):667-676.
    [9]
    李庆辉,陈勉,金衍,等.页岩气储层岩石力学特性及脆性评价[J].石油钻探技术,2012,40(4):17-22. Li Qinghui,Chen Mian,Jin Yan,et al.Rock mechanical properties and brittleness evaluation of shale gas reservoir[J].Petroleum Drilling Techniques,2012,40(4):17-22.
    [10]
    邓金根,陈峥嵘,耿亚楠,等.页岩储层地应力预测模型的建立和求解[J].中国石油大学学报:自然科学版,2013,37(6):59-64. Deng Jingen,Chen Zhengrong,Geng Yanan,et al.Prediction model for in-situ formation stress in shale reservoirs[J].Journal of China University of Petroleum:Edition of Natural Science,2013,37(6):59-64.
    [11]
    马天寿,陈平.层理页岩水平井井周剪切失稳区域预测方法[J].石油钻探技术,2014,42(5):27-36. Ma Tianshou,Chen Ping.Prediction method of shear instability region around the bore hole for horizontal wells in bedding shale[J].Petroleum Drilling Techniques,2014,42(5): 27-36.
    [12]
    陈强,朱宝龙,胡厚田.岩石Kaiser 效应测定地应力场的试验研究[J].岩石力学与工程学报,2006,25(7):1370-1376. Chen Qiang,Zhu Baolong,Hu Houtian.Experimental research on measurement of in-situ stress field by Kaiser effect[J].Chinese Journal of Rock Mechanics and Engineering,2006,25(7):1370-1376.
  • Related Articles

    [1]LIU Yaowen, BIAN Xiaobing, LI Shuangming, JIANG Tingxue, ZHANG Chi. An Evaluation Method of Shale Fracability Based on Stress Inversion[J]. Petroleum Drilling Techniques, 2022, 50(1): 82-88. DOI: 10.11911/syztjs.2021098
    [2]JIA Qingsheng, ZHONG Anhai, ZHANG Zilin, DING Ran. Numerical Simulation of the Brittleness Anisotropy of Laminated Argillaceous Limestone Facies Shale in the Jiyang Depression[J]. Petroleum Drilling Techniques, 2021, 49(4): 78-84. DOI: 10.11911/syztjs.2021086
    [3]HONG Guobin, CHEN Mian, LU Yunhu, JIN Yan. Study on the Anisotropy Characteristics of Deep Shale in the Southern Sichuan Basin and Their Impacts on Fracturing Pressure[J]. Petroleum Drilling Techniques, 2018, 46(3): 78-85. DOI: 10.11911/syztjs.2018022
    [4]Lin Yongxue, Gao Shuyang, Zeng Yijin. Evaluation and Analysis of Rock Strength for the Longmaxi Shale[J]. Petroleum Drilling Techniques, 2015, 43(5): 20-25. DOI: 10.11911/syztjs.201505004
    [5]Xiong Jian, Liu Xiangjun, Liang Lixi. Isothermal Adsorption Model of Supercritical Methane in Shale[J]. Petroleum Drilling Techniques, 2015, 43(3): 96-102. DOI: 10.11911/syztjs.201503018
    [6]Zeng Qingdong, Yao Jun. Experiment of Shale Failure Mechanism Based on Particle Flow Theory[J]. Petroleum Drilling Techniques, 2015, 43(1): 33-37. DOI: 10.11911/syztjs.201501006
    [7]Jiang Tingxue, Bian Xiaobing, Su Yuan, Liu Shuanglian, Wei Ran. A New Method for Evaluating Shale Fracability Index and Its Application[J]. Petroleum Drilling Techniques, 2014, 42(5): 16-20. DOI: 10.11911/syztjs.201405003
    [8]Yang Henglin, Shen Ruichen, Fu Li. Composition and Mechanical Properties of Gas Shale[J]. Petroleum Drilling Techniques, 2013, 41(5): 31-35. DOI: 10.3969/j.issn.1001-0890.2013.05.006
    [9]Zhang Xinhua, Zou Xiaochun, Zhao Hongyan, Li Fang, Qin Liming. A New Method of Evaluation Shale Brittleness Using X-ray Fluorescence Element Logging Data[J]. Petroleum Drilling Techniques, 2012, 40(5): 92-95. DOI: 10.3969/j.issn.1001-0890.2012.05.020
    [10]Shi Bingzhong, Xia Bairu, Gao Shuyang, Tang Wenquan, Xu Jiang. Development and Performance Evaluation of Shale Self-Absorption Hydration Inhibitor[J]. Petroleum Drilling Techniques, 2012, 40(5): 45-49. DOI: 10.3969/j.issn.1001-0890.2012.05.010
  • Cited by

    Periodical cited type(10)

    1. 曾文广,王熙,李芳,张江江,曾德智. 稠油井内衬保温油管热损失分析及开采参数优化. 特种油气藏. 2024(01): 144-151 .
    2. 贾培锋,崔传智,赵益忠,吴忠维,张雨晨. 粉细砂岩油藏防砂井堵塞规律研究及充填参优化. 西南石油大学学报(自然科学版). 2023(01): 136-144 .
    3. 贾培锋,崔传智,吴忠维,魏庆彩,任家敏,韩宏. 薄互层稠油油藏二次防砂井工艺及应用. 断块油气田. 2023(03): 511-516 .
    4. 张丰琰,李立鑫,韩丽丽. 保温水泥在中低温地热井中的应用及建议. 地质与勘探. 2022(02): 410-419 .
    5. 刘立君,王东岩,李晓庆,刘晓燕. 井筒温度场、压降及温度-压力耦合模型研究现状. 当代化工. 2021(02): 422-427 .
    6. 熊超,刘力,徐小龙,卓鲁斌. 隔热套管抑制水合物地层分解规律研究. 石油机械. 2021(03): 65-71 .
    7. 王小兵,吕雷纲,李森,刘阳,龚浩宇,王多琦,杜明智,赵延钢. 热水循环采油工艺的影响参数研究. 石油矿场机械. 2020(01): 36-40 .
    8. 刘玉国. 孤岛油田稠油井筒举升降黏工艺选择. 石油机械. 2020(02): 114-119 .
    9. 赵旭亮,刘永莉. 外连接预应力隔热管改进及受力分析. 石油矿场机械. 2020(05): 70-74 .
    10. 李阳,杨勇. 老油田绿色低成本开发探索与实践. 油气地质与采收率. 2019(02): 1-6 .

    Other cited types(1)

Catalog

    Article Metrics

    Article views (3407) PDF downloads (3218) Cited by(11)
    Related

    /

    DownLoad:  Full-Size Img  PowerPoint
    Return
    Return