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Coal Geology & Exploration

Abstract

Objective The coal-bearing strata in the Linxing block on the eastern margin of the Ordos Basin exhibit the alternating occurrence of multiple sequences and vertical thin layers (interlayers). Therefore, multi-reservoir commingled fracturing is essential for the cost-effective, efficient exploitation of coal-measure gas from these coal-bearing strata. The key to successful multi-reservoir commingled fracturing is the achievement of expected fracture heights. The current challenges include the unclear vertically extended distance and morphologies of fractures, along with great deviations between the predicted and actual fracture heights, significantly affecting the volume of reservoirs for production growth. Methods Based on the in-situ stresses on the roofs and floors of coal seams determined using indoor experiments, the fracturing pressures of their overlying and underlying strata, and fracture morphologies reflected by the field test data and the formula for the critical seam length, we analyzed the multi-reservoir commingled fracturing schemes for four modes: Single coal seam, an upper coal seam and lower sandstone, upper sandstone and a lower coal seam, and an upper coal seam, middle sandstones, and a lower coal seam. Consequently, we proposed technique optimization measures to improve fracture morphologies and fracturing effects. Results and Conclusion The results indicate that, by taking advantage of the upper and lower strata as barriers in initial fracturing, multi-reservoir commingled fracturing can increase the fracture lengths in coal seams by limiting the fracture heights. In the case where sandstones are primarily to be simulated, the main goal of fracturing is to create long fractures in the sandstone layer to improve the conductivity of fractures. Both the calculated fracturing parameters and field fracturing examples indicate that the fracture height increased more significantly than the fracture length, making it necessary to adjust the fracturing techniques and parameters. During fracturing design, the fracturing fluid volume should be optimized based on the needs of multi-reservoir commingled fracturing to ensure a greater increase in the fracture length than in the fracture height. The results of this study can provide a certain theoretical basis for the applicability of the multi-reservoir commingled fracturing, as well as the stress calculation of various layers, the selection of the initial fracturing horizon, and the design of fracturing fluid volumes for various stratigraphic assemblages in the process of multi-reservoir commingled fracturing.

Keywords

coal measure, multi-reservoir commingled fracturing, fracture propagation, fracture height, fracturing horizon

DOI

10.12363/issn.1001-1986.24.02.0098

Reference

[1] 刘建忠,朱光辉,刘彦成,等. 鄂尔多斯盆地东缘深部煤层气勘探突破及未来面临的挑战与对策:以临兴–神府区块为例[J]. 石油学报,2023,44(11):1827−1839.

LIU Jianzhong,ZHU Guanghui,LIU Yancheng,et al. Breakthrough,future challenges and countermeasures of deep coalbed methane in the eastern margin of Ordos Basin:A case study of Linxing-Shenfu Block[J]. Acta Petrolei Sinica,2023,44(11):1827−1839.

[2] 朱光辉,李本亮,李忠城,等. 鄂尔多斯盆地东缘非常规天然气勘探实践及发展方向:以临兴–神府气田为例[J]. 中国海上油气,2022,34(4):16−29.

ZHU Guanghui,LI Benliang,LI Zhongcheng,et al. Practices and development trend of unconventional natural gas exploration in eastern margin of Ordos Basin:Taking Linxing-Shenfu gas field as an example[J]. China Offshore Oil and Gas,2022,34(4):16−29.

[3] ABBAS S,GORDELIY E,PEIRCE A,et al. Limited height growth and reduced opening of hydraulic fractures due to fracture offsets:An XFEM application[C]//All Days. The Woodlands,Texas,USA. SPE,2014.

[4] GU Hongren,SIEBRITS E. Effect of formation modulus contrast on hydraulic fracture height containment[J]. SPE Production & Operations,2008,23(2):170−176.

[5] FISHER K,WARPINSKI N. Hydraulic-fracture-height growth:Real data[J]. SPE Production & Operations,2012,27(1):8−19.

[6] 王小东,张守仁,吴见,等. 基于分段压裂水平井的临兴区块煤层气开发数值模拟[J]. 煤质技术,2024,39(2):53−60.

WANG Xiaodong,ZHANG Shouren,WU Jian,et al. Numerical simulation of coalbed methane development in Linxing block based on segmented fractured horizontal wells[J]. Coal Quality Technology,2024,39(2):53−60.

[7] SIMONSON E R,ABOU-SAYED A S,CLIFTON R J. Containment of massive hydraulic fractures[J]. Society of Petroleum Engineers Journal,1978,18(1):27−32.

[8] 张庆辉,陈晓冬,郭宁,等. 水力裂缝高度关键影响因素不确定性分析[J]. 钻采工艺,2020,43(2):49−52.

ZHANG Qinghui,CHEN Xiaodong,GUO Ning,et al. Uncertainty analysis of key factors affecting fracture height[J]. Drilling & Production Technology,2020,43(2):49−52.

[9] PHILIPP S,AF\CSAR F,GUDMUNDSSON A. Effects of mechanical layering on hydrofracture emplacement and fluid transport in reservoirs[J]. Frontiers in Earth Science,2013,1:4.

[10] WENG Xiaowei,CHUPRAKOV D,KRESSE O,et al. Hydraulic fracture-height containment by permeable weak bedding interfaces[J]. Geophysics,2018,83(3):137−152.

[11] PEACOCK D C P,SANDERSON D J,ROTEVATN A. Relationships between fractures[J]. Journal of Structural Geology,2018,106:41−53.

[12] HOU Bing,CHANG Zhi,FU Weineng,et al. Fracture initiation and propagation in a deep shale gas reservoir subject to an alternating-fluid-injection hydraulic-fracturing treatment[J]. SPE Journal,2019,24(4):1839−1855.

[13] WAN Liming,HOU Bing,TAN Peng,et al. Observing the effects of transition zone properties on fracture vertical propagation behavior for coal measure strata[J]. Journal of Structural Geology,2019,126:69−82.

[14] 陈灿,刘贤,肖洪天. 塔山煤矿坚硬顶板水力压裂裂缝扩展规律研究[J]. 矿业研究与开发,2020,40(9):75−80.

CHEN Can,LIU Xian,XIAO Hongtian. Study of fracture propagation law of hydraulic fracturing in hard roof of tashan coal mine[J]. Mining Research and Development,2020,40(9):75−80.

[15] TANG Jizhou,WU Kan,ZENG Bo,et al. Investigate effects of weak bedding interfaces on fracture geometry in unconventional reservoirs[J]. Journal of Petroleum Science and Engineering,2018,165:992−1009.

[16] SMITH M B,BALE A B,BRITT L K,et al. Layered modulus effects on fracture propagation,proppant placement,and fracture modeling[C]//Proceedings of SPE Annual Technical Conference and Exhibition. Society of Petroleum Engineers,2001.

[17] TAN Peng,JIN Yan,YUAN Liang,et al. Understanding hydraulic fracture propagation behavior in tight sandstone–coal interbedded formations:An experimental investigation[J]. Petroleum Science,2019,16(1):148−160.

[18] MCCLURE M W,HORNE R N. Discrete fracture network modeling of hydraulic stimulation:Coupling flow and geomechanics[M]. Heidelberg:Springer International Publishing,2013.

[19] WU Kan,OLSON J E. Simultaneous multifracture treatments:Fully coupled fluid flow and fracture mechanics for horizontal wells[J]. SPE Journal,2015,20(2):337−346.

[20] 赵海峰,陈勉,金衍. 水力裂缝在地层界面的扩展行为[J]. 石油学报,2009,30(3):450−454.

ZHAO Haifeng,CHEN Mian,JIN Yan. Extending behavior of hydraulic fracture on formation interface[J]. Acta Petrolei Sinica,2009,30(3):450−454.

[21] BIOT M A,MEDLIN W L,MASSÉ L. Fracture penetration through an interface[J]. Society of Petroleum Engineers Journal,1983,23(6):857−869.

[22] ZHENG Heng,PU Chunsheng,WANG Yong,et al. Experimental and numerical investigation on influence of pore-pressure distribution on multi-fractures propagation in tight sandstone[J]. Engineering Fracture Mechanics,2020,230:106993.

[23] PALMER I D,CRAIG H R. Modeling of asymmetric vertical growth in elongated hydraulic fractures and application to first MWX stimulation[C]//Proceedings of SPE Unconventional Gas Recovery Symposium. Society of Petroleum Engineers,1984.

[24] ZHAO Wenwei,JI Guofa,LI Kuidong,et al. A new pseudo 3D hydraulic fracture propagation model for sandstone reservoirs considering fracture penetrating height[J]. Engineering Fracture Mechanics,2022,264:108358.

[25] NORDGREN R P. Propagation of a vertical hydraulic fracture[J]. Society of Petroleum Engineers Journal,1972,12(4):306−314.

[26] 王波,吴鹏,赵刚,等. 临兴区块煤系地层多层合压可行性研究[J]. 煤炭工程,2022,54(6):151−157.

WANG Bo,WU Peng,ZHAO Gang,et al. Feasibility analysis of coal-measure strata multi-layer compression in Linxing Block[J]. Coal Engineering,2022,54(6):151−157.

[27] 杨秀春,徐凤银,王虹雅,等. 鄂尔多斯盆地东缘煤层气勘探开发历程与启示[J]. 煤田地质与勘探,2022,50(3):30−41.

YANG Xiuchun,XU Fengyin,WANG Hongya,et al. Exploration and development process of coalbed methane in eastern margin of Ordos Basin and its enlightenment[J]. Coal Geology & Exploration,2022,50(3):30−41.

[28] 徐凤银,闫霞,李曙光,等. 鄂尔多斯盆地东缘深部(层)煤层气勘探开发理论技术难点与对策[J]. 煤田地质与勘探,2023,51(1):115−130.

XU Fengyin,YAN Xia,LI Shuguang,et al. Theoretical and technological difficulties and countermeasures of deep CBM exploration and development in the eastern edge of Ordos Basin[J]. Coal Geology & Exploration,2023,51(1):115−130.

[29] 高向东,王延斌,倪小明,等. 临兴地区深部煤岩力学性质及其对煤储层压裂的影响[J]. 煤炭学报,2020,45(增刊2):912−921.

GAO Xiangdong,WANG Yanbin,NI Xiaoming,et al. Mechanical properties of deep coal and rock in Linxing area and its influence on coal reservoir fracturing[J]. Journal of China Coal Society,2020,45(Sup.2):912−921.

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