|
|
|
| Damage effect of coalbed methane transport on coal strength |
| CHENG Xianzhen1,CHEN Lianjun1,LUAN Hengjie1,CHEN Zhongwei2,JIANG Yujing1,3 |
(1. College of Energy and Mining Engineering,Shandong University of Science and Technology,Qingdao,Shandong 266590,China;2. School of Mechanical and Mining Engineering,University of Queensland,Brisbane 4072,Australia;
3. Graduate School of Engineering,Nagasaki University,Nagasaki 852–8521,Japan) |
|
|
|
|
Abstract During coalbed methane mining,the gas pressure interactions within the matrix- fracture cause damage effects in the coal seam,resulting in a reduction on the strength of the coal. To investigate the damage effect of the coal strength,a conceptual model of matrix and fracture geometry deformation was proposed,and then,a permeability model with coupled damage constitutive parameters was deduced. The strength post-processing calculations for the permeability model considering gas action were also carried out by the COMSOL live link with MATLAB program. The results show that the permeability model obtained from the pore fundamentals is suitable for different boundary conditions,and that the new model matches the experimental data well under uniaxial strain and constant stress conditions while the Palmer-Mansoori(P-M) model is only suitable for uniaxial strain boundary conditions. Compared to the control coal samples,the strengths of the samples with Young¢s modulus ratios of 1/3,1/5,1/7 and 1/10 decrease by 46.6%,32.0%,27.9% and 26.4% respectively after gas action. The damage effect of gas transport on the strength of the coal sample contributes to the porosity of the coal in the form of damage-induced strain,and pore development changes the extension trace of the main fracture after uniaxial loading. Post-processing calculations of the permeability model were programmed to realize the evaluation of the damage effect on the coal strength arising from coal bed methane transport.
|
|
|
|
|
|
[1] 王超文,彭小龙,朱苏阳,等. 大倾角厚煤层煤层气开采井型优化及布井方法[J]. 岩石力学与工程学报,2019,38(2):313–320. (WANG Chaowen,PENG Xiaolong,ZHU Suyang,et al. Coalbed methane well-type optimization and well pattern arrangement for thick coal seam with a large dip angle[J]. Chinese Journal of Rock Mechanics and Engineering,2019,38(2):313–320.(in Chinese))
[2] 陈月霞,许 江,褚廷湘,等. 相似煤储层瓦斯压力计算模型及其空间分布特征[J]. 中国矿业大学学报,2021,50(3):606–612. (CHEN Yuexia,XU Jiang,ZHU Tingxiang,et al. Calculation model of gas pressure in similar coal reservoir and its spatial distribution characteristic[J]. Journal of China University of Mining and Technology,2021,50(3):606–612.(in Chinese))
[3] 秦 勇. 煤系气聚集系统与开发地质研究进展及战略思考[J]. 煤炭学报,2021,46(8):2 387–2 399.(QIN Yong. Research progress and strategic thinking of coal measure gas accumulation system and development geology[J]. Journal of China Coal Society,2021,46(8):2 387–2 399.(in Chinese))
[4] ZHOU H W,ZHANG L,WANG X Y,et al. Effects of matrix-fracture interaction and creep deformation on permeability evolution of deep coal[J]. International Journal of Rock Mechanics and Mining Sciences,2020,127(1):104 236–104 245.
[5] 杨陆武,崔玉环,王国玲. 影响中国煤层气产业发展的技术和非技术要素分析[J/OL]. 煤炭学报,2021,DOI:10.13225/ j.cnki.jccs.CB21.0760.(YANG Luwu,CUI Yuhuan,WANG Guoling. Analysis of technical and regulation aspects holding China CBM progresses[J/OL]. Journal of China Coal Society,2021,DOI:10.13225/j.cnki.jccs.CB21.0760.(in Chinese))
[6] 袁 亮. 中国工程院院士袁亮:非常规气的中国路径[N]. 中国能源报,2013–1–23.(YUAN Liang. Unconventional gas pathway in China[N]. China Energy News,2013–1–23.(in Chinese))
[7] CHEN Z,LIU J,PAN Z,et al. Influence of the effective stress coefficient and sorption-induced strain on the evolution of coal permeability:Model development and analysis[J]. International Journal of Greenhouse Gas Control,2012,8(5):101–110.
[8] TAO S,WANG Y B,TANG D Z,et al. Dynamic variation effects of coal permeability during the coalbed methane development process in the Qinshui Basin,China[J]. International Journal of Coal Geology,2012,93(11):16–22.
[9] 程远平,俞启香. 煤层群煤与瓦斯安全高效共采体系及应用[J]. 中国矿业大学学报,2003,32(5):471–475.(CHENG Yuanping,YU Qixiang. Application of safe and high-efficient exploitation system of coal and gas in coal seams[J]. Journal of China University of Mining and Technology,2003,32(5):471–475.(In Chinese))
[10] 程远平,雷 杨. 构造煤和煤与瓦斯突出关系的研究[J]. 煤炭学报,2021,46(1):180–198.(CHENG Yuanping,LEI Yang. Causality between tectonic coal and coal and gas outbursts[J]. Journal of China Coal Society,2021,46(1):180–198.(In Chinese))
[11] MAJEWSKA Z,ZIETEK J. Changes of acoustic emission and strain in hard coal during gas sorption-desorption cycles[J]. International Journal of Coal Geology,2007,70(4):305–312.
[12] ROBERTS M,EVERSON R,NEOMAGUS H,et al. Influence of maceral composition on the structure,properties and behaviour of chars derived from South African coals[J]. Fuel,2015,142(6):9–20.
[13] GATHITU B B,CHEN W Y,MCCLURE M. Effects of coal interaction with supercritical CO2:Physical structure[J]. Industrial and Engineering Chemistry Research,2009,48(10):5 024–5 034.
[14] SAMPATH K,SIN I,PERERA M,et al. Effect of supercritical—CO2 interaction time on the alterations in coal pore structure[J]. Journal of Natural Gas Science and Engineering,2020,76(9):103 214–103 225.
[15] VIETE D R,RANJITH P G. The effect of CO2 on the geomechanical and permeability behaviour of brown coal:Implications for coal seam CO2 sequestration[J]. International Journal of Coal Geology,2006,66(3):204–216.
[16] LARSEN J W. The effects of dissolved CO2 on coal structure and properties[J]. International Journal of Coal Geology,2004,57(1):63–70.
[17] ZAGORŠ?AK R,THOMAS H R. Effects of subcritical and supercritical CO2 sorption on deformation and failure of high-rank coals[J]. International Journal of Coal Geology,2018,199(2):113–123.
[18] GRGIC D,GIRAUD A,SCHOUMACKER L. Dynamic anisotropic elastic properties of a claystone under variable loading direction and saturation[J]. Geophysical Journal International,2018,216(1):148–163.
[19] 赵延林,刘 强,刘 欢,等. 水–力耦合作用下单裂隙灰岩三轴压缩与声发射试验及压剪断裂模型[J/OL]. 煤炭学报,2021,DOI:11.2190.td.20210608.1126.002.(ZHAO Yanlin,LIU Qiang,LIU Huan,et al. Triaxial compression and acoustic emission tests on single cracked limestone and compression-shear fracture model under hydraulic-mechanical coupling action[J/OL]. Journal of China Coal Society,2021,DOI:11.2190.td.20210608.1126.002.(in Chinese))
[20] 唐世斌,唐春安,朱万成,等. 热应力作用下的岩石破裂过程分析[J]. 岩石力学与工程学报,2006,25(10):2 071–2 078.(TANG Shibin,TANG Chun¢an,ZHU Wancheng,et al. Numerical investigation on rock failure process induced by thermal stress[J]. Chinese Journal of Rock Mechanics and Engineering,2006,25(10):2 071–2 078.(in Chinese))
[21] LI S C,WU J,XU Z H,et al. Mechanics criterion of water inrush from the coal floor under influence of fault and its engineering application[J]. International Journal of Geomechanics,2019,19(5):90 221–90 229.
[22] SAMPATH K H S M,PERERA M S A,LI D Y,et al. Evaluation of the mechanical behaviour of brine+CO2 saturated brown coal under mono-cyclic uni-axial compression[J]. Engineering Geology,2019,263(8):105 312–105 323.
[23] 陈光波,李 谭,张国华,等. 煤岩组合体破坏前能量积聚规律试验研究[J/OL]. 煤炭学报,2020,DOI:10.13225/j.cnki.jccs. 2020. 1 511.(CHEN Guangbo,LI Tan,ZHANG Guohua,et al. Experimental study on the law of energy accumulation before failure of coal-rock combined body[J/OL]. Journal of China Coal Society,2020,DOI:10.13225/j.cnki.jccs. 2020. 1 511.(in Chinese))
[24] 刘江峰,倪宏阳,浦 海,等. 多孔介质气体渗透率测试理论、方法、装置及应用[J]. 岩石力学与工程学报,2021,40(1):137–146.(LIU Jiangfeng,NI Hongyang,PU Hai,et al. Test theory,method,and device of gas permeability of porous media and the application[J]. Chinese Journal of Rock Mechanics and Engineering,2021,40(1):137–146.(in Chinese))
[25] BANDYOPADHAYAY K,MALLIK J,SHAJAHAN R,et al. Closing the gap between analytical and measured coal permeability[J]. Fuel,2020,281(7):118 752–118 765.
[26] 谢和平,周宏伟,刘建锋,等. 不同开采条件下采动研究[J]. 煤炭学报,2011,36(7):1 067–1 074.(XIE Heping,ZHOU Hongwei,LIU Jianfeng,et al. Mining-induced mechanical behavior in coal seams under different mining layouts[J]. Journal of China Coal Society,2011,36(7):1 067–1 074.(in Chinese))
[27] 周宏伟,荣腾龙,牟瑞勇,等. 动应力下煤体渗透率模型构建及研究进展[J]. 煤炭学报,2019,44(1):221–235.(ZHOU Hongwei,RONG Tenglong,MOU Ruiyong,et al. Development in modeling approaches to mining-induced permeability of coals[J]. Journal of China Coal Society,2019,44(1):221–235.(in Chinese))
[28] SALARI M R,SAEB S,WILLAM K J,et al. A coupled elastoplastic damage model for geomaterials[J]. Computer Methods in Applied Mechanics and Engineering,2004,193(27/29):2 625–2 643.
[29] HU S,WANG E,KONG X. Damage and deformation control equation for gas-bearing coal and its numerical calculation method[J]. Journal of Natural Gas science and Engineering,2015,25(4):166–179.
[30] WANG E,KONG X,HU S,et al. Multi-scale fractured coal gas-solid coupling model and its applications in engineering projects[J]. Transport in Porous Media,2018,121(11):703–724.
[31] CHEN D,PAN Z,SHI J Q,et al. A novel approach for modelling coal permeability during transition from elastic to post-failure state using a modified logistic growth function[J]. International Journal of Coal Geology,2016,16(7):1 422–1 439.
[32] CUI X,BUSTIN R M. Volumetric strain associated with methane desorption and its impact on coalbed gas production from deep coal seams[J]. Aapg Bulletin,2005,89(9):1 181–1 202.
[33] ZHANG X M,ZHANG D M,LEO C J,et al. Damage evolution and post-peak gas permeability of raw coal under loading and unloading conditions[J]. Transport in Porous Media,2017,117(3):465–480.
[34] ZHU W C,WEI C H,LI S,et al. Numerical modeling on destress blasting in coal seam for enhancing gas drainage[J]. International Journal of Rock Mechanics and Mining Sciences,2013,59(3):179–190.
[35] ZHANG C S,MEHMET K,CHEN Z W,et al. Effects of coal damage on permeability and gas drainage performance[J]. International Journal of Mining Science and Technology,2017,27(5):783–786.
[36] CONNELL L D. A new interpretation of the response of coal permeability to changes in pore pressure,stress,and matrix shrinkage[J]. International Journal of Coal Geology,2016,162(1):169–182.
[37] LIU L,ZHU W,WEI C,et al. Microcrack-based geomechanical modeling of rock-gas interaction during supercritical CO2 fracturing[J]. Journal of Petroleum Science and Engineering,2018,164(6):91–102.
[38] 辛 林,冯洺泽,谢 军,等. 煤岩单向加热模拟试验装置的研发与应用[J/OL]. 煤炭学报,2021,DOI:10.13225/j.cnki.jccs.hz21. 0435.(XIN Lin,FENG Mingze,XIE Jun,et al. Development and application of coal rock unidirectional heating simulation test device for underground coal gasification[J/OL]. Journal of China Coal Society,2021,DOI:10.13225/j.cnki.jccs.hz21.0435.(in Chinese))
[39] JEAN L,JACQUES D. Damage measurements[J]. Engineering Fracture Mechanics,1987,28(5):643–661.
[40] DETOUMAY E,CHENG A H D. Fundamentals of poroelasticity[J]. Analysis and Design Methods,1993,2(1):113–171.
[41] TAHERI A,SQUIRES J,MENG Z,et al. Mechanical properties of brown coal under different loading conditions[J]. International Journal of Geomechanics,2017,17(11):06017020.
[42] WEI C H,ZHU W C,YU Q L,et al. Numerical simulation of excavation damaged zone under coupled thermal-mechanical conditions with varying mechanical parameters[J]. International Journal of Rock Mechanics and Mining sciences,2015,75(3):169–181.
[43] SAGHAFI A,FAIZ M,ROBERTS D. CO2 storage and gas diffusivity properties of coals from Sydney basin,Australia[J]. International Journal of Coal Geology,2007,70(1/3):240–254.
[44] CHENG X Z,LUAN H J,CHEN L J,et al. Numerical investigation on mechanical properties of inhomogeneous coal under uniaxial compression and the role of cleat distribution[J]. Bulletin of Engineering Geology and the Environment,2021,3(7):1–19.
[45] LU S Q,CHENG Y P,LI W. Model development and analysis of the evolution of coal permeability under different boundary conditions[J]. Journal of Natural Gas Science and Engineering,2016,31(7):129–138.
[46] ROBERTSON E P,CHRISTIANSEN R L. Modeling permeability in coal using sorption—induced strain data[C]// Proceedings of the 2005 SPE annual technical conference and exhibition. Dallas:Society of Petroleum Engineers,2005:97 068–97 079.
[47] WEIBULL W. A statistical distribution function of wide applicability[J]. Journal of Applied Mechanics,1951,18(9):293–297.
[48] ROBERTSON E P,CHRISTIANSEN R L. Modeling laboratory permeability in coal using sorption-induced strain data[J]. SPE Reservoir Evaluation and Engineering,2007,10(3):260–269.
[49] ZHANG H,LIU J,ELSWORTH D. How sorption-induced matrix deformation affects gas flow in coal seams:A new FE model[J]. International Journal of Rock Mechanics and Mining Sciences,2008,45(8):1 226–1 236.
[50] DAY S,FRY R,SAKUROVS R. Swelling of coal in carbon dioxide,methane,and their mixtures[J]. International Journal of Coal Geology,2012,93(2):40–48.
[51] 朱振飞,陈国庆,肖宏跃,等. 基于声发射多参量分析的岩桥裂纹扩展研究[J]. 岩石力学与工程学报,2018,37(4):909–918.(ZHU Zhenfei,CHEN Guoqing,XIAO Hongyue,et al. Study on crack propagation of rock bridge based on multi parameters analysis of acoustic emission[J]. Chinese Journal of Rock Mechanics and Engineering,2018,37(4):909–918.(in Chinese))
[52] ZHOU G,XU T,HEAP M J,et al. A three-dimensional numerical meso-approach to modeling time-independent deformation and fracturing of brittle rocks[J]. Computers and Geotechnics,2019,117(3):103 274–103 281.
[53] ZHANG B,FU X,LI G,et al. An experimental study on the effect of nitrogen injection on the deformation of coal during methane desorption[J]. Journal of Natural Gas Science and Engineering,2020,83(5):103 529–103 536. |
| [1] |
LI Botao1, 2, 3, TAN Yuxuan1, LIN Haifei4, 5*, WEI Jianping1, 2, 3, ZHANG Hongtu1, 2, 3, LI Shugang4, 5, WEI Zongyong4, 5, WANG Pei4, LUO Rongwei4, LIU Yanwei1, 2, 3. Mechanical properties and mesoscopic damage evolution of coal under liquid-nitrogen freezing at different initial temperatures[J]. , 2026, 45(6): 1757-1772. |
|
|
|
|