•  
  •  
 

Coal Geology & Exploration

Abstract

The adsorption and desorption mechanisms of coalbed methane (CBM) are foundational for revealing CBM accumulation mechanisms and achieving efficient CBM exploitation. Studies have indicated that coal reservoirs exhibit complex pore structures with fractal features, significantly influencing CBM adsorption at pore-solid interfaces. Based on a comparative analysis of several common adsorption models for gas-solid interfaces and a summary of their characteristics and applicable conditions, this study suggests that all these adsorption models still rely on the stationary assumption of adsorption selectivity for the description and application of CBM adsorption behavior at fractal interfaces while overlooking the scale invariance of the adsorption thickness. The fractal topography theory can effectively calibrate the scale invariance of fractal objects, providing theoretical support for the equivalent characterization of fractal interfaces. Hence, in combination with the description of CBM adsorption behavior at gas-solid interfaces in the above models, together with the fractal topography theory, this study proposed related hypotheses and control mechanisms of fractal adsorption behavior at pore-solid interfaces in coal reservoirs. Furthermore, it constructed an adsorption topography-based monolayer adsorption model, obtaining adsorption isotherms under different combinations of adsorption topological parameters. The analysis reveals that as the adsorption pressure increased, the adsorption coverage exhibited three distinct growth trends: exponential, linear, and logarithmic, while the adsorption heat displayed a trend of logarithmic decrease. The results of this study show that different combinations of adsorption topological parameters can yield different adsorption isotherms, making up for the deficiency that the Langmuir equation can merely describe a single type of adsorption isotherms. To verify the applicability of the model constructed, this study compared the actual adsorption isotherms with the simulated ones using the liquid nitrogen adsorption data of organic-rich argillaceous shale samples from the Wuxiang block of the Qinshui Basin. The finding indicates that adjusting the combinations of adsorption topological parameters can align the trends of simulated adsorption isotherms with those of actual ones. Finally, this study explored the research direction of the adsorption and desorption mechanisms and proposed the adsorption layer concept through analogy with the electron layer, emphasizing that developing fractal dynamics description models is essential for illuminating CBM adsorption and desorption regularities.

Keywords

coalbed methane (CBM), adsorption and desorption, fractal feature, pore-solid interface, pore structure, adsorption model

DOI

10.12363/issn.1001-1986.24.01.0035

Reference

[1] 傅雪海,张小东,韦重韬. 煤层含气量的测试、模拟与预测研究进展[J]. 中国矿业大学学报,2021,50(1):13−31.

FU Xuehai,ZHANG Xiaodong,WEI Chongtao. Review of research on testing,simulation and prediction of coalbed methane content[J]. Journal of China University of Mining & Technology,2021,50(1):13−31.

[2] 秦勇,申建,李小刚. 中国煤层气资源控制程度及可靠性分析[J]. 天然气工业,2022,42(6):19−32.

QIN Yong,SHEN Jian,LI Xiaogang. Control degree and reliability of CBM resources in China[J]. Natural Gas Industry,2022,42(6):19−32.

[3] 任少魁,秦玉金,贾宗凯,等. 不同煤阶煤孔隙结构分形表征及其对甲烷吸附特性的影响[J]. 煤矿安全,2023,54(5):175−181.

REN Shaokui,QIN Yujin,JIA Zongkai,et al. Fractal characterization of pore structure of coal with different ranks and its effect on methane adsorption characteristics[J]. Safety in Coal Mines,2023,54(5):175−181.

[4] 孙波,王魁军,张兴华. 煤的分形孔隙结构特征的研究[J]. 煤矿安全,1999,30(1):38−40.

SUN Bo,WANG Kuijun,ZHANG Xinghua. Research into the fractal character of pore structures in coal Fushun branch of CCRI[J]. Safety in Coal Mines,1999,30(1):38−40.

[5] ZHANG Liehui,LI Jianchao,TANG Hongming,et al. Fractal pore structure model and multilayer fractal adsorption in shale[J]. Fractals,2014,22(3):1440010-1–1440010-12.

[6] 周动,冯增朝,赵东,等. 煤表面非均匀势阱吸附甲烷特性数值模拟[J]. 煤炭学报,2016,41(8):1968−1975.

ZHOU Dong,FENG Zengchao,ZHAO Dong,et al. Numerical simulation on the methane adsorption characteristics of coal with non–uniform potential well[J]. Journal of China Coal Society,2016,41(8):1968−1975.

[7] YANG Yunhang,JIN Yi,DONG Jiabin,et al. Theoretical analysis and numerical simulation of methane adsorption behavior on rough surfaces featuring fractal property[J]. Fuel,2024,362:130884.

[8] 金毅,祝一搏,吴影,等. 煤储层粗糙割理中煤层气运移机理数值分析[J]. 煤炭学报,2014,39(9):1826−1834.

JIN Yi,ZHU Yibo,WU Ying,et al. Numerical investigation of migration mechanism for coal–bed methane flow through cleats with rough surfaces in coal reservoir[J]. Journal of China Coal Society,2014,39(9):1826−1834.

[9] 陈欢庆,曹晨,梁淑贤,等. 储层孔隙结构研究进展[J]. 天然气地球科学,2013,24(2):227−237.

CHEN Huanqing,CAO Chen,LIANG Shuxian,et al. Research advances on reservoir pores[J]. Natural Gas Geoscience,2013,24(2):227−237.

[10] 彭阳阳,杜景卫. 新疆阜康矿区煤储层孔隙分形特征研究[J]. 煤炭技术,2015,34(2):90−92.

PENG Yangyang,DU Jingwei. Research on characteristics of fractures of coal reservoirs porosity in Xinjiang Fukang mining area[J]. Coal Technology,2015,34(2):90−92.

[11] 李树刚,周雨璇,胡彪,等. 低阶煤吸附孔结构特征及其对甲烷吸附性能影响[J]. 煤田地质与勘探,2023,51(2):127−136.

LI Shugang,ZHOU Yuxuan,HU Biao,et al. Structural characteristics of adsorption pores in low–rank coals and their effects on methane adsorption performance[J]. Coal Geology & Exploration,2023,51(2):127−136

[12] 高彬,黄华州,宁娜,等. 构造煤纳米级孔隙特征及其对含气性的影响[J]. 煤田地质与勘探,2018,46(5):182−187.

GAO Bin,HUANG Huazhou,NING Na,et al. Pore size characteristics of tectonic coal and its influence on gas bearing properties[J]. Coal Geology & Exploration,2018,46(5):182−187.

[13] FU Haijiao,TANG Dazhen,XU Ting,et al. Characteristics of pore structure and fractal dimension of low–rank coal:A case study of Lower Jurassic Xishanyao coal in the southern Junggar Basin,NW China[J]. Fuel,2017,193:254−264.

[14] CAI Yidong,LIU Dameng,YAO Yanbin,et al. Fractal characteristics of coal pores based on classic geometry and thermodynamics models[J]. Acta Geologica Sinica (English Edition),2011,85(5):1150−1162.

[15] JIN Yi,WU Ying,LI Hui,et al. Definition of fractal topography to essential understanding of scale–invariance[J]. Scientific Reports,2017,7:46672.

[16] JIN Yi,LIU Xianhe,SONG Huibo ,et al. General fractal topography:An open mathematical framework to characterize and model mono–scale–invariances[J]. Nonlinear Dynamics,2019,96(4):2413–2436.

[17] 金毅,刘丹丹,郑军领,等. 自然分形多孔储层复杂类型及其组构模式表征:理论与方法[J]. 岩石力学与工程学报,2023,42(4):781−797.

JIN Yi,LIU Dandan,ZHENG Junling,et al. Principle and approach for the characterization of complexity types and their assembly pattern in natural fractal porous reservoir[J]. Chinese Journal of Rock Mechanics and Engineering,2023,42(4):781−797.

[18] 金彦任,黄振兴. 吸附与孔径分布[M]. 北京:国防工业出版社,2015.

[19] 邱峰. 煤层气吸附/解吸过程中能量变化特征[D]. 北京:中国地质大学,2021.

QIU Feng. Variation characteristics of energy in the process of coalbed methane adsorption and desorption[D]. Beijing:China University of Geosciences (Beijing),2021.

[20] 张遵国,曹树刚,洪林,等. 突出危险型煤瓦斯等温解吸试验研究[J]. 中国安全科学学报,2017,27(7):115−120.

ZHANG Zunguo,CAO Shugang,HONG Lin,et al. Experimental study on isothermal desorption of methane from outburst–prone briquette[J]. China Safety Science Journal,2017,27(7):115−120.

[21] 刘珊珊,孟召平. 等温吸附过程中不同煤体结构煤能量变化规律[J]. 煤炭学报,2015,40(6):1422−1427.

LIU Shanshan,MENG Zhaoping. Study on energy variation of different coal–body structure coals in the process of isothermal adsorption[J]. Journal of China Coal Society,2015,40(6):1422−1427.

[22] 张雪龄,谷军恒,叶强,等. 分子模拟技术在页岩油气吸附和流动特性研究中的应用进展[J]. 中国海上油气,2023,35(3):103−115.

ZHANG Xueling,GU Junheng,YE Qiang,et al. Application progress of molecular simulation technology in the study of adsorption and flow characteristics of shale oil and gas[J]. China Offshore Oil and Gas,2023,35(3):103−115.

[23] 穆中奇,宁正福,吕方涛,等. 页岩气多层吸附的分子模拟与理论模型[J]. 西安石油大学学报(自然科学版),2023,38(1):69–76.

MU Zhongqi,NING Zhengfu,LYU Fangtao,et al. Molecular simulation and theoretical model of shale gas multilayer adsorption[J]. Journal of Xi’an Shiyou University (Natural Science Edition),2023,38(1):69–76,84.

[24] LANGMUIR I. The adsorption of gases on plane surfaces of glass,mica and platinum[J]. Journal of the American Chemical Society,1918,40(9):1361−1403.

[25] BRUNAUER S,EMMETT P H,TELLER E. Adsorption of gases in multimolecular layers[J]. Journal of the American Chemical Society,1938,60(2):309−319.

[26] PFEIFER P,AVNIR D. Chemistry in noninteger dimensions between two and three. I. Fractal theory of heterogeneous surfaces[J]. The Journal of Chemical Physics,1983,79(7):3558−3565.

[27] DUBININ M M,STOECKLI H F. Homogeneous and heterogeneous micropore structures in carbonaceous adsorbents[J]. Journal of Colloid and Interface Science,1980,75(1):34−42.

[28] PFEIFER P,WU Y J,COLE M W,et al. Multilayer adsorption on a fractally rough surface[J]. Physical Review Letters,1989,62(17):1997−2000.

[29] 邹卓. 不同变质程度煤岩吸附特性及其热力学变化规律研究[D]. 北京:中国地质大学(北京),2020.

ZOU Zhuo. adsorption characteristics and their thermodynamic evolution in variable rank coals[D]. Beijing:China University of Geosciences (Beijing),2020.

[30] 唐书恒. 多元气体吸附解吸实验与二氧化碳驱替技术的研究意义及现状[C]//2002年第三届国际煤层气论坛论文集. 北京,2002:103–108.

[31] 秦勇. 国外煤层气成因与储层物性研究进展与分析[J]. 地学前缘,2005,12(3):289−298.

QIN Yong. Advances in overseas geological research on coal bed gas:Origin and reservoir characteristics of coal bed gas[J]. Earth Science Frontiers,2005,12(3):289−298.

[32] 陈振宏,王一兵,宋岩,等. 不同煤阶煤层气吸附、解吸特征差异对比[J]. 天然气工业,2008,28(3):30−32.

CHEN Zhenhong,WANG Yibing,SONG Yan,et al. Comparison of adsorption/desorption properties of CBM in different–rank coals[J]. Natural Gas Industry,2008,28(3):30−32.

[33] ZHANG Songhang,TANG Shuheng,TANG Dazhen,et al. Determining fractal dimensions of coal pores by FHH model:Problems and effects[J]. Journal of Natural Gas Science and Engineering,2014,21:929−939.

[34] 苏现波,黄津,王乾,等. CO2强化煤层气产出与其同步封存实验研究[J]. 煤田地质与勘探,2023,51(1):176−184.

SU Xianbo,HUANG Jin,WANG Qian,et al. Experimental study on CO2–enhanced coalbed methane production and its simultaneous storage[J]. Coal Geology & Exploration,2023,51(1):176−184.

[35] CHENG E,COLE M W,PFEIFER P. Defractalization of films adsorbed on fractal surfaces[J]. Physical Review. B,Condensed Matter,1989,39(17):12962−12965.

[36] AGUERRE R J,VIOLLAZ P E,SUÁREZ C. A fractal isotherm for multilayer adsorption in foods[J]. Journal of Food Engineering,1996,30(1/2):227−238.

[37] QI Hao,MA Jian,WONG Pozen. Adsorption isotherms of fractal surfaces[J]. Colloids and Surfaces A:Physicochemical and Engineering Aspects,2002,206(1/2/3):401−407.

[38] FENG Zengchao,WANG Chen,ZHOU Dong,et al. Variation law of adsorption heat of methane and coal with inhomogeneous potential well[J]. Adsorption Science & Technology,2018,36(7/8):1538−1549.

[39] THOMMES M,KANEKO K,NEIMARK A V,et al. Physisorption of gases,with special reference to the evaluation of surface area and pore size distribution (IUPAC Technical Report)[J]. Pure and Applied Chemistry,2015,87(9/10):1051−1069.

[40] MASTALERZ M,HE Lilin,MELNICHENKO Y B,et al. Porosity of coal and shale:Insights from gas adsorption and SANS/USANS techniques[J]. Energy & Fuels,2012,26(8):5109−5120.

[41] NIE Baisheng,LIU Xianfeng,YANG Longlong,et al. Pore structure characterization of different rank coals using gas adsorption and scanning electron microscopy[J]. Fuel,2015,158:908−917.

[42] MASTALERZ M,SOLANO–ACOSTA W,SCHIMMELMANN A,et al. Effects of coal storage in air on physical and chemical properties of coal and on gas adsorption[J]. International Journal of Coal Geology,2009,79(4):167−174.

[43] YAO Yanbin,LIU Dameng,TANG Dazhen,et al. Fractal characterization of adsorption–pores of coals from North China:An investigation on CH4 adsorption capacity of coals[J]. International Journal of Coal Geology,2008,73(1):27−42.

[44] LIU Xianfeng,NIE Baisheng. Fractal characteristics of coal samples utilizing image analysis and gas adsorption[J]. Fuel,2016,182:314−322.

[45] HLUSHKOU D,GRITTI F,GUIOCHON G,et al. Effect of adsorption on solute dispersion:A microscopic stochastic approach[J]. Analytical Chemistry,2014,86(9):4463−4470.

Share

COinS
 
 

To view the content in your browser, please download Adobe Reader or, alternately,
you may Download the file to your hard drive.

NOTE: The latest versions of Adobe Reader do not support viewing PDF files within Firefox on Mac OS and if you are using a modern (Intel) Mac, there is no official plugin for viewing PDF files within the browser window.