From zoned re-crushing visualization to innovative sealing solution: Unveiling the governing mechanisms of air leakage in gas drainage boreholes

Xiangming Zhang , Zhen Li , Guorui Feng , Xingyu Chen , Yidie Zhang , Ruichao Wang , Anquan Hu , Jiangman Wang , Yiming Liu , Mengran Li

Int J Min Sci Technol ›› 2026, Vol. 36 ›› Issue (6) : 1233 -1248.

PDF (10148KB)
Int J Min Sci Technol ›› 2026, Vol. 36 ›› Issue (6) :1233 -1248. DOI: 10.1016/j.ijmst.2026.03.015
Research Article
research-article
From zoned re-crushing visualization to innovative sealing solution: Unveiling the governing mechanisms of air leakage in gas drainage boreholes
Author information +
History +
PDF (10148KB)

Abstract

Air leakage through the crushed zone surrounding boreholes is a critical bottleneck constraining efficient gas extraction, yet its underlying mechanisms remain unclear. This study employed a CT visual compaction apparatus, enabling, for the first time, the visualization and quantitative investigation of leakage pathways within the crushed zone. The main findings are as follows: (1) Particle re-crushing exhibits significant spatial non-uniformity, with its re-crushing degree descending in the order of upper zone, middle zone, lower zone. (2) As increasing stress, the void network evolves from a mesovoids-dominated system to one dominated by small voids and microvoids, whose combined proportion ultimately reaching 85%, and the voidage decays exponentially with increasing stress. (3) Under the stress, particle morphology evolves toward greater regularity and roughness, evidenced by an average increase of 224.7% in specific surface area, along with increases of 6.6% in flatness and 5.4% in elongation. (4) Based on this non-uniform evolution mechanism, an adaptive sealing strategy is proposed to guide the development of materials with dynamic responsiveness, enabling precise and persistent sealing of evolving leakage channels. The established visual-quantitative framework elucidates the microscopic mechanisms of air leakage and provides a crucial theoretical foundation for the development of adaptive sealing technologies.

Keywords

Gas extraction borehole / Air leakage / Broken coal gangue particles / CT scan / Zoned re-crushing / Innovative sealing solution

Cite this article

Download citation ▾
Xiangming Zhang, Zhen Li, Guorui Feng, Xingyu Chen, Yidie Zhang, Ruichao Wang, Anquan Hu, Jiangman Wang, Yiming Liu, Mengran Li. From zoned re-crushing visualization to innovative sealing solution: Unveiling the governing mechanisms of air leakage in gas drainage boreholes. Int J Min Sci Technol, 2026, 36 (6) : 1233-1248 DOI:10.1016/j.ijmst.2026.03.015

登录浏览全文

4963

注册一个新账户 忘记密码

References

[1]

Liu CQ, Yang ZB, Qin Y, Yan X, Wang YH, Wang Z. Excess pore pressure behavior and evolution in deep coalbed methane reservoirs. Int J Min Sci Technol 2024; 34(6):763-81.

[2]

Luo JJ, Wang HL, Li H, Zheng B. Structural shifts in China’s oil and gas CH4 emissions with implications for mitigation efforts. Nat Commun 2025; 16:2926.

[3]

Zou QL, Chen ZH, Cheng ZH, Liang YP, Xu WJ, Wen PR, et al. Evaluation and intelligent deployment of coal and coalbed methane coupling coordinated exploitation based on Bayesian network and cuckoo search. Int J Min Sci Technol 2022; 32(6):1315—28.

[4]

Zheng CS, Jiang BY, Xue S, Chen ZW, Li H. Coalbed methane emissions and drainage methods in underground mining for mining safety and environmental benefits: a review. Process Saf Environ Prot 2019; 127:103-24.

[5]

Lou Z, Wang K, Yao HW, Zhao W, Qin HJ, Wu ZQ, et al. A novel dynamic filling material for plugging fractures around underground gas extraction boreholes: experimental and engineering performances. Energy 2025; 314:134202.

[6]

Zou QL, Chen ZH, Zhan JF, Chen CM, Gao SK, Kong FJ, et al. Morphological evolution and flow conduction characteristics of fracture channels in fractured sandstone under cyclic loading and unloading. Int J Min Sci Technol 2023; 33(12):1527—40.

[7]

Pang MK, Zhang TJ, Ji X, Wu JY, Song S. Measurement of the coefficient of seepage characteristics in pore—crushed coal bodies around gas extraction boreholes. Energy 2022; 254:124276.

[8]

Xiang XW, Zhai C, Xu YM, Yu X, Xu JZ. A flexible gel sealing material and a novel active sealing method for coal—bed methane drainage boreholes. J Nat Gas Sci Eng 2015; 26:1187-99.

[9]

Ma YK, Wang EY, Li ZH, Liu j, Du ZS. Methane sorption and seepage in coal and characteristics of acoustic emission. J China Coal Soc 2012; 37:6. in Chinese.

[10]

Wang DK, Zhang H, Wei JP, Wu Y, Zhang HT, Yao BH, et al. Dynamic evolution characteristics of fractures in gas—bearing coal under the influence of gas pressure using industrial CT scanning technology. J China Coal Soc 2021; 46:15. in Chinese.

[11]

Li Z, Feng GR, Jiang HN, Hu SY, Cui JQ, Song C, et al. The correlation between crushed coal porosity and permeability under various methane pressure gradients: a case study using Jincheng anthracite. Greenhouse Gases 2018; 8(3):493-509.

[12]

Wang W, Zhang C, Wu SX, Jia S, Yang YS, Jiao YC, et al. Experimental study on seepage characteristics of broken coal and rock samples in caving zone under cyclic loading and unloading. J Min Sci Technol 2020; 5:8. in Chinese.

[13]

Zhang JW, Wang HL, Chen SJ, Li YL. Bearing deformation characteristics of large—size broken rock. J China Coal Soc 2018; 43:8. in Chinese.

[14]

Xin YJ, Hao HC, Lv X, Ji HY, An DC. Compaction characteristics test of broken rock in initial lateral pressure. J China Coal Soc 2018; 43:9. in Chinese.

[15]

Feng GR, Wang ZW, Li Z, Zhang YD, Meng QY, Gao JJ, et al. Experimental study on re—crushing behaviour of crushed limestone based on acoustic emission location method. Nondestruct Test Eval 2024; 39(7):2015-31.

[16]

Li Z, Yang P, Yang XJ, Zhang QQ, Feng GR, Yu YR, et al. Experimental study on nonuniform compaction and re—crushing behavior for crushed coal gangue under axial loading. IEEE Sens J 2022; 22(21):20546-54.

[17]

Zhang C, Zhao YX, Tu SH, Hao XJ, Hao DY, Liu JB, et al. Influence mechanism of particle size on the compaction and breakage characteristics of broken coal mass in goaf. J China Coal Soc 2020; 45:11. in Chinese.

[18]

Li M, Li AL, Zhang JX, Huang YL, Li JM. Effects of particle sizes on compressive deformation and particle breakage of gangue used for coal mine goaf backfill. Powder Technol 2020; 360:493-502.

[19]

Feng GR, Zhang YD, Li Z, Fang ZL, Yang YQ, Yang XH, et al. Quantitative analysis of layered re—crushing of crushed coal particles during compression based on CT scanning. Powder Technol 2023; 426:118638.

[20]

Li JS, Wang D, Kang TH. Algorithmic study on rock pore structure based on micro—CT experiment. Chin J Geotech Eng 2010; 32:6. in Chinese.

[21]

Yu BY, Chen ZQ, Feng MM, Wu JY, Ding QL. Microstructure evolution of saturated crushed limestone under lateral confined compression based on CT test. J China Coal Soc 2017; 42:6. in Chinese.

[22]

Yin SH, Chen X, Liu C, Wang LM, Yan RF. Effects of ore size distribution on the pore structure characteristics of packed ore beds. Chin J Eng 2020; 42:9. in Chinese.

[23]

Li JM, Huang YL, Gao HD, Ouyang SY, Guo YC. Transparent characterization of spatial—temporal evolution of gangue solid wastes’ void structures during compression based on CT scanning. Powder Technol 2020; 376:477-85.

[24]

Yang XJ, Li Z, Yang P, Liu JY, Wang XD. Evolution characteristics of void structure of pressure—bearing broken limestone based on CT scanning. Min Res Dev 2023; 43:9. in Chinese.

[25]

Wadell H. Volume, shape, and roundness of rock particles. J Geol 1932; 40(5):443-51.

[26]

Krumbein WC. Measurement and geological significance of shape and roundness of sedimentary particles. SEPM J Sediment Res 1941; 11:9.

[27]

Bian XC, Li W, Li GY, Erol T. Three—dimensional discrete element analysis of railway ballast’s shear process based on particles’ real geometry. Eng Mech 2015; 32:13. in Chinese.

[28]

Shi C, Shen JL. Comparative analysis for 3D shape characterization parameters of rock and soil particles. J Shenyang Polytech Univ 2017; 39:6. in Chinese.

[29]

Li JM, Huang Y, Pu H, Guo YC, Gao HD, Zhang WG, et al. Automatic acquisition method and quantitative analysis of 3D shape parameters of gangue block. J China Univ Min Technol 2021; 50:8. in Chinese.

[30]

Li B, Yang X, Yuan Y, Liang YP, Li SQ, Zhu CQ, et al. Experimental research on the influence of different factors on the behaviour of broken coal and rock particles during compaction. Constr Build Mater 2023; 367:130127.

[31]

Webster S, Francois N, Andò E, Knackstedt M, Beck D, Saadatfar M. Coupled micro—computed tomography and micromechanical experiment on the failure of discontinuous porphyry rock. Int J Rock Mech Min Sci 2025; 194:106180.

[32]

Yang XJ, Li Z, Wang HW, Yang P, Yu YR, Tian Z, et al. Experimental study on compaction deformation and gas permeability properties for crushed limestone. ACS Omega 2024; 9(2):2830—40.

[33]

Li Z, Yang XJ, Yang P, Feng GR, Liu JY, Zhu CQ, et al. Layered re—breaking behavior of gangue backfilling materials and inspirations for protecting mined ecological environments. Constr Build Mater 2023; 368:130477.

[34]

Li JM, Huang YL, Ouyang SY, Guo YC, Gao HD, Wu LW, et al. Transparent characterization and quantitative analysis of broken gangue’s 3D fabric under the bearing compression. Int J Min Sci Technol 2022; 32(2):335—45.

[35]

Xie HP, Zhou HW, Liu JF, Gao F, Zhang R, Xue DJ, et al. Mining—induced mechanical behavior in coal seams under different mining layouts. J China Coal Soc 2011; 36:8. in Chinese.

[36]

Rorato R, Alvarez A, de Toledo M, Andò ECG, Gens A, Viggiani G. Linking shape and rotation of grains during triaxial compression of sand. Granul Matter 2020; 22(4):88.

[37]

Gao JJ, Li Z, Feng GR, Xue ST, Liu YM, Zhang RP, et al. Non—uniform deformation and re—breaking characteristics of broken coal gangue in pressure: experimental and numerical simulation study. Powder Technol 2026; 469:121834.

[38]

Liu P, Zhao YL, Zhao ZD, Yang HM, Nie BS, He HY, et al. Image—based quantitative probing of 3D heterogeneous pore structure in CBM reservoir and permeability estimation with pore network modeling. Int J Coal Sci Technol 2024; 11(1):72.

[39]

Andrä H, Combaret N, Dvorkin J, Glatt E, Han J, Kabel M, et al. Digital rock physics benchmarks: Part I: imaging and segmentation. Comput Geosci 2013; 50:25-32.

[40]

Zhang C, Li B, Song ZY, Liu JB, Zhou JL. Breakage mechanism and pore evolution characteristics of gangue materials under compression. Acta Geotech 2022; 17(11):4823—35.

[41]

Yang DL, Tang JJ, Hu NN, Xia YT, Yu YT, Huang QQ. The shape parameters of coal and gangue particles derived from 3D scanning. Sci Data 2023; 10:107.

[42]

Zhao Y, Gong QM, Wu YJ, Zornberg JG, Tian ZY, Zhang X. Evolution of active arching in granular materials: insights from load, displacement, strain, and particle flow. Powder Technol 2021; 384:160-75.

[43]

Liu B, Cen WJ, Yan GX, Scheuermann A, Zheng CH, Zhang P. Particle shape effects on breakage behaviors in granular materials: a multiscale geotechnical perspective. Comput Geotech 2025; 187:107504.

[44]

Cassel M, Piégay H, Lavé J, Vaudor L, Hadmoko Sri D, Wibiwo Budi S, et al. Evaluating a 2D image—based computerized approach for measuring riverine pebble roundness. Geomorphology 2018; 311:143-57.

[45]

Cepuritis R, Wigum BJ, Garboczi EJ, Mørtsell E, Jacobsen S. Filler from crushed aggregate for concrete: pore structure, specific surface, particle shape and size distribution. Cem Concr Compos 2014; 54:2-16.

[46]

Kwan AKH, Mora CF, Chan HC. Particle shape analysis of coarse aggregate using digital image processing. Cem Concr Res 1999; 29(9):1403—10.

[47]

Zhang C, Jia S, Huang XH, Shi XT, Zhang T, Zhang L, et al. Accurate characterization method of pores and various minerals in coal based on CT scanning. Fuel 2024; 358:130128.

[48]

Zhang JX, Liu Y, Zhou N, Li M. Pore pressure evolution and mass loss of broken gangue during the seepage. R Soc Open Sci 2018; 5(10):180307.

[49]

Li Z, Zhang RP, Feng GR, Liu LY, Xu HN, Liu CY, Cheng MM, Zhao WB. Development of composite modified adaptive retarding sealing material and multi—objective performance collaborative optimization. J Min & Saf Eng. 18. 2026; in press.

PDF (10148KB)

0

Accesses

0

Citation

Detail

Sections
Recommended

/