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Coal Geology & Exploration

Authors

XU Shuai, Key Laboratory of Coalbed Methane Resources & Reservoir Formation Process, Ministry of Education, China University of Mining and Technology, Xuzhou 221008, China; School of Resources and Geosciences, China University of Mining and Technology, Xuzhou 221116, ChinaFollow
WU Caifang, Key Laboratory of Coalbed Methane Resources & Reservoir Formation Process, Ministry of Education, China University of Mining and Technology, Xuzhou 221008, China; School of Resources and Geosciences, China University of Mining and Technology, Xuzhou 221116, ChinaFollow
BIE Xiaofei, Henan Coalbed Methane Development and Utilization Co., Ltd., Zhengzhou 450016, China; Henan Gas Control Research Institute Co., Ltd., Zhengzhou 450016, China
LI Guangsheng, Henan Coalbed Methane Development and Utilization Co., Ltd., Zhengzhou 450016, China; Henan Gas Control Research Institute Co., Ltd., Zhengzhou 450016, China
FANG Xiaojie, Key Laboratory of Coalbed Methane Resources & Reservoir Formation Process, Ministry of Education, China University of Mining and Technology, Xuzhou 221008, China; School of Resources and Geosciences, China University of Mining and Technology, Xuzhou 221116, China
WANG Fangfang, Key Laboratory of Coalbed Methane Resources & Reservoir Formation Process, Ministry of Education, China University of Mining and Technology, Xuzhou 221008, China; School of Resources and Geosciences, China University of Mining and Technology, Xuzhou 221116, China
CHENG Yi, Key Laboratory of Coalbed Methane Resources & Reservoir Formation Process, Ministry of Education, China University of Mining and Technology, Xuzhou 221008, China; School of Resources and Geosciences, China University of Mining and Technology, Xuzhou 221116, China
ZHAO Peng, Key Laboratory of Coalbed Methane Resources & Reservoir Formation Process, Ministry of Education, China University of Mining and Technology, Xuzhou 221008, China; School of Resources and Geosciences, China University of Mining and Technology, Xuzhou 221116, China

Abstract

Objective The Xintian Coal Mine, a critical coal-producing mine in western Guizhou Province, faces high risks of coal and gas outbursts and the challenge of low underground coalbed methane (CBM) extraction efficiency, necessitating surface CBM extraction. However, the complex geological conditions in the area limit well placement and the fracturing and gas drainage effectiveness. Therefore, there is an urgent need to systematically elucidate the occurrence characteristics and enrichment patterns of CBM in the area.Methods Based on data from exploration boreholes in the Xintian Coal Mine, combined with experiment and test results and log interpretations, this study revealed the physical properties, structural conditions, and hydrodynamic characteristics of the No.9 coal seam—a major minable coal seam in the coal mine. Accordingly, the CBM enrichment patterns were clarified, and the CBM accumulation models integrating the coupling effects of structures, hydrodynamics, sedimentation, and coals were determined.Results The No.9 coal seam is dominated by anthracite with a low ash content, a low volatile content, a medium-to-high fixed carbon content, a low water content, and a low-to-medium sulfur content. The coal seam is characterized by considerable thicknesses, moderate burial depths, and a relatively high gas content, representing coal reservoirs featuring medium-to-low permeabilities and normal pressure. In the coal seam, the gas content exhibits negative correlations with the ash, volatile, and water contents but shows positive correlations with the fixed carbon content, burial depth, and reservoir pressure. The coal seam roof is composed predominantly of thinly layered mudstones and medium-to-thick silty mudstones, demonstrating excellent sealing performance. The northwestern limb of the Baiyanpo anticline exhibits simple structural features and the presence of concealed reverse faults, which are conducive to gas enrichment. The axis of the Yantoushang syncline shows low groundwater potential, with the resulting groundwater stagnation zone favoring CBM accumulation. In contrast, the southwestern portion of the syncline exhibits tensional faults characterized by steep dip angles and long extended distances, leading to gas escape. The hydrodynamic control of gas exhibits zoning in the study area. Specifically, the southwestern part of the study area primarily shows hydrodynamic-controlled gas trapping and escape. In addition to the above two control types, the hydrodynamic-controlled gas sealing can also be observed in the northeastern part.Conclusion The CBM enrichment in the study area is primarily governed by structural and hydrodynamic conditions, as manifested by gas trapping induced by compressional faults and hydrodynamics, along with gas sealing attributed to synclines and hydrodynamics. The coupling effects of physical properties and sedimentary characteristics result in two CBM reservoir types: (1) the gas trapping type governed by physical properties, structures, and hydrodynamics and (2) the gas sealing type attributed to sedimentary and hydrodynamic conditions. Additionally, there exist two gas escape models: tensional fault-controlled gas escape and gas escape governed by sedimentary and hydrodynamic conditions. The results of this study provide insights into well placement in the Xintian Coal Mine, further guiding efficient CBM production and surface gas control.

Keywords

complex geological conditions, coalbed methane (CBM), enrichment pattern, accumulation model, Xintian Coal Mine

DOI

10.12363/issn.1001-1986.25.06.0480

Reference

[1] 吴财芳,王肖,刘小磊,等. 滇东老厂矿区多煤层条件下地应力特征及其影响研究[J]. 煤炭科学技术,2019,47(1):118−124

WU Caifang,WANG Xiao,LIU Xiaolei,et al. Study on geostress features and influences under multi–seam condition in Laochang mining area of east Yunnan[J]. Coal Science and Technology,2019,47(1):118−124

[2] 吴财芳,刘小磊,张莎莎. 滇东黔西多煤层地区煤层气“层次递阶”地质选区指标体系构建[J]. 煤炭学报,2018,43(6):1647−1653

WU Caifang,LIU Xiaolei,ZHANG Shasha. Construction of index system of “Hierarchical progressive” geological selection of coalbed methane in multiple seam area of eastern Yunnan and western Guizhou[J]. Journal of China Coal Society,2018,43(6):1647−1653

[3] 吴财芳,秦勇. 煤储层弹性能及其控藏效应:以沁水盆地为例[J]. 地学前缘,2012,19(2):248−255

WU Caifang,QIN Yong. Flexibility energies of coal–bed gas reservoir and the controlling function on coal–bed gas reservoir formation:A case study from Qinshui Basin[J]. Earth Science Frontiers,2012,19(2):248−255

[4] 吴财芳,秦勇,傅雪海. 煤储层弹性能及其对煤层气成藏的控制作用[J]. 中国科学D辑:地球科学,2007,37(9):1163−1168

[5] 吴财芳,秦勇,周龙刚. 沁水盆地南部煤层气藏的有效运移系统[J]. 中国科学:地球科学,2014,44(12):2645−2651

WU Caifang,QIN Yong,ZHOU Longgang. Effective migration system of coalbed methane reservoirs in the southern Qinshui Basin[J]. Science China:Earth Sciences,2014,44(12):2645−2651

[6] 屈晓荣. 榆社–武乡区块煤系气叠置成藏机理与成藏模式[D]. 徐州:中国矿业大学,2019.

QU Xiaorong. Study on the accumulation mechanism and accumulation mode of the coal measure gases in Yushe–Wuxiang Block[D]. Xuzhou:China University of Mining and Technology,2019.

[7] 陈崇域. 山西榆社–武乡区块太原组“三气”储层特征与叠置成藏研究[D]. 徐州:中国矿业大学,2018.

CHEN Chongyu. Study on “three gas” formation characteristics and stacked reservoir of Taiyuan Formation in Shanxi Yushe–Wuxiang Block[D]. Xuzhou:China University of Mining and Technology,2018.

[8] 秦勇. 中国煤层气成藏作用研究进展与述评[J]. 高校地质学报,2012,18(3):405−418

QIN Yong. Advances and reviews on coalbed methane reservoir formation in China[J]. Geological Journal of China Universities,2012,18(3):405−418

[9] 秦勇,申建,沈玉林. 叠置含气系统共采兼容性:煤系“三气”及深部煤层气开采中的共性地质问题[J]. 煤炭学报,2016,41(1):14−23

QIN Yong,SHEN Jian,SHEN Yulin. Joint mining compatibility of superposed gas–bearing systems:A general geological problem for extraction of three natural gases and deep CBM in coal series[J]. Journal of China Coal Society,2016,41(1):14−23

[10] 李勇,孟尚志,吴鹏,等. 煤层气成藏机理及气藏类型划分:以鄂尔多斯盆地东缘为例[J]. 天然气工业,2017,37(8):22−30

LI Yong,MENG Shangzhi,WU Peng,et al. Accumulation mechanisms and classification of CBM reservoir types:A case study from the eastern margin of the Ordos Basin[J]. Natural Gas Industry,2017,37(8):22−30

[11] 朱志良,高小明. 陇东煤田侏罗系煤层气成藏主控因素与模式[J]. 岩性油气藏,2022,34(1):86−94

ZHU Zhiliang,GAO Xiaoming. Main controlling factors and models of Jurassic coalbed methane accumulation in Longdong coalfield[J]. Lithologic Reservoirs,2022,34(1):86−94

[12] 李玲,姚海鹏,李文华,等. 海拉尔盆地伊敏凹陷煤层气成藏条件及成藏模式[J]. 东北石油大学学报,2019,43(4):78−87

LI Ling,YAO Haipeng,LI Wenhua,et al. Accumulation condition and reservoir formation model of coalbed methane in Yimin Sag,Hailaer Basin[J]. Journal of Northeast Petroleum University,2019,43(4):78−87

[13] 秦勇. 中国煤系矿产近现代地质研究进展与走向[J]. 煤田地质与勘探,2025,53(1):12−35

QIN Yong. Advances and trends of modern and contemporary research on the geology of coal–measure minerals in China[J]. Coal Geology & Exploration,2025,53(1):12−35

[14] 秦勇. 中国深部煤层气地质研究进展[J]. 石油学报,2023,44(11):1791−1811

QIN Yong. Progress on geological research of deep coalbed methane in China[J]. Acta Petrolei Sinica,2023,44(11):1791−1811

[15] 郭广山,徐凤银,刘丽芳,等. 鄂尔多斯盆地府谷地区深部煤层气富集成藏规律及有利区评价[J]. 煤田地质与勘探,2024,52(2):81−91

GUO Guangshan,XU Fengyin,LIU Lifang,et al. Enrichment and accumulation patterns and favorable area evaluation of deep coalbed methane in the Fugu area,Ordos Basin[J]. Coal Geology & Exploration,2024,52(2):81−91

[16] 张晓晴,康玉国,孙斌,等. 勃利盆地七台河断陷煤层气富集特征及有利区优选[J]. 吉林大学学报(地球科学版),2023,53(4):1033−1047

ZHANG Xiaoqing,KANG Yuguo,SUN Bin,et al. Enrichment characteristics of coalbed methane and optimization of favorable areas in Qitaihe Fault Depression,Boli Basin[J]. Journal of Jilin University (Earth Science Edition),2023,53(4):1033−1047

[17] 叶桢妮,侯恩科,段中会,等. 基于热–流–固耦合效应的地质构造控气特征研究[J]. 煤炭科学技术,2019,47(7):65−73

YE Zhenni,HOU Enke,DUAN Zhonghui,et al. Study on effect of geotectonic characteristics on coalbed methane based on coupled thermal–hydraulic–mechanical model[J]. Coal Science and Technology,2019,47(7):65−73

[18] 吴圣,徐韵,沈家宁,等. 黔北煤田长岗向斜煤层气富集的构造控制作用[J]. 煤田地质与勘探,2018,46(2):22−27

WU Sheng,XU Yun,SHEN Jianing,et al. Structural control on the enrichment of CBM in Changgang syncline,northern Guizhou coalfield[J]. Coal Geology & Exploration,2018,46(2):22−27

[19] 朱亚茹,孙蓓蕾,曾凡桂,等. 西山煤田古交矿区煤层气藏水文地质特征及其控气作用[J]. 煤炭学报,2018,43(3):759−769

ZHU Yaru,SUN Beilei,ZENG Fangui,et al. Hydrogeological characteristics of CBM reservoirs and their controlling effects in Gujiao mining area,Xishan coalfield[J]. Journal of China Coal Society,2018,43(3):759−769

[20] 叶建平,武强,王子和. 水文地质条件对煤层气赋存的控制作用[J]. 煤炭学报,2001,26(5):459−462

YE Jianping,WU Qiang,WANG Zihe. Controlled characteristics of hydrogeological conditions on the coalbed methane migration and accumulation[J]. Journal of China Coal Society,2001,26(5):459−462

[21] 杜丰丰,倪小明,张亚飞,等. 寿阳区块煤层气田的水文控藏模式及控产特征[J]. 煤炭科学技术,2023,51(10):177−188

DU Fengfeng,NI Xiaoming,ZHANG Yafei,et al. Hydrological control mode and production characteristics of coalbed methane field in Shouyang Block[J]. Coal Science and Technology,2023,51(10):177−188

[22] 王文升,张亚飞,杜丰丰,等. 寿阳地区15号煤层地下水动力场特征及控气作用[J]. 油气藏评价与开发,2022,12(4):643−650

WANG Wensheng,ZHANG Yafei,DU Fengfeng,et al. Characteristics of groundwater dynamic field and it’s controlling gas effects in No. 15 coal seam of Shouyang area[J]. Petroleum Reservoir Evaluation and Development,2022,12(4):643−650

[23] 韩冬,王若璇,高丽军. 贵州比德–三塘盆地煤层气水文地质单元划分及控气特征[J]. 天然气技术与经济,2023,17(3):17−23

HAN Dong,WANG Ruoxuan,GAO Lijun. Coalbed methane in Bide–Santang Basin,Guizhou Province:Division of hydrogeological units and characteristics of gas controlling[J]. Natural Gas Technology and Economy,2023,17(3):17−23

[24] 申有义,任斗金,常锁亮,等. 沁水盆地永乐南区块煤储层聚煤前后沉积相预测及其控气作用[J]. 科学技术与工程,2021,21(11):4352−4359

SHEN Youyi,REN Doujin,CHANG Suoliang,et al. Prediction of sedimentary facies before and after coal accumulation and its controlling effects in Block Yonglenan,Qinshui Basin[J]. Science Technology and Engineering,2021,21(11):4352−4359

[25] 田文广,肖建新,张继东,等. 鄂尔多斯盆地东缘煤层气储盖特征及其控气作用[J]. 煤田地质与勘探,2015,43(4):31−35

TIAN Wenguang,XIAO Jianxin,ZHANG Jidong,et al. CBM reservoir–cap formation type and its gas controlling function in the eastern margin of Ordos Basin[J]. Coal Geology & Exploration,2015,43(4):31−35

[26] 徐凤银,王成旺,熊先钺,等. 深部(层)煤层气成藏模式与关键技术对策:以鄂尔多斯盆地东缘为例[J]. 中国海上油气,2022,34(4):30−42

XU Fengyin,WANG Chengwang,XIONG Xianyue,et al. Deep (layer) coalbed methane reservoir forming modes and key technical countermeasures:Taking the eastern margin of Ordos Basin as an example[J]. China Offshore Oil and Gas,2022,34(4):30−42

[27] 闫霞,徐凤银,聂志宏,等. 深部微构造特征及其对煤层气高产“甜点区”的控制:以鄂尔多斯盆地东缘大吉地区为例[J]. 煤炭学报,2021,46(8):2426−2439

YAN Xia,XU Fengyin,NIE Zhihong,et al. Microstructure characteristics of Daji area in east Ordos Basin and its control over the high yield dessert of CBM[J]. Journal of China Coal Society,2021,46(8):2426−2439

[28] 傅永帅,杨丽兵. 沁水盆地东北部煤层气地质特征及有利区划分[J]. 煤炭工程,2025,57(8):161−170

FU Yongshuai,YANG Libing. Geological characteristics and favorable area division of coalbed methane in northeast Qinshui Basin[J]. Coal Engineering,2025,57(8):161−170

[29] 赵梓凯,谭学斌,张海锋,等. 基于水动力分区的煤层气井产水产气特征及控制作用[J/OL]. 地质与勘探,2025:1–14 (2025-12-25) [2025-11-03]. https://link.cnki.net/urlid/11.2043.p.20251031.1413.002.

ZHAO Zikai,TAN Xuebin,ZHANG Haifeng,et al. Gas and water production behaviors of coalbed methane wells and their controlling mechanism based on hydrodynamic zonation[J/OL]. Geology and Exploration,2025:1–14 (2025-12-25) [2025-11-03]. https://link.cnki.net/urlid/11.2043.p.20251031.1413.002.

[30] 时新磊,崔云江,许万坤,等. 基于随钻测压流度的地层渗透率评价方法及产能预测[J]. 石油勘探与开发,2020,47(1):140−147

SHI Xinlei,CUI Yunjiang,XU Wankun,et al. Formation permeability evaluation and productivity prediction based on mobility from pressure measurement while drilling[J]. Petroleum Exploration and Development,2020,47(1):140−147

[31] 聂鑫. 太原西山煤田煤层气富集地质控制机理及开发有利区评价[D]. 太原:太原理工大学,2023.

NIE Xin. Geological control mechanism of coalbed methane enrichment and evaluation of favorable development areas in Xishan coalfield,Taiyuan[D]. Taiyuan:Taiyuan University of Technology,2023.

[32] 李刚. 宁夏石嘴山矿区煤层气富集地质控因及潜力评价[D]. 徐州:中国矿业大学,2023.

LI Gang. Geological control factors and potential evaluation of coalbed methane enrichment in Shizuishan mining area,Ningxia[D]. Xuzhou:China University of Mining and Technology,2023.

[33] EATON B A. The equation for geopressure prediction from well logs[C]//Fall Meeting of the Society of Petroleum Engineers of AIME. Dallas:Society of Petroleum Engineers,1975:SPE–5544–MS.

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