Citation: | SUN Qiang,GU Chao,GENG Jishi,et al. Biomass energy storage and geological safeguards in underground coal mine spaces[J]. Coal Science and Technology,2025,53(4):70−79. DOI: 10.12438/cst.2024-1417 |
Coal remains China’s primary energy source, with post-mining underground spaces offering both resource utilization opportunities and environmental risks. Efficient and sustainable development of these residual spaces is crucial for the coal industry’s future. This study systematically examines the utilization characteristics of underground coal mine spaces and the requirements for organic waste resource management. A comprehensive biomass energy storage framework based on the principles of Reduce, Reuse, Recycle, Renew, Restore, and Recover (6R) is introduced. This framework transforms abandoned underground areas into viable energy storage media, thereby facilitating the resource recovery of organic waste and elucidating the scientific attributes and implications of biomass energy storage coupled with geological safeguards. Three implementation pathways are proposed: aerobic utilization, anaerobic utilization, and pyrolysis-based utilization, each leveraging the inherent advantages of underground environments such as stability, constant temperature, and large capacity. Additionally, key scientific and technological challenges are identified, including environmental suitability assessment, spatial planning and optimization, geological property evolution monitoring, precise resource product utilization, and the cyclic regeneration of storage spaces. This research introduces innovative strategies for the efficient exploitation of underground coal mine spaces and the environmentally friendly treatment of organic waste. It facilitates the coal industry’s achievement of both capacity optimization and enhanced ecological performance.
[1] |
袁智,蒋庆友,庞振忠. 我国煤矿智能化综采开采技术装备应用现状与发展思考[J]. 煤炭科学技术,2024,52(9):189−198. doi: 10.12438/cst.2024-1054
YUAN Zhi,JIANG Qingyou,PANG Zhenzhong,et al. The application status and development thinking of intelligent mining technology and equipment in coal mines in China[J]. Coal Science and Technology,2024,52(9):189−198. doi: 10.12438/cst.2024-1054
|
[2] |
王双明,孙强,谷超,等. 煤炭开发推动地学研究发展[J]. 中国煤炭,2024,50(1):2−8.
WANG Shuangming,SUN Qiang,GU Chao,et al. The development of geoscientific research promoted by coal exploitation[J]. China Coal,2024,50(1):2−8.
|
[3] |
王国法,任世华,庞义辉,等. 煤炭工业 “十三五” 发展成效与“双碳” 目标实施路径[J]. 煤炭科学技术,2021,49(9):1−8.
WANG Guofa,REN Shihua,PANG Yihui,et al. Development achievements of China’s coal industry during the 13th Five-Year Plan period and implementation path of “dual carbon” target[J]. Coal Science and Technology,2021,49(9):1−8.
|
[4] |
霍超,王蕾,谢志清,等. 新时期我国煤矿地下空间综合利用现状及展望[J]. 地质论评,2024,70(4):1455−1468.
HUO Chao,WANG Lei,XIE Zhiqing,et al. Present situation and prospect of comprehensive utilization of underground space in coal mines in China in the new period[J]. Geological Review,2024,70(4):1455−1468.
|
[5] |
王佟,韩效忠,邓军,等. 论中国煤炭地质勘查工作在新条件下的定位与重大研究问题[J]. 煤田地质与勘探,2023,51(2):27−44. doi: 10.12363/issn.1001-1986.23.01.0015
WANG Tong,HAN Xiaozhong,DENG Jun,et al. Orientation and major research problems of coal geological exploration in China under new conditions[J]. Coal Geology & Exploration,2023,51(2):27−44. doi: 10.12363/issn.1001-1986.23.01.0015
|
[6] |
胡李华,岳群超,吴云,等. 关退煤矿软岩地下空间压缩空气储能模型试验系统研制及其应用[J]. 采矿与安全工程学报,2024,41(4):853−866.
HU Lihua,YUE Qunchao,WU Yun,et al. Development and application of a model test system for compressed air energy storage using underground space with soft surrounding rock of abandoned coal mines[J]. Journal of Mining & Safety Engineering,2024,41(4):853−866.
|
[7] |
蒋健明,韩锋,丁海,等. 安徽省两淮煤田废弃煤炭矿井剩余资源综合调查、开发利用现状及展望[J]. 中国矿业,2024,33(8):46−58. doi: 10.12075/j.issn.1004-4051.20240752
JIANG Jianming,HAN Feng,DING Hai,et al. Comprehensive survey,status and prospect of exploitation and utilization of residual resources of abandoned coal mine in Huainan and Huaibei Coalfields,Anhui Province[J]. China Mining Magazine,2024,33(8):46−58. doi: 10.12075/j.issn.1004-4051.20240752
|
[8] |
奚弦,桑树勋,刘世奇. 煤矿区固废矿化固定封存CO2与减污降碳协同处置利用的研究进展[J]. 煤炭学报,2024,49(8):3619−3634.
XI Xian,SANG Shuxun,LIU Shiqi. Progress in research of CO2 fixation and sequestration by coal mine solid waste mineralization and co-disposal of pollution and carbon reduction[J]. Journal of China Coal Society,2024,49(8):3619−3634.
|
[9] |
董霁红,吉莉,高华东,等. 关闭矿山空间资源特征解析与转型路径[J]. 煤炭学报,2022,47(6):2228−2242.
DONG Jihong,JI Li,GAO Huadong,et al. Characteristics analysis and transformation path of space resources in closed mine[J]. Journal of China Coal Society,2022,47(6):2228−2242.
|
[10] |
郭平业,王蒙,孙晓明,等. 废弃矿井地下空间反季节循环储能研究[J]. 煤炭学报,2022,47(6):2193−2206.
GUO Pingye,WANG Meng,SUN Xiaoming,et al. Study on off-season cyclic energy storage in underground space of abandoned mine[J]. Journal of China Coal Society,2022,47(6):2193−2206.
|
[11] |
王双明,孙强,胡鑫,等. 煤炭开采地质体复合损害与减损保障[J]. 煤田地质与勘探,2025,53(1):1−11. doi: 10.12363/issn.1001-1986.23.09.0571
WANG Shuangming,SUN Qiang,HU Xin,et al. Coal mining-induced composite damage to geological bodies and geologic guarantee against damage reduction[J]. Coal Geology & Exploration,2025,53(1):1−11. doi: 10.12363/issn.1001-1986.23.09.0571
|
[12] |
王双明,李识博,孙强,等. 论“碳、水、环”约束下的煤炭减损开采地质保障[J]. 西安科技大学学报,2025,45(1):1−11.
WANG Shuangming,LI Shibo,SUN Qiang,et al. Geological guarantee for coal damage reduction mining under the restriction of “Carbon-Water-Environment”[J]. Journal of Xi’an University of Science and Technology,2025,45(1):1−11.
|
[13] |
张 毅,秦容军. 神东矿区地下空间评估与利用方向探索[J]. 煤炭科学技术,2022,50(S2):196−203.
ZHANG Yi,QIN Rongjun. Exploration on evaluation and utilization direction of underground space in Shendong Mining Area[J]. Coal Science and Technology,2022,50(S2):196−203.
|
[14] |
ZHANG C,WANG F T,BAI Q S. Underground space utilization of coalmines in China:A review of underground water reservoir construction[J]. Tunnelling and Underground Space Technology,2021,107:103657. doi: 10.1016/j.tust.2020.103657
|
[15] |
郝宪杰,陈泽宇,张通,等. 中国关闭/废弃矿井地下空间储物环境稳定性保障:现状、评价及改造[J]. 科技导报,2021,39(13):29−35.
HAO Xianjie,CHEN Zeyu,ZHANG Tong,et al. Environmental stability guarantee of underground storage in closed/abandoned mines in China:Current situation,evaluation and transformation[J]. Science & Technology Review,2021,39(13):29−35.
|
[16] |
袁亮,杨科. 再论废弃矿井利用面临的科学问题与对策[J]. 煤炭学报,2021,46(1):16−24.
YUAN Liang,YANG Ke. Further discussion on the scientific problems and countermeasures in the utilization of abandoned mines[J]. Journal of China Coal Society,2021,46(1):16−24.
|
[17] |
孙强,张卫强,耿济世,等. 利用煤炭开发地下空间储能的技术路径与地质保障[J]. 煤田地质与勘探,2023,51(2):229−242. doi: 10.12363/issn.1001-1986.22.10.0799
SUN Qiang,ZHANG Weiqiang,GENG Jishi,et al. Technological path and geological guarantee for energy storage in underground space formed by coal mining[J]. Coal Geology & Exploration,2023,51(2):229−242. doi: 10.12363/issn.1001-1986.22.10.0799
|
[18] |
庄修政,张兴华,张琦,等. “双碳” 背景下中国生物质能利用技术的发展现状及挑战[J]. 太阳能,2024(7):40−49.
ZHUANG Xiuzheng,ZHANG Xinghua,ZHANG Qi,et al. Development status and challenges of biomass energy utilization technology under background of emission peak and carbon neutrality strategy in China[J]. Solar Energy,2024(7):40−49.
|
[19] |
XU C B. Roles of bioenergy and green hydrogen in large scale energy storage for carbon neutrality[J]. Engineering,2023,29:32−34. doi: 10.1016/j.eng.2023.08.007
|
[20] |
王大伟, 李滢滢, 蒋一兰, 等. 垃圾渗滤液的过硫酸盐高级氧化深度处理技术研究进展[J]. 环境工程,2025,43(3):42−56.
WANG Dawei, LI Yingying, JIANG Yilan, et al. Research advances on advance treatment based on persulfate advanced oxidation process for landfill leachate treatment[J]. Environmental Engineering,2025,43(3):42−56.
|
[21] |
徐少奇,陈文杰,解林奇,等. 我国有机废弃物资源总量及养分利用潜力[J]. 植物营养与肥料学报,2022,28(8):1341−1352. doi: 10.11674/zwyf.2021663
XU Shaoqi,CHEN Wenjie,XIE Linqi,et al. Organic waste resources and nutrient utilization potential in China[J]. Journal of Plant Nutrition and Fertilizers,2022,28(8):1341−1352. doi: 10.11674/zwyf.2021663
|
[22] |
雷明星,梅灿旗,王楠. 关闭矿井地下空间资源开发利用思考与建议[J]. 煤炭经济研究,2021,41(2):41−45.
LEI Mingxing,MEI Canqi,WANG Nan. Thoughts and suggestions on development and utilization of underground space resources in closed mines[J]. Coal Economic Research,2021,41(2):41−45.
|
[23] |
李蕾蕾. 逆工业化与工业遗产旅游开发:德国鲁尔区的实践过程与开发模式[J]. 世界地理研究,2002,11(3):57−65. doi: 10.3969/j.issn.1004-9479.2002.03.009
LI Leilei. De-industrialization and development of industrial heritage tourism:The actual process and development model of Ruhr in Germany[J]. World Regional Studies,2002,11(3):57−65. doi: 10.3969/j.issn.1004-9479.2002.03.009
|
[24] |
谢和平,高明忠,刘见中,等. 煤矿地下空间容量估算及开发利用研究[J]. 煤炭学报,2018,43(6):1487−1503.
XIE Heping,GAO Mingzhong,LIU Jianzhong,et al. Research on exploitation and volume estimation of underground space in coal mines[J]. Journal of China Coal Society,2018,43(6):1487−1503.
|
[25] |
吉莉,刘峰,尚建选,等. 关闭矿山地下空间资源定量评估与再利用途径[J]. 煤炭科学技术,2022,50(5):281−289.
JI Li,LIU Feng,SHANG Jianxuan,et al. Quantitative evaluation and reuse path of underground space resources in closed mines[J]. Coal Science and Technology,2022,50(5):281−289.
|
[26] |
王双明,申艳军,孙强,等. “双碳” 目标下煤炭开采扰动空间CO2地下封存途径与技术难题探索[J]. 煤炭学报,2022,47(1):45−60.
WANG Shuangming,SHEN Yanjun,SUN Qiang,et al. Underground CO2 storage and technical problems in coal mining area under the “dual carbon” target[J]. Journal of China Coal Society,2022,47(1):45−60.
|
[27] |
王家臣,JÜRGEN Kretschmann,李杨. 关闭煤炭矿区资源利用与可持续发展的几点思考[J]. 矿业科学学报,2021,6(6):633−641.
WANG Jiachen,KRETSCHMANN J,LI Yang. Reflections on resource utilization and sustainable development of closed coal mining areas[J]. Journal of Mining Science and Technology,2021,6(6):633−641.
|
[28] |
冯国瑞,白锦文,马俊彪,等. 残采区群柱遗煤资源绿色开采与地下空间开发技术挑战[J]. 绿色矿山,2023,1(1):91−100.
FENG Guorui,BAI Jinwen,MA Junbiao,et al. Technical challenge of coal pillars resource green mining and underground space developing in the residual mining area[J]. Journal of Green Mine,2023,1(1):91−100.
|
[29] |
刘钦节,王金江,杨科,等. 关闭/废弃矿井地下空间资源精准开发利用模式研究[J]. 煤田地质与勘探,2021,49(4):71−78. doi: 10.3969/j.issn.1001-1986.2021.04.009
LIU Qinjie,WANG Jinjiang,YANG Ke,et al. Research on the model of accurate exploitation and utilization of underground space resources in closed/abandoned mines[J]. Coal Geology & Exploration,2021,49(4):71−78. doi: 10.3969/j.issn.1001-1986.2021.04.009
|
[30] |
李百宜,张吉雄,刘恒凤,等. 煤矿采空区储能式充填技术及储能增效机制[J]. 采矿与安全工程学报,2022,39(6):1161−1168,1176.
LI Baiyi,ZHANG Jixiong,LIU Hengfeng,et al. Energy-stored backfilling technology and energy storage efficiency enhancement mechanism in coal mine goaf[J]. Journal of Mining & Safety Engineering,2022,39(6):1161−1168,1176.
|
[31] |
卞正富,周跃进,曾春林,等. 废弃矿井抽水蓄能地下水库构建的基础问题探索[J]. 煤炭学报,2021,46(10):3308−3318.
BIAN Zhengfu,ZHOU Yuejin,ZENG Chunlin,et al. Discussion of the basic problems for the construction of underground pumped storage reservoir in abandoned coal mines[J]. Journal of China Coal Society,2021,46(10):3308−3318.
|
[32] |
卞正富,雷少刚,金丹,等. 矿区土地修复的几个基本问题[J]. 煤炭学报,2018,43(1):190−197.
BIAN Zhengfu,LEI Shaogang,JIN Dan,et al. Several basic scientific issues related to mined land remediation[J]. Journal of China Coal Society,2018,43(1):190−197.
|
[33] |
赵同彬,刘淑敏,马洪岭,等. 废弃煤矿压缩空气储能研究现状与发展趋势[J]. 煤炭科学技术,2023,51(10):163−176. doi: 10.12438/cst.2023-0131
ZHAO Tongbin,LIU Shumin,MA Hongling,et al. Research status and development trend of compressed air energy storage in abandoned coal mines[J]. Coal Science and Technology,2023,51(10):163−176. doi: 10.12438/cst.2023-0131
|
[34] |
杨东海,华煜,武博然,等. 双碳背景下有机固废资源化处理处置技术发展思考[J]. 环境工程,2022,40(12):1−8,36.
YANG Donghai,HUA Yu,WU Boran,et al. Consideration on development of organic solid waste resource treatment and disposal technology under the background of double carbon[J]. Environmental Engineering,2022,40(12):1−8,36.
|
[35] |
杨天华,佟瑶,翟英媚,等. 碳中和愿景下有机固废热转化清洁利用技术研究现状与展望[J]. 洁净煤技术,2024,30(3):29−51.
YANG Tianhua,TONG Yao,ZHAI Yingmei,et al. Research status and prospects of thermal conversion clean utilization technology for organic solid waste under the carbon-neutral vision[J]. Clean Coal Technology,2024,30(3):29−51.
|
[36] |
黄家俊,石明岩,熊祖鸿,等. 有机固废资源化制氢研究进展[J]. 现代化工,2024,44(9):55−58,63.
HUANG Jiajun,SHI Mingyan,XIONG Zuhong,et al. Research progress in hydrogen production from solid organic wastes[J]. Modern Chemical Industry,2024,44(9):55−58,63.
|
[37] |
周营,朱能武,刘博文,等. 微生物菌剂复配及强化厨余垃圾好氧堆肥效果分析[J]. 环境工程学报,2018,12(1):294−303. doi: 10.12030/j.cjee.201703044
ZHOU Ying,ZHU Nengwu,LIU Bowen,et al. Effect analysis of compound microbial agents and enhancement on kitchen waste aerobic composting[J]. Chinese Journal of Environmental Engineering,2018,12(1):294−303. doi: 10.12030/j.cjee.201703044
|
[38] |
魏自民,黄彩虹,谢丽,等. 城乡混合有机垃圾快速稳定化及资源化利用技术的研究构想与前景展望[J]. 工程科学与技术,2021,53(4):23−32.
WEI Zimin,HUANG Caihong,XIE Li,et al. Research conception and prospect of rapid stabilization and resource utilization technology during aerobic fermentation urban and rural mixed organic waste[J]. Advanced Engineering Sciences,2021,53(4):23−32.
|
[39] |
龙腾发,林清钰,张忠兰,等. 餐厨易腐有机垃圾中油脂降解菌的筛选和产酶条件优化[J]. 环境工程,2024,42(6):103−110.
LONG Tengfa,LIN Qingyu,ZHANG Zhonglan,et al. Screening of lipid-degrading bacteria and optimization of enzyme-producing condition for perishable kitchen organic waste[J]. Environmental Engineering,2024,42(6):103−110.
|
[40] |
韩澳,张成,马仑,等. 基于主成分分析的有机固废热解半焦与褐煤混燃特性研究[J/OL]. 洁净煤技术,1−13[2024−09−08].http://kns.cnki.net/kcms/detail/11.3676.TD.20240808.1013.002.html.
HAN Ao, ZHANG Cheng, MA Lun, et al. Characteristics of organic solid waste pyrolysis semi-coke and lignite miscibility study based on principal component analysis[J/OL]. Clean Coal Technology, 2024, 1−13[2024−09−08]. http://kns.cnki.net/kcms/detail/11.3676.TD.20240808.1013.002.html.
|
[41] |
ISEMIN R,KLIMOV D,LARINA O,et al. Application of torrefaction for recycling bio-waste formed during anaerobic digestion[J]. Fuel,2019,243:230−239. doi: 10.1016/j.fuel.2019.01.119
|
[42] |
BOUCHAREB R,DERBAL K,OZAY Y,et al. Application of nanotechnology in anaerobic digestion for biohydrogen production improvement from natural coagulation/flocculation sludge using metallic oxide nanoparticles[J]. Energy Sources,Part A:Recovery,Utilization,and Environmental Effects,2022,44(3):8184−8197.
|
[43] |
臧宇飞,李一凡,吴金柱,等. 城镇有机垃圾热解工艺研究进展[J]. 当代化工,2022,51(4):928−935. doi: 10.3969/j.issn.1671-0460.2022.04.038
ZANG Yufei,LI Yifan,WU Jinzhu,et al. Research progress in the pyrolysis process of municipal organic waste[J]. Contemporary Chemical Industry,2022,51(4):928−935. doi: 10.3969/j.issn.1671-0460.2022.04.038
|
[44] |
SHI Y,WANG Y L,ZAI X T,et al. Research on rural landscape design based on 3R principle[J]. Journal of Physics:Conference Series,2020,1549(2):022071. doi: 10.1088/1742-6596/1549/2/022071
|
[45] |
WU F,LIU Y,GAO R B. Challenges and opportunities of energy storage technology in abandoned coal mines:A systematic review[J]. Journal of Energy Storage,2024,83:110613. doi: 10.1016/j.est.2024.110613
|
[46] |
王双明,孙强,胡鑫,等. 煤炭原位开发地质保障[J]. 西安科技大学学报,2024,44(1):1−11.
WANG Shuangming,SUN Qiang,HU Xin,et al. Geological guarantee for in situ development of coal[J]. Journal of Xi’an University of Science and Technology,2024,44(1):1−11.
|
[47] |
王双明,孙 强,袁士豪,等. 论煤–水–土多资源协调开发[J]. 西北地质,2024,57(5):1−10. doi: 10.12401/j.nwg.2024069
WANG Shuangming,SUN Qiang,YUAN Shihao,et al. On the coordinated development of coal-water-soil multiple resources[J]. Northwestern Geology,2024,57(5):1−10. doi: 10.12401/j.nwg.2024069
|
[48] |
王双明, 孙强, 耿济世, 等. 煤炭开采地球关键带响应及减损开采技术体系[J/OL]. 中国地质, 2024: 1−22 [2024−06−11].http://kns.cnki.net/kcms/detail/11.1167.P.20240709.0914.004.html.
WANG Shuangming, SUN Qiang, GENG Jishi, et al. Response and impairment mining technology system of key zones of the Earth in coal mining[J/OL]. China Industrial Economics, 2024: 1−22 [2024−06−11]. http://kns.cnki.net/kcms/detail/11.1167.P.20240709.0914.004.html.
|
[49] |
程东,徐伟东,张启成,等. 厌氧消化影响因素的研究进展[J]. 广东化工,2024,51(18):62−65. doi: 10.3969/j.issn.1007-1865.2024.018.020
CHENG Dong,XU Weidong,ZHANG Qicheng,et al. Research progress on the influencing factors of anaerobic digestion[J]. Guangdong Chemical Industry,2024,51(18):62−65. doi: 10.3969/j.issn.1007-1865.2024.018.020
|
[50] |
王双明,师庆民,孙强,等. 富油煤原位热解技术战略价值与科学探索[J]. 煤田地质与勘探,2024,52(7):1−13. doi: 10.12363/issn.1001-1986.24.06.0412
WANG Shuangming,SHI Qingmin,SUN Qiang,et al. Strategic value and scientific exploration of in situ pyrolysis of tar-rich coals[J]. Coal Geology & Exploration,2024,52(7):1−13. doi: 10.12363/issn.1001-1986.24.06.0412
|