Coal Geology & Exploration
Abstract
Background Well spacing design directly affects the resource utilization and exploitation benefits of blocks. Rational well spacing design plays a significant role in the commercial exploitation of coalbed methane (CBM) fields. Since the beginning of China’s 14th Five-Year Plan, blocks for CBM production in the southern Qinshui Basin have experienced a gradual increase in burial depth, a progressive decline in permeability, and a constant update of primary exploitation technology. Consequently, traditional well spacings fail to meet the requirements for field CBM exploitation any longer. Methods This study investigated the western Qinnan – eastern Mabi block by combining numerical simulations with economic assessments. Using the geology-engineering economy integration approach and based on the mechanisms underlying pressure drop propagation and synergistic desorption, this study analyzed the factors influencing well spacings. Moreover, a flow chart for determining optimal CBM well spacings was established. Accordingly, the optimal well spacings under given economic parameters and varying combinations of geological conditions and engineering parameters were determined. Results and Conclusion The results indicate that important factors influencing the well spacing include permeability, gas content, and fracture half-length, which exhibit positive correlations with the well spacing. For the CBM well spacing design, it is necessary to predict the production capacity and recovery degree under varying combinations of geological and engineering parameters using numerical simulation. The optimal well spacings should be calculated based on the calculation of economic limit well spacings, as well as the maximization of single-well estimated ultimate recovery (EUR), the rationalization of recovery degrees, and economic benefits. The chart board of optimal well spacings was established based on the actual geological, engineering, and economic parameters of the western Qinnan – eastern Mabi block, guiding field production practices and providing a reliable basis for the well spacing optimization design in the production capacity construction of the block. Conducting rational well spacing optimization using the geology-engineering economy integration approach by considering pressure drop propagation and synergistic desorption will be a significant trend in CBM production. The results of this study provide a valuable reference for the rational and efficient exploitation of CBM fields.
Keywords
Qinshui Basin, high-rank coalbed methane (CBM), horizontal well, well spacing optimization, geology-engineering economy integration, numerical simulation, synergistic desorption
DOI
10.12363/issn.1001-1986.25.02.0088
Recommended Citation
WANG Yuting, YANG Yanhui, ZHANG Cong,
et al.
(2025)
"Well spacing optimization technology for coalbed methane horizontal wells,"
Coal Geology & Exploration: Vol. 53:
Iss.
8, Article 9.
DOI: 10.12363/issn.1001-1986.25.02.0088
Available at:
https://cge.researchcommons.org/journal/vol53/iss8/9
Reference
[1] 位云生,王军磊,齐亚东,等. 页岩气井网井距优化[J]. 天然气工业,2018,38(4):129−137.
WEI Yunsheng,WANG Junlei,QI Yadong,et al. Optimization of shale gas well pattern and spacing[J]. Natural Gas Industry,2018,38(4):129−137.
[2] 丁麟,程峰,于荣泽,等. 北美地区页岩气水平井井距现状及发展趋势[J]. 天然气地球科学,2020,31(4):559−566.
DING Lin,CHENG Feng,YU Rongze,et al. Current situation and development trend of horizontal well spacing for shale gas in North America[J]. Natural Gas Geoscience,2020,31(4):559−566.
[3] 樊怀才,张鉴,岳圣杰,等. 页岩气平台式井组井间干扰影响因素分析及井距优化[J]. 天然气地球科学,2022,33(4):512−519.
FAN Huaicai,ZHANG Jian,YUE Shengjie,et al. Analysis of influencing factors of interwell interference in shale gas well groups and well spacing optimization[J]. Natural Gas Geoscience,2022,33(4):512−519.
[4] 陈京元,位云生,王军磊,等. 页岩气井间干扰分析及井距优化[J]. 天然气地球科学,2021,32(7):931−940.
CHEN Jingyuan,WEI Yunsheng,WANG Junlei,et al. Interwell–production interference and well spacing optimization in shale gas reservoir[J]. Natural Gas Geoscience,2021,32(7):931−940.
[5] 史进,吴晓东,韩国庆,等. 煤层气开发井网优化设计[J]. 煤田地质与勘探,2011,39(6):20−23.
SHI Jin,WU Xiaodong,HAN Guoqing,et al. Optimization design of CBM well grid pattern[J]. Coal Geology & Exploration,2011,39(6):20−23.
[6] 李晓龙,张红强,姜在炳. 基于CBM–SIM的煤层气井网优化设计[J]. 煤矿安全,2017,48(12):157−160.
LI Xiaolong,ZHANG Hongqiang,JIANG Zaibing. Coalbed methane well pattern optimization design based on CBM–SIM[J]. Safety in Coal Mines,2017,48(12):157−160.
[7] 安杰,刘大为,张平. 煤层气已排采井井间干扰试井解释方法及应用[J]. 煤炭学报,2017,42(5):1236−1242.
AN Jie,LIU Dawei,ZHANG Ping. Research on the interpretation method and its application of interference well test analysis for CBM drainage wells[J]. Journal of China Coal Society,2017,42(5):1236−1242.
[8] 胡秋嘉,毛崇昊,樊彬,等. 高煤阶煤层气井储层压降扩展规律及其在井网优化中的应用[J]. 煤炭学报,2021,46(8):2524−2533.
HU Qiujia,MAO Chonghao,FAN Bin,et al. Pressure drop expansion law of high rank coalbed methane reservoir and its application in well pattern optimization[J]. Journal of China Coal Society,2021,46(8):2524−2533.
[9] 赵欣,段士川,王梓良,等. 煤层气井位精细部署的地质工程一体化影响因素分析与科学优化[J]. 煤炭科学技术,2023,51(12):42−51.
ZHAO Xin,DUAN Shichuan,WANG Ziliang,et al. Analysis and scientific optimization of geological engineering integration influencing factors for precise deployment of coalbed methane well locations[J]. Coal Science and Technology,2023,51(12):42−51.
[10] 赵欣,姜波,徐强,等. 煤层气开发井网设计与优化部署[J]. 石油勘探与开发,2016,43(1):84−90.
ZHAO Xin,JIANG Bo,XU Qiang,et al. Well pattern design and deployment for coalbed methane development[J]. Petroleum Exploration and Development,2016,43(1):84−90.
[11] 王之朕,张松航,唐书恒,等. 煤层气开发井网密度和井距优化研究:以韩城北区块为例[J]. 煤炭科学技术,2023,51(3):148−157.
WANG Zhizhen,ZHANG Songhang,TANG Shuheng,et al. Study on well pattern density and well spacing of coalbed methane development:Taking Hanchengbei block as an example[J]. Coal Science and Technology,2023,51(3):148−157.
[12] 印薇薇,张海锋,苏羽. 潘庄区块煤层气开发井网优化数值模拟研究[J]. 中国煤层气,2022,19(3):7−11.
YIN Weiwei,ZHANG Haifeng,SU Yu. Research on numerical simulation of well pattern optimization for coalbed methane development in Panzhuang block[J]. China Coalbed Methane,2022,19(3):7−11.
[13] 黄赞,周瑞琦,杨焦生,等. 煤层气开发井网样式和井距优化研究:以鄂尔多斯盆地大宁区块为例[J]. 煤炭科学技术,2023,51(增刊2):121−131.
HUANG Zan,ZHOU Ruiqi,YANG Jiaosheng,et al. Study on optimization of well pattern and well spacing for CBM development:Taking Daning block as an example[J]. Coal Science and Technology,2023,51(Sup.2):121−131.
[14] 孟召平,张昆,杨焦生,等. 沁南东区块煤储层特征及煤层气开发井网间距优化[J]. 煤炭学报,2018,43(9):2525−2533.
MENG Zhaoping,ZHANG Kun,YANG Jiaosheng,et al. Analysis of coal reservoir characteristics in the Qinnan–east block and its spacing optimization of CBM development well networks[J]. Journal of China Coal Society,2018,43(9):2525−2533.
[15] 张贺. 柳林煤层气开发井型适应性分析及井距优化[J]. 中国煤层气,2023,20(1):9−12.
ZHANG He. Analysis of well type adaptability and well spacing optimization of coalbed methane development in Liulin[J]. China Coalbed Methane,2023,20(1):9−12.
[16] 谭宝德. 鸡西盆地梨树镇凹陷煤层气试验区井网数值优化[J]. 西部探矿工程,2021,33(6):75−78.
TAN Baode. Numerical optimization of well pattern in coalbed methane test area in Lishuzhen sag of Jixi basin[J]. West-China Exploration Engineering,2021,33(6):75−78.
[17] BAKER M,MAZUMDER S,SHARMA H,et al. Well des gn and well spacing optimisation in unconventional plays[C]//SPE Asia Pacific Oil and Gas Conference and Exhibition. Perth:SPE,2012:SPE–159325–MS.
[18] 岳宁远,吴仕贵,聂志宏,等. 鄂尔多斯盆地韩城区块煤层气开发区井距优化[J]. 天然气工业,2018,38(增刊1):98–101.
YUE Ningyuan,WU Shigui,NIE Zhihong,et al. Well spacing optimization of coalbed methane development zone in Hancheng block of Ordos Basin[J]. Natural Gas Industry,2018,38(Sup.1):98–101.
[19] 张聪,李梦溪,胡秋嘉,等. 沁水盆地南部中深部煤层气储层特征及开发技术对策[J]. 煤田地质与勘探,2024,52(2):122−133.
ZHANG Cong,LI Mengxi,HU Qiujia,et al. Moderately deep coalbed methane reservoirs in the southern Qinshui Basin:Characteristics and technical strategies for exploitation[J]. Coal Geology & Exploration,2024,52(2):122−133.
[20] 张秋冬,董拥军,马阔,等. 复杂井筒煤层气桥射联作技术研究与应用[C]// 西安石油大学,陕西省石油学会,北京振威展览有限公司. 2023国际石油石化技术会议论文集Ⅱ. 中国石油集团测井有限公司天津分公司,北京环鼎科技有限责任公司,2023:124–134.
[21] 杨延辉,王玉婷,刘忠,等. 沁水盆地南部高煤阶煤层气高效开发对策与实践[J]. 中国石油勘探,2024,29(4):17−30.
YANG Yanhui,WANG Yuting,LIU Zhong,et al. Strategy and practice of high–efficiency development of high–rank coalbed methane in the southern Qinshui Basin[J]. China Petroleum Exploration,2024,29(4):17−30.
[22] SıNAYUÇ Ç,GÜMRAH F. Modeling of ECBM recovery from Amasra coalbed in Zonguldak Basin,Turkey[J]. International Journal of Coal Geology,2009,77(1/2):162−174.
[23] 任建华,张亮,任韶然,等. 柳林煤层气区块不同井型产能分析研究[J]. 煤炭学报,2015,40(增刊1):158−163.
REN Jianhua,ZHANG Liang,REN Shaoran,et al. Productivity analysis of different types wells in Liulin coalbed methane block[J]. Journal of China Coal Society,2015,40(Sup.1):158−163.
[24] 傅雪海,秦勇,韦重韬. 煤层气地质学[M]. 徐州:中国矿业大学出版社,2007.
[25] AMINIAN K,AMERI S,BHAVSAR A,et al. Type curves for coalbed methane production prediction[C]//SPE Eastern Regional Meeting. Charleston:SPE,2004:SPE–91482–MS.
[26] RUSHING J A,PEREGO A D,BLASINGAME T A. Applicability of the Arps rate–time relationships for evaluating decline behavior and ultimate gas recovery of coalbed methane wells[C]//CIPC/SPE Gas Technology Symposium 2008 Joint Conference. Calgary:SPE,2008:SPE–114514–MS.
[27] 任建华. 煤层气井产能预测及提高产能方法研究[D]. 东营:中国石油大学(华东),2014.
REN Jianhua. Productivity prediction and enhanced gas recovery methods for coalbed methane well[D]. Dongying:China University of Petroleum (East China),2014.
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