Petroleum Reservoir Evaluation and Development ›› 2025, Vol. 15 ›› Issue (1): 152-160.doi: 10.13809/j.cnki.cn32-1825/te.2025.01.019
• Engineering Techniques • Previous Articles Next Articles
HE Chunyan(), ZHAO Yong(
), LI Nanying, YANG Jian, CAO Haitao, TANG Ronglin
Received:
2023-12-04
Online:
2025-01-26
Published:
2025-02-26
Contact:
ZHAO Yong
E-mail:hechunyan.xnyq@sinopec.com;zhaoyong.xnqy@sinopec.com
CLC Number:
HE Chunyan,ZHAO Yong,LI Nanying, et al. Intelligent production adjustment early warning for shale gas wells based on fuzzy logic control[J]. Petroleum Reservoir Evaluation and Development, 2025, 15(1): 152-160.
Table 1
Membership function statistics of input parameters and output parameters"
参数 | 低配 | 中低配 | 合适 | 中高配 | 高配 |
---|---|---|---|---|---|
临界携液流量法 (排液输气阶段) | S(-0.7,-40.0) | G(0.2,5.0,-0.6) | S(-0.4,40.0) | ||
临界携液流量法 (其他阶段) | S(-0.4,-100.0) | G(0.2,15.0,-0.2) | S(0,100.0) | ||
临界出砂流量法 | S(0,-100.0) | G(0.2,15.0,0.2) | S(0.4,100.0) | ||
稳产期压降法 (排液输气阶段) | S(-0.9,-40.0) | G(0.3,5.0,-0.6) | G(0.3,5.0,0) | G(0.3,5.0,0.6) | S(0.9,40.0) |
稳产期压降法 (其他阶段) | S(-0.5,-60.0) | G(0.2,5.0,-0.3) | G(0.2,5.0,0) | G(0.2,5.0,0.3) | S(0.5,60.0) |
单位压降产气法 | S(-0.5,-60.0) | G(0.2,5.0,-0.3) | G(0.2,5.0,0) | G(0.2,5.0,0.3) | S(0.5,60.0) |
经验图版法 | S(-0.5,-60.0) | G(0.2,5.0,-0.3) | G(0.2,5.0,0) | G(0.2,5.0,0.3) | S(0.5,60.0) |
间歇开关井法 | S(-0.2,-10.0) | G(0.2,20.0,0) | S(0.2,10.0) | ||
调产预警输出 | S(-0.5,-60.0) | G(0.2,5.0,-0.3) | G(0.2,5.0,0) | G(0.2,5.0,0.3) | S(0.5,60.0) |
Table 2
Schematic table of production adjustment rules (fuzzy rules)"
生产阶段 | 稳产期压降法 | 单位压降产气法 | 经验图版法 | 临界携液流量法 | 临界出砂流量法 | 间歇开关井法 | 调产结论 |
---|---|---|---|---|---|---|---|
排液输气 | 低配 | 大幅上调 | |||||
中低配 | 小幅上调 | ||||||
合适 | 高配 | 大幅下调 | |||||
合适 | 中高配 | 小幅下调 | |||||
高配 | 合适 | 合适 | 大幅下调 | ||||
中高配 | 合适 | 合适 | 小幅下调 | ||||
合适 | 合适 | 合适 | 不调 | ||||
中低配 | 合适 | 合适 | 小幅上调 | ||||
低配 | 合适 | 合适 | 大幅上调 | ||||
稳产降压 | 低配 | 大幅上调 | |||||
中低配 | 小幅上调 | ||||||
合适 | 高配 | 大幅下调 | |||||
合适 | 中高配 | 小幅下调 | |||||
2个及以上高配 | 合适 | 合适 | 小幅下调 | ||||
2个及以上中高配 | 合适 | 合适 | 大幅下调 | ||||
2个及以上合适 | 合适 | 合适 | 不调 | ||||
2个及以上中低配 | 合适 | 合适 | 小幅上调 | ||||
2个及以上低配 | 合适 | 合适 | 大幅上调 | ||||
间歇开关井 | 合适 | 合适 | 合适 | 不调 | |||
关井 | 大幅下调(关井) | ||||||
开井 | 大幅上调(开井) |
Table 3
Input and output tables of fuzzy model"
生产天数/ d | 经验图 版法 | 临界携液 流量法 | 临界出砂 流量法 | 稳产期 压降法 | 单位压降 产气法 | 间歇开关 井法 | 模型 输出值 | 调产输出 | 目前产气量/ (104 m3/d) | 调产幅度 参考值 |
---|---|---|---|---|---|---|---|---|---|---|
45 | -0.12 | -0.71 | -0.31 | 0.57 | -0.17 | 小幅上调 | 10 | 10% | ||
90 | 0.86 | 0.04 | -0.62 | 0.32 | 0.07 | 0.20 | 小幅下调 | 12 | -10% | |
200 | 0.69 | -0.25 | -0.65 | -0.03 | -0.09 | 0 | 不调 | 9 | 0 | |
2 340 | 0.04 | -0.63 | 0.5 | 0.68 | 大幅下调 | 1 | 关井 |
[1] | 房大志, 曾辉, 王宁, 等. 从Haynesville页岩气开发数据研究高压页岩气高产因素[J]. 石油钻采工艺, 2015(2): 58-62. |
FANG Dazhi, ZENG Hui, WANG Ning, et al. Study on high production factors of high-pressure shale gas from Haynesville Shale Gas development data[J]. Oil Drilling & Production Technology, 2015(2): 58-62. | |
[2] | 刘华, 王卫红, 陈明君, 等. 涪陵龙马溪组页岩储层应力敏感实验研究[J]. 石化技术, 2019, 26(5): 155-158. |
LIU Hua, WANG Weihong, CHEN Mingjun, et al. Research on the stress sensitivity experiment of Fuling Longmaxi shale reservoirs[J]. Petrochemical Industry Technology, 2019, 26(5): 155-158. | |
[3] | KAINZ S, SNYDER J, MCCULLAGH A, et al. Haynesville midstream: Capacity constraints and differential pressures[C]// Paper URTEC-2019-607-MS presented at the SPE/AAPG/SEG Unconventional Resources Technology Conference, Denver, Colorado, USA, July 2019. |
[4] | 湛小红. 涪陵页岩气田合理配产方法对比优选研究[J]. 石油地质与工程, 2019, 33(1): 67-71. |
ZHAN Xiaohong. Comparative optimization of reasonable production allocation methods in Fuling shale gas field[J]. Petroleum Geology and Engineering, 2019, 33(1): 67-71. | |
[5] | 胡浩, 汪敏, 隆辉, 等. 一种页岩气井全生命周期合理配产新方法: 以泸州地区页岩气为例[J]. 复杂油气藏, 2023, 16(2): 137-143. |
HU Hao, WANG Min, LONG Hui, et al. A new method of rational production allocation in the whole life cycle of shale gas wells: A case from shale gas in Luzhou[J]. Complex Hydrocarbon Reservoirs, 2023, 16(2): 137-143. | |
[6] | 祝启康, 林伯韬, 杨光, 等. 低压低产页岩气井智能生产优化方法[J]. 石油勘探与开发, 2022, 49(4): 770-777. |
ZHU Qikang, LIN Botao, YANG Guang, et al. Intelligent production optimization method for a low pressure and low productivity shale gas well[J]. Petroleum Exploration and Development, 2022, 49(4): 770-777. | |
[7] | WANG L X. A course in fuzzy systems and control[M]. Englewood Cliffs: Prentice-Hall International, Inc, 1996. |
[8] | BELYADI H. Machine learning guide for oil and gas using python[M]. Cambridge, United States: Gulf Professional Publishing, 2021. |
[9] | FROTA R A, RICARDO T, MARLEY V. Fuzzy logic for control of injector wells flow rates under produced water reinjection[J]. Journal of Petroleum Science and Engineering, 2022, 215: 110574. |
[10] | GORJIZADEH H, GHALEHNOIE M, NEGAHBAN S, et al. Fuzzy controller design for constant bottomhole pressure drilling under operational/physical constraints[J]. Journal of Petroleum Science and Engineering, 2022, 212: 110335. |
[11] | 熊亮, 赵勇, 魏力民, 等. 威荣海相页岩气田页岩气富集机理及勘探开发关键技术[J]. 石油学报, 2023, 44(8): 1365-1381. |
XIONG Liang, ZHAO Yong, WEI Limin, et al. Enrichment mechanisms and key exploration and development technologies of shale gas in Weirong marine shale gas field[J]. Acta Petrolei Sinica, 2023, 44(8): 1365-1381. | |
[12] | 唐建明, 何建华, 魏力民, 等. 川东南林滩场地区五峰组—龙马溪组页岩气藏压力演化及其地质意义[J]. 石油实验地质, 2023, 45(4): 739-750. |
TANG Jianming, HE Jianhua, WEI Limin, et al. Pressure evolution of shale gas reservoirs in Wufeng-Longmaxi formations, Lintanchang area, southeast Sichuan Basin and its geological significance[J]. Petroleum Geology & Experiment, 2023, 45(4): 739-750. | |
[13] | 沈金才, 董长新, 常振. 涪陵页岩气田气井生产阶段划分及动态特征描述[J]. 天然气勘探与开发, 2021, 44(1): 111-117. |
SHEN Jincai, DONG Changxin, CHANG Zhen. Classifying and describing the production stage and dynamic characteristics of gas wells, Fuling shale gas field[J]. Natural Gas Exploration and Development, 2021, 44(1): 111-117. | |
[14] | 刘莉, 郑爱维, 包汉勇, 等. 涪陵气田焦石坝区块页岩气持续稳产技术政策优化[J]. 天然气工业, 2023, 43(6): 96-104. |
LIU Li, ZHENG Aiwei, BAO Hanyong, et al. Optimization of strategies for sustainable and stable gas production in the Jiaoshiba Block of the Fuling Shale Gas Field[J]. Natural Gas Industry, 2023, 43(6): 96-104. | |
[15] | 杨永华, 宋燕高, 王兴文, 等. 威荣页岩气田压裂实践与认识[J]. 石油实验地质, 2023, 45(6): 1143-1150. |
YANG Yonghua, SONG Yangao, WANG Xingwen, et al. Practice and understanding of fracturing in Weirong shale gas field[J]. Petroleum Geology & Experiment, 2023, 45(6): 1143-1150. | |
[16] | 郭建林, 贾爱林, 贾成业, 等. 页岩气水平井生产规律[J]. 天然气工业, 2019, 39(10): 53-58. |
GUO Jianlin, JIA Ailin, JIA Chengye, et al. Production laws of shale-gas horizontal wells[J]. Natural Gas Industry, 2019, 39(10): 53-58. | |
[17] | 陈学忠, 郑健, 刘梦云, 等. 页岩气井精细控压生产技术可行性研究与现场试验[J]. 钻采工艺, 2022, 45(3): 79-83. |
CHEN Xuezhong, ZHENG Jian, LIU Mengyun, et al. Feasibility study and field trail of precise managed pressure production technology for shale gas wells[J]. Drilling & Production Technology, 2022, 45(3): 79-83. | |
[18] | 王兴文, 缪尉杰, 何新星, 等. 川南威荣气田深层页岩气工程技术进展[J]. 石油实验地质, 2023, 45(6): 1170-1177. |
WANG Xingwen, MIAO Weijie, HE Xinxing, et al. Progress in deep shale gas engineering technology in Weirong gas field in southern Sichuan[J]. Petroleum Geology & Experiment, 2023, 45(6): 1170-1177. | |
[19] | 陆奎, 汤培榕, 杨为民. 用简化模糊规则数的方法设计模糊PID控制系统[J]. 石油大学学报(自然科学版), 2004, 28(5): 126-130. |
LU Kui, TANG Peirong, YANG Weiming. Design of fuzzy proportional-integral-derivative control system by simplifying fuzzy rules[J]. Journal of China University of Petroleum(Edition of Natural Science), 2004, 28(5):126-130. | |
[20] | 赵胜兰, 刘承佚. 涪陵气田页岩气井临界携液流量计算新模型[J]. 云南化工, 2019, 46(5): 167-170. |
ZHAO Shenglan, LIU Chengyi. The new calculation model of critical liquid carrying flow rate in Fuling Gas Field[J]. Yunnan Chemical Technology, 2019, 46(5): 167-170. | |
[21] | 李小益. 涪陵页岩气井出砂机理研究及合理工作制度确定[J]. 中国石油和化工标准与质量, 2020, 40(11): 153-154. |
LI Xiaoyi. Study on sanding mechanism of shale gas wells in Fuling District and determination of reasonable working system[J]. China Petroleum and Chemical Standard and Quality, 2020, 40(11): 153-154. | |
[22] | 张修明, 李晓平, 张健涛, 等. 靖边古潜台东侧气田气藏产能评价方法研究[J]. 海洋石油, 2009, 29(2): 65-68. |
ZHANG Xiuming, LI Xiaoping, ZHANG Jiantao, et al. Productivity evaluating methods for gas reservoir in eastern part of Jingbian Paleozoic buried platform gas field[J]. Offshore Oil, 2009, 29(2): 65-68. | |
[23] | 岳三琪, 付玉, 伍勇, 等. 地下储气库注采井井底压力计算研究[J]. 油气藏评价与开发, 2017, 7(3): 28-33. |
YUE Sanqi, FU Yu, WU Yong, et al. Bottom hole pressure calculation of injection and production wells of underground gas storage[J]. Reservoir Evaluation and Development, 2017, 7(3): 28-33. | |
[24] | 谭聪. 焦石坝区块页岩气井井底流压计算方法评价[J]. 江汉石油职工大学学报, 2022, 35(4): 14-17. |
TAN Cong. Evaluation of calculation methods of bottomhole flow pressure in shale gas wells: A case study of Jiaoshiba block[J]. Journal of Jianghan Petroleum University of Staff and Workers, 2022, 35(4): 14-17. | |
[25] | 袁力, 姜琴. 隶属函数确定方法探讨[J]. 郧阳师范高等专科学校学报, 2009, 29(6): 44-46. |
YUAN Li, JIANG Qin. A study on the determination of membership function[J]. Journal of Yunyang Teachers College, 2009, 29(6): 44-46. |
[1] | LI Wei, WANG Min, XIAO Dianshi, JIN Hui, SHAO Haoming, CUI Junfeng, JIA Yidong, ZHANG Zeyuan, LI Ming. Development characteristics and intelligent identification method of natural fractures: A case study of the Upper Triassic Xujiahe Formation in the western Sichuan Depression, Sichuan Basin [J]. Petroleum Reservoir Evaluation and Development, 2025, 15(3): 443-454. |
[2] | JING Shuai, WU Jianjun, MA Chengjie. Research and application of intelligent diagnosis and optimization technologies for multi-model oil and gas development [J]. Petroleum Reservoir Evaluation and Development, 2025, 15(3): 373-381. |
[3] | MI Lidong,ZENG Daqian,LIU Hua,ZHANG Guangquan,ZHANG Junfa. Development and application of Sinopec integrated management platform for underground gas storage [J]. Petroleum Reservoir Evaluation and Development, 2023, 13(6): 781-788. |
[4] | HUANG Jiachen,ZHANG Jinchuan. Overview of oil and gas production forecasting by machine learning [J]. Petroleum Reservoir Evaluation and Development, 2021, 11(4): 613-620. |
[5] | WANG Yunhai,REN Jianhua,CHEN Zuhua,MEI Junwei,HU Chunfeng,WANG Wei,LU Bi. Integrated benefit development and intelligent evaluation of normal pressure shale gas [J]. Petroleum Reservoir Evaluation and Development, 2021, 11(4): 487-496. |
[6] | ZHANG Jinchuan,CHEN Shijing,LI Zhongming,LANG Yue,WANG Chunyan,WANG Dongsheng,LI Zhen,TANG Xuan,LIU Yang,LI Pei,TONG Zhongzheng. Intelligent evaluation of shale gas resources [J]. Petroleum Reservoir Evaluation and Development, 2021, 11(4): 476-486. |
[7] | GE Jingtao,YAO Rongchang,MA Jisheng. Research on non-destructive intelligent inter-pumping technology for CBM wells in South Yanchuan Block [J]. Reservoir Evaluation and Development, 2020, 10(4): 97-100. |
[8] | HUANG Tianpeng,YAN Xiaoming,LI Jiaming. Application of logging unit for liquid level of shale gas wells with high pressure of South block in Pingqiao [J]. Reservoir Evaluation and Development, 2020, 10(1): 84-89. |
[9] | YUAN Hang,GU Hongtao,LI Jiaxin. Research and field application of downhole throttling technology for shale gas wells in south block of Pingqiao area [J]. Reservoir Evaluation and Development, 2019, 9(4): 83-88. |
[10] | Zhuo Jigao,Sun Zhongming,Yan Xiaoming. Automatic management technology for shale gas well test report based on Python [J]. Reservoir Evaluation and Development, 2018, 8(6): 83-86. |
|