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开发地质

碳酸盐岩气藏井网加密开采提高采收率大型仿真物理模拟实验

  • 胡勇 , 1, 2 ,
  • 焦春艳 , 1, 2 ,
  • 赵益 3 ,
  • 吴娟 3 ,
  • 贾松 3 ,
  • 杨东升 4 ,
  • 郭长敏 1, 2 ,
  • 陈灿 3 ,
  • 陈璐瑶 5
展开
  • 1 中国石油勘探开发研究院
  • 2 中国石油天然气集团有限公司天然气成藏与开发重点实验室
  • 3 西南油气田公司勘探开发研究院
  • 4 东北石油大学提高油气采收率教育部重点实验室
  • 5 中国科学院大学
焦春艳,博士,高级工程师,主要从事气藏开发机理及基础理论应用研究。通信地址:100083 北京市海淀区学院路20号;E-mail:

胡勇,博士,高级工程师,主要从事天然气开发实验与基础理论应用研究。通信地址:100083 北京市海淀区学院路20号;E-mail:

Copy editor: 韦东晓

收稿日期: 2024-12-03

  修回日期: 2025-01-06

  网络出版日期: 2025-05-13

基金资助

中国石油天然气股份有限公司前瞻性基础性科技课题“国内已开发气田储采平衡分析与SEC增储技术研究”(2022DJ7902)

Large-scale physical simulation experiment on enhanced gas recovery by well pattern infilling in carbonate gas reservoirs

  • HU Yong , 1, 2 ,
  • JIAO Chunyan , 1, 2 ,
  • ZHAO Yi 3 ,
  • WU Juan 3 ,
  • JIA Song 3 ,
  • YANG Dongsheng 4 ,
  • GUO Changmin 1, 2 ,
  • CHEN Can 3 ,
  • CHEN Luyao 5
Expand
  • 1. PetroChina Research Institute of Petroleum Exploration & Development
  • 2. The Key Laboratory of Gas Reservoir Formation and Development
  • 3. Research Institute of Exploration and Development, PetroChina Southwest Oil & Gas Field Company
  • 4. Key Laboratory of Enhanced Oil and Gas Recovery of Ministry of Education, Northeast Petroleum University
  • 5. University of Chinese Academy of Sciences
JIAO Chunyan, PhD, Senior Engineer, mainly engaged in research on the mechanism of gas reservoir development and application of basic theory. Add: No. 20 Xueyuan Rd., Haidian District, Beijing 100083, China. E-mail:

HU Yong, PhD, Senior Engineer, mainly engaged in research on natural gas development experiment and application of basic theory. Add: No. 20 Xueyuan Rd., Haidian District, Beijing 100083, China.E-mail:

Received date: 2024-12-03

  Revised date: 2025-01-06

  Online published: 2025-05-13

摘要

为了研究井网加密开采对碳酸盐岩气藏提高采收率的作用,以四川盆地磨溪雷一1气藏为研究对象,建立了一套18 m长的大型仿真物理模拟实验方法和装置。在渗透率为0.56×10-3 μm2,不同含水饱和度条件下,实验模拟单井开采和井网加密开采两种方式,对于井网加密开采方式,实验进一步对比分析了分批加密、同时加密两种方式在两种不同加密时机(稳产期末和废弃条件)时对气藏采收率效果的影响。实验结果表明:①单井开采时,采收率受含水饱和度影响十分显著,在含水饱和度为20%~50%的条件下,不加密时采收率为14.6%~64.7%;两口井加密后采收率可提高至85.9%~92.7%,效果明显;②加密井提高采收率主要是发挥两方面的作用:一方面是提高未动用区储量动用范围,另一方面是提高已动用区压降效率。气藏储量动用情况与含水饱和度和距离气井远近密切相关,井网加密可以根据储量动用情况进行部署,优选储量未动用区域和已动用(未充分)区域。③部署加密井提高采收率幅度随加密井数增加呈现先增加后降低的趋势,因此,建议老区需要根据气藏剩余储量特征合理优化加密井数,不宜过度加密。从提高采收率幅度和开采效率两个角度分析,在稳产期末采用集中部署加密井同时加密方式,对延长稳产期、提高采收率和缩短生产周期更为有利。研究成果对于气藏井网加密部署提高采收率具有指导意义。

本文引用格式

胡勇 , 焦春艳 , 赵益 , 吴娟 , 贾松 , 杨东升 , 郭长敏 , 陈灿 , 陈璐瑶 . 碳酸盐岩气藏井网加密开采提高采收率大型仿真物理模拟实验[J]. 海相油气地质, 2025 , 30(2) : 185 -192 . DOI: 10.3969/j.issn.1672-9854.2025.02.009

Abstract

In order to study the effect of well pattern infilling on enhancing gas recovery of carbonate gas reservoirs, taking the T2l11 gas reservoir of Moxi gas field in Sichuan Basin as an example, a set of large-scale 18-meter physical simulation experimental device and method are established. The experimental model have a permeability of 0.56×10-3 μm2 and single well exploitation and well infilling (Well 1 and Well 2 are deployed at 14.1 m (78.3%) and 4.6 m (25.6%) from the initial well, respectively) exploitation have been simulated based on the model. The experiment measure gas production and pressure throughout the entire life cycle, revealing the reserve utilization laws under different water saturation conditions of the gas reservoir. The study compares and analyzes the effects of batch and simultaneous infilling methods, as well as the timing of two infilling methods at the end of stable production and under abandoned conditions, on improving the recovery efficiency of the gas reservoir. The experimental results show that: (1) For single well exploitation, gas recovery is significantly affected by water saturation, showing a significantly decrease with increasing water saturation. The recovery is 14.6% to 64.7% under the condition of water saturation of 20%-50%; compared with single well deployment, the rate of recovery can increase to 85.9%-92.7% after two wells are infilled, and the effect of infilling is significant. (2) Infilling wells enhancing gas recovery have two functions: one is to improve the production range of reserves in the undeveloped area, and the other is to improve the pressure drop efficiency in the developed area. The production of gas reservoir reserves is closely related to the water saturation and the distance from the gas well. The well pattern infilling can be deployed according to the production of reserves, and the undeveloped area and the developed (insufficient) area of reserves are preferred. (3) The enhancement of recovery rate through the deployment of infilling wells initially increases and then decreases as the number of well increases. Therefore, it is recommended to optimize the number of infilling wells in developed areas based on the characteristics of the remaining reserves in the gas reservoir, avoiding excessive infilling. Further analysis from the perspectives of enhanced gas recovery range and exploitation efficiency shows that adopting a centralized deployment of infilling wells and simultaneous infilling at the end of stable production period is more beneficial for extending stable production period, improving recovery, and shortening production cycle. The research results can guide the deployment of well pattern infilling in gas reservoir to enhance gas recovery.

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[1]
HOLDITCH S A. Tight gas sands[J]. Journal of petroleum technology, 2006, 58(6): 86-93.

[2]
王国亭, 贾爱林, 郭智, 等. 苏里格气田致密气开发井网效果评价与调整对策[J]. 天然气工业, 2023, 43(8): 66-79.

WANG Guoting, JIA Ailin, GUO Zhi, et al. Effect evaluation and adjustment countermeasures of tight gas development well patterns in the Sulige gas field[J]. Natural gas industry, 2023, 43(8): 66-79.

[3]
郭智, 贾爱林, 冀光, 等. 致密砂岩气田储量分类及井网加密调整方法: 以苏里格气田为例[J]. 石油学报, 2017, 38(11): 1299-1309.

DOI

GUO Zhi, JIA Ailin, JI Guang, et al. Reserve classification and well pattern infilling method of tight sandstone gasfield: a case study of Sulige Gasfield[J]. Acta petrolei sinica, 2017, 38(11): 1299-1309.

[4]
胡勇, 梅青燕, 王继平, 等. 致密砂岩气藏井网加密优化[J]. 天然气地球科学, 2020, 31(9): 1326-1333.

DOI

HU Yong, MEI Qingyan, WANG Jiping, et al. Optimization of well pattern infilling in tight sandstone gas reservoir[J]. Natural gas geoscience, 2020, 31(9): 1326-1333.

DOI

[5]
李奇, 高树生, 刘华勋, 等. 致密砂岩气藏井网加密与采收率评价[J]. 天然气地球科学, 2020, 31(6): 865-876.

DOI

LI Qi, GAO Shusheng, LIU Huaxun, et al. Well network densification and recovery evaluation of tight sandstone gas reservoirs[J]. Natural gas geoscience, 2020, 31(6): 865-876.

DOI

[6]
冀光, 贾爱林, 孟德伟, 等. 大型致密砂岩气田有效开发与提高采收率技术对策: 以鄂尔多斯盆地苏里格气田为例[J]. 石油勘探与开发, 2019, 46(3): 602-612.

DOI

JI Guang, JIA Ailin, MENG Dewei, et al. Technical strategies for effective development and gas recovery enhancement of a large tight gas field: a case study of Sulige gas field, Ordos Basin, NW China[J]. Petroleum exploration and development, 2019, 46(3): 602-612.

[7]
何东博, 贾爱林, 冀光, 等. 苏里格大型致密砂岩气田开发井型井网技术[J]. 石油勘探与开发, 2013, 40(1): 79-89.

HE Dongbo, JIA Ailin, JI Guang, et al. Well type and pattern optimization technology for large scale tight sand gas, Sulige gas field[J]. Petroleum exploration and development, 2013, 40(1): 79-89.

[8]
贾爱林, 王国亭, 孟德伟, 等. 大型低渗-致密气田井网加密提高采收率对策: 以鄂尔多斯盆地苏里格气田为例[J]. 石油学报, 2018, 39(7): 802-813.

DOI

JIA Ailin, WANG Guoting, MENG Dewei, et al. Well pattern infilling strategy to enhance oil recovery of giant low-permeability tight gasfield: a case study of Sulige Gasfield, Ordos Basin[J]. Acta petrolei sinica, 2018, 39(7): 802-813.

DOI

[9]
吴正, 江乾锋, 周游, 等. 鄂尔多斯盆地苏里格致密砂岩气田提高采收率关键技术及攻关方向[J]. 天然气工业, 2023, 43(6): 66-75.

WU Zheng, JIANG Qianfeng, ZHOU You, et al. Key technologies and orientation of EGR for the Sulige tight sandstone gas field in the Ordos Basin[J]. Natural gas industry, 2023, 43(6): 66-75.

[10]
程立华, 郭智, 孟德伟, 等. 鄂尔多斯盆地低渗透-致密气藏储量分类及开发对策[J]. 天然气工业, 2020, 40(3): 65-73.

CHENG Lihua, GUO Zhi, MENG Dewei, et al. Reserves grading classification and development countermeasures for low-permeability tight gas reservoirs in the Ordos Basin[J]. Natural gas industry, 2020, 40(3): 65-73.

[11]
胡勇, 李熙喆, 李跃刚, 等. 低渗致密砂岩气藏提高采收率实验研究[J]. 天然气地球科学, 2015, 26(11): 2142-2148.

DOI

HU Yong, LI Xizhe, LI Yuegang, et al. Enhanced gas recovery of the low permeability and tight sandstone gas reservoir[J]. Natural gas geoscience, 2015, 26(11): 2142-2148.

DOI

[12]
郭智, 王国亭, 夏勇辉, 等. 多层透镜状致密砂岩气田井网优化技术对策[J]. 天然气地球科学, 2022, 33(11): 1883-1894.

DOI

GUO Zhi, WANG Guoting, XIA Yonghui, et al. Technical countermeasure of well pattern optimization in multi-layer lenticular tight sandstone gas field[J]. Natural gas geoscience, 2022, 33(11): 1883-1894.

DOI

[13]
KUUSKRAA V A, AMMER J. Tight gas sands development: how to dramatically improve recovery efficiency[J]. Gas TIPS, 2004, 10(1): 15-20.

[14]
TEUFEL L W, CHEN H Y, ENGLER T W. Optimization of infill drilling in naturally-fractured tight-gas reservoirs phase II: DE-FC26-98FT40486[R]. New Mexico: U.S. Department of Energy and Industry Cooperative, 2004.

[15]
CIPOLLA C L, WOOD M C. A statistic approach to infill drilling studies: case history of Ozona canyon sands[J]. SPE reservoir engineering, 1996, 11(3): 196-202.

[16]
马新华, 杨雨, 文龙, 等. 四川盆地海相碳酸盐岩大中型气田分布规律及勘探方向[J]. 石油勘探与开发, 2019, 46(1): 1-13.

DOI

MA Xinhua, YANG Yu, WEN Long, et al. Distribution and exploration direction of medium-and large-sized marine carbonate gas fields in Sichuan Basin, SW China[J]. Petroleum exploration and development, 2019, 46(1): 1-13.

[17]
闫海军, 杨长城, 郭建林, 等. 四川盆地中部地区震旦系大型碳酸盐岩气藏开发技术新进展[J]. 天然气工业, 2024, 44(5): 68-79.

YAN Haijun, YANG Changcheng, GUO Jianlin, et al. New technological progress in the development of Sinian large carbonate gas reservoirs in central Sichuan Basin[J]. Natural gas industry, 2024, 44(5): 68-79.

[18]
魏国齐, 谢增业, 杨雨, 等. 四川盆地中部北斜坡震旦系—寒武系大型岩性气藏形成条件[J]. 石油勘探与开发, 2022, 49(5): 835-846.

DOI

WEI Guoqi, XIE Zengye, YANG Yu, et al. Formation conditions of Sinian-Cambrian large lithologic gas reservoirs in the north slope area of central Sichuan Basin, SW China[J]. Petroleum exploration and development, 2022, 49(5): 835-846.

[19]
李程辉, 李熙喆, 高树生, 等. 碳酸盐岩储集层气水两相渗流实验与气井流入动态曲线: 以高石梯—磨溪区块龙王庙组和灯影组为例[J]. 石油勘探与开发, 2017, 44(6): 930-938.

DOI

LI Chenghui, LI Xizhe, GAO Shusheng, et al. Experiment on gas-water two-phase seepage and inflow performance curves of gas wells in carbonate reservoirs: a case study of Longwangmiao Formation and Dengying Formation in Gaoshiti-Moxi Block, Sichuan Basin, SW China[J]. Petroleum exploration and development, 2017, 44(6): 930-938.

DOI

[20]
雍锐, 胡勇, 彭先, 等. 四川盆地天然气藏提高采收率技术进展与发展方向[J]. 天然气工业, 2023, 43(1): 23-35.

YONG Rui, HU Yong, PENG Xian, et al. Progress and prospect of enhanced gas recovery technology in the Sichuan Basin[J]. Natural gas industry, 2023, 43(1): 23-35.

[21]
孙贺东, 李世银, 刘志良, 等. 缝洞型碳酸盐岩凝析气藏提高采收率关键技术[J]. 天然气工业, 2023, 43(1): 113-121.

SUN Hedong, LI Shiyin, LIU Zhiliang, et al. EOR technologies for fractured-vuggy carbonate condensate gas reservoirs[J]. Natural gas industry, 2023, 43(1): 113-121.

[22]
胡勇, 李熙喆, 万玉金, 等. 致密砂岩气渗流特征物理模拟[J]. 石油勘探与开发, 2013, 40(5): 580-584.

HU Yong, LI Xizhe, WAN Yujin, et al. Physical simulation on gas percolation in tight sandstone[J]. Petroleum exploration and development, 2013, 40(5): 580-584.

[23]
王国锋, 周梦飞, 胡勇, 等. 裂缝-孔隙型边底水气藏提高采收率大型物理模拟实验[J]. 天然气地球科学, 2024, 35(1): 96-103.

DOI

WANG Guofeng, ZHOU Mengfei, HU Yong, et al. Large-scale physical simulation experiment for enhanced gas recovery in fractured-porous water-drive gas reservoirs[J]. Natural gas geoscience, 2024, 35(1): 96-103.

DOI

[24]
胡勇, 李熙喆, 万玉金, 等. 裂缝气藏水侵机理及对开发影响实验研究[J]. 天然气地球科学, 2016, 27(5): 910-917.

DOI

HU Yong, LI Xizhe, WAN Yujin, et al. The experimental study of water invasion mechanism in fracture and the influence on the development of gas reservoir[J]. Natural gas geoscience, 2016, 27(5): 910-917.

DOI

[25]
卢祥国, 金鑫. 一种人造长岩心及其制备方法: CN201210101103.8[P]. 2021-04-10.

LU Xiangguo, JIN Xin. An artificial long core and its manufacture method: CN201210101103.8[P]. 2021-04-10.

[26]
卢祥国, 宋合龙, 王景盛. 石英砂环氧树脂胶结非均质模型制作方法: CN200510063665.8[P]. 2005-03-30.

LU Xiangguo, SONG Helong, WANG Jingsheng. Method of making a heterogeneous model of epoxy resin bonded quartz sand: CN200510063665.8[P]. 2005-03-30.

[27]
何小川, 欧家强. 磨溪雷一1气藏高效开发主体技术与成效[J]. 西南石油大学学报(自然科学版), 2020, 42(4): 144-154.

HE Xiaochuan, OU Jiaqiang. The agent technologies for efficient development of Moxi T2l11 gas reservoir[J]. Journal of Southwest Petroleum University(science & technology edition), 2020, 42(4): 144-154.

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