Productivity Improvement by Reperforation of Multistage-Fractured Wells in High-Pressure/High-Temperature Tight Gas Reservoirs: A Case History

被引:6
|
作者
Kidogawa, Ryosuke [1 ]
Yoshida, Nozomu [1 ]
Fuse, Kei [1 ]
Morimoto, Yuta [1 ]
Takatsu, Kyoichi [1 ]
Yamamura, Keisuke [1 ]
机构
[1] INPEX Corp, Tokyo, Japan
来源
SPE PRODUCTION & OPERATIONS | 2021年 / 36卷 / 01期
关键词
NON-DARCY FLOW; MULTIPLE FRACTURES; CONDUCTIVITY; PROPPANTS; PERMEABILITY; MODEL; OIL;
D O I
10.2118/197590-PA
中图分类号
TE [石油、天然气工业];
学科分类号
0820 ;
摘要
Productivity of multistage-fractured gas wells is possibly degraded by conductivity impairments and non-Darcy flow during long-term production. Such degradations are pronounced by flow convergence to short perforated intervals, while it is challenging to identify degraded stages for remediation. Moreover, remedial actions can be expensive under a high-pressure/high-temperature (HP/HT) environment. A field case demonstrates successful application of reperforation as a cost-effective way to mitigate the flow convergence by prioritizing targets with multirate production-logging (PL) results. This work presents theoretical investigations using numerical simulations and field execution of reperforation for a well with six-stage fracturing treatments in a HP/HT volcanic gas reservoir onshore Japan. Apparent conductivity reduction was suspected during more than 15 years of production, and it was pronounced by non-Darcy flow effects associated with flow convergence to short perforated intervals. Multirate PL was used to identify impaired stages by quantifying the inflow-performance relationship (IPR) of each stage under transient flow-after-flow (FAF) testing. The impaired stages were reperforated, adding perforation intervals with wireline-conveyed perforators. Pressure-buildup (PBU) tests before and after the job and post-job PL were used to validate productivity improvements. Target zones for reperforations were identified and prioritized with results of the multirate PL conducted. The stage IPRs were drawn, and relatively large non-Darcy effects were identified in three stages by shapes of the IPRs and/or decreasing inflow contributions as the surface rate increased. Also, a temperature log showed steep temperature change at the bottom of the fourth stage; the fracture might propagate below the perforated interval. Ranges of production increment were estimated using a numerical model calibrated against the estimated stage IPRs. The estimated increment was in the range of 15 to 30% with the planned reperforation program, while its magnitude depended on the connection between new perforations and existing fractures. Afterward, the reperforation job was performed and the gas rate was confirmed to be increased by 26% with the same wellhead pressure after 1 month of production. The postjob PL was conducted 3 months after the reperforation. The well IPR was improved, implying reduction of the non-Darcy effects. Results of PBU tests also indicated reduction of skin factor. The stage IPRs were redrawn with the post-job PL, and they suggested clear improvements in two stages where screenout occurred during fracturing treatments and a stage where significant non-Darcy effect was suspected. The workflow and strategy in this paper can be applied for productivity restoration in a cost-effective way to multistage-fractured gas wells with short perforated intervals and impaired apparent conductivity during long-term production. Especially, the interpreted results suggested effectiveness of the proposed approach for productivity improvement in stages where screenout occurs during fracturing treatments. Moreover, lessons learned on the importance of careful test designs for PL were discussed because they are keys for success.
引用
收藏
页码:97 / 115
页数:19
相关论文
共 50 条
  • [31] Zoning Productivity Calculation Method of Fractured Horizontal Wells in High-Water-Cut Tight Sandstone Gas Reservoirs under Complex Seepage Conditions
    Wei, Benchi
    Nie, Xiangrong
    Zhang, Zonghui
    Ding, Jingchen
    Shayireatehan, Reyizha
    Ning, Pengzhan
    Deng, Ding-tian
    Xiong, Jiao
    PROCESSES, 2023, 11 (12)
  • [32] Safety evaluation method of tubing strings in high-pressure, high-temperature and high-yield gas wells based on FIV analysis
    Guo, Xiaoqiang
    Liu, Jun
    Dai, Liming
    Huang, Liang
    Wei, Anchao
    Fang, Dake
    Zeng, Linlin
    ENGINEERING FAILURE ANALYSIS, 2021, 120
  • [33] Friction-wear failure mechanism of tubing strings used in high-pressure, high-temperature and high-yield gas wells
    Guo, Xiaoqiang
    Liu, Jun
    Dai, Liming
    Liu, Qingyou
    Fang, Dake
    Wei, Anchao
    Wang, Jianxun
    WEAR, 2021, 468
  • [34] Monitoring shear deformations above compacting high-pressure high-temperature reservoirs with calliper surveys
    Mainguy, Marc
    INTERNATIONAL JOURNAL OF ROCK MECHANICS AND MINING SCIENCES, 2016, 86 : 292 - 302
  • [35] Analyzing Unexpected Sanding Issues in the High-Pressure/High-Temperature, Tight-Sandstone Keshen Gas Reservoir, Western China
    Yang, Xiangtong
    Qiu, Kaibin
    Zhang, Yang
    Huang, Yongjie
    Fan, Wentong
    Pan, Yuanwei
    Xu, Guowei
    Xian, ChengGang
    SPE DRILLING & COMPLETION, 2018, 33 (03) : 192 - 208
  • [36] A high-resolution numerical well-test model for pressure transient analysis of multistage fractured horizontal wells in naturally fractured reservoirs
    Liu, Hui
    Liao, Xinwei
    Zhao, Xiaoliang
    Sun, Luyang
    Tang, Xuefeng
    Zhao, Lin
    JOURNAL OF PETROLEUM SCIENCE AND ENGINEERING, 2022, 208
  • [37] Mechanical Analysis of a Multi-Test String in High-Temperature and High-Pressure Deep Wells
    Tang, Zubing
    FDMP-FLUID DYNAMICS & MATERIALS PROCESSING, 2023, 19 (08): : 2161 - 2170
  • [38] A Reliability-Based Approach for Survival Design in Deepwater and High-Pressure/High-Temperature Wells
    Suryanarayana, P., V
    Lewis, D. B.
    SPE DRILLING & COMPLETION, 2021, 36 (01) : 138 - 149
  • [39] Solid expandable tubular patching technique for high-temperature and high-pressure casing damaged wells
    Li Tao
    PETROLEUM EXPLORATION AND DEVELOPMENT, 2015, 42 (03) : 408 - 413
  • [40] Stress Intensity Factor of Surface Cracks in the Tubing of High-Temperature and High-Pressure Deep Wells
    Cao, Min
    Tang, Liping
    Zhong, Xiang
    Tang, Li
    ARABIAN JOURNAL FOR SCIENCE AND ENGINEERING, 2024, : 4913 - 4926