YANG Lingzhi, ZHOU Zhiping, YANG Haien, et al. Downhole constant-flow stratified water injection technology with concentric bridge [J]. Petroleum Drilling Techniques,2022, 50(4):104-108. DOI: 10.11911/syztjs.2022051
Citation: YANG Lingzhi, ZHOU Zhiping, YANG Haien, et al. Downhole constant-flow stratified water injection technology with concentric bridge [J]. Petroleum Drilling Techniques,2022, 50(4):104-108. DOI: 10.11911/syztjs.2022051

Downhole Constant-Flow Stratified Water Injection Technology with Concentric Bridge

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  • Received Date: May 25, 2021
  • Revised Date: April 23, 2022
  • Available Online: April 17, 2022
  • In view of the problem that downhole pressure fluctuations cause the qualified rate of stratified water injection to drop rapidly in low permeability reservoirs, a downhole small-volume water nozzle was designed with a self-adjusting mechanism. It was then integrated into the downhole constant-flow stratified water distributor using a concentric bridge, which would minimize pressure fluctuation-triggered stratified flow variations. On the basis of the Bernoulli principle, with theoretical analysis and laboratory experiment, a self-adjusting mechanism was designed to achieve the stratified and constant flow water injection with small flow rate. According to laboratory experiments, the self-adjusting mechanism can be adjusted within an injection pressure range of 0.2−1.5 MPa. Adopting the water nozzle mechanism, the downhole constant-flow stratified water injection technology with concentric bridge has been applied in more than 40 wells in the low permeability reservoirs of Changqing Oilfield. It is possible to achieve an increase of injection pressure rise by 1.5 MPa without manual intervention, and the stratified flow adjusted automatically until the injection is qualified. The field application in Changqing Oilfield showed that the technology could increase the qualified rate of stratified water injection from 43.4% to 75.0% within 6 months and reduce the testing and adjusting frequency from 4 times to 2 times per year. It can also prolong the testing and adjusting period of the involved wells so that the annual operation expenses for a single well can be reduced by 26 000 yuan.The stratified water injection technology proposed has provided an efficient stratified water injection method for fine water injection development in low permeability reservoirs.

  • [1]
    刘合,裴晓含,罗凯,等. 中国油气田开发分层注水工艺技术现状与发展趋势[J]. 石油勘探与开发,2013,40(6):733–737. doi: 10.11698/PED.2013.06.13

    LIU He, PEI Xiaohan, LUO Kai, et al. Current status and trend of separated layer water flooding in China[J]. Petroleum Exploration and Development, 2013, 40(6): 733–737. doi: 10.11698/PED.2013.06.13
    [2]
    于九政,巨亚锋,郭方元. 桥式同心分层注水工艺的研究与试验[J]. 石油钻采工艺,2015,37(5):92–94.

    YU Jiuzheng, JU Yafeng, GUO Fangyuan. Research and experiment on bridge concentric separated layer water injection technology[J]. Oil Drilling & Production Technology, 2015, 37(5): 92–94.
    [3]
    杨玲智,刘延青,胡改星,等. 长庆油田同心验封测调一体化分层注水技术[J]. 石油钻探技术,2020,48(2):113–117. doi: 10.11911/syztjs.2020023

    YANG Lingzhi, LIU Yanqing, HU Gaixing, et al. Stratified water injection technology of concentric seal-check, logging and adjustment integration in Changqing Oilfield[J]. Petroleum Drilling Techniques, 2020, 48(2): 113–117. doi: 10.11911/syztjs.2020023
    [4]
    叶勤友,刘亚珍,孙伟,等. 智能化多管分层注水技术研究与应用[J]. 石油机械,2021,49(6):82–87.

    YE Qinyou, LIU Yazhen, SUN Wei, et al. Research of intelligent multi-pipe separate zone injection technology[J]. China Petroleum Machinery, 2021, 49(6): 82–87.
    [5]
    刘红兰. 胜利海上油田安全可控长效分层注水技术[J]. 石油钻探技术,2019,47(1):83–89. doi: 10.11911/syztjs.2018149

    LIU Honglan. Safe and controllable long-term layered water injection technology for the Shengli offshore oilfield[J]. Petroleum Drilling Techniques, 2019, 47(1): 83–89. doi: 10.11911/syztjs.2018149
    [6]
    贾贻勇,李永康. 胜坨油田套损井分层注水及测调技术[J]. 石油钻探技术,2021,49(2):107–112. doi: 10.11911/syztjs.2020137

    JIA Yiyong, LI Yongkang. Techniques of layering injection and the measurement-adjustment towards wells with casing damage in Shengtuo Oilfield[J]. Petroleum Drilling Techniques, 2021, 49(2): 107–112. doi: 10.11911/syztjs.2020137
    [7]
    徐兴安,张凤辉,杨万有,等. 注水井高效测调一体化技术研究与应用[J]. 石油机械,2020,48(8):43–49.

    XU Xing’an, ZHANG Fenghui, YANG Wanyou, et al. Integrated high efficient testing and adjustment technology for water injection wells[J]. China Petroleum Machinery, 2020, 48(8): 43–49.
    [8]
    刘红兰. 分层注水井测调一体化新技术[J]. 石油钻探技术,2018,46(1):83–89.

    LIU Honglan. A new integrated measuring and adjusting technology of separate layer water injection well[J]. Petroleum Drilling Techniques, 2018, 46(1): 83–89.
    [9]
    刘义刚,孟祥海,张志熊,等. 海上油田小井眼分注井测调一体化工艺研究[J]. 石油机械,2021,49(3):90–94.

    LIU Yigang, MENG Xianghai, ZHANG Zhixiong, et al. Study on the integrated measurement and adjustment technology for slim hole separate injection wells in offshore oilfield[J]. China Petroleum Machinery, 2021, 49(3): 90–94.
    [10]
    杨玲智,于九政,王子建,等. 桥式同心分层压降测试仪器研制与试验[J]. 石油机械,2017,45(6):96–98.

    YANG Lingzhi, YU Jiuzheng, WANG Zijian, et al. Development and test of bridge concentric separate layer pressure testing device[J]. China Petroleum Machinery, 2017, 45(6): 96–98.
    [11]
    丁晓芳. 井下空心恒流量配水技术研究[J]. 石油机械,2009,37(11):68–71.

    DING Xiaofang. Research on the borehole hollow constant flow water distribution technology[J]. China Petroleum Machinery, 2009, 37(11): 68–71.
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