ZHENG Deshuai. Design and Test for Rotary Slide Drilling Tool[J]. Petroleum Drilling Techniques, 2021, 49(6): 81-85. DOI: 10.11911/syztjs.2021013
Citation: ZHENG Deshuai. Design and Test for Rotary Slide Drilling Tool[J]. Petroleum Drilling Techniques, 2021, 49(6): 81-85. DOI: 10.11911/syztjs.2021013

Design and Test for Rotary Slide Drilling Tool

More Information
  • Received Date: December 04, 2020
  • Revised Date: October 13, 2021
  • Available Online: October 28, 2021
  • A friction reduction tool for rotating drill strings during slide drilling, namely the rotary slide drilling (RSD) tool, was developed to address the technical problems of high friction and a low rate of penetration (ROP) in slide drilling. A bottomhole assembly (BHA) torsional dynamic model was built to analyze the effects of the torque and position of the RSD tool on the toolface azimuth of the screwdrill. The prototype RSD tool was tested indoors with a test device that could simulate the antitorsional vibration of the screw. It was also tested in the test wells. The theoretical analysis and test results show that the RSD tool has a feasible working principle and a reasonable structural design, and it can stabilize and adjust the toolface azimuth of the screwdrill while rotating the drill string. Rresearch indicates that the RSD tool can not only realize the slide drilling of the screwdrill but also reduce friction by rotating the part of the drill string above it.
  • [1]
    路保平,丁士东. 中国石化页岩气工程技术新进展与发展展望[J]. 石油钻探技术,2018,46(1):1–9.

    LU Baoping, DING Shidong. New progress and development prospect in shale gas engineering technologies of Sinopec[J]. Petroleum Drilling Techniques, 2018, 46(1): 1–9.
    [2]
    杨海平. 涪陵平桥与江东区块页岩气水平井优快钻井技术[J]. 石油钻探技术,2018,46(3):13–19.

    YANG Haiping. Optimized and fast drilling technology for horizontal shale gas in Pingqiao and Jiangdong Blocks of Fulin Area[J]. Petroleum Drilling Techniques, 2018, 46(3): 13–19.
    [3]
    张金成,艾军,臧艳彬,等. 涪陵页岩气田“井工厂”技术[J]. 石油钻探技术,2016,44(3):9–15.

    ZHANG Jincheng, AI Jun, ZANG Yanbin, et al. Multi-well pad technology in the Fuling Shale Gas Field[J]. Petroleum Drilling Techniques, 2016, 44(3): 9–15.
    [4]
    韩来聚,牛洪波,窦玉玲. 胜利低渗油田长水平段水平井钻井关键技术[J]. 石油钻探技术,2012,40(3):7–13.

    HAN Laiju, NIU Hongbo, DOU Yuling. Key drilling technology for long displacement horizontal wells of low permeability reservoir in Shengli Oilfield[J]. Petroleum Drilling Technology, 2012, 40(3): 7–13.
    [5]
    侯立中,郑德帅,吴俊霞. 加拿大非常规油气田优快钻井技术[J]. 石油钻采工艺,2014,36(6):24–27.

    HOU Lizhong, ZHENG Deshuai, WU Junxia. Optimized fast drilling technology for unconventional oil/gas field in Canada[J]. Oil Drilling and Production Technology, 2014, 36(6): 24–27.
    [6]
    牛洪波. 大牛地气田长水平段井眼轨迹控制方法[J]. 天然气工业,2011,31(10):64–69. doi: 10.3787/j.issn.1000-0976.2011.10.015

    NIU Hongbo. Trajectory control methods for long horizontal wells at the Daniudi Gas Filed[J]. Natural Gas Industry, 2011, 31(10): 64–69. doi: 10.3787/j.issn.1000-0976.2011.10.015
    [7]
    聂云飞,朱渊,范萧,等. 自激式涡流控制水力振荡器研制与应用[J]. 石油钻探技术,2019,47(5):74–79.

    NIE Yunfei, ZHU Yuan, FAN Xiao, et al. Development and application of self-excited vortex control hydraulic oscillator[J]. Petroleum Drilling Techniques, 2019, 47(5): 74–79.
    [8]
    许京国,陶瑞东,杨静,等. 水力振荡器在大位移井张海29–38L 井的应用[J]. 断块油气田,2014,21(4):527–529.

    XU Jingguo, TAO Ruidong, YANG Jing, et al. Application of hydraulic oscillator in Zhanghai 29-38L extended reach well[J]. Fault-Block Oil & Gas Field, 2014, 21(4): 527–529.
    [9]
    王显光,李雄,林永学. 页岩水平井用高性能油基钻井液研究与应用[J]. 石油钻探技术,2013,41(2):17–22. doi: 10.3969/j.issn.1001-0890.2013.02.004

    WANG Xianguang, LI Xiong, LIN Yongxue. Research and application of high performance oil base drilling fluid for shale horizontal wells[J]. Petroleum Drilling Techniques, 2013, 41(2): 17–22. doi: 10.3969/j.issn.1001-0890.2013.02.004
    [10]
    林永学,王显光. 中国石化页岩气油基钻井液技术进展与思考[J]. 石油钻探技术,2014,42(4):7–13.

    LIN Yongxue, WANG Xianguang. Development and reflection of oil-based drilling fluid technology for shale gas of Sinopec[J]. Petroleum Drilling Techniques, 2014, 42(4): 7–13.
    [11]
    于洋,刘士银. 高速旋冲钻井技术优化及在顺北区块的试验[J]. 石油机械,2020,48(10):24–29.

    YU Yang, LIU Shiyin. High-speed rotary percussion drilling technology optimization and its field test in the Shunbei Block[J]. China Petroleum Machinery, 2020, 48(10): 24–29.
    [12]
    王忠良,周扬,文晓峰,等. 长庆油田小井眼超长水平段水平井钻井技术[J]. 石油钻探技术,2021,49(5):14–18.

    WANG Zhongliang, ZHOU Yang, WEN Xiaofeng, et al. Drilling technologies for horizontal wells with ultra-long horizontal section and slim hole in Changqing Oilfield[J]. Petroleum Drilling Techniques, 2021, 49(5): 14–18.
    [13]
    闫振来,牛洪波,唐志军,等. 低孔低渗气田长水平段水平井钻井技术[J]. 特种油气藏,2010,17(2):105–111. doi: 10.3969/j.issn.1006-6535.2010.02.029

    YAN Zhenlai, NIU Hongbo, TANG Zhijun, et al. Drilling technology for long displacement section of low porosity and low permeability gas field[J]. Special Oil and Gas Reservoir, 2010, 17(2): 105–111. doi: 10.3969/j.issn.1006-6535.2010.02.029
    [14]
    路保平. 中国石化页岩气工程技术进步及展望[J]. 石油钻探技术,2013,41(5):1–8. doi: 10.3969/j.issn.1001-0890.2013.05.001

    LU Baoping. Sinopec engineering technical advance and its developing tendency in shale gas[J]. Petroleum Drilling Techniques, 2013, 41(5): 1–8. doi: 10.3969/j.issn.1001-0890.2013.05.001
    [15]
    解经宇,高学生,李伟. 长庆气田水平井优快钻井配套技术[J]. 石油钻采工艺,2015,37(5):30–33.

    XIE Jingyu, GAO Xuesheng, LI Wei. Matching technology for optimized fast drilling of horizontal wells in Changqing Gasfield[J]. Oil Drilling & Production Technology, 2015, 37(5): 30–33.
    [16]
    刘书斌,倪红坚,张恒. 轴扭复合冲击工具的研制与应用[J]. 石油钻探技术,2020,43(5):69–76.

    LIU Shubin, NI Hongjian, ZHANG Heng. Development and applications of a compound axial and torsional impact drilling tool[J]. Petroleum Driling Techniques, 2020, 43(5): 69–76.
  • Related Articles

    [1]LIU Jinlu, LI Jun, LIU Gonghui, LI Hui, YANG Hongwei. Prediction Model of Wellbore Temperature Field during Deepwater Cementing Circulation Stage[J]. Petroleum Drilling Techniques, 2024, 52(4): 66-74. DOI: 10.11911/syztjs.2024065
    [2]YU Yi, WANG Xuerui, KE Ke, WANG Di, YU Xin, GAO Yonghai. Prediction Model and Distribution Law Study of Temperature and Pressure of the Wellbore in drilling in Arctic Region[J]. Petroleum Drilling Techniques, 2021, 49(3): 11-20. DOI: 10.11911/syztjs.2021047
    [3]ZHENG Chunfeng, WEI Chen, ZHANG Haitao, LI Ang, MENG Hongxia. A New Forecasting Model of a Wellbore Wax Deposition Profile in a Offshore Well[J]. Petroleum Drilling Techniques, 2017, 45(4): 103-109. DOI: 10.11911/syztjs.201704018
    [4]CEN Xueqi, WU Xiaodong, WANG Lei, ZHENG Lei, GE Lei. A New Model for Calculating the Ideal Beam Counterbalance Weight for a Pumping Unit[J]. Petroleum Drilling Techniques, 2016, 44(2): 82-86. DOI: 10.11911/syztjs.201602014
    [5]Ma Shuai, Zhang Fengbo, Hong Chuqiao, Liu Shuangqi, Zhong Jiajun, Wang Shichao. Development and Solution to the Coupling Model of the Productivity of Interbeded Reserviors in Stepped Horizontal Wells[J]. Petroleum Drilling Techniques, 2015, 43(5): 94-99. DOI: 10.11911/syztjs.201505016
    [6]Li Yuwei, Ai Chi. Hydraulic Fracturing Fracture Initiation Model for a Vertical CBM Well[J]. Petroleum Drilling Techniques, 2015, 43(4): 83-90. DOI: 10.11911/syztjs.201504015
    [7]Li Daqi, Kang Yili, Liu Xiushan, Chen Zengwei, Si Na. Progress in Drilling Fluid Loss Dynamics Model for Fractured Formations[J]. Petroleum Drilling Techniques, 2013, 41(4): 42-47. DOI: 10.3969/j.issn.1001-0890.2013.04.010
    [8]He Baosheng, Liu Hualiang, Liu Gang, Yang Quanzhi, Geng Zhanli. Anti-Collision Prediction Model for Drill Bit Approaching Adjacent Well Based on Spherical Wave Propagation Theory[J]. Petroleum Drilling Techniques, 2013, 41(3): 62-66. DOI: 10.3969/j.issn.1001-0890.2013.03.012
    [9]Wu Shinan, Zhang Jinlong, Ding Shidong, Liu Jian. Revision of Mathematical Model of Foamed Cement Slurry Density under Down-Hole Conditions[J]. Petroleum Drilling Techniques, 2013, 41(2): 28-33. DOI: 10.3969/j.issn.1001-0890.2013.02.006
    [10]Meng Hongxia, Chen Dechun, Pan Zhihua, Wu Xiaodong. Productivity Calculation Models and Stimulation Ratio Analysis for Explosive Fracturing Wells[J]. Petroleum Drilling Techniques, 2012, 40(6): 62-66. DOI: 10.3969/j.issn.1001-0890.2012.06.013
  • Cited by

    Periodical cited type(8)

    1. 张峰,姬超,刘宇. 长水平段水平井钻井技术难点分析及对策分析. 中国石油和化工标准与质量. 2024(01): 156-158 .
    2. 赵铁桥. 水平井高效钻井技术进展研究. 中国石油和化工标准与质量. 2024(04): 168-170 .
    3. 余文帅,苏强,孟鐾桥,夏连彬,李亚天,谭天一. 天府气田致密气水平井二开一趟钻钻井关键技术. 天然气勘探与开发. 2024(06): 35-44 .
    4. 亢武臣,杨书博,赵琪琪,黄豪彩,丁士东. 基于优化变分模态分解和互相关的钻井液脉冲信号处理方法. 石油钻探技术. 2023(03): 144-151 . 本站查看
    5. 路保平,陈会年. 《石油钻探技术》50年与未来发展建议. 石油钻探技术. 2023(04): 3-10 . 本站查看
    6. 甘新星,董仲林,马吉龙,杜晓雨. 南川页岩气田超长水平段水平井高效下套管技术. 断块油气田. 2023(05): 874-878 .
    7. 张辉. 电力通信网络可信安全接入机制研究与设计. 软件. 2023(09): 59-63 .
    8. 黄熠,刘和兴,刘智勤,彭巍,徐超. 南海西部浅层大位移水平井钻井关键技术与实践. 中国海上油气. 2023(06): 115-123 .

    Other cited types(1)

Catalog

    Article Metrics

    Article views (532) PDF downloads (115) Cited by(9)
    Related

    /

    DownLoad:  Full-Size Img  PowerPoint
    Return
    Return