YIN Huibo, ZHANG Rui, CHEN Wujun, LI Hang, MA Lanrong. Research on the Key Technologies of Liner Top Packer for HT/HP and High Acidic Oil and Gas Wells[J]. Petroleum Drilling Techniques, 2018, 46(5): 63-68. DOI: 10.11911/syztjs.2018130
Citation: YIN Huibo, ZHANG Rui, CHEN Wujun, LI Hang, MA Lanrong. Research on the Key Technologies of Liner Top Packer for HT/HP and High Acidic Oil and Gas Wells[J]. Petroleum Drilling Techniques, 2018, 46(5): 63-68. DOI: 10.11911/syztjs.2018130

Research on the Key Technologies of Liner Top Packer for HT/HP and High Acidic Oil and Gas Wells

More Information
  • Received Date: May 13, 2018
  • The key technologies for the HT/HP and high corrosion resistance of the top packer liner have been studied pertinent to the problems of corrosion failure and even Sustained Casing Pressure (SCP) under the environment of HT/HP and high acidic oil and gas wells.According to the characteristics of each component of top packer liner and the performance requirements of such wells,a reasonable material selection was carried out,and the uniform corrosion,pitting,stress corrosion cracking and galvanic corrosion risks of the main metal materials were evaluated by immersion test,stress corrosion test and electrochemical test.Later,tests for temperature resistance,pressure resistance and corrosion resistance of selected rubber materials were conducted.The study found that 718 nickel-based alloy has good resistances to uniform corrosion,pitting and stress corrosion cracking,can be used as the main metal material of the packer.Further,13Cr stainless steel and low alloy steel have a low galvanic corrosion rate while contacting with 718 nickel-based alloy,and they can be used as the main auxiliary material.The modified tetra propylene rubber material presents a mechanical performance retention rate of 90% or higher after placing into corrosive environments for 96h at temperature of 150℃,H2S partial pressure of 3.5 MPa,CO2 partial pressure of 3.0 MPa.The packer element processed with such rubber has good tight gas performance in highly corrosive acidic environments.The top packer liner manufactured with the above materials was tested in Well Yuanba 10-3.The test results show that such top packer liner is reliable,indicating the practical materials selection.This research suggests that the modified top packer liner is an effective means for solving the problems of SCP and similar problems existing in HT/HP and high acidic oil and gas wells.
  • [1]
    魏浩光,桑来玉,杨红歧,等.雅达油田高含硫小井眼尾管固井技术[J].石油钻采工艺,2014,36(4):47-49. WEI Haoguang,SANG Laiyu,YANG Hongqi,et al.Liner cementing technology for slim hole well with high sulfur content in Yadavaran Oilfield[J].Oil Drilling Production Technology,2014,36(4):47-49.
    [2]
    侯立中.伊朗雅达油田优快钻井技术[J].石油钻采工艺,2014,36(4):13-17. HOU Lizhong.Optimized fast drilling technology for Yadavaran Oilfield of Iran[J].Oil Drilling Production Technology,2014,36(4):13-17.
    [3]
    赵金洲.我国高含H2S/CO2气藏安全高效钻采的关键问题[J].天然气工业,2007,27(2):141-144. ZHAO Jinzhou.Key points on drilling and production safely with high efficiency in high H2S and CO2 gas reservoirs in China[J].Natural Gas Industry,2007,27(2):141-144.
    [4]
    丁士东,周仕明,陈雷.川东北地区高温高压高含硫气井配套固井技术[J].天然气工业,2009,29(2):58-60. DING Shidong,ZHOU Shiming,CHEN Lei.Cementing technology for "three highs" gas wells in Northeast Sichuan Basin[J].Natural Gas Industry,2009,29(2):58-60.
    [5]
    陈文,张强,金洪,等.川东北气矿井下管柱腐蚀评价及缓蚀剂防腐研究[J].石油与天然气化工,2012,41(2):196-199. CHEN Wen,ZHANG Qiang,JIN Hong,et al.Evaluation of downhole tube corrosion and research on corrosion inhibitor in Northeastern Sichuan gas district[J].Chemical Engineering of Oil Gas,2012,41(2):196-199.
    [6]
    孔凡群,张庆生,魏鲲鹏,等.普光高酸性气田完井管柱设计[J].天然气工业,2011,31(9):76-78. KONG Fanqun,ZHANG Qingsheng,WEI Kunpeng,et al.Well completion string design and tubular goods selection:a case study in the Puguang Sour Gas Field[J].Natural Gas Industry,2011,31(9):76-78.
    [7]
    张星,李兆敏,徐林静,等.含硫化氢油气井完井工艺技术现状与发展趋势[J].特种油气藏,2010,17(1):12-14,19. ZHANG Xing,LI Zhaomin,XU Linjing,et al.Present status and development trend of completion technique for H2S-bearing oil and gas well[J].Special Oil Gas Reservoirs,2010,17(1):12-14,19.
    [8]
    董锎云,陈军,杜龙飞,等.元坝超深高含硫气藏水平井完井管柱优化[J].重庆科技学院(自然科学版),2015,17(4):40-44. DONG Kaiyun,CHEN Jun,DU Longfei,et al.An optimal design of completion string for YB ultra-deep and high sulfur content horizontal gas wells[J].Journal of Chongqing University of Science and Technology(Natural Sciences Edition),2015,17(4):40-44.
    [9]
    姚席斌,熊昕东.元坝高含硫气藏超深水平井完井技术研究及实践[J].钻采工艺,2012,35(2):32-34. YAO Xibin,XIONG Xindong.Research and practice of ultra-deep horizontal well completion technology in high sulfur gas reservoir of Yuanba[J].Drilling Production Technology,2012,35(2):32-34.
    [10]
    吴姬昊,秦金立,张金法,等.耐腐蚀特种尾管固井工具的设计与应用[J].石油钻探技术,2011,39(1):29-31. WU Jihao,QIN Jinli,ZHANG Jinfa,et al.Design and application of corrosion resistant special liner cementing tool[J].Petroleum Drilling Techniques,2011,39(1):29-31.
    [11]
    BRONDEL D,EDWARDS R,HAYMAN A,et al.Corrosion in the oil industry[J].Oilfield Review,1994,6(2):4-18.
    [12]
    耿春雷,顾军,徐永模,等.油气田中CO2/H2S腐蚀与防护技术的研究进展[J].材料导报,2011,25(1):119-122. GENG Chunlei,GU Jun,XU Yongmo,et al.Research progress on CO2/H2S corrosion and protection technique in oil and gas fields[J].Materials Review,2011,25(1):119-122.
    [13]
    张文禹,Martin Hoch.硫化氢对氢化丁腈橡胶性能的影响[J].世界橡胶工业,2015,42(1):7-11. ZHANG Wenyu,MARTIN Hoch.Effect of H2S on the properties of HNBR[J].World Rubber Industry,2015,42(1):7-11.
    [14]
    李远,陈平,张志广,等.硫化氢腐蚀丁腈橡胶的机理[J].合成橡胶工业,2014,37(1):38-41. LI Yuan,CHEN Ping,ZHANG Zhiguang,et al.Corrosion mechanism of nitrile rubber in hydrogen sulfide[J].China Synthetic Rubber Industry,2014,37(1):38-41.
    [15]
    ANSI/NACE MR0175/ISO 15156-3-2015 Petroleum,petrochemical,and natural gas industries:materials for use in H2S-containing environments in oil and gas production:part 1:general principles for selection of cracking-resistant materials[S].
    [16]
    ANSI/NACE Standard TM 0177-2016 Standard test method:laboratory testing of metals for resistance to sulfide stress cracking and stress corrosion cracking in H2S environments[S].
    [17]
    陈兴伟,吴建华,王佳,等.电偶腐蚀影响因素研究进展[J].腐蚀科学与防护技术,2010,22(4):363-366. CHEN Xingwei,WU Jianhua,WANG Jia,et al.Progress in research on factors influencing galvanic corrosion behavior[J].Corrosion Science and Protection Technologyy,2010,22(4):363-366.
  • Related Articles

    [1]PENG Jianfeng, YUE Ming, LOU Yishan, LIANG Yukai, WEN Min, ZHAI Xiaopeng. Three-Dimensional Simulation of Erosion Life of Metal Mesh Screen Pipe Based on Fluent-DPM Method[J]. Petroleum Drilling Techniques, 2025, 53(1): 115-121. DOI: 10.11911/syztjs.2024122
    [2]ZHANG Yiqun, YU Chao, CHENG Guangming, SONG Xianzhi, ZHAO Kexian. Experimental and Numerical Study of the Explosive Forming of Slotted Metal Pipes for Energy-Gathered Nesting Plugging[J]. Petroleum Drilling Techniques, 2020, 48(6): 54-60. DOI: 10.11911/syztjs.2020107
    [3]CHEN Yuanpeng, WANG Zhiyuan, SUN Baojiang, CHEN Ye, ZHENG Kaibo. The Optimization of Rubber Sealing Materials for Key Equipment in Polar Drilling[J]. Petroleum Drilling Techniques, 2020, 48(1): 54-60. DOI: 10.11911/syztjs.2019111
    [4]LI Shan. Casing Optimization for CO2 Corrosion Resistance in the Xushen Gas Field[J]. Petroleum Drilling Techniques, 2016, 44(6): 55-59. DOI: 10.11911/syztjs.201606009
    [5]Sun Jin, Deng Jingen, Wang Yao, Wang Houdong, Liu Kaiming. Experimental Study on Plugging Mechanisms and Influencing Factors of a New Foam Metal Screen[J]. Petroleum Drilling Techniques, 2015, 43(5): 123-128. DOI: 10.11911/syztjs.201505021
    [6]Zhu Dajiang, Lin Yuanhua, Zou Dapeng, Wang Feng, Zhang Deping, Zhang Ping. Experimental Study on the Impact of Corrosion on the Rubber in Packers in a CO2 Injection Well[J]. Petroleum Drilling Techniques, 2014, 42(5): 126-130. DOI: 10.11911/syztjs.201405023
    [7]Zhu Xiaohua, Shi Changshuai, Zhang Wenhua, Pang Ran. Simulation of Stator and Rotor Meshing Rotation of Double Helix Single Screw Pump[J]. Petroleum Drilling Techniques, 2013, 41(6): 100-105. DOI: 10.3969/j.issn.1001-0890.2013.06.020
    [8]Han Zongzheng. Research and Application of Combined Perforation and Sand Control with Metal Plug[J]. Petroleum Drilling Techniques, 2013, 41(3): 119-122. DOI: 10.3969/j.issn.1001-0890.2013.03.023
    [9]Xu Chanchan, Yu Jinling, Xu Xin. Manufacture and Properties Analysis of Rubber for Water Swelling Packer[J]. Petroleum Drilling Techniques, 2012, 40(3): 38-42. DOI: 10.3969/j.issn.1001-0890.2012.03.008
    [10]Hydrogen Sulfide Corrosion of Metal Equipment in Oil and Gas Field[J]. Petroleum Drilling Techniques, 2011, 39(1): 32-35. DOI: 10.3969/j.issn.1001-0890.2011.01.007
  • Cited by

    Periodical cited type(17)

    1. 练章华,万智勇,王飞文,赵朝阳,史君林. 超深井射孔冲击动载荷引起封隔器断裂失效分析. 天然气工业. 2024(06): 44-51 .
    2. 贾静,张碧波,张俊良,贾长青,陈思齐,张强,黄福良,雷震中,赵筠华,袁建波. 四川盆地罗家寨高含硫气田钻完井技术创新与实践. 天然气工业. 2024(11): 101-111 .
    3. 程青松,周进,胡开银,吴镇江,高颂. APR测试工具在高温及高压差作业条件下的改进与应用. 油气井测试. 2023(02): 13-18 .
    4. 曾义金,金衍,周英操,陈军海,李牧,光新军,卢运虎. 深层油气钻采技术进展与展望. 前瞻科技. 2023(02): 32-46 .
    5. 曾义金. 中国石化深层超深层油气井固井技术新进展与发展建议. 石油钻探技术. 2023(04): 66-73 . 本站查看
    6. 岳欠杯,王岗,刘巨保,孙国昊,王笑笑,刘跃秋,曹文,张强. 高温高压下扩张式封隔器胶筒非线性流动仿真计算. 计算力学学报. 2023(03): 411-423 .
    7. 张智,付建红,白杨,尹虎,赵苑瑾,黄媚. 高含硫气井钻完井技术新进展与发展展望. 天然气工业. 2023(09): 25-33 .
    8. 马英文,张晓诚,霍宏博,何瑞兵,张智,赵苑瑾. 渤海凝析气田环空带压预测及管控研究. 中国海上油气. 2023(05): 117-127 .
    9. 乔中山,刘鹏,许迪,余建生,张艺耀,于冲. 渤海C1井电缆下封隔器遇阻原因分析及对策. 科学技术创新. 2021(19): 82-85 .
    10. 辛野,刘志龙,于晓涛,邹琦,吴春元,肖昌,苏高申. 旅大油田A井液控管线腐蚀分析及管材优选. 石油化工高等学校学报. 2021(05): 62-67 .
    11. 高彦才,董社霞,陆仁德,王亚彬,董宝军,柳伟. 回火温度对2Cr13钢在H_2S-CO_2环境中腐蚀的影响. 断块油气田. 2020(03): 404-408 .
    12. 郎宝山. 稠油水平井大直径封漏堵水管柱的研制与应用. 特种油气藏. 2020(03): 157-162 .
    13. 张蔚红,张海涛,王伟鹏. 石油井下工具高温高压直井模拟试验装置研制. 机械设计与制造工程. 2020(07): 30-34 .
    14. 冷冰. 火驱同心双管分层注气管柱研制及试验. 特种油气藏. 2020(04): 149-155 .
    15. 杨川,刘忠飞,肖勇,石庆,李晓春,郑锟. 库车山前构造高温高压储层环空密封固井技术. 断块油气田. 2019(02): 264-268 .
    16. 曾义金. 海相碳酸盐岩超深油气井安全高效钻井关键技术. 石油钻探技术. 2019(03): 25-33 . 本站查看
    17. 陈昂,于会永,田刚,李皓,张海鑫,曾德智. 高强度HY级抽油杆在含硫工况下的环境敏感断裂评价. 断块油气田. 2018(06): 823-826 .

    Other cited types(8)

Catalog

    Article Metrics

    Article views (4206) PDF downloads (6783) Cited by(25)
    Related

    /

    DownLoad:  Full-Size Img  PowerPoint
    Return
    Return