Citation: | LIU Shujie, HUANG Yi, CHEN Haodong, et al. Innovation and practice of key technologies for drilling and completion in deepwater high-pressure gas field of “Deep Sea No.1” Phase II project [J]. Petroleum Drilling Techniques, 2025, 53(3):20−29. DOI: 10.11911/syztjs.2025065 |
The drilling and completion operations in deepwater oil and gas wells of the “Deep Sea No.1” Phase II project face multiple challenges such as concentrated underwater wellheads, high interference risks, complex deep geological conditions, poor drillability, narrow pressure windows, difficult well control, high-temperature and high-pressure, and difficulties in ensuring long-term production. To this end, technical researches on large-scale operation in centralized underwater wellheads, drilling speed increase in deep water and deep layer, deepwater high-pressure well safety control, and deepwater long-term production guarantee were carried out, and key technologies of drilling and completion in deepwater high-pressure gas fields with safety, speed increase, and long-term production as the core were formed. On-site applications in 12 development wells of the “Deep Sea No.1” Phase II project demonstrate that the drilling speed has been greatly improved, and the operating efficiency has been comprehensively enhanced compared with that in the Phase Ⅰ project. The project duration has been greatly shortened, which strongly supports the smooth production of the deepwater high-pressure gas field of the “Deep Sea No.1” Phase II project. The successful completion of the “Deep Sea No.1” Phase II Project marks a great breakthrough in self-operated deepwater drilling and completion technologies in China and provides technical reference for the development of deepwater high-temperature and high-pressure gas fields in China and abroad.
[1] |
范白涛. 中国海油 “少井高产” 钻完井技术研究现状及展望[J]. 中国海上油气,2025,37(2):189–197.
FAN Baitao. Research status and prospects of CNOOC drilling and completion technology of high production with fewer wells[J]. China Offshore Oil and Gas, 2025, 37(2): 189–197.
|
[2] |
郭永宾,左坤,邓成辉,等. 南海东部恩平21−4油田超深大位移水平井钻完井关键技术[J]. 石油钻探技术,2025,53(2):11–20. doi: 10.11911/syztjs.2025021
GUO Yongbin, ZUO Kun, DENG Chenghui, et al. Key drilling technologies for ultra-deep extended reach horizontal well in Enping 21−4 Oilfield, Eastern South China Sea[J]. Petroleum Drilling Techniques, 2025, 53(2): 11–20. doi: 10.11911/syztjs.2025021
|
[3] |
刘贤来,刘军,陈兆明,等. 南海超深水区靖海凹陷沉积特征及烃源岩潜力预测[J]. 世界石油工业,2023,30(4):23–29.
LIU Xianlai, LIU Jun, CHEN Zhaoming, et al. Sedimentary characteristics and prediction of source rock potential of Jinghai Sag in ultra-deep water area of South China Sea[J]. World Petroleum Industry, 2023, 30(4): 23–29.
|
[4] |
张来斌,谢仁军,殷启帅. 深水油气开采风险评估及安全控制技术进展与发展建议[J]. 石油钻探技术,2023,51(4):55–65. doi: 10.11911/syztjs.2023036
ZHANG Laibin, XIE Renjun, YIN Qishuai. Technical progress and development suggestions for risk assessment and safety control of deep-water oil and gas exploitation[J]. Petroleum Drilling Techniques, 2023, 51(4): 55–65. doi: 10.11911/syztjs.2023036
|
[5] |
吴林强,张涛,徐晶晶,等. 全球海洋油气勘探开发特征及趋势分析[J]. 国际石油经济,2019,27(3):29–36.
WU Linqiang, ZHANG Tao, XU Jingjing, et al. Characteristics and trends of global offshore oil and gas exploration and development[J]. International Petroleum Economics, 2019, 27(3): 29–36.
|
[6] |
杨进,李磊,宋宇,等. 中国海洋油气钻井技术发展现状及展望[J]. 石油学报,2023,44(12):2308–2318. doi: 10.7623/syxb202312019
YANG Jin, LI Lei, SONG Yu, et al. Current status and prospects of offshore oil and gas drilling technology development in China[J]. Acta Petrolei Sinica, 2023, 44(12): 2308–2318. doi: 10.7623/syxb202312019
|
[7] |
杨进,傅超,刘书杰,等. 中国深水钻井关键技术与装备现状及展望[J]. 世界石油工业,2024,31(4):69–80.
YANG Jin, FU Chao, LIU Shujie, et al. Current status and prospects of key technologies and equipment for deepwater drilling in China[J]. World Petroleum Industry, 2024, 31(4): 69–80.
|
[8] |
张海山. 中国海洋石油大位移井钻井技术现状及展望[J]. 石油钻采工艺,2023,45(1):1–11.
ZHANG Haishan. Status and prospect of CNOOC’s extended reach well drilling technologies[J]. Oil Drilling & Production Technology, 2023, 45(1): 1–11.
|
[9] |
黄熠,刘书杰,周建良,等. 陵水17−2气田深水钻完井关键技术研究与应用[J]. 中国海上油气,2021,33(5):130–135.
HUANG Yi, LIU Shujie, ZHOU Jianliang, et al. Research and application of key technologies for deep water drilling and completion in LS17−2 Gas Field[J]. China Offshore Oil and Gas, 2021, 33(5): 130–135.
|
[10] |
朱海山,李达,魏澈,等. 南海陵水17−2深水气田开发工程方案研究[J]. 中国海上油气,2018,30(4):170–177.
ZHU Haishan, LI Da, WEI Che, et al. Research on LS17−2 deep water gas field development engineering scenario in South China Sea[J]. China Offshore Oil and Gas, 2018, 30(4): 170–177.
|
[11] |
张亮,张崇,黄海东,等. 深水钻完井天然气水合物风险及预防措施:以南中国海琼东南盆地QDN−X井为例[J]. 石油勘探与开发,2014,41(6):755–762. doi: 10.11698/PED.2014.06.17
ZHANG Liang, ZHANG Chong, HUANG Haidong, et al. Gas hydrate risks and prevention for deep water drilling and completion: a case study of well QDN−X in Qiongdongnan Basin, South China Sea[J]. Petroleum Exploration and Development, 2014, 41(6): 755–762. doi: 10.11698/PED.2014.06.17
|
[12] |
李中,谢仁军,吴怡,等. 中国海洋油气钻完井技术的进展与展望[J]. 天然气工业,2021,41(8):178–185. doi: 10.3787/j.issn.1000-0976.2021.08.016
LI Zhong, XIE Renjun, WU Yi, et al. Progress and prospect of CNOOC’s oil and gas well drilling and completion technologies[J]. Natural Gas Industry, 2021, 41(8): 178–185. doi: 10.3787/j.issn.1000-0976.2021.08.016
|
[13] |
李绪深,张迎朝,杨希冰,等. 莺歌海−琼东南盆地天然气勘探新认识与新进展[J]. 中国海上油气,2017,29(6):1–11.
LI Xushen, ZHANG Yingzhao, YANG Xibing, et al. New understandings and achievements of natural gas exploration in Yinggehai−Qiongdongnan Basin, South China Sea[J]. China Offshore Oil and Gas, 2017, 29(6): 1–11.
|
[14] |
王友华,王文海,蒋兴迅. 南海深水钻井作业面临的挑战和对策[J]. 石油钻探技术,2011,39(2):50–55. doi: 10.3969/j.issn.1001-0890.2011.02.009
WANG Youhua, WANG Wenhai, JIANG Xingxun. South China Sea deepwater drilling challenges and solutions[J]. Petroleum Drilling Techniques, 2011, 39(2): 50–55. doi: 10.3969/j.issn.1001-0890.2011.02.009
|
[15] |
孟文波,李蔚萍,颜帮川,等. 深水钻完井络合水弃置液性能及在陵水17−2气田的应用研究[J]. 化工新型材料,2015,43(12):233–235.
MENG Wenbo, LI Weiping, YAN Bangchuan, et al. Research and field application of complex water defeated agent on LS 17−2 Gas Field in deepwater area of Northern South China Sea[J]. New Chemical Materials, 2015, 43(12): 233–235.
|
[16] |
赵苏文. 琼东南盆地深水钻井关键技术及其实践效果[J]. 探矿工程(岩土钻掘工程),2016,43(11):26–31.
ZHAO Suwen. Key technology and the practical effects of deepwater drilling in southeast Hainan Basin[J]. Exploration Engineering (Rock & Soil Drilling and Tunneling), 2016, 43(11): 26–31.
|
[17] |
苟梦姣,陈景杨,翁羽. 大位移井钻井现状及发展趋势[J]. 工程机械,2024,55(4):164–167. doi: 10.3969/j.issn.1000-1212.2024.04.030
GOU Mengjiao, CHEN Jingyang, WENG Yu. Current situation and development trend of drilling of extended reach well[J]. Construction Machinery and Equipment, 2024, 55(4): 164–167. doi: 10.3969/j.issn.1000-1212.2024.04.030
|
[18] |
朱玉磊,耿立军,陈卓. 大位移井钻井关键技术探析[J]. 中国石油和化工标准与质量,2023,43(18):184–186. doi: 10.3969/j.issn.1673-4076.2023.18.061
ZHU Yulei, GENG Lijun, CHEN Zhuo. Analysis of key technologies for extended-reach drilling[J]. China Petroleum and Chemical Standard and Quality, 2023, 43(18): 184–186. doi: 10.3969/j.issn.1673-4076.2023.18.061
|
[19] |
石祥超,陈帅. 岩石可钻性分级标准的改进建议[J]. 石油学报,2024,45(9):1432–1442.
SHI Xiangchao, CHEN Shuai. Suggestions for improving the grading standards of rock drillability[J]. Acta Petrolei Sinica, 2024, 45(9): 1432–1442.
|
[20] |
盛磊祥,王荣耀,许亮斌,等. 台风应急期间深水钻井隔水管悬挂撤离安全分析[J]. 石油钻探技术,2015,43(4):25–29.
SHENG Leixiang, WANG Rongyao, XU Liangbin, et al. Safety analysis of the hang-off of deepwater drilling risers during a typhoon emergency period[J]. Petroleum Drilling Techniques, 2015, 43(4): 25–29.
|
[21] |
黄飞宇,莫康荣,张帅杰,等. 精细控压钻井技术在南海高温高压井的应用[J]. 石化技术,2024,31(9):177–178. doi: 10.3969/j.issn.1006-0235.2024.09.061
HUANG Feiyu, MO Kangrong, ZHANG Shuaijie, et al. Application of fine pressure control drilling technology in high temperature and high pressure wells in the South China Sea[J]. Petrochemical Industry Technology, 2024, 31(9): 177–178. doi: 10.3969/j.issn.1006-0235.2024.09.061
|
[22] |
谢仁军,刘书杰,文敏,等. 深水钻井溢流井控期间水合物生成主控因素[J]. 石油钻采工艺,2015,37(1):64–67.
XIE Renjun, LIU Shujie, WEN Min, et al. Main control factor of hydrate generation during overflow well control period of deepwater drilling[J]. Oil Drilling & Production Technology, 2015, 37(1): 64–67.
|
[23] |
刘书杰,徐一龙,张宇飞,等. 水合物抑制剂的合成及在超深水钻井液中的应用[J]. 钻井液与完井液,2024,41(5):557–563. doi: 10.12358/j.issn.1001-5620.2024.05.002
LIU Shujie, XU Yilong, ZHANG Yufei, et al. Synthesis of a hydrate inhibitor and its application in drilling fluids for ultra-deep water drilling[J]. Drilling Fluid & Completion Fluid, 2024, 41(5): 557–563. doi: 10.12358/j.issn.1001-5620.2024.05.002
|
[24] |
刘和兴,柳亚亚,马传华,等. 深水水平井气侵井控临界压井排量研究[J]. 中国海上油气,2023,35(2):138–145.
LIU Hexing, LIU Yaya, MA Chuanhua, et al. Study on critical killing displacement of gas kick in deepwater horizontal wells[J]. China Offshore Oil and Gas, 2023, 35(2): 138–145.
|
[25] |
王金铎,王宴滨,贺子磬,等. 气侵条件下深水钻井井筒温压耦合场分布规律研究[J]. 石油钻探技术,2024,52(6):50–61.
WANG Jinduo, WANG Yanbin, HE Ziqing, et al. Temperature and pressure coupling field distribution law in deepwater drilling wellbore undergas kick[J]. Petroleum Drilling Techniques, 2024, 52(6): 50–61.
|
[26] |
黄熠,吴艳辉,田野,等. 压井期间水平井扩径段气体运移规律研究[J]. 中国海上油气,2023,35(2):122–128.
HUANG Yi, WU Yanhui, TIAN Ye, et al. Law of gas migration in the enlarged section of horizontal wells during well killing[J]. China Offshore Oil and Gas, 2023, 35(2): 122–128.
|
[27] |
张煜伟,刘坤翔. 南海西部海上高温高压钻完井技术研究[J]. 石化技术,2025,32(3):159–161.
ZHANG Yuwei, LIU Kunxiang. Research on offshore high-temperature high-pressure drilling and completion technology in the Western South China Sea[J]. Petrochemical Industry Technology, 2025, 32(3): 159–161.
|
[28] |
罗鸣,吴江,陈浩东,等. 南海西部窄安全密度窗口超高温高压钻井技术[J]. 石油钻探技术,2019,47(1):8–12. doi: 10.11911/syztjs.2019024
LUO Ming, WU Jiang, CHEN Haodong, et al. Ultra-high temperature high pressure drilling technology for narrow safety density window strata in the Western South China[J]. Petroleum Drilling Techniques, 2019, 47(1): 8–12. doi: 10.11911/syztjs.2019024
|
[29] |
邓福成,徐志会,谭章龙,等. 深水气田疏松砂岩储层出砂机理研究[J]. 石油机械,2023,51(4):80–89.
DENG Fucheng, XU Zhihui, TAN Zhanglong, et al. Sand production mechanism of loose sandstone reservoir in deepwater gas field[J]. China Petroleum Machinery, 2023, 51(4): 80–89.
|
[30] |
张辉,谭绍栩,霍通达,等. 渤海特高孔渗储层控水防砂一体化完井技术[J]. 石油钻探技术,2024,52(1):107–113. doi: 10.11911/syztjs.2024015
ZHANG Hui, TAN Shaoxu, HUO Tongda, et al. Integrated completion technology of water and sand control in reservoirs with extra-high porosity and permeability in Bohai Oilfield[J]. Petroleum Drilling Techniques, 2024, 52(1): 107–113. doi: 10.11911/syztjs.2024015
|
[31] |
高国青,叶湘滨,乔纯捷,等. 水下声定位系统原理与误差分析[J]. 兵器装备工程学报,2010,31(6):95–97. doi: 10.3969/j.issn.1006-0707.2010.06.030
GAO Guoqing, YE Xiangbin, QIAO Chunjie, et al. Principles and error analysis of underwater acoustic positioning systems[J]. Journal of Ordnance Equipment Engineering, 2010, 31(6): 95–97. doi: 10.3969/j.issn.1006-0707.2010.06.030
|
[32] |
孙大军,郑翠娥,钱洪宝,等. 水声定位系统在海洋工程中的应用[J]. 声学技术,2012,31(2):125–132. doi: 10.3969/j.issn1000-3630.2012.02.003
SUN Dajun, ZHENG Cuie, QIAN Hongbao, et al. The application of underwater acoustic positioning systems in ocean engineering[J]. Technical Acoustics, 2012, 31(2): 125–132. doi: 10.3969/j.issn1000-3630.2012.02.003
|
[33] |
施程振. 深水控压钻井井涌信息传播机理与反馈控制方法研究[D]. 青岛:中国石油大学(华东),2023.
SHI Chengzhen. Research on the propagation mechanism and feedback control methods of kick information in deepwater managed pressure drilling[D]. Qingdao: China University of Petroleum(East China), 2023.
|
[34] |
杨进,张明贺,张伟国,等. 深水浅层钻井 “三合一” 高效作业模式[J]. 石油学报,2025,46(3):599–608. doi: 10.7623/syxb202503009
YANG Jin, ZHANG Minghe, ZHANG Weiguo, et al. “Three-in-one” efficient drilling operation mode in deepwater shallow formations[J]. Acta Petrolei Sinica, 2025, 46(3): 599–608. doi: 10.7623/syxb202503009
|
[35] |
杨进,李文龙,胡志强,等. 深水钻井水下井口稳定性研究进展[J]. 中国海上油气,2020,32(4):124–130.
YANG Jin, LI Wenlong, HU Zhiqiang, et al. Research progresses on subsea wellhead stability of deep water drilling[J]. China Offshore Oil and Gas, 2020, 32(4): 124–130.
|
[36] |
王金龙,许亮斌. 深水水下井口系统疲劳监测损伤评估研究进展[J]. 石油机械,2023,51(1):53–60.
WANG Jinlong, XU Liangbin. Research progress of fatigue monitoring and damage assessment of deepwater subsea wellhead[J]. China Petroleum Machinery, 2023, 51(1): 53–60.
|
[37] |
李舜水,唐鹏磊,吴健. 东海大位移井完井技术研究与应用[J]. 海洋工程装备与技术,2020,7(1):48–53.
LI Shunshui, TANG Penglei, WU Jian. Research and application of completion technologies for the East China Sea extended reach well[J]. Ocean Engineering Equipment and Technology, 2020, 7(1): 48–53.
|
[38] |
姜伟. 深水钻井喷射下导管过程中钻柱扭振规律研究及其应用[J]. 海洋工程装备与技术,2019,6(1):450–456.
JIANG Wei. Research and application of drill string torsional vibration in deepwater drilling while jetting the conductor[J]. Ocean Engineering Equipment and Technology, 2019, 6(1): 450–456.
|
[39] |
李彬,王彪,刘保波. 南海荔湾超深水表层导管喷射设计与实践[J]. 石化技术,2021,28(7):91–92.
LI Bin, WANG Biao, LIU Baobo. Design and practice of ultra-deepwater surface conductor jetting in Liwan, South China Sea[J]. Petrochemical Industry Technology, 2021, 28(7): 91–92.
|
[40] |
蒋凯,李舒展,张亢,等. 赤几深水钻井导管高效下入技术[J]. 石油钻采工艺,2018,40(增刊1):104–108.
JIANG Kai, LI Shuzhan, ZHANG Kang, et al. High efficiency downloading technology for deepwater drilling conductor in the Equatorial Guinea[J]. Oil Drilling & Production Technology, 2018, 40(supplement 1): 104–108.
|
[41] |
周仁斌,张帅. 一趟式套管切割回收技术在海洋半潜式平台中的应用[J]. 石化技术,2022,29(2):102–104.
ZHOU Renbin, ZHANG Shuai. Application of casing cutting and recovery technology in offshore semi submersible platform[J]. Petrochemical Industry Technology, 2022, 29(2): 102–104.
|
[42] |
张书炜,高永海,尹法领,等. 深水天然气水合物降压开采增产稳产影响因素分析[J]. 石油化工,2025,54(3):444–450.
ZHANG Shuwei, GAO Yonghai, YIN Faling, et al. Factors influencing production enhancement and stabilization in deepwater natural gas hydrate depressurization exploitation[J]. Petrochemical Technology, 2025, 54(3): 444–450.
|
[43] |
王志远,张剑波,孟文波,等. 深水气井天然气水合物生成、沉积特性与防治方法[J]. 石油学报,2021,42(6):776–790.
WANG Zhiyuan, ZHANG Jianbo, MENG Wenbo, et al. Formation, deposition characteristics and prevention methods of gas hydrates in deepwater gas wells[J]. Acta Petrolei Sinica, 2021, 42(6): 776–790.
|
[44] |
徐立涛,何玉林,石万忠,等. 琼东南盆地深水区天然气水合物成藏主控因素及模式[J]. 石油学报,2021,42(5):598–610.
XU Litao, HE Yulin, SHI Wanzhong, et al. Main controlling factors and patterns of gas hydrate accumulation in the deep water area of Qiongdongnan Basin[J]. Acta Petrolei Sinica, 2021, 42(5): 598–610.
|
[45] |
马通,祝鹏,陈鸣,等. 琼东南盆地天然气水合物储层参数测井评价及分析[J]. 断块油气田,2023,30(2):254–260.
MA Tong, ZHU Peng, CHEN Ming, et al. Logging evaluation and analysis of reservoir parameter for natural gas hydrate in Qiongdongnan Basin[J]. Fault-Block Oil & Gas Field, 2023, 30(2): 254–260.
|
[46] |
王凯,苑世宁,张超. 海底气液多相流混输管道电伴热的热能节省特性研究[J]. 中国海上油气,2024,36(4):221–229.
WANG Kai, YUAN Shining, ZHANG Chao. Heat energy-saving characteristics of electric heat tracing in subsea gas-liquid multiphase-flow mixed transportation pipelines[J]. China Offshore Oil and Gas, 2024, 36(4): 221–229.
|
[47] |
姚海元,陈海宏,伍壮,等. 深水油气田流动安全保障技术研究进展[J]. 海洋工程装备与技术,2022,9(3):73–78.
YAO Haiyuan, CHEN Haihong, WU Zhuang, et al. Research progress of flow assurance for deepwater oil and gas fields[J]. Ocean Engineering Equipment and Technology, 2022, 9(3): 73–78.
|