FU Chao, YANG Jin, LIU Huaqing, et al. Multi-dimensional selection method for well construction in shallow formations of deepwater [J]. Petroleum Drilling Techniques, 2024, 52(3):40-46. DOI: 10.11911/syztjs.2024051
Citation: FU Chao, YANG Jin, LIU Huaqing, et al. Multi-dimensional selection method for well construction in shallow formations of deepwater [J]. Petroleum Drilling Techniques, 2024, 52(3):40-46. DOI: 10.11911/syztjs.2024051

Multi-Dimensional Selection Method for Well Construction in Shallow Formations of Deepwater

More Information
  • Received Date: September 29, 2023
  • Revised Date: February 21, 2024
  • Accepted Date: April 21, 2024
  • Available Online: April 25, 2024
  • Due to the characteristics of variable marine environment, complex geological conditions, high operational risks, and high day rates of deepwater drilling operations, it is difficult to choose suitable method for well construction in shallow formation in deepwater. Taking into account all relevant factors, including seabed soil strength, well construction quality, operation efficiency, cost efficiency, drilling safety risk control, and other factors, the adaptability of different well construction methods were analyzed based on the field operation engineering data. A single-dimensional adaptability classification mechanism was established, and a multi-dimensional selection method for well construction in shallow formations of deepwater was formed through quantitative visualization using radar charts. The results show that in the South China Sea with a water depth of 500−1500 meters, the jetting method is the optimal method for well construction in shallow formation during single well operation, and the operation efficiency can be improved by more than 50% compared to the drilling method. This method has achieved good application results in dozens of deepwater wells in the South China Sea, which provides a quantitative evaluation approach for the selection of well construction methods in deepwater complex formations.

  • [1]
    杨进,傅超,刘书杰,等. 超深水浅层建井关键技术创新与实践[J]. 石油学报,2022,43(10):1500–1508.

    YANG Jin, FU Chao, LIU Shujie, et al. Key technological innovation and practice of well construction in ultra-deepwater shallow formations[J]. Acta Petrolei Sinica, 2022, 43(10): 1500–1508.
    [2]
    杨进,朱国倞,李舒展,等. 深海资源钻探吸力桩建井模式研究[J]. 石油钻探技术,2023,51(4):134–139.

    YANG Jin, ZHU Guojing, LI Shuzhan, et al. Research on suction pile well construction model for deep sea resource drilling[J]. Petroleum Drilling Techniques, 2023, 51(4): 134–139.
    [3]
    刘书杰,谢仁军,仝刚,等. 中国海洋石油集团有限公司深水钻完井技术进展及展望[J]. 石油学报,2019,40(增刊2):168–173.

    LIU Shujie, XIE Renjun, TONG Gang, et al. Progress and prospect of deepwater well drilling and completion technique of CNOOC[J]. Acta Petrolei Sinica, 2019, 40(supplement 2): 168–173.
    [4]
    王敏生. 油气井钻完井作业碳减排发展方向与建议[J]. 石油钻探技术,2022,50(6):1–6. doi: 10.11911/syztjs.2022106

    WANG Minsheng. Development direction and suggestions for carbon emission reduction during drilling and completion[J]. Petroleum Drilling Techniques, 2022, 50(6): 1–6. doi: 10.11911/syztjs.2022106
    [5]
    李中. 中国海油油气井工程数字化和智能化新进展与展望[J]. 石油钻探技术,2022,50(2):1–8. doi: 10.11911/syztjs.2022061

    LI Zhong. Progress and prospects of digitization and intelligentization of CNOOC’s oil and gas well engineering[J]. Petroleum Drilling Techniques, 2022, 50(2): 1–8. doi: 10.11911/syztjs.2022061
    [6]
    周波,杨进,周建良,等. 深水钻井喷射下导管排量设计方法[J]. 石油钻探技术,2016,44(3):21–26.

    ZHOU Bo, YANG Jin, ZHOU Jianliang, et al. A jetting flow rate design method for conductor installation through jetting in deepwater drilling[J]. Petroleum Drilling Techniques, 2016, 44(3): 21–26.
    [7]
    许云锦,杨进,周波,等. 深水钻井喷射法安装表层导管极限下入深度确定[J]. 石油钻采工艺,2016,38(5):553–557.

    XU Yunjin, YANG Jin, ZHOU Bo, et al. Research on limit depth of the surface conductor by jetting method in deepwater drilling[J]. Oil Drilling & Production Technology, 2016, 38(5): 553–557.
    [8]
    杨进,仝刚,周波,等. 张力腿平台表层导管安装方法适应性评价及优选[J]. 中国海上油气,2016,28(6):72–76.

    YANG Jin, TONG Gang, ZHOU Bo, et al. Flexibility evaluation and optimization of conductor installation methods for tension leg platforms[J]. China Offshore Oil and Gas, 2016, 28(6): 72–76.
    [9]
    周波,杨进,周建良,等. 深水喷射扰动对表层导管承载力的影响规律[J]. 中国海上油气,2016,28(1):98–102.

    ZHOU Bo, YANG Jin, ZHOU Jianliang, et al. Pattern of influence of disturbance caused by jetting on bearing capacity of surface conductor in deep water zones[J]. China Offshore Oil and Gas, 2016, 28(1): 98–102.
    [10]
    MACKENZIE B, FRANCIS M, GARRETT I, et al. Conductor jetting experiences in deepwater offshore Ghana: an investigation into geotechnical and operational influences on success, and establishment of future best practice[R]. SUT-OSIG-12-13, 2012.
    [11]
    马小翔. 基于改进权重计算的协同过滤算法研究[D]. 长春:吉林大学,2017.

    MA Xiaoxiang. Research on the collaborative filtering algorithm based on improving weight calculation[D]. Changchun: Jilin University, 2017.
    [12]
    殷启帅,杨进,曹博涵,等. 基于长短期记忆神经网络的深水钻井工况实时智能判别模型[J]. 石油钻采工艺,2022,44(1):97–104.

    YIN Qishuai, YANG Jin, CAO Bohan, et al. Real-time intelligent rig activities classification model of deep-water drilling using Long Short-Term Memory (LSTM) network[J]. Oil Drilling & Production Technology, 2022, 44(1): 97–104.
    [13]
    杨进. 深水油气井表层导管下入深度计算方法[J]. 石油学报,2019,40(11):1396–1406. doi: 10.7623/syxb201911010

    YANG Jin. Calculation method of surface conductor setting depth in deepwater oil and gas wells[J]. Acta Petrolei Sinica, 2019, 40(11): 1396–1406. doi: 10.7623/syxb201911010
    [14]
    杨进,黄鑫,杨宇翔,等. 深水油气井新型膨胀导管力学特性[J]. 石油学报,2019,40(增刊2):116–122.

    YANG Jin, HUANG Xin, YANG Yuxiang, et al. Mechanical properties of a new type of expandable surface conductor in deepwater oil and gas wells[J]. Acta Petrolei Sinica, 2019, 40(supplement 2): 116–122.
    [15]
    YANG Jin, LIU Shujie, WANG Huanhuan, et al. A novel method for fracture pressure prediction in shallow formation during deep-water drilling[J]. Journal of Energy Resources Technology, 2022, 144(3): 033005. doi: 10.1115/1.4051394
    [16]
    傅超. 水下打桩法下表层导管施工参数优化研究[D]. 北京:中国石油大学(北京),2018.

    FU Chao. Research on optimization of construction parameters for underwater piling installing surface conductor[D]. Beijing: China University of Petroleum(Beijing), 2018.
    [17]
    YANG Jin, YAN De, TIAN Ruirui, et al. Bit stick-out calculation for the deepwater conductor jetting technique[J]. Petroleum Exploration and Development, 2013, 40(3): 394–397. doi: 10.1016/S1876-3804(13)60049-X
    [18]
    KAN Changbin, YANG Jin, YU Xiaocong, et al. Load bearing characteristics study on novel deepwater composite drilling conductor by simulation and experimental methods[J]. Journal of Petroleum Science and Engineering, 2018, 171: 289–301. doi: 10.1016/j.petrol.2018.07.023
    [19]
    王建云,韩涛,赵宽心,等. 塔深5井超深层钻井关键技术[J]. 石油钻探技术,2022,50(5):27–33.

    WANG Jianyun, HAN Tao, ZHAO Kuanxin, et al. Key drilling technologies for the ultra-deep well Tashen 5[J]. Petroleum Drilling Techniques, 2022, 50(5): 27–33.
    [20]
    何利,肖阳,孙宜成,等. 车21井区裂缝性油藏地质建模与工程设计一体化研究[J]. 特种油气藏,2021,28(5):23–29.

    HE Li, XIAO Yang, SUN Yicheng, et al. On integration of geological modeling and engineering design of fractured oil reservoirs in Well Block Che21[J]. Special Oil & Gas Reservoirs, 2021, 28(5): 23–29.
    [21]
    刘强,王志凯,王选茹,等. 超低渗透油藏大斜度井适应性评价[J]. 断块油气田,2022,29(3):302–306.

    LIU Qiang, WANG Zhikai, WANG Xuanru, et al. Adaptability evaluation of highly deviated well in ultra-low permeability reservoirs[J]. Fault-Block Oil and Gas Field, 2022, 29(3): 302–306.
    [22]
    张建平,庞达,徐佳俊,等. 深水钻井表层导管喷射下入井口稳定性分析[J]. 石油钻采工艺,2018,40(增刊1):101–103.

    ZHANG Jianping, PANG Da, XU Jiajun, et al. Wellhead stability analysis of surface casing running for deepwater drilling[J]. Oil Drilling & Production Technology, 2018, 40(supplement 1): 101–103.
    [23]
    薛宪波,张诚成,张保康,等. 海上油田一趟钻套管开窗技术[J]. 石油钻探技术,2022,50(4):64–68.

    XUE Xianbo, ZHANG Chengcheng, ZHANG Baokang, et al. One-trip casing window sidetracking technologies for offshore oilfields[J]. Petroleum Drilling Techniques, 2022, 50(4): 64–68.
    [24]
    李江,陈先超,高平,等. 考虑应力敏感效应的裂缝性碳酸盐岩气井拟稳态产能预测方法[J]. 石油钻探技术,2021,49(3):111–116.

    LI Jiang, CHEN Xianchao, GAO Ping, et al. A pseudo-steady-state productivity prediction method for fractured carbonate gas wells considering stress-sensitivity effects[J]. Petroleum Drilling Techniques, 2021, 49(3): 111–116.
    [25]
    孟勇,贾庆升,张潦源,等. 东营凹陷页岩油储层层间干扰及裂缝扩展规律研究[J]. 石油钻探技术,2021,49(4):130–138. doi: 10.11911/syztjs.2021094

    MENG Yong, JIA Qingsheng, ZHANG Liaoyuan, et al. Research on interlayer interference and the fracture propagation law of shale oil reservoirs in the Dongying Sag[J]. Petroleum Drilling Techniques, 2021, 49(4): 130–138. doi: 10.11911/syztjs.2021094
    [26]
    喻贵民,顾纯巍,宋宇,等. 深水浅层气钻井风险评估与控制技术[J]. 石油钻采工艺,2022,44(3):297–301.

    YU Guimin, GU Chunwei, SONG Yu, et al. Risk assessment and control technology for deep water and shallow gas drilling[J]. Oil Drilling & Production Technology, 2022, 44(3): 297–301.
    [27]
    田兵,郑有伟,赵俊梅. 南海白云凹陷渐新统珠海组沉积相及其演化[J]. 断块油气田,2022,29(6):800–806.

    TIAN Bing, ZHENG Youwei, ZHAO Junmei. Sedimentary facies and evolution of Oligocene Zhuhai Formation in Baiyun Sag, South China Sea[J]. Fault-Block Oil & Gas Field, 2022, 29(6): 800–806.
    [28]
    LI Wenlong, GAO Deli, YANG Jin, et al. Subsea wellhead stability study of composite casing for deepwater drilling[J]. Ocean Engineering, 2020, 214: 107780. doi: 10.1016/j.oceaneng.2020.107780
  • Related Articles

    [1]LI Zhongcheng, BAO Zhidong, WANG Hongxue, ZHANG Dong. Quantitative Analysis Method of Remaining Oil Based on Fluorescence Microscopic Observation of High-Pressure Mercury Lamp[J]. Petroleum Drilling Techniques, 2024, 52(3): 112-117. DOI: 10.11911/syztjs.2023114
    [2]YU Ruifeng, DIAO Binbin, GAO Deli. Optimal Selection Method of Magnetic Ranging Tools for Relief Well Engineering Based on the Measurement Error of the Adjacent Well Distance[J]. Petroleum Drilling Techniques, 2021, 49(6): 118-124. DOI: 10.11911/syztjs.2021129
    [3]ZOU Deyong, MENG Xiangyu, YUAN Jun, WANG Bin. A New Method for Bit Selection Based on Pattern Recognition[J]. Petroleum Drilling Techniques, 2016, 44(2): 40-45. DOI: 10.11911/syztjs.201602007
    [4]Li Ning, Hu Guanghui, Li Qiang, Ai Zhengqing, Li Zaoyuan. Application of Plug-Drilling-Free Selective Completion Technology in the Tarim Oilfield[J]. Petroleum Drilling Techniques, 2014, 42(5): 68-73. DOI: 10.11911/syztjs.201405012
    [5]Liu Zhengli, Ye Jihua, Tian Ruirui, Yan De. Adaptability of Underwater Tamping for Deepwater Drilling Conductor Installation in South China Sea[J]. Petroleum Drilling Techniques, 2014, 42(1): 41-45. DOI: 10.3969/j.issn.1001-0890.2014.01.008
    [6]Ju Pei, Zhai Yinghu. Selection of PDC Bit by Using Improved Fuzzy Comprehensive Evaluation Method[J]. Petroleum Drilling Techniques, 2013, 41(1): 108-112. DOI: 10.3969/j.issn.1001-0890.2013.01.021
    [7]Song Gangxiang, Yu Gaoming, Han Xin, Jian Jie, Lu Yan. New Methods of Quantitatively Evaluate Effect of Profile Control[J]. Petroleum Drilling Techniques, 2012, 40(6): 96-98. DOI: 10.3969/j.issn.1001-0890.2012.06.020
    [8]Zheng Qiang, Liu Huiqing, Li Fang, Zhang Jie, Zhang Bo. Quantitative Identification of Breakthrough Channel in Water Flooding Reservoirs at Later Stage[J]. Petroleum Drilling Techniques, 2012, 40(4): 92-95. DOI: 10.3969/j.issn.1001-0890.2012.04.018
    [9]Xiao Guoyi, Hu Daliang, Liao Zhonghui, Wang Xiyong, Li Qunsheng. Parameter Optimization and Selection of PDC Bits for Xujiahe Formation in Western Sichuan[J]. Petroleum Drilling Techniques, 2012, 40(3): 28-32. DOI: 10.3969/j.issn.1001-0890.2012.03.006
    [10]Jiang Guancheng, Wang Xiaojun, Guan Jian, Li Jiancheng, Yang Peng, Guo Linhao. The Quantitative Prediction Method of Water Blocking Damage in Low and Extra-Low Permeability Reservoir[J]. Petroleum Drilling Techniques, 2012, 40(1): 69-73. DOI: 10.3969/j.issn.1001-0890.2012.01.014
  • Cited by

    Periodical cited type(3)

    1. 王思维,何淼,许明标,戴白妹. 高温高压气井测试井筒温度应力场耦合分析. 断块油气田. 2024(01): 168-176 .
    2. 戴一凡,侯冰,廖志豪. 基于相场法的深层干热岩储层水力压裂模拟研究. 石油钻探技术. 2024(02): 229-235 . 本站查看
    3. 蒋振新,李军,郭勇,吴德胜,时培忠,杨宏伟,张更. 井下双梯度控压钻井井筒多相流动规律. 断块油气田. 2024(05): 936-944 .

    Other cited types(0)

Catalog

    Article Metrics

    Article views (123) PDF downloads (34) Cited by(3)
    Related

    /

    DownLoad:  Full-Size Img  PowerPoint
    Return
    Return