Effective high-density wellbore cleaning fluids: Brine-based and solids-free

被引:7
|
作者
Javora, Paul H.
Baccigalopi, Glenn
Sanford, Jack
Cordeddu, Cristina
Qu, Qi
Poole, Gary
Franklin, Bernard
机构
关键词
D O I
10.2118/99158-PA
中图分类号
TE [石油、天然气工业];
学科分类号
0820 ;
摘要
Displacing drilling mud with clear solids-free completion brine is a critical step during well completion. As we move into deeper waters and drill to deeper depths (greater than 25,000 feet MD), conventional methods and cleaning fluids become a limiting factor in this phase of the operation. Conventional cleaning fluids use fresh water or seawater treated with surfactants to remove wellbore solids and water-wet tubulars. Using low-density cleaning fluids creates a negative differential pressure between the working kill weight fluid and the formation, casing, and cement liners. In many situations, the negative differential pressure cannot be tolerated, and the risk of failure at the liner top, etc., is increased-especially, if the wellbore has not been pressure-integrity tested. Additionally, with increasing rig/spread costs, high pump rates are necessary to decrease the time it takes to perform these operations. The pump rate is indirectly proportional to the pump pressures required. Weighted spacers decrease the overall pressure differential, which allows for higher pumping rates. To overcome the density limitation of these cleaning fluids, conventional techniques, such as additional hydraulic horsepower, backpressure schedules, the addition of solids to lighter cleaning fluids (e.g.. water, seawater), or balancing the weight of the low-density cleaning fluid with a matching higher-density fluid is used. However, each of these "fixes" has inherent limitations and is accompanied with reduced cleanup efficiency. Furthermore, conventional surfactants are not active or effective in high-density brines. New brine-compatible surfactant chemistry and the corresponding balanced-displacement engineering design were developed to overcome limitation of conventional displacement technology. This paper describes the field applications of new brine-based, high-density, solids-free cleaning fluids in balanced-displacements in deepwater and offshore shelf wells. The new high-density fluids were based on new surfactant technology developed to ensure effective wellbore cleaning, wellbore design parameters, and displacement modeling. In addition, weighted spacers aid in reducing high pump pressures and wellbore pressure differentials. In one case history, a maximum pumping pressure of more than 9,000 psi was expected for conventional water-based displacement but was reduced to a little more than 3,000 psi with the new design. High-density cleaning fluids, with densities up to and greater than 17.5 ppg, have been formulated and used successfully without compromising cleanup efficiency and significantly reducing differential pressures. Results from laboratory development and field applications are presented.
引用
收藏
页码:48 / 54
页数:7
相关论文
共 48 条
  • [21] The Feasibility for Potassium-Based Phosphate Brines To Serve as High-Density Solid-Free Well-Completion Fluids in High-Temperature/High-Pressure Formations
    Jia, Hu
    Hu, Yao-Xi
    Zhao, Shan-Jie
    Zhao, Jin-Zhou
    SPE JOURNAL, 2019, 24 (05): : 2033 - 2046
  • [22] A new biopolymer-free, low-solids, high-density reservoir drilling fluid: Laboratory development and field implementation
    Horton, RL
    Tresco, KO
    Dobson, JW
    Bye, GK
    Knox, DA
    Svoboda, CF
    Foxenberg, WE
    Green, TC
    SPE DRILLING & COMPLETION, 2004, 19 (01) : 29 - 39
  • [23] A high-density organoclay-free oil base drilling fluid based on supramolecular chemistry
    Jiang Guancheng
    He Yinbo
    Huang Xianbin
    Deng Zhengqiang
    Qin Yong
    PETROLEUM EXPLORATION AND DEVELOPMENT, 2016, 43 (01) : 143 - 148
  • [24] Convolutional Codes Based Index-Free Coding Strategy for High-Density DNA Storage
    Chen, Wanqing
    Zhang, Zixiao
    Liu, Zuqi
    Xu, Fei
    BIO-INSPIRED COMPUTING: THEORIES AND APPLICATIONS, PT 1, BIC-TA 2023, 2024, 2061 : 384 - 395
  • [25] A salt-responsive amphoteric viscosifier for high-density solid-free completion fluids with high temperature resistance, strong solubility, and high viscosity enhancement
    Wang, Jian
    Sun, Jinsheng
    Huang, Xianbin
    Lv, Kaihe
    Dong, Xiaodong
    Geng, Yuan
    Xie, Shuixiang
    GEOENERGY SCIENCE AND ENGINEERING, 2024, 243
  • [26] CHAOTIC COMBUSTION OF SOLIDS AND HIGH-DENSITY FLUIDS NEAR POINTS OF STRONG RESONANCE (PROC R SOC LOND, VOL 433, PG 131, 1991)
    MARGOLIS, SB
    PROCEEDINGS OF THE ROYAL SOCIETY OF LONDON SERIES A-MATHEMATICAL PHYSICAL AND ENGINEERING SCIENCES, 1992, 439 (1907): : 691 - 691
  • [27] Axial flow structure of solids holdup in an 18-m high-density CFB riser based on pressure measurements
    Su, Xin
    Wang, Chengxiu
    Lan, Xingying
    Pei, Huajian
    Mao, Xiaoyang
    Gao, Jinsen
    PARTICUOLOGY, 2021, 54 : 116 - 125
  • [28] High-density aptamer synthesis based on primer exchange reaction for label-free electrochemical biosensing
    Hu, Yian
    Xu, Chengtao
    Zhao, Chao
    Liu, Hong
    JOURNAL OF ELECTROANALYTICAL CHEMISTRY, 2024, 963
  • [29] Effective Physical-based Propagation Delay Calculation Method for High-Speed Transceivers in High-Density FPGA Packages
    Tan, Chit Zhung
    Jiang, Xiaohong
    Yew, Yee Huan
    2015 IEEE 17TH ELECTRONICS PACKAGING AND TECHNOLOGY CONFERENCE (EPTC), 2015,
  • [30] Comparing fluorescence-based cell-free assays for the assessment of antioxidative capacity of high-density lipoproteins
    Tsunoda, Fumiyoshi
    Lamon-Fava, Stefania
    Horvath, Katalin V.
    Schaefer, Ernst J.
    Asztalos, Bela F.
    LIPIDS IN HEALTH AND DISEASE, 2016, 15 : 1 - 8