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河探1井超高密度钻井液技术

王信 谭春 王志彬 罗玉财 周燚 张民立 王威 贾东民

王信,谭春,王志彬,等. 河探1井超高密度钻井液技术[J]. 钻井液与完井液,2023,40(2):193-201 doi: 10.12358/j.issn.1001-5620.2023.02.007
引用本文: 王信,谭春,王志彬,等. 河探1井超高密度钻井液技术[J]. 钻井液与完井液,2023,40(2):193-201 doi: 10.12358/j.issn.1001-5620.2023.02.007
WANG Xin, TAN Chun, WANG Zhibin, et al.Ultra-high density drilling fluid technology for the well Hetan-1[J]. Drilling Fluid & Completion Fluid,2023, 40(2):193-201 doi: 10.12358/j.issn.1001-5620.2023.02.007
Citation: WANG Xin, TAN Chun, WANG Zhibin, et al.Ultra-high density drilling fluid technology for the well Hetan-1[J]. Drilling Fluid & Completion Fluid,2023, 40(2):193-201 doi: 10.12358/j.issn.1001-5620.2023.02.007

河探1井超高密度钻井液技术

doi: 10.12358/j.issn.1001-5620.2023.02.007
详细信息
    作者简介:

    王信,中油集团公司钻井液技能专家,一直从事钻井液、完井液技术研究及现场应用工作。电话 18702245139; E-mail:495113347@qq.com

  • 中图分类号: TE254.3

Ultra-High Density Drilling Fluid Technology for the Well Hetan-1

  • 摘要: 河探1井是中油股份公司在华北油田河套盆地临河坳陷部署的一口重点风险探井,完钻井深为6460.44 m,钻探目的为探索兴隆构造带光明背斜古近系、新近系生储盖特征及其含油气性。该井三开钻遇四套不同压力系数复杂地层,钻井液密度窗口窄,现场顺利实施了提密度压井、堵漏,控压钻进等作业,四开钻遇异常高压流体层,应用超高密度钻井液体系一次性将钻井液密度从1.80 g/cm3提高至2.55 g/cm3,并安全实施完井作业,储备压井高密度钻井液(ρ=2.60 g/cm3),达到国内应用水基钻井液采用重晶石粉加重的极限。在钻井施工过程中先后出现井塌、膏泥岩层蠕变缩径卡钻、高压盐水侵以及井漏等事故复杂,采用超高密度抗高温复合盐钻井液,现场应用随钻封堵提高地层承压能力工艺,分段完成七次承压堵漏,同时强化一级固控有效使用,应用高目筛布、优化钻井液体系配方、优选加重材料、调节膨润土含量及合理控制低密度固相含量等手段,成功解决了窄密度窗口和超高密度水基钻井液高温、高固相流变性能调整困难等技术难题,确保了压井和试油作业期间高温条件下超高密度钻井液体系具有良好的稳定性。该井创地区同期六项钻井技术指标,日产302.4 m3高产工业油流,实现巴彦油田最深井勘探发现,为钻井及完井试油作业提供了技术支撑。

     

  • 图  1  河探1井三开钻屑电镜扫描照片

    表  1  不同降滤失剂单剂的抗高温性能

    基浆配方实验条件AV/
    mPa·s
    PV/
    mPa·s
    YP/
    Pa
    FLAPI/
    mL
    FLHTHP/
    mL
    3.5%膨润土浆+0.1%烧碱+2%Redu2常温54.0459.012.0
    200 ℃、16 h13.0121.022.048
    3.5%膨润土浆+0.1%烧碱+2%Redu2+50%有机盐常温38.0308.012.5
    200 ℃、16 h28.0226.017.528
    3.5%膨润土浆+0.1%烧碱+2%Redu200常温38.0335.07.2
    200 ℃、16 h24.5240.57.024
    3.5%膨润土浆+0.1%烧碱+2%Redu200常温38.0335.07.2
    220 ℃、16 h23.0203.015.045
    3.5%膨润土浆+0.1%烧碱+2%Redu200+50%复合有机盐常温30.0237.08.5
    220 ℃、16 h20.0155.011.029
    下载: 导出CSV

    表  2  在基浆中加入不同加量纳米封堵剂NAX50的性能

    NAX50/
    %
    φ600/
    φ300
    AV/
    mPa·s
    PV/
    mPa·s
    YP/
    Pa
    FLAPI/
    mL
    滤失量
    降低率/%
    04/32.011.043.0
    16/43.021.018.058.1
    27/53.521.516.860.9
    310/65.041.010.475.8
    411/65.550.58.680.0
    512/76.051.07.482.8
     注:基浆为:350 mL水+1.05 g无水Na2CO3+28 g钻井液试验用评价土
    下载: 导出CSV

    表  3  纳米封堵剂NAX50的封堵性能

    实验配方不同时间的滤失量/mL
    1 min2 min7.5 min30 min
    198.0244.0全滤失
    5%NAX50溶液+0.15%
    十二烷基硫酸钠
    8.09.812.019.2
    5%NAX50溶液7.69.010.817.2
    下载: 导出CSV

    表  4  不同有机盐钻井液的抗温性

    钻井液实验
    条件
    ρ/
    g·cm−3
    φ6/
    φ3
    Gel/
    Pa/Pa
    AV/
    mPa·s
    PV/
    mPa·s
    YP/
    Pa
    FLAPI/
    mL
    FLHTHP/
    mL
    1# 热滚前 1.35 3/2 1.0/3.0 42.0 34 8.0 0.8
    热滚后 1.34 3/2 1.0/2.0 48.5 44 4.5 1.0 8.4
    2# 热滚前 1.85 4/3 1.5/6.0 82.5 68 14.5 1.2
    热滚后 1.84 4/3 1.0/3.0 68.5 58 10.5 2.0 11.2
    3# 热滚前 2.50 7/5 3.0/12.5 121.0 109 12.0 1.2
    热滚后 2.49 4/3 2.0/5.0 104.5 99 5.5 0.8 8.8
      注:热滚条件为220 ℃、16 h,60 ℃测试流变性,常温下测试FLAPI和密度。1#、2#配方无沉降,3#配方软沉3~4 cm,钻井液密度加重至2.00 g/cm3以后,选用高密度重晶石粉
    下载: 导出CSV

    表  5  复合有机盐钻井液抗盐及抗岩粉污染实验

    污染物实验
    条件
    ρ/
    g·cm−3
    Gel/
    Pa/Pa
    PV/
    mPa·s
    YP/
    Pa
    FLAPI/
    mL
    FLHTHP/
    mL
    0常温2.501.5/6.0388.51.411.2
    20%NaCl热滚后2.501.5/4.5418.01.611.6
    0常温2.501.5/6.0388.51.411.2
    5%CaCl2热滚后2.502.0/5.0396.51.411.4
    0常温1.481.5/4.5378.51.411.2
    5%岩粉常温1.501.5/4.5388.51.211.2
    10%岩粉常温1.522.0/5.0397.01.211.0
      注:热滚条件为180 ℃、16 h, FLHTHP在180 ℃测试,60 ℃检测流变性能,常温下测试FLAPI和密度
    下载: 导出CSV

    表  6  河探1井四开及完井期间钻井液的流变性能

    ρ/
    g·cm-3
    FV/
    s
    φ600/
    φ300
    φ200/
    φ100
    φ6/
    φ3
    Gel/
    Pa/Pa
    AV/
    mPa·s
    PV/
    mPa·s
    YP/
    Pa
    1.86 80 120/71 40/21 2.0/1.0 0.5/2.5 60 49 11.0
    1.95 107 156/90 55/29 3.0/1.5 1.5/3.5 78 66 12.0
    2.26 94 196/113 57/31 3.0/2.0 1.5/3.0 98 83 15.0
    2.45 110 260/139 97/53 6.0/3.0 2.5/7.5 130 121 9.5
    2.55 130 226/124 87/48 6.0/3.0 4.5/11.0 113 102 11.0
    下载: 导出CSV
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  • 收稿日期:  2022-11-28
  • 修回日期:  2022-12-30
  • 刊出日期:  2023-03-30

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