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中牟區塊過渡相頁巖氣藏產能分析及壓裂參數優選

唐帥 朱維耀 張金川

唐帥, 朱維耀, 張金川. 中牟區塊過渡相頁巖氣藏產能分析及壓裂參數優選[J]. 工程科學學報, 2020, 42(12): 1573-1587. doi: 10.13374/j.issn2095-9389.2020.04.10.002
引用本文: 唐帥, 朱維耀, 張金川. 中牟區塊過渡相頁巖氣藏產能分析及壓裂參數優選[J]. 工程科學學報, 2020, 42(12): 1573-1587. doi: 10.13374/j.issn2095-9389.2020.04.10.002
TANG Shuai, ZHU Wei-yao, ZHANG Jin-chuan. Production analysis and fracturing parameter optimization of shale gas from Zhongmou Block in southern North China Basin[J]. Chinese Journal of Engineering, 2020, 42(12): 1573-1587. doi: 10.13374/j.issn2095-9389.2020.04.10.002
Citation: TANG Shuai, ZHU Wei-yao, ZHANG Jin-chuan. Production analysis and fracturing parameter optimization of shale gas from Zhongmou Block in southern North China Basin[J]. Chinese Journal of Engineering, 2020, 42(12): 1573-1587. doi: 10.13374/j.issn2095-9389.2020.04.10.002

中牟區塊過渡相頁巖氣藏產能分析及壓裂參數優選

doi: 10.13374/j.issn2095-9389.2020.04.10.002
基金項目: 中央高校基本科研業務費專項資金資助項目(FRF-TP-20-007A1)
詳細信息
    通訊作者:

    E-mail:weiyaook@sina.com

  • 中圖分類號: TE32

Production analysis and fracturing parameter optimization of shale gas from Zhongmou Block in southern North China Basin

More Information
  • 摘要: 南華北盆地中牟區塊頁巖氣是海陸過渡相頁巖氣的典型代表,以地質模型為基礎,結合理論分析和數值模擬手段,研究了不同儲層參數對水平井開采頁巖氣的采收率、日產氣量以及累計產氣量的影響規律,通過正交設計與多指標分析方法確定了影響頁巖氣產能的主控因素,考慮各主控因素與頁巖氣產能的關系,建立了水平井壓裂條件下的累計產氣量和頁巖氣采收率方程。針對目標壓裂層段,對比分析了不同壓裂參數條件下的頁巖氣產能變化,指出水平井段長度和動用程度是決定產能大小的主要參數。在一定的壓裂級數條件下,裂縫長度的增加可以有效溝通裂縫,從而提高產能。以凈現值大于0和收益率達到8%~12%作為經濟評價指標,優選了3類海陸過渡相頁巖氣壓裂參數。

     

  • 圖  1  模型網格劃分。(a)平面網格劃分;(b)縱向網格劃分

    Figure  1.  Model meshing: (a) plane meshing; (b) vertical meshing

    圖  2  數模屬性模型粗化結果。(a)總孔隙度;(b)有效孔隙度;(c)吸附氣含量;(d)游離氣含量;(e)總含氣量;(f)束縛水飽和度

    Figure  2.  Attribute model coarsening for numerical modeling: (a) total porosity; (b) effective porosity; (c) adsorbed gas content; (d) free gas content; (e) total gas content; (f) irreducible water saturation

    圖  3  不同埋深的水平井開采效果對比圖。(a)日產氣與累計產氣量;(b)氣體采收率

    Figure  3.  Comparison of development effects with different buried depths: (a) gas rate and cumulative gas; (b) gas recovery

    圖  4  不同厚度的水平井開采效果對比圖。(a)日產氣與累計產氣量;(b)氣體采收率

    Figure  4.  Comparison of development effects with different reservoir thicknesses: (a) gas rate and cumulative gas; (b) gas recovery

    圖  5  不同孔隙度的水平井開采效果對比圖。(a)日產氣與累計產氣量;(b)氣體采收率

    Figure  5.  Comparison of development effects with different porosities: (a) gas rate and cumulative gas; (b) gas recovery

    圖  6  不同滲透率的水平井開采效果對比圖。(a)日產氣與累計產氣量;(b)氣體采收率

    Figure  6.  Comparison of development effects with different permeabilities: (a) gas rate and cumulative gas; (b) gas recovery

    圖  7  不同吸附氣含量的水平井開采效果對比圖。(a)日產氣與累計產氣量;(b)氣體采收率

    Figure  7.  Comparison of development effects with different adsorbed gas contents: (a) gas rate and cumulative gas; (b) gas recovery

    圖  8  水平井壓裂累計產氣量與儲層主要影響參數的關系。(a)滲透率;(b)孔隙度;(c)厚度

    Figure  8.  Relationship between cumulative gas production and main influencing parameters: (a) permeability; (b) porosity; (c) thickness

    圖  9  水平井壓裂設計示意圖。(a)h1100-3×18;(b)h1300-5×14;(c)h1500-10×10

    Figure  9.  Schematics of the horizontal well fracturing design: (a) h1100-3×18; (b) h1300-5×14; (c) h1500-10×10

    圖  10  不同水平井段長度的開采效果對比圖。(a)日產氣與累計產氣量;(b)氣體采收率

    Figure  10.  Comparison of development effects with different horizontal well lengths: (a) gas rate and cumulative gas; (b) gas recovery

    圖  11  不同水平井段長度在50%動用條件下的開采效果對比圖。(a)日產氣與累計產氣量;(b)氣體采收率

    Figure  11.  Comparison of development effects with different horizontal well lengths at 50% utilization: (a) gas rate and cumulative gas; (b) gas recovery

    圖  12  不同裂縫長度的開采效果對比圖。(a)日產氣與累計產氣量;(b)氣體采收率

    Figure  12.  Comparison of development effects with different fracture lengths: (a) gas rate and cumulative gas; (b) gas recovery

    圖  13  不同壓裂級數的開采效果對比。(a)日產氣與累計產氣量;(b)氣體采收率

    Figure  13.  Comparison of development effects with different fracturing stages: (a) gas rate and cumulative gas; (b) gas recovery

    圖  14  不同壓裂設計方案下的NPV值對比

    Figure  14.  Comparison of NPVs for different fracturing design schemes

    圖  15  不同壓裂設計方案下的收益率對比

    Figure  15.  Comparison of yield rates for different fracturing design schemes

    表  1  國內外典型頁巖氣藏的井網井距范圍[8]

    Table  1.   Well spacing ranges of typical shale gas reservoirs at home and abroad[8]

    BlockHorizontal length/mWell control area/km2Average well control area/km2Average well spacing/m
    Barnett12190.24–0.650.45280
    Haynesville14020.16–2.270.5260
    Marcellus11280.16–0.650.42260
    Eagle Ford14940.32–2.590.6300
    South Sichuan14480.36–1.100.65400–500
    下載: 導出CSV

    表  2  儲層模擬參數表

    Table  2.   Reservoir simulation parameters

    ParameterNumerical value
    Depth/m2930
    Horizontal well length/m1000
    Shale density/(kg·m?3)2695
    Gas viscosity/(Pa·s)2.01×10?5
    Porosity/%2.6
    Matrix permeability/(10?3 μm2)1.5×10?4
    Fracture permeability/(10?3 μm2)3.25×10?2
    Initial reservoir pressure/MPa41.51
    Temperature/K343.15
    下載: 導出CSV

    表  3  模擬參數因子水平表

    Table  3.   Levels of the impact factors for reservoir simulation

    LevelsImpact factors
    Buried
    depth/m
    Thickness/
    m
    Porosity/
    %
    Permeability/
    (10?6 μm2)
    Adsorbed gas
    content/(m3?t?1)
    1260018211.0
    2270020351.7
    32800224102.4
    429002451003.1
    下載: 導出CSV

    表  4  水平井開采頁巖氣的儲層參數正交設計表

    Table  4.   Orthogonal optimization design of reservoir parameters for horizontal well exploitation

    Levels影響因子Productivity/(107 m3
    A
    Buried depth/m
    B
    Thickness/m
    C
    Porosity/%
    D
    Fracture permeability/(10?3 μm2)
    E
    Adsorbed gas content/(m3?t?1)
    1111111.60497
    2122224.05602
    3133336.60769
    ……
    14423143.05960
    15432417.60656
    16441325.29045
    下載: 導出CSV

    表  5  不同儲層參數的正交設計試驗結果

    Table  5.   Orthogonal design results under different reservoir parameters

    Evaluation indexImpact factors
    A
    Buried depth/m
    B
    Thickness/m
    C
    Porosity/%
    D
    Fracture permeability/(10?3 μm2)
    E
    Adsorbed gas content/(m3?t?1)
    L124.9314820.0660917.0621910.9272321.70743
    L219.7526619.8105919.7187919.4042120.63355
    L322.2533021.8762623.2600623.8819020.75562
    L421.3371126.5216228.2335234.0612025.17795
    l16.232875.016524.265552.731815.42686
    l24.938174.952654.929704.851055.15839
    l35.563325.469065.815015.970485.18891
    l45.334286.630407.058388.515306.29449
    R1.2951.6782.7935.7831.136
    下載: 導出CSV

    表  6  不同儲層影響參數條件下的累計產氣量

    Table  6.   Accumulative gas production under different influencing parameters

    PermeabilityPorosityThickness
    Permeability/(10?6 μm2)Cumulative gas/(107 m3Porosity/%Cumulative gas/(107 m3Thickness/mCumulative gas/(107 m3
    12.9422.42182.69
    55.1432.69202.94
    106.5342.94223.17
    5010.7053.17243.38
    下載: 導出CSV

    表  7  m值計算數據表

    Table  7.   Calculation data sheet for m

    k/(10?6 μm2)Qp/m3A/m2h/m?SgiTsc/KPi/MPa
    12.94360000200.040.9529728
    55.14360000200.040.9529728
    106.53360000200.040.9529728
    5010.7360000200.040.9529728
    ZiPsc/MPaT/KPa/MPaZanmdm/%
    0.9980.131320.850.33194.761.21
    0.9980.131320.850.33194.88?1.24
    0.9980.131320.850.33194.93?2.19
    0.9980.131320.850.33194.731.85
    下載: 導出CSV

    表  8  頁巖氣開發鉆井和壓裂成本數據表

    Table  8.   Drilling and fracturing cost of shale gas development

    ItemsCost
    Gas price (tax excluded)/(Yuan·m?3)1.18
    Operating cost/(Yuan·m?3)0.35
    Period expense/(Yuan·m?3)0.37
    Drilling cost of horizontal section/(Yuan·m?1)10486
    Drilling cost of vertical section/(Yuan·m?1)3000
    Fracturing cost of each stage/(104 Yuan)96
    Commodity rate/%90
    Evaluation period/a30
    Resource tax rate/%6
    Vat rates/%13
    Government subsidy/(Yuan·m?3)0.23
    Discount rate/%10
    下載: 導出CSV

    表  9  不同壓裂設計方案下的生產情況統計表

    Table  9.   Production statistics for different fracturing design schemes

    SchemeFracturing
    design
    Horizontal
    length/m
    Fracturing
    stage
    Fracture
    length/m
    Cumulative
    gas/(107 m3)
    Cost/
    Yuan
    Income/
    Yuan
    Yield
    rate/%
    NPV/
    Yuan
    1h1100-3×1011003103.882311460312729131?44.93?6348843.23
    2h1100-3×1411003143.982311460313651900?40.94?5828090.51
    3h1100-3×1811003184.062311460314403913?37.68?5397061.08
    34h1500-14×10150014108.3037869006388485402.597400812.79
    35h1500-14×14150014148.4437869006401009145.898422714.02
    36h1500-14×18150014188.5537869006411128438.579259836.49
    下載: 導出CSV

    表  10  壓裂參數設計方案優選

    Table  10.   Optimization of fracturing parameter design schemes

    Optimization typeFracturing designCumulative gas/(107 m3)NPV/YuanYield rate/%
    h1300-13×188.0599228246.7313.89
    h1500-10×107.8316434064.8212.62
    h1500-10×147.9797528738.2216.64
    h1100-11×186.9726921110.659.17
    h1300-13×147.95178428224.6411.02
    h1500-14×188.5489259836.498.57
    h1100-5×145.436374418.110.62
    h1100-5×185.5421017807.024.53
    h1100-11×106.7545375518.122.65
    h1100-11×146.8746224066.056.25
    h1300-13×107.8177452739.967.48
    h1500-14×108.3037400812.792.59
    h1500-14×148.4398422714.025.89
    下載: 導出CSV
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