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    海上風電樁–筒復合基礎承載性能研究

    孫艷國 許成順 杜修力 王丕光 席仁強 孫毅龍

    孫艷國, 許成順, 杜修力, 王丕光, 席仁強, 孫毅龍. 海上風電樁–筒復合基礎承載性能研究[J]. 工程科學學報, 2023, 45(3): 489-498. doi: 10.13374/j.issn2095-9389.2022.02.11.001
    引用本文: 孫艷國, 許成順, 杜修力, 王丕光, 席仁強, 孫毅龍. 海上風電樁–筒復合基礎承載性能研究[J]. 工程科學學報, 2023, 45(3): 489-498. doi: 10.13374/j.issn2095-9389.2022.02.11.001
    SUN Yan-guo, XU Cheng-shun, DU Xiu-li, WANG Pi-guang, XI Ren-qiang, SUN Yi-long. Bearing characteristics of pile–bucket composite foundations for offshore wind turbines[J]. Chinese Journal of Engineering, 2023, 45(3): 489-498. doi: 10.13374/j.issn2095-9389.2022.02.11.001
    Citation: SUN Yan-guo, XU Cheng-shun, DU Xiu-li, WANG Pi-guang, XI Ren-qiang, SUN Yi-long. Bearing characteristics of pile–bucket composite foundations for offshore wind turbines[J]. Chinese Journal of Engineering, 2023, 45(3): 489-498. doi: 10.13374/j.issn2095-9389.2022.02.11.001

    海上風電樁–筒復合基礎承載性能研究

    doi: 10.13374/j.issn2095-9389.2022.02.11.001
    基金項目: 國家自然科學基金優秀青年基金資助項目(51722801)
    詳細信息
      通訊作者:

      E-mail: xuchengshun@bjut.edu.cn

    • 中圖分類號: TU47

    Bearing characteristics of pile–bucket composite foundations for offshore wind turbines

    More Information
    • 摘要: 基于有限元軟件ABAQUS平臺,建立了非勻質飽和黏土場地的海上風電樁–筒復合基礎數值計算模型,對比研究豎向荷載V、水平荷載H和彎矩荷載M作用下不同筒結構尺寸的樁–筒復合基礎的承載力系數,并采用正交試驗法開展樁–筒復合基礎的各向承載性能的影響因素研究。結果表明,飽和黏土的非勻質特性系數K對豎向承載力系數NcV影響較小;K對水平承載力系數NcH和抗彎承載力系數NcM的影響呈指數型遞減。筒結構直徑D和入土深度L對各向承載力系數的影響存在交互作用。D對樁–筒復合基礎承載力系數的影響最大,可以通過增加筒結構直徑從而有效地提高樁–筒復合基礎的承載性能。研究結果為海上風電樁–筒復合基礎的設計提供了依據。

       

    • 圖  1  有限元模型驗證

      Figure  1.  Validation of the model

      圖  2  樁–筒復合基礎形狀、荷載加載條件及土體條件

      Figure  2.  Pile–bucket composite foundation geometry, load conventions, and saturated clay conditions

      圖  3  有限元計算模型

      Figure  3.  Finite element model

      圖  4  極限承載力確定

      Figure  4.  Determination of the ultimate bearing capacity

      圖  5  樁–筒復合基礎水平承載系數NcHK之間的關系. (a) D = 10 m; (b) D = 15 m; (c) D = 20 m

      Figure  5.  Horizontal bearing capacity factors of the pile–bucket composite foundations (NcH) with K: (a) D=10 m; (b) D=15 m; (c) D=20 m

      圖  6  樁–筒復合基礎水平承載系數NcHD(a)和L(b)的關系

      Figure  6.  Horizontal bearing capacity factors of the pile–bucket composite foundations (NcH) with D(a) and L(b)

      圖  7  DL對水平承載特性的影響

      Figure  7.  Effect of D and L on the horizontal bearing capacity factors

      圖  8  樁–筒復合基礎豎向承載系數NcVK之間的關系. (a) D = 10 m; (b) D = 15 m; (c) D = 20 m

      Figure  8.  Vertical bearing capacity factors of the pile–bucket composite foundations (NcV) with K: (a) D = 10 m; (b) D = 15 m; (c) D = 20 m

      圖  9  豎向加載極限狀態基礎等效塑性應變云圖(a)和位移矢量圖(b)(D20L10K2-V)

      Figure  9.  Equivalent plastic strain distribution (a) and displacement vector diagram (b) under the ultimate vertical bearing state

      圖  10  樁–筒復合基礎豎向承載系數NcVD (a)和L (b)的關系

      Figure  10.  Vertical bearing capacity factors of the pile–bucket composite foundations (NcV) with D (a) and L (b)

      圖  11  DL對豎向承載特性的影響

      Figure  11.  Effect of D and L on vertical bearing capacity factors of pile–bucket composite foundations

      圖  12  樁–筒復合基礎抗彎承載系數NcMK之間的關系. (a) D = 10 m; (b) D = 15 m; (c) D = 20 m

      Figure  12.  Moment bearing capacity factors of the pile–bucket composite foundations with K: (a) D = 10 m; (b) D = 15 m; (c) D = 20 m

      圖  13  公式(7)中的系數. (a) f; (b) g

      Figure  13.  Coefficients in Equation (7): (a) f; (b) g

      圖  14  樁–筒復合基礎抗彎承載力系數NcMD (a)和L (b)的關系

      Figure  14.  Moment bearing capacity factors of the pile–bucket composite foundations with D (a) and L (b)

      圖  15  DL對抗彎承載特性的影響

      Figure  15.  Effect of D and L on the moment bearing capacity factors of the pile–bucket composite foundations

      表  1  飽和黏土非勻質特性

      Table  1.   Inhomogeneous characteristics of saturated clay

      K = kD/SumSum / kPak / (kPa·m–1)
      26.251.25
      43.251.3
      621.2
      101.251.25
      300.41.2
      下載: 導出CSV

      表  2  荷載及位移符號規定

      Table  2.   Sign conventions for loads and displacements

      ParameterVertical
      loading
      Horizontal
      loading
      Bending
      moment
      LoadingVHM
      Ultimate bearing capacityVultHultMult
      Bearing capacity
      factor
      NcV = Vult/ASu0NcH = Hult/ASu0NcM = Mult/ADSu0
      Displacementvhθ
      下載: 導出CSV

      表  3  因素水平表

      Table  3.   Factors and levels

      Levelsd / ml / mD / mL / mK
      15251022
      26301564
      373520106
      484025148
      下載: 導出CSV

      表  4  正交試驗方案及結果

      Table  4.   Orthogonal scheme and results

      Cased / ml / mD / mL / mKNcHNcVNcM
      152510226.9411.271.13
      253015643.677.210.48
      3535201063.507.310.37
      4540251483.448.240.33
      5625151085.1010.750.72
      66301014610.0216.461.65
      763525241.894.160.17
      864020623.767.170.36
      9725201444.3510.800.54
      10730251023.658.440.34
      11735106810.2618.291.83
      1274015265.359.830.66
      1382525662.807.090.28
      1483020283.096.850.34
      15835151427.6912.860.86
      168401010412.1821.362.14
      下載: 導出CSV

      表  5  水平承載力系數NcH極差分析

      Table  5.   Range analysis of NcH

      Coefficientd / ml / mD / mL / mK
      NcH(1)17.6819.2639.5717.4922.13
      NcH(2)20.7320.4821.9920.5522.15
      NcH(3)23.7923.4114.7124.4821.84
      NcH(4)25.8524.9111.7925.5321.93
      R of NcH8.185.6527.788.030.32
      Priority of factorsD>d>L>l>K
      下載: 導出CSV

      表  6  豎向承載力系數NcV極差分析

      Table  6.   Range analysis of NcV

      Coefficientd / ml / mD / mL / mK
      NcV(1)34.6640.3267.7032.1140.41
      NcV(2)39.2639.5541.4640.3243.63
      NcV(3)47.4043.3332.5448.5141.54
      NcV(4)48.7946.9028.4049.1644.52
      R of NcV14.137.3639.2917.054.12
      Priority of factorsD>L>d>l>K
      下載: 導出CSV

      表  7  抗彎承載力系數NcM極差分析

      Table  7.   Range analysis of NcM

      Coefficientd / ml / mD / mL / mK
      NcM(1)28.2524.91104.2730.9435.60
      NcM(2)36.8635.0436.7042.9849.91
      NcM(3)46.7449.1217.3352.8040.97
      NcM(4)57.8260.5911.3842.9643.19
      R of NcM29.5735.6792.8921.8614.31
      Priority of factorsD>l>d>L>K
      下載: 導出CSV
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