Damage Initiation and Growth in Composite Laminates of Wind Turbine Blades

被引:0
|
作者
Mustafa, Ghulam [1 ]
Suleman, Afzal [1 ]
Crawford, Curran [1 ]
机构
[1] Univ Victoria, Dept Mech Engn, Victoria, BC V8W 2Y2, Canada
关键词
FAILURE; STRENGTH; RANGE; MODEL; GLASS;
D O I
暂无
中图分类号
TB33 [复合材料];
学科分类号
摘要
The physical properties of composite materials, such as high strength-to-density and stiffness-to-density ratios, are key properties for wind turbine blade structure. These materials are however vulnerable to damage during service. The static failure of composites occurs in two stages: 1) onset of damage and 2) damage evolution that leads to final failure. The response of damaged composites depends upon a mixture of mechanisms that take place at the micro level, i.e., in the fiber and the matrix. Consequently a model is proposed for predicting ultimate strength of composite laminates based on the constituent's properties; the fiber, the matrix, and the interface. For onset of damage, the Stassi Equivalent stress model sigma(eq,m) is used for the matrix. This model take cares of different tensile and compressive strengths of the matrix. For the fiber, the failure criterion for onset of fiber breakage is related to fiber strength. Once failure occurs, gradual degradation of material properties is used, i.e., D-m = 1-exp [gamma(1-sigma T-q,m/(i))]. The analysis is carried out on a three dimensional representative unit cell of the composite. The ultimate strength predictions were in reasonably good agreement with the test data for E-glass/epoxy laminates used in wind turbine blades.
引用
收藏
页码:17 / 28
页数:12
相关论文
共 50 条
  • [31] Aerodynamic and structural design of composite wind turbine blades
    Chen, Guanghua
    Tian, De
    Ying, Ding
    MATERIALS, MECHANICAL ENGINEERING AND MANUFACTURE, PTS 1-3, 2013, 268-270 : 1294 - 1298
  • [32] Modeling the Solvolysis of Composite Materials of Wind Turbine Blades
    Chen, Yi
    Mishnaevsky Jr, Leon
    ADVANCED ENGINEERING MATERIALS, 2024, 26 (16)
  • [33] Characterization of Cured Composite Materials for Wind Turbine Blades
    Mitchell, Cynthia J.
    Sherwood, J. A.
    Fetfatsidis, Konstantine A.
    Dangora, Lisa M.
    CURRENT STATE-OF-THE-ART ON MATERIAL FORMING: NUMERICAL AND EXPERIMENTAL APPROACHES AT DIFFERENT LENGTH-SCALES, PTS 1-3, 2013, 554-557 : 478 - 483
  • [34] Lightning Damage to Wind Turbine Blades From Wind Farms in the US
    Garolera, Anna Candela
    Madsen, Soren Find
    Nissim, Maya
    Myers, Jackson D.
    Holboell, Joachim
    IEEE TRANSACTIONS ON POWER DELIVERY, 2016, 31 (03) : 1043 - 1049
  • [35] Durability and Reliability of Large Composite Wind Turbine Blades
    Abumeri, G.
    Abdi, F.
    Paquette, J.
    SAMPE JOURNAL, 2012, 48 (06) : 7 - 14
  • [36] Automated Composite Fabric Layup for Wind Turbine Blades
    Zhu, Siqi
    Magnussen, Corey J.
    Judd, Emily L.
    Frank, Matthew C.
    Peters, Frank E.
    JOURNAL OF MANUFACTURING SCIENCE AND ENGINEERING-TRANSACTIONS OF THE ASME, 2017, 139 (06):
  • [37] Using composite sandwich structures in wind turbine blades
    Norlin, P
    Reuterlöv, S
    SAMPE JOURNAL, 2004, 40 (04) : 34 - 36
  • [38] OPTIMIZATION OF LAMINATING PARAMETERS FOR COMPOSITE WIND TURBINE BLADES
    Zhang Z.
    Qiao Y.
    Wang S.
    Taiyangneng Xuebao/Acta Energiae Solaris Sinica, 2023, 44 (03): : 97 - 103
  • [39] Design and Optimization of Composite Offshore Wind Turbine Blades
    Tarfaoui, M.
    Shah, O. R.
    Nachtane, M.
    JOURNAL OF ENERGY RESOURCES TECHNOLOGY-TRANSACTIONS OF THE ASME, 2019, 141 (05):
  • [40] Evaluation of shear flow in composite wind turbine blades
    Fernandes da Silva, G.
    Marin, J. C.
    Barroso, A.
    COMPOSITE STRUCTURES, 2011, 93 (07) : 1832 - 1841