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Experimental investigation on ultimate strength and failure response of composite box beams used in wind turbine blades

机译:风力机叶片复合箱形梁极限强度及破坏响应的试验研究

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摘要

This study focuses on the ultimate strength and failure response of composite box beams under three-point bending. The box beams consist of spar caps and shear webs and they are typically used in wind turbine blades as load-carrying members. Different spar cap configurations and loading directions are examined experimentally to investigate structural behavior associated with multiple nonlinearities leading to structural collapse. Global displacements, local strains and video images are recorded throughout the loading history to capture failure initiation, propagation and the strain state contributing to post-collapse characteristics. The failure mechanisms of the box beams involving geometric, material and contact nonlinearities are discussed in detail. The study shows that compressive crushing failure, driven by local buckling of shear webs, determines the ultimate strength of the box beams under flapwise loading, and adhesive joint debonding, initiated by local adhesive cracking and spar cap buckling, is the critical failure mode of the box beams under edgewise loading. The Brazier effect and shear nonlinearity contribute to the initial failure depending on the loading directions. Debonding rather than delamination characterizes post-collapse behavior of all box beams examined in this study.
机译:这项研究的重点是三点弯曲下组合箱形梁的极限强度和破坏响应。箱形梁由翼梁盖和抗剪腹板组成,它们通常在风力涡轮机叶片中用作承载构件。实验研究了不同的翼梁帽构型和载荷方向,以研究与导致结构塌陷的多种非线性相关的结构行为。在整个加载历史中记录了整体位移,局部应变和视频图像,以捕获破坏的开始,传播和应变状态,这些行为有助于崩溃后的特性。详细讨论了涉及几何,材料和接触非线性的箱形梁的破坏机理。研究表明,受剪切腹板局部屈曲驱动的压缩破碎失效,决定了箱形梁在翼片载荷下的极限强度,而由局部粘合剂破裂和翼梁帽屈曲引发的粘合剂接缝脱胶是该模型的关键失效模式。箱梁在边缘载荷下。火盆效应和剪切非线性影响了初始破坏,具体取决于载荷方向。脱胶而不是分层表征了本研究中检查的所有箱形梁的坍塌后行为。

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