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Modeling multiple failures of composite box beams used in wind turbine blades

机译:建模风力涡轮机叶片中使用的复合箱形梁的多个失效

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Large composite structures, such as composite wind turbine blades, may exhibit multiple failure modes that challenge the modeling strategies and methodologies designers adopt in finite element (FE) analysis. This study develops a comprehensive and general FE modeling method to simulate interactive failure process of composite box beams used in wind turbine blades. The composite box beams are the primary loading-carrying members and could show different failure modes due to competing failure mechanisms. A continuum-damage mechanics based progressive failure analysis approach is developed in three-dimensional stress/strain domain to simulate failure behavior of the box beams. Structural nonlinearities associated with geometry, materials and contact are included. The material failures considered in this study are composite failure with three material failure modes, foam core crushing and adhesive failure. The in-plane shear stress versus strain relation of unidirectional composites is included in the material damage model. Comprehensive comparisons are made between numerical simulations and experimental observations with respect to strain response, ultimate loads, failure modes and failure progress. The modeling approach is found to be capable of predicting both strength and failure of box beams with reasonable accuracy and it exhibits great potential to predict failure response of composite wind turbine blades.
机译:大型复合结构,例如复合风力涡轮机叶片,可能会表现出多种失效模式,这对设计人员在有限元(FE)分析中采用的建模策略和方法提出了挑战。本研究开发了一种全面而通用的有限元建模方法,以模拟风力涡轮机叶片中使用的复合箱形梁的相互作用破坏过程。复合箱形梁是主要的承载构件,由于相互竞争的破坏机制,可能显示出不同的破坏模式。在三维应力/应变域中开发了一种基于连续损伤力学的渐进式失效分析方法,以模拟箱形梁的失效行为。包括与几何形状,材料和接触有关的结构非线性。在这项研究中考虑的材料失效是具有三种材料失效模式的复合材料失效,即泡沫芯破碎和粘合失效。材料损伤模型中包括单向复合材料的面内剪切应力与应变关系。在数值模拟和实验观察之间就应变响应,极限载荷,破坏模式和破坏进展进行了全面比较。发现该建模方法能够以合理的精度预测箱形梁的强度和失效,并且具有预测复合风力涡轮机叶片失效响应的巨大潜力。

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