风电叶片风化退化的微力学建模方法研究

Michael Kucher, Philipp Johst, Miguel Lizaranzu, Francisco Lahuerta, Robert Böhm
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摘要

摘要玻璃纤维增强聚合物(gfrp)作为复合材料被广泛应用于风力涡轮机叶片等多种应用。在使用期间,这些玻璃钢结构暴露在自然风化条件下,如低温和高温、紫外线辐射和潮湿。这些风化现象由于材料老化和复合材料力学性能的退化而影响材料的力学性能。为了可靠的寿命评估和设计wtb的重新用途应用,需要量化GFRP的降解。因此,本研究的目的是数值估计风化对玻璃钢力学性能的综合影响。因此,考虑代表性体积元,确定了单向GFRP复合材料的有效弹性性能。采用有限元方法进行了所需的数值模拟。在现有文献的基础上,采用玻璃纤维、环氧树脂的力学性能及其与单个自然老化现象的关系。微观力学建模结果表明,温度和吸湿率的变化对环氧树脂的弹性性能影响最大,从而对GFRP复合材料的弹性性能也有影响。所使用的数值方法能够对GFRP的环境退化现象进行初步估计,可用于复合材料结构开发的早期阶段,复合材料的再利用或规划考虑这些复合材料降解的实验研究。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Micromechanical Modeling Approach for the Estimation of the Weathering-Induced Degradation of Wind Turbine Blades
Abstract Glass fiber reinforced polymers (GFRPs) are widely used as composite material for a variety of applications such as wind turbine blades (WTBs). During their operating time, these GFRP structures are exposed to natural weathering conditions, such as low and elevated temperatures, ultraviolet radiation, and moisture. These weathering phenomena influence the material’s mechanical properties due to material aging and the degradation of the composite’s mechanical properties. For a reliable lifetime assessment and the design of a repurposed application of WTBs, the quantification of GFRP’s degradation is required. For this reason, the aim of the current study is to numerically estimate the combined effects of weathering on the mechanical properties of GFRP. Therefore, the effective elastic properties of a unidirectional GFRP composite were determined considering representative volume elements. The required numerical modeling was performed using finite element analysis. The mechanical properties of glass fibers, epoxy resin and their relationship with individual natural aging phenomena were used based on the existing literature values. As a result of the micromechanical modeling, the change of temperature and moisture absorption have the highest effect on the elastic properties on the epoxy resin and thus also on the GFRP composite. The used numerical approach enables a preliminary estimation of environmental-based degradation phenomena of GFRP which can be used at an early stage of developments of composite structures, the reuse of composites or for planning experimental studies considering degradation of these composite materials.
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