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Effects of Defects: Part B-A Comparison of Progressive Damage Modeling of Fiberglass/Epoxy Composite Structures with Manufacturing Induced Flaws

机译:缺陷的影响:B部分-具有制造缺陷的玻璃纤维/环氧树脂复合结构渐进损伤建模的比较

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Application of different damage modeling approaches for use with composite materials and composite material structures has grown with increasing computational ability. However, assumptions are often made for "worst case" scenarios with these modeling techniques In order to develop a tool that will allow for accurate analysis of a complete structure, modeling approaches must be optimized by including defects of different parameters. It was the optimization of these approaches that was investigated herein with specific application toward establishing a protocol to understand and quantify the effects of defects in composite wind turbine blades. A systematic, three-round study of increasing complexity was performed to understand the effects of three typical blade manufacturing defects while investigating continuum, discrete, and combined damage modeling. Through the three rounds of the benchmark material testing, significant coupon level testing was performed to generalize the effects of these defects. In addition, material properties and responses were analyzed and then utilized as material inputs and correlation criteria for each analytical technique. A standard defect case was initially used for each modeling technique and correlation was compared both qualitatively and quantitatively. While each modeling type offered certain attributes, a combined approach yielded the most accurate analytical/experimental correlation. Thus, a unique comparison of several different analytical approaches to composites with respect to manufacturing for consistency, accuracy, and predictive capability allowing for improved blade reliability and composite structural assessment.
机译:随着复合计算能力的提高,用于复合材料和复合材料结构的不同损伤建模方法的应用也在增长。但是,通常使用这些建模技术来为“最坏情况”场景做出假设。为了开发一种可以对完整结构进行精确分析的工具,必须通过包含不同参数的缺陷来优化建模方法。本文对这些方法的优化进行了研究,并将其特定用于建立协议以理解和量化复合风力涡轮机叶片中缺陷的影响。为了研究三种典型叶片制造缺陷的影响,同时进行了连续体,离散和组合损伤模型的研究,对复杂性不断增加进行了系统的,三轮研究。通过三轮基准材料测试,进行了重要的试样水平测试,以概括这些缺陷的影响。此外,还分析了材料特性和响应,然后将其用作每种分析技术的材料输入和相关标准。最初将标准缺陷案例用于每种建模技术,并对定性和定量进行了相关性比较。尽管每种建模类型都提供了某些属性,但是组合方法产生了最准确的分析/实验相关性。因此,针对制造的一致性,准确性和预测能力,对几种不同的复合材料分析方法进行了独特的比较,从而提高了叶片的可靠性和复合材料的结构评估能力。

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