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Effect of the Statistical Nature of Fiber Strength on the Predictability of Tensile Properties of Polymer Composites Reinforced with Bamboo Fibers: Comparison of Linear- and Power-Law Weibull Models

机译:纤维强度的统计性质对竹纤维增强的聚合物复合材料拉伸性能的可预测性的影响:线性和幂律威布尔模型的比较

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In fibrous composites, tensile strength of reinforcements exhibits a stochastic nature, and the mechanical properties of the composites are significantly influenced by such strength variability. The present study aims at providing a comparative investigation of the influence of the statistical variation in fiber strength on the tensile properties of unidirectional composites reinforced by bamboo fibers. Monte-Carlo simulations coupled with the linear- and power-law Weibull distributions are performed to conduct numerical predictions for damage evolution and strength variability of the composites, and the predicted mean strength and failure strain are compared with the experimental results. The Weibull parameters used are achieved through the Maximum Likelihood Estimation with multiple data sets of fiber lengths. Fiber strength statistics is found to have an effect on composite mechanical properties. The results further indicate that the use of the power-law model is relatively efficient for modeling purposes in comparison to the linear-law model, which could be attributed to fiber diameter variation.
机译:在纤维复合材料中,增强材料的拉伸强度表现出随机性,并且这种强度变化会显着影响复合材料的机械性能。本研究旨在提供比较研究纤维强度的统计变化对竹纤维增强的单向复合材料拉伸性能的影响。进行了蒙特卡洛模拟,结合线性和幂律韦伯分布,对复合材料的损伤演化和强度变化进行了数值预测,并将预测的平均强度和破坏应变与实验结果进行了比较。使用的威布尔参数是通过最大似然估计和多个光纤长度数据集来实现的。发现纤维强度统计数据对复合材料的机械性能有影响。结果还表明,与线性定律模型相比,幂律模型的使用相对于建模而言是相对有效的,这可以归因于光纤直径的变化。

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