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Materials Design of All-Cellulose Composite Using Microstructure Based Finite Element Analysis

机译:基于微结构的有限元分析的全纤维素复合材料设计

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摘要

A microstructure-based finite element analysis model was developed to predict the effective elastic property of cellulose nanowhisker reinforced all-cellulose composite. Analysis was based on the microstructure synthesized with assumption on volume fraction, size, and orientation distribution of cellulose nanowhiskers. Simulation results demonstrated some interesting discovery: With the increase of aspect ratio, the effective elastic modulus increases in isotropic microstructure. The elastic property anisotropy increases with the aspect ratio and anisotropy of nanowhisker orientation. Simulation results from microstructure-based finite element analysis agree well with experimental results, comparing with other homogenization methods: upper bound, lower bound, and self-consistent models. Capturing the anisotropic elastic property, the microstructure-based finite element analysis demonstrated the capability in guiding materials design to improve effective properties.
机译:建立了基于微观结构的有限元分析模型,以预测纤维素纳米晶须增强的全纤维素复合材料的有效弹性。分析是基于合成的微观结构,并假设了纤维素纳米晶须的体积分数,尺寸和取向分布。仿真结果表明了一些有趣的发现:随着纵横比的增加,各向同性微观结构中的有效弹性模量增加。弹性特性各向异性随长径比和纳米晶须取向的各向异性而增加。与其他同质化方法(上限,下限和自洽模型)相比,基于微结构的有限元分析得出的模拟结果与实验结果吻合良好。基于各向异性的弹性性能,基于微结构的有限元分析证明了指导材料设计以改善有效性能的能力。

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