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首页> 外文期刊>Polymer: The International Journal for the Science and Technology of Polymers >Reliability-based robust design optimization of polymer nanocomposites to enhance percolated electrical conductivity considering correlated input variables using multivariate distributions
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Reliability-based robust design optimization of polymer nanocomposites to enhance percolated electrical conductivity considering correlated input variables using multivariate distributions

机译:基于可靠性的聚合物纳米复合材料的鲁棒设计优化,以提高使用多变量分布的相关输入变量的渗透电导率

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摘要

In this study, reliability-based robust design optimization (RBRDO) for polymer nanocomposites (PNCs) design is conducted to secure the reliability of design conditions concerning the electrical percolation threshold and carbon nanotube (CNT) aspect ratio as well as the robustness for electrical conductivity. CNT diameter and length are known as following the lognormal and Weibull distributions respectively. To reflect the different probability distributions of CNT geometry parameters and correlations between these random input variables, Nataf transformation is employed. By performing several case studies with the first-order reliability method (FORM)-based RBRDO approaches, the objective function exhibited a noteworthy change according to the correlation coefficients and the reliability and robustness for PNCs were satisfied concurrently. Furthermore, the highlight of this work is to provide a generic framework for practical PNC design and multi-objective optimization to enhance electrical performance efficiently.
机译:在这项研究中,基于可靠性的稳健设计优化(RBRDO)为聚合物纳米复合材料(PNCS)中进行设计以确保关于电渗透阈值和碳纳米管(CNT)的纵横比以及鲁棒性为导电率的设计条件的可靠性。 CNT的直径和长度分别称为以下对数正态和威布尔分布。为了反映的CNT几何参数和这些随机输入变量之间的相关性的不同概率分布,纳塔夫变换使用。通过与第一阶可靠度方法(FORM)基RBRDO接近执行若干案例研究,目标函数根据相关系数和可靠性和稳健性为PNCS在同时满足表现出显着的变化。此外,这项工作的亮点是提供实用PNC设计和多目标优化,有效地提高电气性能的通用框架。

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