分层(地质)
可靠性(半导体)
复合数
粒子群优化
复合材料层合板
结构工程
材料科学
休克(循环)
蒙特卡罗方法
塔楼
计算机科学
复合材料
算法
工程类
数学
医学
古生物学
功率(物理)
统计
构造学
物理
量子力学
内科学
俯冲
生物
作者
Zhao Liu,Lei Zhang,Ping Zhu,Mushi Li
标识
DOI:10.1177/00219983211047689
摘要
Three-dimensional orthogonal woven composites are noted for their excellent mechanical properties and delamination resistance, so they are expected to have promising prospects in lightweight applications in the automobile industry. The multi-scale characteristics and inherent uncertainty of design variables pose great challenges to the optimization procedure for 3D orthogonal woven composite structures. This paper aims to propose a reliability-based design optimization method for guidance on the lightweight design of 3D orthogonal woven composite automobile shock tower, which includes design variables from material and structure. An analytical model was firstly set up to accurately predict the elastic and strength properties of composites. After that, a novel optimization procedure was established for the multi-scale reliability optimization design of composite shock tower, based on the combination of Monte Carlo reliability analysis method, Kriging surrogate model, and particle swarm optimization algorithm. According to the results, the optimized shock tower meets the requirements of structural performance and reliability, with a weight reduction of 37.83%.
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