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Reliability-based design optimization of composite battery box based on modified particle swarm optimization algorithm

机译:基于改进粒子群算法的复合电池盒可靠性设计优化

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The application of carbon fiber reinforced polymer (CFRP) material introduces great challenges to the optimization design process, such as complex non-linear material behavior, the inherent uncertainty of design variables and multilevel characteristics of the structure. This paper aims at developing a reliability-based design optimization (RBDO) method to solve the CFRP battery box lightweight design problem considering both meso- and macro-scopic parameters. The method has three kernel parts: the uncertainty quantification and propagation part, the finite element analysis part and the optimization part. In the first part, the internal geometry variability of plain woven CFRP was obtained by X-ray micro-CT images. Representative Volume Element (RVE) models are established to predict the elastic and strength properties of the studied composites, and the constitutive model of material was adapted in stiffness and strength analysis of the battery box structure in the second part. Then a RBDO procedure considering design variables across two scales is developed using a modified particle swarm optimization and surrogate modeling techniques. The structure of the CFRP battery box achieved by the proposed multiscale optimization procedure realizes a weight loss of 22.14%, and the performance demands are satisfied with high reliability, which further reveals the advantages of using this methodology.
机译:碳纤维增强聚合物(CFRP)材料的应用给优化设计过程带来了巨大挑战,例如复杂的非线性材料性能,设计变量固有的不确定性以及结构的多级特征。本文旨在开发一种基于可靠性的设计优化(RBDO)方法,以解决同时考虑了中观和宏观参数的CFRP电池盒轻量化设计问题。该方法包括三个核心部分:不确定性量化和传播部分,有限元分析部分和优化部分。在第一部分中,通过X射线微CT图像获得了平纹CFRP的内部几何变异性。建立了具有代表性的体积元(RVE)模型来预测所研究复合材料的弹性和强度特性,并在第二部分中将材料的本构模型应用于电池箱结构的刚度和强度分析。然后,使用改进的粒子群优化和替代建模技术,开发了一种考虑两个尺度上的设计变量的RBDO程序。通过提出的多尺度优化程序实现的CFRP电池盒的结构实现了22.14%的重量损失,并以高可靠性满足了性能要求,这进一步揭示了使用该方法的优势。

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