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Experimental and numerical investigation of thermoplastic honeycomb sandwich structures under bending loading

机译:弯曲负载下热塑性蜂窝夹层结构的实验性和数值研究

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摘要

Sandwich structures have attracted increasing attention in engineering applications due to their lightweight effect and energy absorbing capacity. In the current work, fully-thermoplastic honeycomb sandwich structures with 100% recyclability were developed, which consisted of continuous glass fiber-reinforced polypropylene (PP/GF) face sheets, polypropylene (PP) core and assembled using thermoplastic adhesive films. The experimental tests and numerical analysis were conducted to investigate the bending behavior and energy absorption of PP-based sandwich structures. Firstly, a series of three-point bending experiments were tested and the influences of structural factors on bending behaviors were investigated. The typical deformation modes were explored and the damaged microstructure of face-sheets were observed. Finite element models of the sandwich structures were developed to capture the deformation process, and the simulation results were validated with the experimental data. Afterwards, a multi-objective optimization was performed to seek for the maximum specific energy absorption together with the minimum initial peak force simultaneously. Response surface method was adopted to construct objective response functions and used for the defined optimization problem.
机译:由于它们的轻质效果和能量吸收能力,夹心结构引起了工程应用中的越来越长。在当前的工作中,开发了具有100%可回收性的完全热塑性蜂窝夹层结构,其由连续玻璃纤维增​​强聚丙烯(PP / GF)面板,聚丙烯(PP)芯组成,并使用热塑性粘合剂膜组装。进行了实验试验和数值分析,以研究PP的夹层结构的弯曲行为和能量吸收。首先,测试了一系列三点弯曲实验,研究了结构因素对弯曲行为的影响。探索了典型的变形模式,观察了面板的受损微观结构。开发了夹层结构的有限元模型以捕获变形过程,并用实验数据验证模拟结果。之后,进行多目标优化以同时与最小初始峰值一起寻找最大特定能量吸收。采用响应面方法构建客观响应函数并用于定义的优化问题。

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