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Damage Analysis in Sandwich Beams with Cellular Core using Micromechanics Coupled to a Statistical Approach

机译:微芯力学与统计方法相结合的蜂窝芯夹芯梁损伤分析

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This paper deals with the analysis of damage and mechanical properties of sandwich beams. The face sheets consist of glass mat-reinforced polyester (GMRP) perfectly bonded to core material. The latter is a regular array of thermoplastic tubular cells called Tubulam~R. Mechanical behaviour of sandwich beams is analysed and simulated under three and four-point bending and correlated to experimental results. Sandwich beam modelling was performed according to two steps. First, skins behaviour is modelled by a micromechanical approach based upon the generalised Mori and Tanaka theory. Moreover, in the second step, an analytical model based on the laminate theory predicts the overall properties of core material. In this work, damage mechanisms are introduced in the modelling using probabilistic concepts applied at the microscopic scale of face sheets (fibres, matrix, interface between fibres and matrix) as well as at the mesoscopic scale namely tubular core and bond layer between core and skins. Finally, the developed model is validated by experimental tests: three and four-point bending. Experimentally measured global responses of the sandwich beams are compared to those numerically simulated and discussed in terms of damage chronology and evolution. The main point of the developed analysis is that the mechanical behaviour may be predicted on the basis of the structural parameters. Hence, it may provide an important analytical tool for aided design to optimise sandwich structures with respect to applied loading and micromechanical parameters.
机译:本文对夹层梁的损伤和力学性能进行了分析。面板由玻璃纤维增​​强聚酯(GMRP)完美粘合到芯材上。后者是规则排列的热塑性管状小室,称为Tubulam_R。在三点和四点弯曲下对夹层梁的力学行为进行了分析和仿真,并与实验结果相关。夹心梁建模根据两个步骤进行。首先,通过基于广义森和田中理论的微机械方法对皮肤行为进行建模。此外,在第二步中,基于层压理论的分析模型可以预测芯材的整体性能。在这项工作中,使用概率概念在模型的微观尺度(纤维,基质,纤维与基质之间的界面)以及介观尺度(即管状核以及核与皮肤之间的粘结层)中应用了破坏机理。 。最后,通过实验测试验证了开发的模型:三点弯曲和四点弯曲。将实验测得的夹层梁的整体响应与数值模拟的响应进行了比较,并根据损伤的时间顺序和演化进行了讨论。所进行分析的重点是可以根据结构参数预测机械性能。因此,它可以为辅助设计提供一个重要的分析工具,以针对施加的载荷和微机械参数优化夹层结构。

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