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Multi-objective design optimisation of GFRP sandwich beams

机译:GFRP夹芯梁的多目标设计优化

摘要

A novel Glass Fibre Reinforced Polymer (GFRP) sandwich panel was developed by an Australian manufacturer for civil engineering applications. This research is motivated by the new applications of GFRP sandwich structures in civil engineering such as slab, beam, girder and sleeper. An optimisation methodology is developed in this work to enhance the design of GFRP sandwich beams. The design of single and glue laminated GFRP sandwich beam were conducted by using numerical optimisation. The numerical multi-objective optimisation considered a design two objectives simultaneously. These objectives are cost and mass. The numerical optimisation uses the Adaptive Range Multi-objective Genetic Algorithm (ARMOGA) and Finite Element (FE)method. Trade-offs between objectives was found during the optimisation process. Multi-objective optimisation shows a core to skin mass ratio equal to 3.68 for the single sandwich beam cross section optimisation and it showed that the optimum core to skin thickness ratio is 11.0.
机译:一家澳大利亚制造商为土木工程应用开发了一种新型的玻璃纤维增​​强聚合物(GFRP)夹芯板。这项研究是受GFRP夹层结构在土木,梁,梁和枕木等土木工程中的新应用的启发。在这项工作中开发了一种优化方法,以增强GFRP夹层梁的设计。采用数值优化的方法进行了单层和胶层的GFRP夹层梁的设计。数值多目标优化同时考虑了两个目标的设计。这些目标是成本和质量。数值优化使用自适应范围多目标遗传算法(ARMOGA)和有限元(FE)方法。在优化过程中发现了目标之间的权衡。多目标优化显示单夹层梁横截面优化的芯与蒙皮质量比等于3.68,并且表明最佳芯与蒙皮厚度比为11.0。

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