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Integrated thermal, micro- and macro-mechanical modelling of post-fire flexural behaviour of flame-retarded glass/epoxy composites

机译:阻燃玻璃/环氧树脂复合材料火灾后弯曲行为的热力学,微观和宏观力学综合模型

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摘要

This paper presents an integrated modelling approach for the post-thermal exposure flexural behaviour of glass fibre-reinforced (GFR) epoxy composites with/without flame retardants at both material and structural levels. This numerical model incorporates the outcomes from chemical kinetics and heat-mass transfer analyses. The unit cell-based micro-mesoscopic and meso-macroscopic mechanical models have been shown to accurately simulate the mechanical behaviour of GFR epoxy composites at the material level. The post-fire (e.g., composites thermally damaged by exposure to one-sided radiant heating) flexural behaviours of GFR epoxy composites were numerically modelled using finite element (FE) analyses. The predicted residual flexural stiffness for GFR epoxy composites exposed to different transient radiant heating conditions are compared with experimentally-measured post-fire flexural data in order to validate the numerical modelling approach while allowing its accuracy to be assessed. The good agreement between predicted and experimental data demonstrates the accuracy of the integrated numerical model in simulating the post-fire flexural bending of GFR epoxy composites.
机译:本文为玻璃纤维增​​强(GFR)环氧复合材料在材料和结构水平上具有/不具有阻燃剂的热暴露后弯曲行为提供了一种集成的建模方法。该数值模型结合了化学动力学和热质传递分析的结果。已经显示了基于晶胞的微观和微观宏观力学模型,可以在材料水平上精确模拟GFR环氧复合材料的力学行为。使用有限元(FE)分析对GFR环氧复合材料的烧后(例如,由于暴露于单侧辐射加热而热损坏的复合材料)的弯曲行为进行了数值模拟。将GFR环氧复合材料在不同瞬态辐射加热条件下的预测残余挠曲刚度与实验测量的火后挠曲数据进行比较,以验证数值建模方法,同时评估其准确性。预测数据与实验数据之间的良好一致性证明了集成数值模型在模拟GFR环氧复合材料火灾后弯曲中的准确性。

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