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Modelling hollow pultruded FRP profiles under axial compression: Local buckling and progressive failure

机译:轴压下的空心拉挤FRP型材:局部屈曲和逐步失败

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摘要

Pultruded Fibre-Reinforced Polymer (PFRP) profiles are widely used as structural elements in many civil infrastructure applications. However, the anisotropic elasticity and the application-driven slenderness make these profiles prone to local buckling failure, well below their ultimate load capacity. In this paper, a numerical study was undertaken to characterise the local buckling and compressive failure of hollow PFRP profiles under axial compression. The Newton method were used along with the adaptive automatic stabilisation scheme and a controlled increment size in Abaqus 2019, to overcome the numerical difficulties in simulating local buckling. The numerical predictions were validated by experiments. The energy parameters and the constituent failure modes of the FEM models were used to explain the effect of dimension, layup, and slenderness ratio on the post-peak behaviour and failure modes of the PFRP profiles. Moreover, the reliance of the strain energy restoration after buckling and the axial and transverse deformations on these parameters was explained.
机译:拉挤纤维增强聚合物(PFRP)型材广泛用作许多民用基础设施应用中的结构元素。然而,各向异性弹性和应用驱动的纤维性使这些曲线能够容易产生局部屈曲失败,远低于其最终的负载能力。本文采用了一种数值研究,以表征轴向压缩下空心PFRP型材的局部屈曲和压缩失效。牛顿方法随着APAQUS 2019的自适应自动稳定方案和受控增量尺寸使用,以克服模拟局部屈曲的数值困难。通过实验验证了数值预测。有限元模型的能量参数和组成故障模式用于解释尺寸,叠层和细长比对PFRP型材的后峰值行为和故障模式的影响。此外,解释了屈曲和轴向和横向变形之后的应变能恢复对这些参数的依赖性。

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