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Numerical investigation of novel FRP composites towards high-strength, large-deformation, and tensile-behavior designable properties

机译:新型FRP复合材料对高强度,大变形和拉伸行为可设计特性的数值研究

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摘要

A FRP composite consisting of FRP skins, 3D printed inner cores and twisted knots has been developed to achieve low-density, high-strength, large-deformation, and tensile-behavior designable properties. Desired nonlinear responses could be achieved by loading FRP skins to plastically deform inner cores with carefully designed configurations. However, current investigations provided few computational tools for determining the tensile behavior of the composite with various core configurations. In this study, a two-dimensional finite element (FE) model has been calibrated for the composite having various brace thicknesses, shell thicknesses, core spans, core heights, brace angles, and core numbers. Predictions were compared with experimental measurements in terms of entire stress-strain shapes, ultimate stresses and strains. Good correlation between predictions and corresponding measurements validate the reliability of the proposed FE model. By using the proposed FE model, a more sophisticated and efficient FRP composite could be developed upon increasingly updated demands.
机译:已经开发出一种由FRP蒙皮,3D打印内芯和扭曲结组成的FRP复合材料,以实现低密度,高强度,大变形和抗拉性能的可设计特性。通过加载FRP蒙皮,以精心设计的配置使内芯塑性变形,可以实现所需的非线性响应。然而,当前的研究提供了很少的计算工具来确定具有各种芯构型的复合材料的拉伸性能。在这项研究中,已经针对具有各种支撑厚度,壳厚度,芯跨度,芯高度,支撑角度和芯数的复合材料校准了二维有限元(FE)模型。在整个应力应变形状,最终应力和应变方面,将预测结果与实验测量结果进行了比较。预测与相应测量之间的良好相关性验证了所提出的有限元模型的可靠性。通过使用提出的有限元模型,可以根据不断更新的需求开发出更复杂,更有效的FRP复合材料。

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