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Thermal stress and deformation analyses in fiber reinforced polymer composites undergoing heat conduction and mechanical loading

机译:纤维增强聚合物复合材料在热传导和机械载荷作用下的热应力和变形分析

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摘要

This study analyzes the time-dependent response of fiber reinforced polymer (FRP) composites undergoing heat conduction and mechanical loading. A unit-cell micromechanical model with four fiber and matrix subcells, is formulated to homogenize the heat conduction and viscoelastic responses of the FRP composites. The micromechanical model is compatible with a displacement based finite element (FE), and is implemented at the integration points within the continuum elements, which is useful for analyzing the overall response of composite structures under various boundary conditions. This response is compared with a microstructural model of the FRP with several fiber arrangements, which are generated using FE. The effects of thermal stresses and stress concentrations/discontinuities near the fiber and matrix interfaces on the overall thermo-mechanical deformation of FRP composites are studied. The thermal stresses are due to the mismatches in the coefficients of thermal expansions and mechanical properties of the fibers and polymeric matrix. An example of structural analysis is performed on a polymeric smart sandwich composite beam, having FRP skins and polymeric foam core with piezoelectric sensors integrated into the FRP skins, undergoing concurrent heat conduction and mechanical loading. The unit-cell model shows the ability to capture reasonably well the experimental results, with significant computational savings.
机译:本研究分析了纤维增强聚合物(FRP)复合材料在热传导和机械载荷作用下的时变响应。建立了具有四个纤维和基体子单元的单位单元微力学模型,以使FRP复合材料的导热和粘弹性响应均匀化。该微机械模型与基于位移的有限元(FE)兼容,并在连续体元素内的积分点实现,对于分析各种边界条件下复合结构的整体响应非常有用。将该响应与使用FE生成的具有几种纤维排列的FRP的微观结构模型进行比较。研究了纤维和基质界面附近的热应力和应力集中/间断对玻璃钢复合材料整体热机械变形的影响。热应力是由于纤维和聚合物基体的热膨胀系数和机械性能的不匹配所致。结构分析的一个示例是在聚合物智能夹芯复合梁上进行的,该梁具有FRP蒙皮和聚合物泡沫芯,压电传感器集成到FRP蒙皮中,同时经受热传导和机械载荷。晶胞模型显示了能够很好地捕获实验结果的能力,并节省了大量计算量。

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