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A micromechanical-based finite element simulation of process-induced residual stresses in metal-CFRP-hybrid structures

机译:金属-CFRP-混合结构中工艺诱导的残余应力的基于微机械的有限元模拟

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Automotive lightweight design is a considerable measure to meet the worldwide need for reducing CO2 emissions. However, the lightweight potential of common materials like high strength steels or aluminium is limited. Hybrid materials allow to combine metals and CFRP in a manner to offset the drawbacks of every single material and reach an optimum of mechanical properties (Wang et al., 2016). Nonetheless, an essential shortcoming of hybrids are thermally induced residual stresses after cooling down from moulding temperature, driven by varying coefficients of thermal expansion and chemical shrinkage of the FRP.For a reliable prediction of the residual stress evolution in hybrid-structures during curing and after cooling down, a numerical homogenization technique of representative unit cells is proposed to calculate effective cure-dependent properties. Starting from a heterogeneous microstructure, a thermo-chemical-mechanical constitutive model for the curing process of the epoxy resin is presented and applied to two representative volume elements (RVE). The transition between the micro- and macro-scale is done by using a numerical homogenization framework. The effective cure-dependent properties predicted by the homogenization are used to simulate the curing-process and analyses the residual stresses of a metal-CFRP plate. The results are compared with experimental data obtained by the incremental hole drilling measurement.
机译:汽车轻量级设计是满足全球减少二氧化碳排放的措施。然而,像高强度钢或铝一样的普通材料的轻质电位受到限制。混合材料允许以抵消每种材料的缺点的方式将金属和CFRP组合,并达到机械性能的最佳(Wang等,2016)。尽管如此,通过不同的热膨胀系数和FRP的化学收缩的改变系​​数驱动,杂种物的基本缺点是热诱导的残余应力。通过FRP的变化系数驱动。在固化过程中,对混合结构中的残余应力演化的可靠预测冷却下来,提出了一种代表性单元细胞的数值均化技术来计算有效的固化依赖性。从异质微观结构开始,呈现出环氧树脂固化过程的热化学机械组成型模型,并施加到两个代表性体积元素(RVE)。通过使用数值均匀化框架来完成微观和宏观级之间的转变。通过均质化预测的有效固化性能用于模拟固化过程并分析金属-CFRP板的残余应力。将结果与通过增量孔钻探测量获得的实验数据进行比较。

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