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Prediction of process-induce distortions and residual stresses of an composite suspension blade

机译:过程的预测导致复合材料悬架叶片的变形和残余应力

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摘要

This paper deals with a universal simulation strategy for the calculation of process-induced distortions and residual stresses of a composite part. The mechanical material behavior is described by a viscoelastic material model depending on temperature and degree of cure. The required material parameters are derived by dynamic mechanical analyses. For the description of the reaction kinetic a phenomenological based model considering chemical and diffusion-controlled reactions is introduced. The reaction model parameters are fitted to isothermal and dynamic DSC measurements via global and local optimization. The thermal expansion and chemical shrinkage are characterized by thermal mechanical analysis and using the contact angle measurement method. The simulation strategy is demonstrated for a GFRP suspension blade for the automobile industry. Based on a sequential coupled temperature-displacement analysis thermal hot spots, temperature and degree of cure distributions as well as the final corresponding process-induced distortions and residual stresses are calculated and analyzed. The development of the stiffness and the correlated stress during the curing process are discussed in more detail. Furthermore, the effect of a degree of cure dependent stiffness on the stresses is investigated.
机译:本文讨论了一种通用模拟策略,用于计算复合零件的过程引起的变形和残余应力。机械材料的行为由粘弹性材料模型描述,具体取决于温度和固化程度。所需的材料参数是通过动态力学分析得出的。为了描述反应动力学,引入了考虑化学和扩散控制反应的基于现象学的模型。通过全局和局部优化,将反应模型参数拟合为等温和动态DSC测量。通过热力学分析和使用接触角测量方法来表征热膨胀和化学收缩。演示了用于汽车行业的GFRP悬架叶片的仿真策略。基于顺序耦合的温度-位移分析,可以计算和分析热热点,温度和固化程度分布以及最终相应的过程引起的变形和残余应力。详细讨论了固化过程中刚度和相关应力的发展。此外,研究了一定程度的固化依赖性刚度对应力的影响。

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