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On the Relevance of Thermomechanics and Crystallization Kinetics for FE Thermoforming Simulation of Semi-Crystalline Thermoplastic Tapes

机译:关于热机械和结晶动力学对半晶热塑性胶带Fe热成型模拟的相关性

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Thermoforming of continuously fiber-reinforced thermoplastics (CoFRTP) is currently of great interest for the automotive industry due to low cycle times, material efficiency and recyclability. Depending on material parameters and process conditions, manufacturing defects are possible. Finite Element (FE) forming simulation offers the possibility of a detailed analysis of the deformation behavior of multi-layered thermoplastic blanks during forming, considering material behavior and process conditions by means of constitutive equations. Usually, thermoforming simulation is assumed to be isothermal, which is a reasonable assumption for semi-crystalline thermoplastics for temperatures above the onset of crystallization. However, it is not investigated so far, if the onset of recrystallization and its influence on formability is in general negligible for thermoforming simulation. In this study, characterization results for crystallization kinetics as well as for temperature-transient shear characterization for a unidirectional semi-crystalline thermoplastic tape (PA6-CF) are presented. A strong dependency on the cooling rate for recrystallization and shear behavior and a distinct increase in shear behavior with the onset of recrystallization is observed. To investigate temperature evolution and crystallization behavior on part level, a virtual forming study under variation of forming velocity is conducted. The results reveal that recrystallization during forming cannot be excluded for an unfavorable choice of process parameters. This reveals the necessity to take into account thermomechanics and crystallization kinetics in thermoforming simulation, especially in a process design phase.
机译:连续纤维增强热塑性塑料(COFRTP)的热成型目前由于循环时间低,材料效率和可回收性而对汽车行业具有极大的兴趣。根据材料参数和工艺条件,可以进行制造缺陷。有限元(Fe)形成仿真提供了通过本构方程在形成,考虑材料行为和工艺条件期间多层热塑性坯料的变形行为的详细分析。通常,假设热成型模拟是等温的,这是用于半结晶热塑性塑料的合理假设,用于结晶开始的温度。然而,到目前为止,如果重结晶的开始及其对可成形性的影响一般来说,则没有研究其对热成型模拟。在该研究中,呈现了结晶动力学以及针对单向半晶热塑性带(PA6-CF)的结晶动力学以及用于温度瞬时剪切表征的表征结果。观察到对重结晶和剪切行为的冷却速率以及随着重结晶开始的剪切行为的明显增加的强依赖性。为了研究部分水平的温度演化和结晶行为,进行了在成形速度变化的虚拟成形研究。结果表明,形成过程中的重结晶不能被排除在不利的过程参数选择中。这揭示了在热成型模拟中考虑热机械和结晶动力学的必要性,尤其是在过程设计阶段。

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