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Comparison of Validation Methods for Forming Simulations

机译:形成模拟验证方法的比较

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The forming simulation of fibre reinforced thermoplastics could reduce the development time and improve the forming results. But to take advantage of the full potential of the simulations it has to be ensured that the predictions for material behaviour are correct. For that reason, a thorough validation of the material model has to be conducted after characterising the material. Relevant aspects for the validation of the simulation are for example the outer contour, the occurrence of defects and the fibre paths. To measure these features various methods are available. Most relevant and also most difficult to measure are the emerging fibre orientations. For that reason, the focus of this study was on measuring this feature. The aim was to give an overview of the properties of different measuring systems and select the most promising systems for a comparison survey. Selected were an optical, an eddy current and a computer-assisted tomography system with the focus on measuring the fibre orientations. Different formed 3D parts made of unidirectional glass fibre and carbon fibre reinforced thermoplastics were measured. Advantages and disadvantages of the tested systems were revealed. Optical measurement systems are easy to use, but are limited to the surface plies. With an eddy current system also lower plies can be measured, but it is only suitable for carbon fibres. Using a computer-assisted tomography system all plies can be measured, but the system is limited to small parts and challenging to evaluate.
机译:纤维增强热塑性塑料的成型模拟可以降低开发时间并改善形成结果。但要利用模拟的全部潜力,必须确保对材料行为的预测是正确的。因此,必须在表征材料后进行材料模型的彻底验证。用于验证模拟的相关方面是例如外轮廓,缺陷的发生和光纤路径。为了测量这些功能,可以使用各种方法。最相关的和最难以测量的是出现的纤维方向。因此,本研究的重点是测量此功能。目的是概述不同测量系统的特性,并选择最有希望的比较调查系统。选择的是光学,涡流和计算机辅助断层扫描系统,其专注于测量纤维方向。测量由单向玻璃纤维和碳纤维增强热塑性塑料制成的不同形成的3D部件。揭示了测试系统的优点和缺点。光学测量系统易于使用,但仅限于表面层。利用涡流系统,还可以测量较低的层,但仅适用于碳纤维。使用计算机辅助断层扫描系统,可以测量所有层,但系统仅限于小部分并具有挑战性。

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