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Numerical Simulation and Experimental Validation of Sheet Laser Forming Processes Using General Scanning Paths

机译:通用扫描路径对片状激光成形过程的数值模拟和实验验证

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摘要

This work presents numerical simulations and an experimental validation of sheet laser forming processes using general scanning paths with different laser beam operating parameters (i.e., power, diameter, and scanning speed) in two specific graphite coated stainless steel blanks (i.e., with thicknesses of 0.3 mm and 0.6 mm for the AISI 302 and 304 alloys, respectively). To this end, three specific laser forming tests involving single S-shaped, multiple circular, and single piecewise linear scanning paths are carried out. On the other hand, the numerical simulation of these tests is performed via a coupled thermomechanical finite element formulation, accounting for large viscoplastic strains, temperature-dependent material properties, and convection-radiation phenomena. The final bending angles provided by this model are found to be in good agreement with the experimental measurements for all of the cases studied. Therefore, this modeling framework can be established as a reliable approach to predict the material thermomechanical response during sheet laser forming using general scanning paths.
机译:这项工作提供了在两个特定的石墨涂层不锈钢毛坯(即厚度为0.3)中使用具有不同激光束操作参数(即功率,直径和扫描速度)的常规扫描路径的薄板激光成形工艺的数值模拟和实验验证。分别是AISI 302和304合金的mm和0.6 mm)。为此,进行了涉及单个S形,多个圆形和单个分段线性扫描路径的三个特定的激光成形测试。另一方面,这些测试的数值模拟是通过耦合热机械有限元公式进行的,考虑到大的粘塑性应变,与温度有关的材料特性和对流辐射现象。发现该模型提供的最终弯曲角度与所研究的所有情况下的实验测量值都非常吻合。因此,可以将这种建模框架建立为一种可靠的方法,以预测使用常规扫描路径进行的薄片激光成形过程中材料的热机械响应。

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