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Relevant material characterization for load prediction in incremental forming

机译:增量成形中载荷预测的相关材料表征

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摘要

Robotic incremental sheet forming has arisen a recent industrial interest, as a more flexible and cost-effective solution to the process using rigid computer numerical control (CNC) machines. However, the numerical prediction of the forming loads and final geometry coupled to an elastic modeling of the robot is essential to optimize the robot trajectory and thus to ensure the geometrical accuracy of the final part. Within this context, the aim of this study is to investigate the accuracy of the load prediction in the case of a single point incremental forming process of a commercially pure (CP) titanium alloy sheet. The mechanical behavior is characterized at room temperature under two strain states, i.e., uniaxial and biaxial tension, and a truncated cone of the same material is obtained by single point incremental forming. A 3D cell records all the components of the applied load during the forming and the part is laser scanned at the end of the process, though still clamped along the outer edge. A numerical model of the process is developed assuming some symmetries to reduce the computational time. The influence of the hardening law, either identified from the uniaxial or biaxial tensile tests, on the forming load prediction is investigated, with a focus on the strain path during single point incremental forming.
机译:机器人增量板材成型最近引起了工业界的兴趣,作为一种更灵活、更具成本效益的解决方案,它使用刚性计算机数控 (CNC) 机床进行加工。然而,成型载荷和最终几何形状的数值预测与机器人的弹性建模相结合,对于优化机器人轨迹至关重要,从而确保最终零件的几何精度。在此背景下,本研究的目的是研究商业纯 (CP) 钛合金板单点增量成形工艺下载荷预测的准确性。表征了室温下单轴和双轴拉伸两种应下的力学行为,通过单点增量成形得到相同材料的截锥体。3D单元记录成型过程中施加载荷的所有组件,并在过程结束时对零件进行激光扫描,但仍沿外边缘夹紧。假设存在一些对称性,从而建立了该过程的数值模型,以减少计算时间。研究了从单轴或双轴拉伸试验中确定的硬化定律对成形载荷预测的影响,重点研究了单点增量成形过程中的应变路径。

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