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Improving accuracy in Aluminum Incremental Sheet Forming of complex geometries using Iterative Learning Control

机译:利用迭代学习控制提高复杂几何形状的铝增量板形成精度

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Incremental Sheet Forming is a flexible process characterized by low costs and higher process times with respect to traditional forming technologies. It is therefore suitable for prototypes, small series or custom mass productions. Its flexibility derives from the use of a hemispherical punch that is moved by a CNC machine and gradually deforms the sheet in presence, or not, of a counter die. As a consequence, the sheet clamping is reduced and the part accuracy is lower than traditional sheet forming process as stamping. Therefore, the improvement of the part accuracy in Incremental Sheet Forming is a relevant research topic and solutions for error reduction are required for improving the process quality. The present paper describes the use of an Iterative Learning Control (ILC) algorithm for compensating the ISF part geometrical error. In particular, it iteratively corrects the part geometry on the basis of the error map obtained as the difference between formed and target part geometries. The ILC uses the target geometry to form a first trial part, it measures the obtained geometry and estimates the geometrical error map. Then the error map is used to modify the target geometry and another part is formed. This procedure gets iterated until the desired geometrical tolerance is achieved. The correction algorithm was experimentally tested in forming both axisymmetric and not axisymmetric parts using aluminum sheets. Results showed that in few iteration steps it was possible to significantly improve the part accuracy and to achieve geometrical tolerances comparable with the traditional sheet forming processes.
机译:增量板形成是一种灵活的过程,其特征在于,与传统成形技术相对于传统成型技术的低成本和更高的过程时间。因此,它适用于原型,小系列或定制质量制作。其灵活性源于使用由CNC机器移动的半球形冲头,并逐渐地使纸张在存在的情况下逐渐变形。结果,减小了片材夹紧,并且零件精度低于传统的片材形成过程作为冲压。因此,提高增量板形成中的零件精度是一个相关的研究主题,需要改善工艺质量所需的误差减少的解决方案。本文介绍了使用迭代学习控制(ILC)算法来补偿ISF部分几何误差。特别地,它迭代地基于作为形成和目标部分几何形状之间的差异而获得的错误图来校正零件几何形状。 ILC使用目标几何形状形成第一试用部分,测量所获得的几何形状并估计几何错误映射。然后,错误映射用于修改目标几何形状,并且形成另一部分。该过程迭代,直到实现所需的几何公差。通过使用铝板形成轴对称而不是轴对称部件进行实验测试校正算法。结果表明,在很少的迭代步骤中,可以显着提高零件精度,并实现与传统的片材形成过程相当的几何公差。

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