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首页> 外文期刊>The International Journal of Advanced Manufacturing Technology >A new tool path with point contact and its effect on incremental sheet forming process
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A new tool path with point contact and its effect on incremental sheet forming process

机译:具有点接触的新工具路径及其对增量板形成过程的影响

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摘要

Incremental sheet forming (ISF) is a promising and flexible sheet metal forming process, which is appropriate for small batch production of complex parts and customized sheet metal parts. Although the formability of sheet metal in ISF can be significantly improved compared with conventional stamping, some low-ductility materials still cannot be formed to specific geometry through ISF at room temperature, such as magnesium alloy and titanium alloy. Besides, geometric deviation affects industrial applications. In the present work, a novel point-contact tool path (PCTP) method free of circumferential friction is developed. For better understanding the forming characteristic and deformation mechanism of this new tool path, the surface quality, geometric accuracy, and forming limit of the sheet metal are investigated through experiment and numerical simulation for different sheet materials and compared with conventional spiral tool path. Experimental results demonstrate that PCTP can obviously improve the surface quality and geometric accuracy by using small interval length. Besides, the forming limits of AA2024 and AA7075 sheets are improved dramatically due to the absence of circumferential friction, and an updated analytical model of stress triaxiality is developed based on membrane analysis to explore the increased forming limit of PCTP. This novel tool path provides a simple and feasible solution for forming low-ductility sheet metal components at room temperature.
机译:增量板形成(ISF)是一种有前途和柔性的金属板成型工艺,适用于批量生产复杂零件和定制金属板零件。尽管与常规冲压相比,ISF中的金属板的可成形性可以显着提高,但是在室温下通过ISF的特定几何形状仍然不能显着改善一些低延展性材料,例如镁合金和钛合金。此外,几何偏差会影响工业应用。在本作工作中,开发了一种新的点接触刀具路径(PCTP)方法,所述方法是没有圆周摩擦的方法。为了更好地理解这种新刀具路径的形成特性和变形机制,通过对不同片材的实验和数值模拟来研究金属板金属的表面质量,几何精度和形成限制,并与传统的螺旋刀具路径进行比较。实验结果表明,PCTP通过使用小间隔长度明显提高表面质量和几何精度。此外,由于没有圆周摩擦,AA2024和AA7075片材的形成限制显着提高,并且基于膜分析开发了应力三轴的更新分析模型,以探讨PCTP的形成限度增加。该新型工具路径提供了一种简单而可行的解决方案,用于在室温下在室温下形成低延展性薄层金属部件。

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