考虑到标称工具设计的影响,工艺变化对夹具接头特性的影响

C. Zirngibl, S. Goetz, S. Wartzack
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引用次数: 0

摘要

针对轻量化设计中即将面临的挑战,如不断提高的排放目标或新型多材料连接,多功能、适用且环保的生产技术至关重要。在这种情况下,机械连接技术铆接为金属板材的组装提供了一种快速、节能的程序,是点焊等现有连接方法的适当替代品。然而,铆接点的设计是一项挑战,这在一定程度上需要通过数值或基于数据的方法来优化工具尺寸,以确保适当的连接特性。虽然这通常是在理想环境下进行的,但实际连接过程中不可避免地会出现多种参数变化,例如材料参数,这些参数对连接点的质量有重大影响。因此,本文通过分析参数变化或不确定性对接头特性的影响,以及研究标称工具设计的影响,弥补了目前的不足。因此,本文提出了一种基于元模型的高效变化模拟程序,用于分析不同工具设计配置和变化情况的影响。结果发现,变化的工艺参数对最终的接头特性有很大影响,而这种影响很大程度上取决于标称工具设计。这揭示了稳健工具设计的潜力,并意味着应同时进行标称工具设计和参数公差,以获得可靠的虚拟连接点设计,而无需大量的反复试验和物理测试。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Influence of process variations on clinch joint characteristics considering the effect of the nominal tool design
Focusing on upcoming challenges in lightweight design, such as increasing emission targets or novel multimaterial connections, versatile applicable and environmentally friendly production technologies are crucial. In this context, mechanical joining technology clinching offers a fast and energy-efficient procedure for assembling sheet metals, being a proper alternative to established joining methods, such as spot welding. However, the design of clinch points is a challenge, which is partly supported by numerical or data-based approaches for optimal tool dimensions assuring proper joint characteristics. While this is usually done for an ideal environment, real joining processes are characterized by multiple inevitably varying parameters, e.g. of the material, which have a significant impact on the quality of clinch points. Therefore, this contribution addresses the current gap by analyzing the effect of parameter variations or uncertainties on the resulting joint characteristics and studying the impact of the nominal tool design. Thus, an efficient meta-model-based variation simulation procedure is proposed and used for analyzing the effect of different tool design configurations and variation scenarios. Based on the results, it was found that varying process parameters have a strong impact on the resulting joint characteristics, whereby the effect significantly depends on the nominal tool design. This reveals the potential for a robust tool design and implies that the nominal tool design and the tolerancing of parameters should be done simultaneously for a reliable virtual joining point design without extensive iterations and physical tests.
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