Thermomechanical Joining of Hypoeutectic Aluminium Cast Plates

IF 3.3 Q2 ENGINEERING, MANUFACTURING
Thomas Borgert, Moritz Neuser, Kay-Peter Hoyer, Werner Homberg, Mirko Schaper
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引用次数: 1

Abstract

Consistent lightweight construction in the area of vehicle manufacturing requires the increased use of multi-material combinations. This, in turn, requires an adaptation of standard joining techniques. In multi-material combinations, the importance of integral cast components, in particular, is increasing and poses additional technical challenges for the industry. One approach to solve these challenges is adaptable joining elements manufactured by a thermomechanical forming process. By applying an incremental and thermomechanical joining process, it is possible to react immediately and adapt the joining process inline to reduce the number of different joining elements. In the investigation described in this publication, cast plates made of the cast aluminium alloy EN AC-AlSi9 serve as joining partners, which are processed by sand casting. The joining process of hypoeutectic AlSi alloys is challenging as their brittle character leads to cracks in the joint during conventional mechanical joining. To solve this, the frictional heat of the novel joining process applied can provide a finer microstructure in the hypoeutectic AlSi9 cast alloy. In detail, its Si is finer-grained, resulting in higher ductility of the joint. This study reveals the thermomechanical joining suitability of a hypoeutectic cast aluminium alloy in combination with adaptively manufactured auxiliary joining elements.
亚共晶铸铝板的热机械连接
在汽车制造领域,持续的轻量化结构需要更多地使用多种材料组合。这就需要对标准连接技术进行调整。在多材料组合中,整体铸造部件的重要性正在增加,并为该行业带来了额外的技术挑战。解决这些挑战的一种方法是通过热机械成形工艺制造适应性连接元件。通过应用增量式和热机械连接过程,可以立即反应并调整连接过程,以减少不同连接元素的数量。在本出版物中描述的调查中,由铸造铝合金EN AC-AlSi9制成的铸板作为连接伙伴,采用砂型铸造加工。由于亚共晶AlSi合金的脆性导致其在常规机械连接过程中出现裂纹,因此其连接工艺具有挑战性。为了解决这一问题,采用新型连接工艺的摩擦热可以在亚共晶AlSi9铸造合金中提供更精细的组织。具体而言,其Si晶粒较细,从而使接头具有较高的延展性。本研究揭示了一种亚共晶铸造铝合金与自适应制造的辅助连接元件相结合的热机械连接的适用性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of Manufacturing and Materials Processing
Journal of Manufacturing and Materials Processing Engineering-Industrial and Manufacturing Engineering
CiteScore
5.10
自引率
6.20%
发文量
129
审稿时长
11 weeks
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