中空挤压件内淬火以减少变形,提高铝型材失效能量的研究

IF 2.6 3区 材料科学 Q2 ENGINEERING, MANUFACTURING
Ala’aldin Alafaghani, Riccardo Puleo, Lillian Adams, Pingsha Dong, Daniel Cooper
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引用次数: 0

摘要

轻量化汽车挤压件是由AA6082等淬火敏感合金制成的越来越复杂的薄壁多空心型材。这些型材在离开压力机时需要快速(水)淬火,为时效硬化做准备。传统的快速淬火只直接冷却型材的末端,会使零件变形。较低的淬火速率可减少变形,但可能损害机械性能。我们验证了三个假设:(1)淬火过程中不同的冷却速率会导致不同的力学性能和变形;(2)采用新型内轮廓淬火与常规淬火相结合的方法,可以最大限度地降低该温差;(3)利用挤压模内的绝缘通道将淬火剂输送到型材内部,实现内部淬火。第一个假设通过AA6082多中空型材的拉伸试样进行了实验验证。第二种方法是利用实验室建造的淬火箱进行实验研究,并利用热-机械有限元模拟进行理论研究。第三个假设是通过使用特殊设计的舷窗模具进行中空型材挤压试验来验证的。试验表明,常规淬火会导致型材内壁的力学性能下降,而内外复合淬火可以缓解这一问题,并减少变形。内部淬火的挤压试验证明了模具的生存能力,淬火液流动过程中可接受的模具温度下降,以及通过在型材末端蒸发和捕获液体来有效地处理淬火液。该研究表明,内淬火是一种很有前途的技术选择,可以减少废品率,提高难淬火铝型材的力学性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A study on internal quenching of hollow extrusions to reduce distortion and increase the energy to failure of aluminum profiles

Lightweight automotive extrusions are increasingly complex, thin-walled, multi-hollow profiles made from quench-sensitive alloys like AA6082. These profiles require rapid (water) quenching as they leave the press in preparation for age-hardening. Conventional rapid quenching, which only directly cools the profile’s extremity, can distort the part. Lower quenching rates reduce distortion but may compromise the mechanical properties. We test three hypotheses: (1) That the different cooling rates across the section during quenching induce varying mechanical properties as well as distortion; (2) That this temperature differential can be minimized by combining novel internal profile quenching with conventional quenching; and (3) That internal quenching can be achieved using insulated channels in the extrusion die to convey the quenchant to the profile’s interior. The first hypothesis is tested experimentally by taking tensile specimens from a AA6082 multi-hollow profile. The second is examined experimentally using a lab-built quench box and theoretically using thermo-mechanical finite element simulations. The third hypothesis is tested by conducting a hollow profile extrusion trial using a specially designed porthole die. The testing shows that conventional quenching results in reduced mechanical properties in the profile’s internal walls but that combined external/internal quenching alleviates this problem and reduces distortion. The extrusion trial on internal quenching demonstrates die survivability, an acceptable die temperature drop during quenchant flow, and effective quenchant disposal via evaporation and capture of liquid at the end of the profile. This study suggests that internal quenching is a promising technology option for reducing scrap and improving mechanical properties of hard-to-quench aluminum profiles.

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来源期刊
International Journal of Material Forming
International Journal of Material Forming ENGINEERING, MANUFACTURING-MATERIALS SCIENCE, MULTIDISCIPLINARY
CiteScore
5.10
自引率
4.20%
发文量
76
审稿时长
>12 weeks
期刊介绍: The Journal publishes and disseminates original research in the field of material forming. The research should constitute major achievements in the understanding, modeling or simulation of material forming processes. In this respect ‘forming’ implies a deliberate deformation of material. The journal establishes a platform of communication between engineers and scientists, covering all forming processes, including sheet forming, bulk forming, powder forming, forming in near-melt conditions (injection moulding, thixoforming, film blowing etc.), micro-forming, hydro-forming, thermo-forming, incremental forming etc. Other manufacturing technologies like machining and cutting can be included if the focus of the work is on plastic deformations. All materials (metals, ceramics, polymers, composites, glass, wood, fibre reinforced materials, materials in food processing, biomaterials, nano-materials, shape memory alloys etc.) and approaches (micro-macro modelling, thermo-mechanical modelling, numerical simulation including new and advanced numerical strategies, experimental analysis, inverse analysis, model identification, optimization, design and control of forming tools and machines, wear and friction, mechanical behavior and formability of materials etc.) are concerned.
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