The adaption, evaluation and application of a semi-empirical bond strength model for the simulations of multi-pass hot roll bonding of aluminium alloys

IF 2.6 3区 材料科学 Q2 ENGINEERING, MANUFACTURING
Zhao Liu, Alexander Krämer, Johannes Lohmar, Holger Aretz, Kai Karhausen, David Bailly, Gerhard Hirt, Marco Teller
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Abstract

Nowadays, the requirements on metallic materials have become more comprehensive, which gradually exceed the capability of monolithic metals. One of the solutions is the composite metal, where different properties of the constituents are integrated as one. In industrial practice, hot roll bonding has been frequently employed to produce laminated composite metals thanks to its high adaptivity. However, the bonding mechanism and the bond strength models have not been thoroughly investigated and parametrized. In a recent publication, a semi-empirical bond strength model has been developed, which quantitatively considers the influence of various influencing factors on the bond strength.

In this paper, this new model is applied in FE simulations of lab-scale hot roll bonding of multiple passes to achieve a better understanding of the process and the bonding behaviours. Firstly, this new model is adapted for macroscopic process simulations, implemented in FE environment via Abaqus subroutines, and evaluated by the simulations of the truncated-cone experiments. Secondly, the FE setup is applied in the process simulation of hot roll bonding. Eight roll bonding passes are simulatively reproduced and good accordance with experiment is achieved. The strain distribution in thickness, evolution of temperature and bond strength, bonding status and cause of local temporary de-bonding are analysed by this simulation. Finally, the influences of the thickness ratio of metallic plates, height reduction, rolling velocity, and material combination with different bonding properties are tested in simulative studies. The process simulations provide a promising way to facilitate the design and optimization of hot roll bonding by FE simulations.

Abstract Image

半经验结合强度模型在铝合金多道次热轧结合过程模拟中的应用及评价
如今,对金属材料的要求越来越全面,逐渐超出了单片金属的能力。其中一种解决方案是复合金属,其中成分的不同性质被整合为一个。在工业实践中,热轧粘接由于其高适应性而被广泛用于生产层压复合金属。然而,粘结机理和粘结强度模型尚未得到深入的研究和参数化。在最近的一篇论文中,建立了一种半经验的粘结强度模型,该模型定量地考虑了各种影响因素对粘结强度的影响。本文将该模型应用于实验室规模的多道次热轧粘接的有限元模拟,以更好地理解粘接过程和粘接行为。首先,将该模型应用于宏观过程仿真,利用Abaqus子程序在有限元环境中实现,并通过截锥实验仿真对其进行评价。其次,将有限元模型应用于热轧粘接过程的仿真。模拟再现了8道辊焊道,与实验结果吻合较好。通过模拟分析了应变在厚度上的分布、温度和粘结强度的演变、粘结状态和局部暂时脱粘的原因。最后,在模拟研究中测试了金属板的厚度比、高度降低、轧制速度和材料组合对不同粘结性能的影响。该过程模拟为热轧粘接的设计和优化提供了一种有希望的方法。
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
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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