摩擦焊接轻型结构结合强度数值分析模型的建立

IF 3.5 3区 工程技术 Q1 MATHEMATICS, APPLIED
Eric Heppner , Tomohiro Sasaki , Frank Trommer , Elmar Woschke
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引用次数: 0

摘要

旋转摩擦焊接(RFW)是一种坚固、精确、高效和经济的连接工艺,用于机械工程的许多领域,以生产由黑色和有色金属材料(例如铝合金和钢)组合而成的轻质结构。对于这种轻质结构的设计至关重要的是关于结合强度的知识。结合强度是结合形成的结果,这取决于焊接过程中当前的瞬态运动学、动力学和热状态,焊接过程参数直接决定了这些状态。尽管进行了几年的实证研究,但RFW过程还没有可靠的数值建模方法来分析基于这些瞬态变量的结合强度。因此,只能通过实验来测试结合形成的改善以及结合强度的增加。本文的主要动机是开发一种适当的建模方法,用于估计由铝合金和结构钢制成的摩擦焊接轻型结构的结合强度。因此,在不同工艺参数下进行了几次铝合金和钢的焊接实验,并随后对所得的结合强度进行了分析。此外,针对相应的焊接过程模拟了所有焊接实验,以确定当前的运动学、动力学和热状态变量,如应变速率、应力和温度。因此,可以开发用于表征接合形成的模型,该模型允许基于所选择的焊接工艺参数在接合形成和所得接合强度之间进行关联。最后,将对该模型的合理性和适用性进行审查和讨论。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Model development for numerical analysis of the bonding strength for friction welded lightweight structures

The rotary friction welding (RFW) is a robust, precise, productive and economical joining process that is used in many areas of mechanical engineering to produce lightweight structures consisting of combinations of ferrous and non-ferrous materials, for instance aluminium alloy and steel. Crucial for the design of such lightweight structures is the knowledge about the bonding strength. The bonding strength is the result of the bond formation depending on the present transient kinematic, kinetic and thermal states during the welding process being directly determined by the welding process parameters. Despite several years of empirical research, no reliable numerical modelling approach exists for the RFW process to analyse the bonding strength based on these transient state variables. For this reason, an improvement of the bond formation and therefore an increase in the bonding strength can only be tested experimentally. The main motivation of this paper is to develop an appropriate modelling approach for the estimation of the bonding strength for friction welded lightweight structures manufactured of an aluminium alloy and a structural steel. Therefore, a couple of aluminium alloy and steel welding experiments with different process parameters were performed and subsequently analysed concerning to the resulting bonding strength. Moreover, all the welding experiments were simulated in regard to the corresponding welding process in order to determine the present kinematic, kinetic and thermal state variables, like the strain rate, the stress and the temperature. Thus, a model for the characterization of the bond formation can be developed, which allows a correlation between the bond formation and the resulting bond strength based on the chosen welding process parameters. Finally, the model will be examined and discussed in terms of its plausibility and applicability.

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来源期刊
CiteScore
4.80
自引率
3.20%
发文量
92
审稿时长
27 days
期刊介绍: The aim of this journal is to provide ideas and information involving the use of the finite element method and its variants, both in scientific inquiry and in professional practice. The scope is intentionally broad, encompassing use of the finite element method in engineering as well as the pure and applied sciences. The emphasis of the journal will be the development and use of numerical procedures to solve practical problems, although contributions relating to the mathematical and theoretical foundations and computer implementation of numerical methods are likewise welcomed. Review articles presenting unbiased and comprehensive reviews of state-of-the-art topics will also be accommodated.
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