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首页> 外文期刊>Welding in the World: Journal of the International Institute of Welding: Journal of the International Institute of Welding >Modeling and experimental validation of friction self-piercing riveted aluminum alloy to magnesium alloy
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Modeling and experimental validation of friction self-piercing riveted aluminum alloy to magnesium alloy

机译:摩擦自刺穿铆接铝合金对镁合金的建模与实验验证

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摘要

Friction self-piercing riveting (F-SPR) process has been proposed to achieve crack-free joining of low-ductility materials by combining SPR process with the concept of friction stir processing. The inhibition of cracking in an F-SPR joint is related to the in-process temperature as well as plastic deformation of materials, which are controlled by the process parameters, i.e., spindle speed and feed rate. However, the relationship between F-SPR process parameters and the temperature characteristics within the joint has not been established. In the current study, a coupled thermal-mechanical model based on solid mechanics was setup to study the F-SPR process of aluminum alloy and magnesium alloy. Temperature and strain rate-dependent material models and preset crack surface method were integrated in the model and geometry comparisons were conducted for model validation. Based on this model, the evolutions of temperature and plastic deformation in the rivet and the sheets of an F-SPR joint were obtained to reveal the formation mechanism of the joint. The temperature distribution and evolution of the sheet materials were correlated with F-SPR process parameters, and a critical spinning speed of 2000rpm at a feed rate of 1.35mm/s was determined capable of inhibiting cracking in the magnesium sheet.
机译:已经提出了通过将SPR过程与摩擦搅拌加工的概念结合来实现低延展性材料的无抗延展性材料的易裂缝的自刺铆接(F-SPR)工艺。在F-SPR接头中裂缝的抑制与过程中的内部温度以及材料的塑性变形有关,其由工艺参数,即主轴速度和进料速率控制。但是,F-SPR工艺参数与关节内的温度特性之间的关系尚未建立。在目前的研究中,建立了一种基于固体力学的耦合热机械模型,以研究铝合金和镁合金的F-SPR过程。在模型中集成了温度和应变率依赖性材料模型和预设裂缝表面方法,并进行了几何比较以进行模型验证。基于该模型,获得了铆钉中温度和塑性变形的演变和F-SPR接头的片材,以显示接头的形成机制。片材的温度分布和进化与F-SPR工艺参数相关,并且在1.35mm / s的进料速率下临界纺丝速度能够抑制镁板中的裂缝。

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