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Study on governing parameters of thermal history during underwater friction stir welding

机译:水下搅拌摩擦焊过程中的热历史控制参数研究

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摘要

Underwater friction stir welding (FSW) could widely extend the submarine applications of solid-state welding methods. Since, in the case of underwater FSW, the temperature field exhibits profound effects on the acquired weld properties, studying the corresponding governing parameters is of high priority. With this end in view, in order to explicate the heat generated by the FSW tool, the applied forces on the FSW tool, as the unknown parameters in the heat generation equation, are obtained. Subsequently, the heat transfer of the surrounding fluid, which dictates the heat transfer through the workpiece is investigated. The results reveal that upon comparison to FSW in air medium, both translational and axial forces considerably increase leading to greater heat generated by the underwater FSW tool. However, the peak temperature in each point during underwater welding declines dramatically (40 %) compared to the in-air welding, which can be attributed to the extreme boiling heat transfer of water on both the workpiece and FSW tool. This behavior may be the main reason for the acquired mechanical properties of the underwater-welded AA7075-T6 plates as a precipitating hardening alloy. The mentioned heat transfer is non-uniform over the workpiece and comprises different types including nucleation and transition boiling as well as free convection. Furthermore, the study of the mechanical characteristics revealed that underwater welding leads to joints with more strength and lower ductility compared to those obtained by in-air welding.
机译:水下摩擦搅拌焊(FSW)可以广泛地扩展固态焊接方法在海底的应用。由于在水下FSW的情况下,温度场对获得的焊接性能表现出深远的影响,因此研究相应的控制参数是当务之急。鉴于此,为了阐明由FSW工具产生的热量,获得了在FSW工具上施加的力,作为热量产生方程中的未知参数。随后,研究了指示通过工件的热传递的周围流体的热传递。结果表明,与空气介质中的FSW相比,平移力和轴向力均显着增加,从而导致水下FSW工具产生更大的热量。但是,与空气焊接相比,水下焊接过程中每个点的峰值温度都急剧下降(40%),这可以归因于工件和FSW工具上水的极高沸点传热。这种行为可能是获得作为沉淀硬化合金的水下焊接AA7075-T6板的机械性能的主要原因。提及的热传递在工件上是不均匀的,并且包括不同的类型,包括成核和过渡沸腾以及自由对流。此外,对机械特性的研究表明,与通过空气焊接获得的接头相比,水下焊接导致接头具有更高的强度和更低的延展性。

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