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首页> 外文期刊>Journal of Manufacturing Processes >CFD modelling of ultra-high rotational speed micro friction stir welding
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CFD modelling of ultra-high rotational speed micro friction stir welding

机译:超高转速微摩擦搅拌焊接的CFD型号

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Ultra-high rotational speed micro friction stir welding is the combination of micro friction stir welding (?FSW) and ultra-high rotational speed FSW to overcome the practical difficulties such as increased heat loss from the workpiece, forging force requirement and fixturing issues associated with ?FSW by using ultra-high rotational speeds. This work deals with the CFD modelling of ultra-high rotational speed micro friction stir welding of AA1100 to investigate the heat generation, temperature distribution and material flow in the weld zone at ultrahigh tool rotational speeds. The temperature-dependent material properties and coefficient of friction are used in this study. A partial sliding-sticking contact condition is assumed between the tool and workpiece, and the possibility of partial melting occurring at high rotational speed is incorporated using boundary conditions. The predicted temperature field agrees well with the experimentally measured temperature results. The thermomechanically affected zone (TMAZ) predicted in the numerical simulation is also comparable with the micrographic studies. It is observed that the contribution of plastic heat generation is more than that of frictional heat generation at high rotational speeds, and partial melting does not occur. Welding speed does not have a significant influence on the peak temperature at high rotational speeds. Micro friction stir welding can be successfully performed at ultra-high rotational speeds to overcome the disadvantages and practical difficulties associated with low rotational speeds.
机译:超高旋转速度微摩擦搅拌焊接是微摩擦搅拌焊接(?FSW)和超高旋转速度FSW的组合,以克服实际困难,例如从工件增加热量,锻造力量和固定问题?FSW采用超高旋转速度。这项工作涉及AA1100的超高转速微摩擦搅拌焊接的CFD建模,以研究超高刀具旋转速度的焊接区中的发热,温度分布和材料流动。本研究使用温度依赖性材料特性和摩擦系数。在工具和工件之间假设部分滑动粘附的接触条件,并且在高旋转速度下发生部分熔化的可能性使用边界条件并入。预测的温度场与实验测量的温度结果吻合良好。在数值模拟中预测的热机械患区(TMAZ)也与显微研究相当。观察到塑料发热的贡献大于高旋转速度的摩擦发热的贡献,并且不会发生部分熔化。焊接速度在高转速下对峰值温度没有显着影响。微摩擦搅拌焊接可以以超高旋转速度成功进行,以克服与低旋转速度相关的缺点和实际困难。

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