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首页> 外文期刊>Journal of Manufacturing Processes >Three-dimensional thermal-mechanical analysis of retractable pin tool friction stir welding process
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Three-dimensional thermal-mechanical analysis of retractable pin tool friction stir welding process

机译:可伸缩销刀具摩擦搅拌焊接工艺的三维热机械分析

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The retractable pin tool friction stir welding (RPT-FSW) is a technology for eliminating the exit hole at the end of the weld via in-process pin retraction. During RPT-FSW, the influence of the pin-retraction-induced continuous changing tool/workpiece interface on thermal-mechanical processes, such as the heat generation, temperature, and material flow, is critical knowledge for the process development and optimization. In this study, three-dimensional thermal-mechanical analysis based on computational fluid dynamics (CFD) is applied to investigate the RPT-FSW process. Technically, the dynamic mesh approach is utilized to allow dynamic geometric model for implementing the continuous change of the tool/workpiece interface. The thermal-mechanical condition during the RPT-FSW in the vicinity of the welding tool is investigated and compared with the conventional FSW. It is shown that the volume of the deforming material (with low viscosity) decreases significantly because of the reduction of the total area of the tool/workpiece interface immersed in the workpiece due to the pin retraction. Generally, in spite of the shrinkage of deforming zone volume, the thermal-mechanical condition during RPT-FSW inside the deforming zone is quite similar to the conventional FSW. Comparing to the conventional FSW, the decrease in average deformation temperature during the RPT-FSW is about 10 degrees C due to the reduction in heat generation. The pin retraction causes slight fluctuation in the average strain rate in the deforming zone. Finally, the numerical simulation data is supported by the experimental measurements regarding the temperature history and deformation zone geometry.
机译:可伸缩的销刀具摩擦搅拌焊接(RPT-FSW)是通过工艺销回缩在焊接端的末端消除出口孔的技术。在RPT-FSW期间,销 - 缩回诱导的连续改变工具/工件界面对热电机械工艺的影响,例如发热,温度和材料流动,是对过程开发和优化的关键知识。在本研究中,应用基于计算流体动力学(CFD)的三维热机械分析来研究RPT-FSW过程。从技术上讲,使用动态网格方法来允许动态几何模型实现工具/工件接口的连续变化。研究了焊接工具附近的RPT-FSW期间的热电机械状态,并与传统的FSW进行比较。结果表明,由于引脚缩回,由于倾倒工件中的工具/工件接口的总面积的减小,变形材料的体积显着降低。通常,尽管变形区域体积的收缩,但是在变形区内的RPT-FSW期间的热机械状态与传统的FSW非常相似。比较与传统的FSW相比,由于发热的减少,在RPT-FSW期间的平均变形温度的降低约为10℃。 PIN缩回导致变形区中平均应变速率的略微波动。最后,通过关于温度历史和变形区几何的实验测量来支持数值模拟数据。

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