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An improved friction stir shear localization model and applications in understanding weld formation process in alloy Ti-6-4

机译:改进的摩擦搅拌剪切定位模型和应用在合金Ti-6-4中焊接过程中的应用

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摘要

This paper presents a coupled shear localization model incorporating both pin/workpiece contact and three-dimensional (3D) heat flow environment generated by friction heating between tool shoulder and workpiece. It represents a significant improvement over an early shear localization model presented by the same authors (2014, 2015) which was focused on shear localization process in front of pin such that shear band development can be treated as a one-dimensional (1D) thermal viscoplastic problem, without considering shoulder/workpiece heating effects and contact interactions between pin and workpiece. The current model includes a novel analytical-based 3D transient heat flow solution incorporating detailed spatial resolution regarding heat generation at shoulder/workpiece interface, which provides a transient temperature environment within which shear localization process can now be examined in a greater detail. Also, contact interactions between pin and workpiece are now treated explicitly by introducing a classical contact mechanics solution for describing contact behavior between a cylinder (pin) and cylindrical cavity (surrounding base metal). This refined shear localization model has been shown capable of providing more realistic and reasonable estimations for both temperature and welding torque when compared with available experimental data. A robust numerical procedure has also been developed and implemented for determining optimum welding speed for a given combination of stir tool rotational speed and welding travel speed, which shows a good agreement with experimental results for a number of applications.
机译:本文介绍了一种耦合的剪切定位模型,其包括销/工件接触和三维(3D)热流环境,通过工具肩部和工件之间的摩擦加热产生。它代表了由同一作者(2014,2015)提出的早期剪切定位模型的显着改进,该模型集中在销前面的剪切定位过程中,使得剪切带开发可以作为一维(1D)热粘性粘性问题,不考虑肩部/工件加热效果和销和工件之间的接触相互作用。目前模型包括一种新的基于分析的3D瞬态热流解决,其包含关于肩部/工件界面的发热的详细空间分辨率,其提供瞬态温度环境,现在可以更详细地检查剪切定位过程。而且,目前通过引入经典接触力学解决方案来明确地处理销和工件之间的接触相互作用,用于描述气缸(销)和圆柱形腔(周围基金属)之间的接触行为。与可用的实验数据相比,已经显示出能够为温度和焊接扭矩提供更现实和合理的估计来提供更现实和合理的估算。一个强大的数值程序也已经被开发和用于确定最佳焊接速度为搅拌工具的旋转速度的给定组合和焊接行进速度,其示出具有用于许多应用的实验结果的良好的一致性实现。

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