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Numerical simulation of three-dimensional heat transfer and plastic flow during friction stir welding

机译:搅拌摩擦焊接中三维传热和塑性流动的数值模拟

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摘要

Three-dimensional visco-plastic flow of metals and the temperature fields in friction stir welding have been modeled based on the previous work on thermomechanical processing of metals. The equations of conservation of mass, momentum, and energy were solved in three dimensions using spatially variable thermophysical properties and non-Newtonian viscosity. The framework for the numerical solution of fluid flow and heat transfer was adapted from decades of previous work in fusion welding. Non-Newtonian viscosity for the metal flow was calculated considering strain rate, temperature, and temperature-dependent material properties. The computed profiles of strain rate and viscosity were examined in light of the existing literature on thermomechanical processing. The heat and mass flow during welding was found to be strongly three-dimensional. Significant asymmetry of heat and mass flow, which increased with welding speed and rotational speed, was observed. Convective transport of heat was an important mechanism of heat transfer near the tool surface. The numerically simulated temperature fields, cooling rates, and the geometry of the thermomechanically affected zone agreed well with independently determined experimental values.
机译:基于先前对金属的热机械加工的工作,对金属的三维粘塑性流动和搅拌摩擦焊接中的温度场进行了建模。利用空间可变的热物理性质和非牛顿粘度,在三个维度上求解了质量,动量和能量守恒方程。流体焊接和传热数值解决方案的框架是根据几十年前的熔焊工作改编而来的。考虑到应变率,温度和与温度有关的材料特性,计算了金属流的非牛顿粘度。根据有关热机械加工的现有文献检查了应变率和粘度的计算曲线。发现焊接期间的热和质量流是强三维的。观察到热和质量流量的显着不对称性,该不对称性随着焊接速度和旋转速度而增加。热对流传输是工具表面附近传热的重要机制。数值模拟的温度场,冷却速率和热机械影响区的几何形状与独立确定的实验值非常吻合。

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  • 来源
    《Metallurgical and Materials Transactions A》 |2006年第4期|1247-1259|共13页
  • 作者

    R. Nandan; G. G. Roy; T. Debroy;

  • 作者单位

    Department of Materials Science and Engineering The Pennsylvania State University 16802 University Park PA U.S.A.;

    Department of Materials Science and Engineering The Pennsylvania State University 16802 University Park PA U.S.A.;

    Department of Materials Science and Engineering The Pennsylvania State University 16802 University Park PA U.S.A.;

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  • 正文语种 eng
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