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A Numerical and Experimental Analysis of Inconel 625 Electron-Beam Welding - Thermal Aspects

机译:Inconel 625电子束焊接 - 热方面的数值和实验分析

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Inconel 625, a nickel based superalloy, finds application in many fields. It is known to have a good weldability and it is often used in the as-welded conditions, heat treatments could be necessary to relief stresses. Numerous variables are known to affect the residual stresses field: welding process, joined geometry and clamping conditions. Since experimental measurements based on X-ray diffraction are not straightforward, expensive experimental work could be substituted by numerical simulation. Before performing an elastoplastic simulation, thermal analysis results are needed, first. This paper focus on the thermal analysis procedure. The analysis has been validated by means of macrographs and with thermocouples data. The heat source was successfully modelled using a superimposition of a spherical and a conical shape heat source with Gaussian power density distribution in order to reproduce the nail shape of the fusion zone. Heat source parameters were chosen so that the model would match with experimentally determined weld pool shape and temperatures. Preliminary results of the metallurgical analysis are also presented.
机译:Inconel 625是一种基于镍的超合金,在许多领域中找到应用。已知具有良好的可焊性,并且通常用于用作焊接条件下,可能需要热处理来释放应力。已知许多变量影响残余应力场:焊接过程,连接的几何形状和夹紧条件。由于基于X射线衍射的实验测量不是直接的,因此可以通过数值模拟来代替昂贵的实验工作。在执行弹塑性模拟之前,首先需要热分析结果。本文侧重于热分析程序。通过宏观编程和热电偶数据验证了分析。使用具有高斯功率密度分布的球形和锥形热源的叠加成功建模热源,以便再现融合区的钉形状。选择热源参数,使模型与实验确定的焊接池形状和温度匹配。还提出了冶金分析的初步结果。

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