Theoretical Thermal Model of MIG Welding of FSS (AISI 430) Using ANSYS and its Experimental Verification

A. K. Pathak, Chunduri Sree Harsha
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Abstract

Metallurgical and mechanical properties of a weldment depend on its cooling rate and temperature distribution during welding. Temperature distribution and cooling rate are responsible for formation of different microstructures and different size of grain in different zones. If cooling rate and temperature distribution can be predicted in advance it will help the design engineer at the design stage itself to design a good welded joint. Determination of cooling rate and temperature distribution in welding experimentally is very costly and time taking. In this work the cooling rate and temperature distribution was theoretically predicted using ANSYS14 and experimentally verified. For the theoretical thermal analysis, 3D modeling of thermal simulation of arc welding (MIG) process was done by using ANSYS14. The special feature of the analysis is the use of a fast iterative procedure during a single pass welding. Temperature dependent metal properties of AISI 430 were taken from standard data source and were utilized till to the liquid phase. Element shape '3-D 10-Node tetrahedral' (solid 87) was used in 3-D analysis. Conduction and convection are considered as heat transfer mode. The experimental values of welding speed, welding current, and arc voltage were used for theoretical analysis. Thermocouples were used to record welding temperature using data tracker and computer. Five thermocouples were fixed at the middle line of the plate to measure temperature distribution and cooling rate practically. Two plates of FSS were welded by MIG welding in butt joint position in single pass.
基于ANSYS的FSS (AISI 430) MIG焊接理论热模型及其实验验证
焊接件的冶金和力学性能取决于焊接过程中的冷却速度和温度分布。温度分布和冷却速率是不同区域形成不同显微组织和晶粒尺寸的原因。如果能够提前预测冷却速率和温度分布,将有助于设计工程师在设计阶段设计出良好的焊接接头。焊接冷却速率和温度分布的实验测定成本高,耗时长。本文利用ANSYS14对冷却速率和温度分布进行了理论预测,并进行了实验验证。为进行理论热分析,利用ANSYS14软件对弧焊(MIG)过程进行了三维热仿真建模。该分析的特点是在单道焊接过程中使用快速迭代程序。AISI 430的温度随金属性能取自标准数据源,并一直使用到液相。三维分析采用单元形状“三维10节点四面体”(实体87)。导热和对流被认为是传热方式。采用焊接速度、焊接电流和电弧电压的实验值进行理论分析。利用数据跟踪器和计算机,采用热电偶记录焊接温度。在板的中线处固定了5个热电偶,以实际测量温度分布和冷却速率。采用MIG焊在对接位置对两板FSS进行单道次焊接。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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