Simulation-based assessment of railhead repair welding process parameters

IF 2.4 4区 材料科学 Q2 METALLURGY & METALLURGICAL ENGINEERING Welding in the World Pub Date : 2024-09-27 DOI:10.1007/s40194-024-01837-y
Björn Andersson, Erika Steyn, Magnus Ekh, Lennart Josefson
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Abstract

This study uses a finite element method based simulation methodology for in-situ railhead repair welding to investigate how welding process parameters impact the repaired rail quality. The methodology includes material modeling with cyclic plasticity, phase transformations, transformation-induced plasticity, and multi-phase homogenization. The weld process modeling includes a 3D heat transfer analysis and a 2D Generalized Plane Strain (GPS) mechanical analysis. The Heat source model used in the thermal simulation is calibrated using measurements from a repair welding experiment. To assess the performance of the repaired rail, mechanical rolling contact simulations are performed to estimate the risk of fatigue crack initiation. The process parameter study is based on the Swedish stick-welding railhead repair procedure and focuses on factors affecting the repair quality, such as preheating and operation temperature conditions as well as variations in repair geometry. Significant findings highlight both the inherent robustness of the process and regions susceptible to parameter variations. Specifically, the powerful final zig-zag weld passes provide effective resilience against variations in additional heating, and the start and end stretches of the repair welding are the most susceptible to parameter variations. Chamfered and deeper cutout repair geometries are found to be effective in mitigating adverse effects. In agreement with field observations, the simulations identify the fusion zone of the base and weld filler material as the critical region of the repaired rail in operation. This is attributed to the integrated effects of unfavorable microstructures, longitudinal tensile residual stresses from repair welding, and tensile stresses during operational traffic loads.

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基于仿真的轨头修复焊接工艺参数评估
本研究采用基于有限元法的现场轨头修复焊接模拟方法,研究焊接工艺参数如何影响修复后的钢轨质量。该方法包括具有循环塑性、相变、转化诱导塑性和多相均匀化的材料建模。焊接工艺建模包括三维传热分析和二维广义平面应变(GPS)力学分析。热模拟中使用的热源模型是利用修复焊接实验的测量数据进行校准的。为评估修复后钢轨的性能,进行了机械滚动接触模拟,以估计疲劳裂纹产生的风险。工艺参数研究以瑞典棒焊轨头修复程序为基础,重点关注影响修复质量的因素,如预热和操作温度条件以及修复几何形状的变化。重要的研究结果凸显了该工艺固有的稳健性以及易受参数变化影响的区域。具体而言,强大的 "之 "字形最后焊道可有效抵御额外加热的变化,而修补焊接的起始和结束部分则最容易受到参数变化的影响。倒角和更深的切口修补几何形状可有效减轻不利影响。与现场观察结果一致,模拟结果表明,母材和焊接填充材料的熔合区是运行中修复轨道的关键区域。这归因于不利的微观结构、修复焊接产生的纵向拉伸残余应力以及运行中的交通荷载拉伸应力的综合影响。
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来源期刊
Welding in the World
Welding in the World METALLURGY & METALLURGICAL ENGINEERING-
CiteScore
4.20
自引率
14.30%
发文量
181
审稿时长
6-12 weeks
期刊介绍: The journal Welding in the World publishes authoritative papers on every aspect of materials joining, including welding, brazing, soldering, cutting, thermal spraying and allied joining and fabrication techniques.
期刊最新文献
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