A Numerical Simulation of UIC60 Rail-Weld's Fatigue and Crack Growth under Wheel Frictional Contact and Bending

P. Sen, M. Bhiwapurkar, S. Harsha
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Abstract

In service condition rail joints, especially the weldments are under the action of various loadings which are not only working in multiple axis direction but also time-dependent having a cyclic and mixed-mode in nature and non-relative to each other. The surface of the rail and its weldment is acted by very high repetitive stress through the wheel and because of this contact stress the running surface or subsurface may have cracks or fractures due to fatigue. This work is based on numerical simulation of an aluminum thermite weldment on a UIC 60 rail under multi-axial fatigue crack propagation under the friction with surficial interaction between weldment and wheel with bending load due to vertically applied load through the wheel on the weld. Since contact is highly influenced by vertical load and also for minimizing the simulation time the lateral and longitudinal traction forces are not included in this study. The work formulation and discretization have been done with the finite element method and a non-linear lagrangian algorithm solver is applied. A 3-D rail-weld wheel model assembly and a semi-elliptical crack as a flaw on the weld surface are used to identify 3-Modes of SIFs along with its graphical plot generation. Simulation is performed under multi-axial weld wheel surface contact at different locations on weld running surface, taking into account varying position of fracture crack on weld 3-D model to calculate fracture life of weld joint and observation of fatigue crack propagation. This work involves the numerical and theoretical approach of fracture mechanics on created FE fatigue model using the Linear Elastic Fracture Mechanics (LEFM) method following Paris law for fracture mechanics. All the numerical simulation for critical fracture dimension and cycle count with stress intensity factor for weld failure data is estimated using software ANSYS 2020 academic and plotted, then comparison of predicted and observed transverse crack growth behavior and fatigue life of weld, based on Millions Gross Tonnes (MGT) is discussed.
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车轮摩擦接触和弯曲作用下UIC60轨道焊缝疲劳裂纹扩展的数值模拟
在服役状态下,钢轨接头特别是焊接件承受着多种载荷的作用,这些载荷不仅在多轴方向上工作,而且具有时间依赖性,本质上具有循环和混合模式,彼此之间不具有相对性。钢轨及其焊件的表面通过车轮受到非常高的重复应力,由于这种接触应力,运行表面或次表面可能由于疲劳而产生裂纹或断裂。本文对UIC 60钢轨上的铝热铝焊件进行了数值模拟,研究了焊接件与车轮表面相互作用摩擦下的多轴疲劳裂纹扩展,以及由于车轮垂直施加在焊缝上的弯曲载荷。由于接触高度受垂直载荷的影响,并且为了尽量减少模拟时间,本研究未包括横向和纵向牵引力。采用有限元法进行了功的表述和离散化,并采用非线性拉格朗日算法求解。采用三维轨道焊轮模型组件和焊缝表面的半椭圆裂纹作为缺陷,对SIFs的3-模态进行识别并生成图形。在焊缝运行面上不同位置进行多轴焊缝轮面接触仿真,考虑焊缝断裂裂纹在三维模型上的位置变化,计算焊缝断裂寿命,观察疲劳裂纹扩展。根据断裂力学的Paris定律,采用线弹性断裂力学(LEFM)方法对建立的有限元疲劳模型进行了断裂力学的数值和理论研究。利用ANSYS 2020学术软件对焊缝失效数据的临界断裂尺寸和含应力强度因子的循环次数进行了数值模拟,并进行了绘制,然后讨论了基于百万总吨(MGT)的焊缝横向裂纹扩展行为和疲劳寿命的预测与观测结果的比较。
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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