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A novel application of image processing for the detection of rail surface RCF damage and incorporation in a crack growth model

机译:一种新建的图像处理对轨道表面RCF损伤的检测和裂缝生长模型的掺入

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The paper presents the development of an intelligent image processing algorithm capable of detecting fatigue defects from images of the rail surface. The links between the defect detection algorithm and 3D models for rail crack propagation are investigated, considering the influence of input parameters (materials, vehicle characteristics, loading conditions). The dynamic behaviour at the wheel-rail interface resulting in contact forces responsible for stressing and straining the rail material are imported from vehicle dynamics simulations. The integration of the simulated results from vehicle dynamics, contact and fracture mechanics models offer more reliable estimation of the stress intensity factors (SIF). Also the sensitivity analysis related to materials, vehicle characteristics, and loading conditions will provide further understanding of the factors that influence crack propagation in rails such as shear stresses, hydraulic pressure, fluid entrapment and squeeze film effect. This novel application of image processing for the detection of rail surface rolling contact fatigue (RCF) damage and automatic incorporation in a crack growth model represents an important contribution to the development of modern techniques for non-destructive rail inspection. This will result in improved planning/scheduling of future rail maintenance (e.g. rail grinding, renewal), less disruptions and reduced track maintenance costs in rail industry.
机译:本文介绍了一种能够检测轨道表面图像的疲劳缺陷的智能图像处理算法的发展。考虑到输入参数(材料,车辆特性,装载条件)的影响,研究了缺陷检测算法和用于轨道裂纹传播的3D模型之间的链路。车轮轨道接口处的动态行为导致负责应力和应力的接触力,从车辆动力学模拟导入。车辆动力学,接触和断裂力学模型的模拟结果的整合提供了更可靠的应力强度因子(SIF)的估计。此外,与材料,车辆特性和装载条件相关的敏感性分析将进一步了解影响诸如剪切应力,液压,流体滞留和挤压膜效应的轨道中的裂纹传播的因素。这种用于检测轨道表面滚动疲劳(RCF)损伤(RCF)损伤和裂缝增长模型的自动掺入的新颖应用代表了对非破坏性轨道检查的现代技术发展的重要贡献。这将导致未来铁路维护的规划/调度改进(例如,铁路磨削,更新),轨道行业中减少干扰和降低的轨道维护成本。

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