Estimating the Outer Ring Defect Size and Remaining Service Life of Freight Railcar Bearings Using Vibration Signatures

J. Montalvo, C. Tarawneh, Jennifer Lima, Jonas Cuanang, Nancy De Los Santos
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引用次数: 4

Abstract

The railroad industry currently utilizes two wayside detection systems to monitor the health of freight railcar bearings in service: The Trackside Acoustic Detection System (TADS™) and the wayside Hot-Box Detector (HBD). TADS™ uses wayside microphones to detect and alert the conductor of high-risk defects. Many defective bearings may never be detected by TADS™ since a high-risk defect is a spall which spans more than 90% of a bearing’s raceway, and there are less than 20 systems in operation throughout the United States and Canada. Much like the TADS™, the HBD is a device that sits on the side of the rail-tracks and uses a non-contact infrared sensor to determine the temperature of the train bearings as they roll over the detector. These wayside detectors are reactive in the detection of a defective bearing and require emergency stops in order to replace the wheelset containing the defective bearing. These costly and inefficient train stoppages can be prevented if a proper maintenance schedule can be developed at the onset of a defect initiating within the bearing. This proactive approach would allow for railcars with defective bearings to remain in service operation safely until reaching scheduled maintenance. Driven by the need for a proactive bearing condition monitoring system in the rail industry, the University Transportation Center for Railway Safety (UTCRS) research group at the University of Texas Rio Grande Valley (UTRGV) has been developing an advanced onboard condition monitoring system that can accurately and reliably detect the onset of bearing failure using temperature and vibration signatures of a bearing. This system has been validated through rigorous laboratory testing at UTRGV and field testing at the Transportation Technology Center, Inc. (TTCI) in Pueblo, CO. The work presented here builds on previously published work that demonstrates the use of the advanced onboard condition monitoring system to identify defective bearings as well as the correlations developed for spall growth rates of defective bearing outer rings (cups). Hence, the system uses the root-mean-square (RMS) value of the bearing’s acceleration to assess its health. Once the bearing is determined to have a defective outer ring, the RMS value is then used to estimate the defect size. This estimated size is then used to predict the remaining service life of the bearing. The methodology proposed in this paper can prove to be a useful tool in the development of a proactive and cost-efficient maintenance cycle for railcar owners.
利用振动特征估计货运轨道车辆轴承外圈缺陷尺寸和剩余使用寿命
铁路行业目前使用两种路侧检测系统来监测在用货运列车轴承的健康状况:轨侧声学检测系统(TADS™)和路侧热箱探测器(HBD)。TADS™使用路旁麦克风来检测和警告导体的高风险缺陷。许多有缺陷的轴承可能永远不会被TADS™检测到,因为高风险缺陷是跨越轴承滚道90%以上的小块,而在美国和加拿大,只有不到20个系统在运行。与TADS™非常相似,HBD是一种安装在铁路轨道一侧的设备,使用非接触式红外传感器来确定列车轴承在探测器上滚动时的温度。这些路旁检测器在检测有缺陷的轴承时是反应性的,需要紧急停车以更换含有有缺陷轴承的轮对。如果在轴承内部开始出现缺陷时制定适当的维护计划,可以防止这些昂贵而低效的列车停工。这种积极主动的方法将允许有缺陷的轴承的轨道车辆保持在服务运行安全,直到达到预定的维护。在铁路行业对主动轴承状态监测系统需求的推动下,德克萨斯大学里奥格兰德河谷分校(UTRGV)的大学铁路安全运输中心(UTCRS)研究小组开发了一种先进的车载状态监测系统,该系统可以利用轴承的温度和振动特征准确可靠地检测轴承故障的开始。该系统已通过UTRGV严格的实验室测试和位于CO. Pueblo的Transportation Technology Center, Inc. (TTCI)的现场测试进行了验证。本文介绍的工作建立在先前发表的工作基础上,该工作展示了使用先进的车载状态监测系统来识别有缺陷的轴承,以及与有缺陷的轴承外圈(杯)的剥落生长速率相关的研究。因此,系统使用轴承加速度的均方根(RMS)值来评估其健康状况。一旦轴承确定有缺陷的外圈,则RMS值用于估计缺陷尺寸。这个估计的尺寸然后用于预测轴承的剩余使用寿命。本文提出的方法可以证明是一个有用的工具,为有轨电车车主制定一个主动和经济有效的维修周期。
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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