基于激光/ led的铁路顶部摩擦改进剂和润滑条件光学检测仪器的研制

Campbell Neighborgall, T. Mast, Andrew Peterson, M. Ahmadian, C. Holton
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引用次数: 0

摘要

本研究提供了利用基于激光/ led的光学传感器在推车上获取轨道润滑条件的研究结果。由此产生的传感器旨在能够在轨道计量车或高铁车辆上移动时识别铁路网的润滑状况。美国铁路投入了大量的资金和资源,将摩擦改性材料和法兰润滑剂应用到轨道上,以减少曲线上的滚动阻力,以减少弯曲力,减少轮轨磨损,提高燃油效率。然而,目前还没有有效的方法来测量轨道顶部(ToR)摩擦调节剂在连续的、延伸的轨道距离上的数量、充充性或甚至存在,除非通过准经验的目视检查,由于ToR材料的层厚度非常小(通常为几微米),这种检查可能会产生大量的误差。这项工作旨在通过评估基于激光/ led的仪器在检测轨道上ToR摩擦改进剂和法兰润滑剂的存在方面的应用来弥合这一差距。具体来说,激光束对轨道表面的反射和散射特性用于提供基于“光泽”的定性评估ToR摩擦改进剂的存在。此外,一个紫外荧光传感器(LED源)被用来检测法兰油脂的存在,这些油脂已经迁移到导轨的顶部,利用油脂的荧光特性。本文介绍了一个内置激光和LED荧光传感器以及配套外围传感器的原型系统的实验室和现场测试结果。介绍了仪器的组成和工作原理。详细介绍了税收服务轨道实验室测试和现场测试的条件。测试结果表明,该激光/LED系统能够成功检测出轨道上存在ToR摩擦改进剂和法兰油脂污染。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Development of Laser/LED-Based Instrument for Optical Detection of Railroad Top-of-Rail (ToR) Friction Modifiers and Lubricity Conditions
This study provides the results of research for obtaining track lubricity conditions through using laser/LED-based, optical sensors while onboard a push-cart. The resulting sensors are intended to be able to identify the lubricity condition of a rail network while moving onboard either a track metrology car or a Hy-rail vehicle. U.S. railroads invest a large sum of money and resources applying friction modifying material and flange lubricants to their rails to reduce rolling resistance in curves in an effort to reduce curving forces, reduce wheel and rail wear, and improve fuel efficiency. There exists, however, no effective ways of measuring the amount, adequacy, or even presence of top of rail (ToR) friction modifiers over continuous, extended distances of track except through quasi-empirical visual inspections that can be subject to a high amount of errors due to the very small layer thicknesses of ToR material (commonly, a few microns). This effort intends to bridge this gap by evaluating the application of laser/LED-based instruments in detecting the presence of ToR friction modifiers and flange lubricants on the rail. Specifically, the reflective and scattering properties of a laser beam directed against the rail surface are used to provide a qualitative “gloss”-based assessment of the presence of ToR friction modifiers. Additionally, a UV fluorescence sensor (LED source) is used to detect the presence of flange grease which has migrated to the top of rail by taking advantage of the grease’s fluorescence properties. The results of both laboratory and field testing of a prototype system with embedded laser and LED fluorescence sensors and supporting peripheral sensors are presented. The details of the instruments and their working principle are explained. The conditions for laboratory testing and field testing on revenue service tracks are detailed. The test results indicate that the laser/LED system is capable of successfully detecting the presence of ToR friction modifier and flange grease contamination on the rail.
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