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Rail grinding for the 21st century - Taking a lead from the aerospace industry

机译:21世纪的钢轨磨削 - 在航空航天工业中处于领先地位

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摘要

Rail grinding is a key maintenance activity for Network Rail. It is performed at night through possession of the track, so process speed is critical. Increasing the metal removal rate (MRR) of the rail grinding operations would be a way to improve the time taken for this operation. The aerospace industry has recently seen advances in grinding technologies that have increased MRR. This work was aimed at assessing their best practice and its application to rail grinding operations.Current Network Rail grinding operations include preventative and corrective re-profiling of the rail head. The majority of work performed in the UK is preventative re-profiling with current train speeds ranging from 1 to 10mile/h. Opportunities exist to increase train speed and improve the productivity of this operation through the use of more advanced grinding technologies.The most relevant aerospace technology is high efficiency deep grinding (HEDG). This approach uses: a high surface speed of the grinding wheel, superabrasive tooling, and high workpiece feed rates to remove material quickly from the cut-zone. Productivity improvements were identified by applying theory on power requirements (by assessing the specific grinding energy) and chip thickness of the grinding process. Computer CAD/CAM modelling was also performed to assess the effect of changing grinding techniques on potential gouging of the track infrastructure and/or interference with example trackside obstructions.The work concluded that opportunities do exist to improve the current productivity of grinding operations. Utilizing HEDG technology theoretically provides a 100% train speed increase (utilizing the same power available with the current setup) for preventative re-profiling. This requires the application of high surface speeds of the grinding wheel and superabrasive technology. Further increases in train speed require increased spindle power. The chip thickness experienced by grinding grains is reduced for a peripheral grinding setup and high wheel surface speeds that is beneficial for wheel wear. The application of HEDG technology cutting on the periphery of the wheel provided optimum conditions during CAD/CAM simulation to avoid rail gouging, and any potential collision of the grinding stone with modelled trackside obstructions.
机译:导轨磨削是Network Rail的一项关键维护活动。它是在晚上通过拥有轨道进行的,因此处理速度至关重要。增加钢轨磨削操作的金属去除率(MRR)将是缩短此操作所需时间的一种方式。航空航天业最近在磨削技术方面取得了进步,从而提高了MRR。这项工作旨在评估其最佳实践及其在轨道磨削操作中的应用。当前的网络轨道磨削操作包括对轨道头进行预防性和纠正性重塑。在英国进行的大部分工作是对预防性重塑,当前火车速度为1至10英里/小时。存在通过使用更先进的磨削技术来提高列车速度并提高此操作的生产率的机会。最相关的航空航天技术是高效深磨(HEDG)。这种方法使用:砂轮的高表面速度,超级研磨工具和高工件进给速率,以快速从切割区域清除材料。通过应用有关功率要求的理论(通过评估特定的磨削能量)和磨削过程的切屑厚度来确定生产率的提高。还进行了计算机CAD / CAM建模,以评估不断变化的磨削技术对履带基础设施的潜在气刨和/或对示例性轨旁障碍物的干扰的影响。研究得出的结论是,确实存在提高当前磨削生产率的机会。从理论上讲,使用HEDG技术可将列车速度提高100%(利用当前设置中可用的相同功率),以进行预防性重新分析。这需要应用砂轮的高表面速度和超级研磨技术。进一步提高列车速度需要增加主轴功率。对于外围磨削设置和较高的砂轮表面速度,磨粒所经历的切屑厚度会减小,这有利于砂轮磨损。 HEDG技术在砂轮周缘上的切割应用为CAD / CAM仿真提供了最佳条件,从而避免了铁轨气刨以及避免砂轮与模拟的路边障碍物发生任何潜在碰撞。

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