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首页> 外文期刊>Metallurgical and Materials Transactions, A. Physical Metallurgy and Materials Science >Experimental and Numerical Investigation of the Thermal Effects on Railway Wheels for Shoe-Braked High-Speed Train Applications
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Experimental and Numerical Investigation of the Thermal Effects on Railway Wheels for Shoe-Braked High-Speed Train Applications

机译:用于鞋头制造高速列车应用的铁路热效应的实验和数值研究

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摘要

An improved railway wheel steel containing higher contents of C, Mn, Si, and V than the traditional ER7 steel was developed by alloy design for shoe-braked high-speed train applications. The effects of the thermal load on the microstructure and mechanical properties of a wheel made from this steel were investigated using a combined experimental and numerical approach. The wheel braking was studied using finite element simulations that account for the thermal loading of the wheel in order to find the temperatures reached in the wheel rim. Hardness measurements, tensile tests, toughness tests, fatigue crack growth tests, and microstructural observations were carried out on samples extracted from real wheels, with and without heat treatments simulating the modification of the microstructure due to the shoe braking. The results on the un-treated samples showed that the improved steel has a better combination of strength and toughness than ER7 steel. The results on the heat-treated samples showed that the improved steel maintains acceptable mechanical properties provided the maximum temperature during braking is below the A3 temperature of the steel (around 790 degrees C). (C) The Minerals, Metals & Materials Society and ASM International 2018
机译:通过合金设计开发了一种改进的含有C,Mn,Si和V含量高的C,Mn,Si和V的含量的铁路轮钢,用于鞋类制动的高速列车应用。使用组合的实验和数值方法研究了热负荷对由该钢制成的车轮微观结构和机械性能的影响。使用有限元模拟研究了轮子制动,该有限元模拟占轮子的热负荷,以便在车轮边缘中找到达到的温度。对从实际轮子提取的样品进行硬度测量,拉伸试验,韧性试验,疲劳裂纹生长试验和微观结构观察,并且在没有热处理由于鞋制动而模拟微观结构的改变。未处理过的样品上的结果表明,改进的钢具有比ER7钢更好的强度和韧性组合。热处理样品上的结果表明,如果在制动期间的最高温度低于钢的A3温度(约790℃),则改进的钢保持可接受的机械性能。 (c)2018年矿物质,金属和材料协会和ASM国际

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