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Determination of temperature stresses in CWR based on measured rail surface temperatures

机译:基于测量轨道表面温度的CWR中温度应力的测定

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The main aim of conducted research is determination of temperature stresses due to the uneven temperature distribution in CWR. This paper presents a methodology for determination of temperature stresses in CWR based on (1) measurement system developed by the authors for measurement of rail surface temperatures, and (2) coupled transient thermal-stress analysis for simulation of rail temperature field and corresponding stresses. The main advantages of the proposed methodology are high sensitivity to the small temperature variations, taking into account the effect of thermal inertia, as well as measurement of single input parameter rail surface temperature. The obtained experimental results showed lower rail temperatures in sleeper zones and rail foot along CWR, which emphasize the effect of heat transfer between rail and sleeper, as well as rail foot and ballast. These effects of heat transfer directly influence the decrease of temperature stresses in the mentioned zones of CWR. The maximum values of simulated temperature stresses are up to 16% less in the centre of gravity of railhead, up to 9.8% less in the centre of gravity of rail foot, and up to 0.2% less in the centre of gravity of rail web, compared to the common engineering calculation. In addition, the maximum value of simulated temperature force, based on temperature stresses in the rail cross-section, was up to 5.3% less than the value obtained in the common engineering calculation.(c) 2021 Elsevier Ltd. All rights reserved.
机译:进行研究的主要目的是由于CWR温度分布不平坦的温度应力测定温度应力。本文介绍了基于作者开发的基于(1)轨道表面温度的测量系统的CWR中温度应力的方法,(2)耦合瞬态热应力分析,用于模拟轨道温度场和相应的应力。考虑了热惯性的影响,所提出的方法的主要优点是对小温度变化的敏感性,以及单输入参数轨道表面温度的测量。所获得的实验结果表明,沿着CWR的卧铺区和轨道脚下的轨道温度下降,这强调了导轨和睡眠者之间的热传递的影响,以及轨道脚和镇流器。传热的这些效果直接影响所提到的CWR区域中的温度胁迫下降。在轨道的重心的重心中,模拟温度应力的最大值较小高达16%,在铁路脚的重心下降至较小的9.8%,并且在导轨网的重心中较小高达0.2%,与共同工程计算相比。此外,基于轨道横截面的温度应力,模拟温度力的最大值高于共同工程计算中获得的值的5.3%。(c)2021 Elsevier Ltd.保留所有权利。

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