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Theoretical analysis and experimental research on multi-layer elastic damping track structure

机译:多层弹性阻尼轨道结构的理论分析与实验研究

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摘要

The increase of axle load and train speed would cause intense wheelrail interactions, and lead to potential vibration related problems in train operation. For the low-frequency vibration reduction of a track system, a multi-layer track structure was proposed and analyzed theoretically and experimentally. Firstly, the analytical solution was derived theoretically, and followed by a parametric analysis to verify the vibration reduction performance. Then, a finite element simulation is carried out to highlight the influence of the tuned slab damper. Finally, the vibration and noise tests are performed to verify the results of the analytical solution and finite element simulation. As the finite element simulation indicates, after installation of the tuned slab damper, the peak reaction force of the foundation can be reduced by 60%, and the peak value of the vertical vibration acceleration would decrease by 50%. The vibration test results show that the insertion losses for the total vibration levels are 13.3 dB in the vertical direction and 21.7 dB in the transverse direction. The noise test results show that the data of each measurement point is smoother and smaller, and the noise in the generating position and propagation path can be reduced by 1.9 dB–5.5 dB.
机译:轴载荷和火车速度的增加将导致强烈的轮胎互动,并导致火车操作中的振动相关问题。对于轨道系统的低频减振,理论上和实验地提出和分析了多层轨道结构。首先,理论上得出分析溶液,然后是参数分析以验证减振性能。然后,执行有限元模拟以突出调谐板式阻尼器的影响。最后,执行振动和噪声测试以验证分析解决方案和有限元模拟的结果。随着有限元模拟所示,在安装调谐板式阻尼器之后,基坑的峰值反作用力可以减少60%,垂直振动加速度的峰值将减少50%。振动试验结果表明,垂直方向上的总振动水平的插入损耗为13.3dB,横向的21.7dB。噪声测试结果表明,每个测量点的数据更光滑,更小,并且发电位置和传播路径中的噪声可以减少1.9dB-5.5dB。

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