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Numerical Simulations of Vibration Attenuation of High-Speed Train Foundations with Varied Trackbed Underlayment Materials

机译:含多种履带基底材料的高速列车基础振动衰减的数值模拟

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Interest in high-speed railway as an alternative means of transportation is steadily increasing around the world. However, high-speed trains come with the concern of track vibration and induced noise and ground vibration. Excessive track vibration can cause damage to trains and tracks and reduce riding comfort for passengers. Ground vibration induced by passing trains can also damage and disturb surrounding infrastructure (especially structures housing precision machines or instruments) and residents. One potential solution toward minimizing these vibrations is the use of rubber-modified asphalt concrete (RMAC) as a material for high-speed train trackbed underlayments. In this paper we present the results of a finite element simulation of a high-speed train foundation. The simulated foundation was subjected to dynamic loading in several test scenarios, with RMAC and other traditional paving materials used as trackbed underlayment materials. The ground accelerations at designated points in these simulations were then monitored and compared with one another to determine the relative effectiveness in vibration attenuation. From these parametric studies, RMAC proves to be more effective than currently used paving materials in damping out vibrations from dynamic loading. Implications for field applications are also discussed.
机译:在世界范围内,人们对高速铁路作为一种替代交通方式的兴趣正在稳步增长。然而,高速列车伴随着轨道振动以及感应噪声和地面振动的问题。过度的轨道振动会损坏火车和轨道,并降低乘客的乘坐舒适度。列车通过时引起的地面振动还会损坏和干扰周围的基础设施(尤其是装有精密机器或仪器的结构)和居民。减小这些振动的一种潜在解决方案是使用橡胶改性的沥青混凝土(RMAC)作为高速火车轨道床垫层的材料。在本文中,我们介绍了高速列车基础的有限元模拟结果。在多个测试方案中,模拟的基础承受了动态载荷,其中RMAC和其他传统铺路材料用作路基垫层材料。然后监视这些模拟中指定点的地面加速度,并相互比较以确定振动衰减的相对效果。通过这些参数研究,证明RMAC在抑制动态载荷引起的振动方面比目前使用的铺路材料更有效。还讨论了对现场应用的影响。

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