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Development of Viscoelastic Multi-Body Simulation and Impact Response Analysis of a Ballasted Railway Track under Cyclic Loading

机译:循环荷载下压载铁路轨道的粘弹性多体仿真和冲击响应分析的发展

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摘要

Simulation of a large number of deformable bodies is often difficult because complex high-level modeling is required to address both multi-body contact and viscoelastic deformation. This necessitates the combined use of a discrete element method (DEM) and a finite element method (FEM). In this study, a quadruple discrete element method (QDEM) was developed for dynamic analysis of viscoelastic materials using a simpler algorithm compared to the standard FEM. QDEM easily incorporates the contact algorithm used in DEM. As the first step toward multi-body simulation, the fundamental performance of QDEM was investigated for viscoelastic analysis. The amplitude and frequency of cantilever elastic vibration were nearly equal to those obtained by the standard FEM. A comparison of creep recovery tests with an analytical solution showed good agreement between them. In addition, good correlation between the attenuation degree and the real physical viscosity was confirmed for viscoelastic vibration analysis. Therefore, the high accuracy of QDEM in the fundamental analysis of infinitesimal viscoelastic deformations was verified. Finally, the impact response of a ballast and sleeper under cyclic loading on a railway track was analyzed using QDEM as an application of deformable multi-body dynamics. The results showed that the vibration of the ballasted track was qualitatively in good agreement with the actual measurements. Moreover, the ballast layer with high friction reduced the ballasted track deterioration. This study suggests that QDEM, as an alternative to DEM and FEM, can provide deeper insights into the contact dynamics of a large number of deformable bodies.
机译:大型可变形体的仿真通常很困难,因为需要复杂的高级建模来解决多体接触和粘弹性变形。这就需要结合使用离散元方法(DEM)和有限元方法(FEM)。在这项研究中,与标准FEM相比,使用一种更简单的算法开发了一种用于粘弹性材料动态分析的四重离散元方法(QDEM)。 QDEM轻松合并了DEM中使用的接触算法。作为迈向多体仿真的第一步,研究了QDEM的基本性能以进行粘弹性分析。悬臂弹性振动的振幅和频率几乎与标准FEM获得的振幅和频率相同。蠕变恢复测试与分析解决方案的比较表明,它们之间具有很好的一致性。另外,对于粘弹性振动分析,确认了衰减度与实际物理粘度之间的良好相关性。因此,证明了QDEM在微小粘弹性变形基础分析中的高精度。最后,利用QDEM作为可变形多体动力学的应用,分析了压载物和轨枕在循环荷载下在铁路轨道上的冲击响应。结果表明,道track轨道的振动在质量上与实际测量吻合良好。此外,具有高摩擦的压载层减少了压载道的劣化。这项研究表明,QDEM作为DEM和FEM的替代品,可以为大量可变形物体的接触动力学提供更深入的见解。

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