Simple and fast prediction of train-induced track forces, ground and building vibrations

Простое и быстрое прогнозирование сил, воздействующих на путь, а также вибраций грунта и зданий, вызываемых поездами
Lutz Auersch
2020-09-01

building–soil interactionfrequency-dependent homogeneous half-spacelayered soil wave propagationtrain-induced vibrationsvehicle–track–soil interaction
Abstract A simple and fast prediction scheme is presented for train-induced ground and building vibrations. Simple models such as (one-dimensional) transfer matrices are used for the vehicle–track–soil interaction and for the building–soil interaction. The wave propagation through layered soils is approximated by a frequency-dependent homogeneous half-space. The prediction is divided into the parts “emission” (excitation by railway traffic), “transmission” (wave propagation through the soil) and “immission” (transfer into a building). The link between the modules is made by the excitation force between emission and transmission, and by the free-field vibration between transmission and immission. All formula for the simple vehicle–track, soil and building models are given in this article. The behaviour of the models is demonstrated by typical examples, including the mitigation of train vibrations by elastic track elements, the low- and high-frequency cut-offs characteristic for layered soils, and the interacting soil, wall and floor resonances of multi-storey buildings. It is shown that the results of the simple prediction models can well represent the behaviour of the more time-consuming detailed models, the finite-element boundary-element models of the track, the wavenumber integrals for the soil and the three-dimensional finite-element models of the building. In addition, measurement examples are given for each part of the prediction, confirming that the methods provide reasonable results. As the prediction models are fast in calculation, many predictions can be done, for example to assess the environmental effect along a new railway line. The simple models have the additional advantage that the user needs to know only a minimum of parameters. So, the prediction is fast and user-friendly, but also theoretically and experimentally well-founded.
1
A simple, fast modular scheme predicts train-induced track forces, ground vibrations, and building vibrations using one-dimensional transfer-matrix models.
2
Layered-soil wave propagation is approximated with a frequency-dependent homogeneous half-space, capturing characteristic low- and high-frequency cut-offs.
3
Predictions agree well with detailed numerical models and measurement examples while requiring few input parameters, enabling efficient assessment along railway lines.
4
The framework separates railway vibration prediction into emission, soil transmission, and building immission, linked by excitation force and free-field vibration.
5
The models reproduce key effects including elastic-track vibration mitigation and interacting soil, wall, and floor resonances in multi-storey buildings.

train-induced vibrations and forces in railway track–soil–building systems

the prediction and propagation of track forces, ground vibrations, and building vibrations, including emission, soil transmission, and building immission

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2020-09-01
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Lutz Auersch
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