Prediction of railway induced ground vibration through multibody and finite element modelling

Прогнозирование вибраций грунта, вызываемых железнодорожным транспортом, с использованием многотельного и конечно-элементного моделирования
Georges Kouroussis, Olivier Verlinden
2013-04-16

coupled-lumped mass modelfinite element modellingmultibody dynamicsrailway-induced ground vibrationwheel–rail contact forces
Abstract. The multibody approach is now recognized as a reliable and mature computer aided engineering tool. Namely, it is commonly used in industry for the design of road or railway vehicles. The paper presents a framework developed for predicting the vibrations induced by railway transportation. Firstly, the vehicle/track subsystem is simulated, on the basis of the home-made C++ library EasyDyn, by mixing the multibody model of the vehicle and the finite element model of the track, coupled to each other through the wheel/rail contact forces. Only the motion in the vertical plane is considered, assuming a total symmetry between left and right rails. This first step produces the time history of the forces exerted by the ballast on the foundation, which are then applied to a full 3-D FEM model of the soil, defined under the commercial software ABAQUS. The paper points out the contribution of the pitch motion of the bogies and carbodies which were neglected in previous publications, as well as the interest of the so-called coupled-lumped mass model (CLM) to represent the influence of the foundation in the track model. The potentialities of the model are illustrated on the example of the Thalys high-speed train, riding at 300 km h−1 on the Belgian site of Mévergnies.
1
A coupled multibody–finite element framework predicts railway-induced ground vibrations by linking vehicle–track dynamics with three-dimensional soil modeling.
2
Including bogie and carbody pitch motions captures potentially important vibration contributions neglected in earlier studies.
3
The coupled-lumped mass model represents foundation influence in the track model, and the framework is demonstrated for a Thalys train traveling at 300 km h−1 at Mévergnies, Belgium.
4
The model transfers ballast-on-foundation force time histories to a full three-dimensional ABAQUS finite-element model of the soil.
5
The vehicle–track subsystem combines a multibody vehicle model and finite-element track model through wheel–rail contact forces.

railway transportation system comprising a high-speed train, track, foundation, and soil

prediction and modeling of railway-induced ground vibrations, including the effects of bogie and carbody pitch motions and foundation coupling

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2013-04-16
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Georges Kouroussis
Olivier Verlinden
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