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April 10, 2026Buildings0 citationsOpen Access

Dynamic Response of Integrated Maglev Station–Bridge Structures Under Varying Support Constraints

RCRuibo CuiXSXiaodong ShiYCYanghua Cui

Key Points

  • The research aims to evaluate how different support constraints affect the vibration response of integrated maglev station-bridge structures.
  • Developed a high-fidelity 3D coupled model incorporating electromagnetic suspension nonlinearity.
  • Simulated dynamic responses under train speeds ranging from 60 to 120 km/h.
  • Contrasted effects of rigid connections versus pinned supports on vibration performance.
  • Identified critical operational threshold for comfort criteria in waiting hall.
  • Platform floor exceeded 1.5% g acceleration limit at speeds of ≥ 100 km/h during dual-track operations.
  • Revealed that rigid connections led to full mechanical coupling, transmitting bending moments into the station frame.

Abstract

Spatial efficiency drives the adoption of integrated station–bridge structures in maglev transit, yet the rigid coupling between track and station poses inherent challenges to vibration serviceability. This study isolates the impact of support constraints, specifically contrasting rigid connections with pinned supports, on the dynamic performance of a five-story maglev station. Using a unified, high-fidelity 3D coupled model that incorporates electromagnetic suspension nonlinearity, we evaluated structural responses under train speeds of 60–120 km/h. Simulations identify a critical operational threshold: while the waiting hall remains compliant with standard comfort criteria (DIN 4150-3), the platform floor exceeds the 1.5% g acceleration limit during dual-track operations at speeds ≥ 100 km/h. Beyond standard safety checks, the main scientific innovation of this study is revealing the mechanical transmission paths of structure-borne vibrations at the track-frame interface. The results demonstrate that rigid connections create full mechanical coupling, directly passing train-induced bending moments into the station frame. Conversely, pinned supports release the rotational degrees of freedom, which physically cuts off the primary energy transmission route. By explaining this structural decoupling mechanism, this work moves beyond a specific engineering case study to provide a fundamental theoretical framework for vibration control in complex maglev hubs.

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Cite This Study

Cui et al. (2026) studied this question.

synapsesocial.com/papers/69d894ec6c1944d70ce05d04https://doi.org/10.3390/buildings16071296
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