DEM analysis of track ballast layer on turnouts: Insights into mechanical behavior and performance optimization

[EN] Railway infrastructure plays a vital role in global transportation, and the performance of its components is critical for ensuring safe and efficient operations. Among these components, the track ballast layer is fundamental, providing support, stability, and load distribution. This study emplo...

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Bibliographic Details
Authors: Villalba Sanchis, Ignacio|||0000-0002-4091-8719, Adrián Márquez Castellano, Insa Franco, Ricardo|||0000-0002-6655-4458, Martínez Fernández, Pablo|||0000-0002-8246-2510, Salvador Zuriaga, Pablo|||0000-0002-7824-0368
Format: article
Publication Date:2025
Country:España
Institution:Universitat Politècnica de València (UPV)
Repository:RiuNet. Repositorio Institucional de la Universitat Politécnica de Valéncia
Language:English
OAI Identifier:oai:dnet:riunet______::b792796b2b6e898b88de2627e237da50
Online Access:https://riunet.upv.es/handle/10251/233982
Access Level:Open access
Keyword:Railways
Transport
DEM model
Ballast behaviour
09.- Desarrollar infraestructuras resilientes, promover la industrialización inclusiva y sostenible, y fomentar la innovación
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Summary:[EN] Railway infrastructure plays a vital role in global transportation, and the performance of its components is critical for ensuring safe and efficient operations. Among these components, the track ballast layer is fundamental, providing support, stability, and load distribution. This study employs advanced numerical modeling techniques, specifically the Discrete Element Method (DEM), to comprehensively analyze the mechanical behavior of the track ballast layer, with a specific focus on turnouts. Turnouts, or railway switches and crossings, exhibit unique geometric configurations and operational characteristics that can significantly influence the performance of the underlying ballast layer. The utilization of DEM allows for a granular examination of the interactions between individual ballast particles, providing a detailed understanding of their collective response to dynamic loading conditions. The research aims to assess various aspects of ballast behavior, including particle displacement, force distribution, and stress propagation, within the context of turnout-induced loading scenarios. The outcomes of this analysis have implications for the design and maintenance of turnouts in railway systems. By understanding the dynamic forces and stresses at play within the ballast layer, engineers can develop strategies to enhance structural integrity, reduce maintenance costs, and prolong the lifespan of railway tracks. Moreover, the findings contribute to the broader knowledge base in railway engineering, providing a basis for future research and innovation in the pursuit of sustainable and resilient transportation infrastructure.