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Stress Distribution in a Railroad Track at the Crosstie-Ballast Interface

Producción científica: Articlerevisión exhaustiva

3 Citas (Scopus)

Resumen

Excessive crosstie wear and abrasion and ballast wear and fouling are fundamental problems contributing to inadequate railroad track performance. This adversely affects the attainment and long-term maintenance of desired track geometric requirements. The magnitudes and distribution of the stresses at the crosstie-ballast (CT-B) interface must be known to determine the stress distribution on and within the ballast. However, the track design recommendations to determine these pressures, which are largely based on a methodology from the 1980s, are currently valid for modern-day railroad applications for multiple reasons discussed in this study. This study analyzed CT-B interfacial pressure data measured on an active freight mainline in Mascot, Tennessee. Dynamic contact pressures at the CT-B interface were measured using hydraulic earth pressure cells for various wheel loads and train speeds. The test train was a Federal Railroad Administration (FRA) test train consisting of a diesel electric locomotive, a test car that had different wheel loads based on the deployable axle load, and an inspection car. Although the maximum train speed was limited to 64 km/h, this research found that speed variation has a minimal effect on the CT-B interfacial pressures. From the measured data, a Gaussian stress distribution equation is proposed to determine longitudinal pressure distribution transmitted to the CT-B interface for static conditions. In addition, the stress distribution along the length of a crosstie was investigated via laboratory experimentation using a half-length crosstie. As a result of the experimentation, a dimensionless trilinear approximation was developed to estimate the stress distribution along the length of the crosstie. In general, this research recommends that the longitudinal and lateral stress distributions be considered together to design a better railroad track.

Idioma originalEnglish
Número de artículo04023074
PublicaciónJournal of Transportation Engineering Part A: Systems
Volumen149
N.º8
DOI
EstadoPublished - ago 1 2023

Nota bibliográfica

Publisher Copyright:
© 2023 American Society of Civil Engineers.

Financiación

These tests simulated in-track conditions using a load frame to load a section of crosstie and rail. This section was supported by specially designed ballast and subballast containment frame. The ballast containment frame was designed to minimally resist lateral movement of the ballast during load application. The trackbed support was designed to deflect approximately 8 mm under typical in-track applied loading magnitudes. An 8-mm deflection is typical of in-track deflection of nearly 161-kN wheel loadings. Leveling and precompacting of the subballast and ballast layers was performed to produce a level surface and uniform density to simulate a typical track support system.

Financiadores
ENSCO, Inc.
Federal Railroad Administration Office of Research Development and Technology
Volpe National Transportation Systems Center
National University Rail Center
Milli Eğitim Bakanliği

    ASJC Scopus subject areas

    • Civil and Structural Engineering
    • Transportation

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