Geometrical Optimization of a Railway Rail Using Modal Analysis to Improve Vibrational and Stress Responses

Document Type : Original Article

Authors
1 Associate Professor, Department of Mechanical Engineering, Arak University, Arak, Iran
2 M.Sc., Department of Mechanical Engineering, Arak University, Arak, Iran
Abstract
The passage of trains over railway rails induces significant vibrations in the rail structure—a phenomenon that has gained increasing importance with the development of high-speed rail systems. Severe vibrations can lead to increased fatigue stresses, reduced rail lifespan, and potential structural instability. One effective approach to mitigating these issues is to increase the gap between the natural frequency of the rail and the excitation frequency, thereby preventing resonance. In this study, the geometric dimensions of the railway rail are optimized with the aim of enhancing vibrational performance and reducing fatigue-induced stresses. To achieve this, a combined methodology involving Response Surface Methodology (RSM) and Genetic Algorithm (GA) is employed. A numerical model of the rail is developed and simulated using ANSYS software. The analyses focus on extracting natural frequencies and evaluating stress responses under torsional, bending, and combined vibration modes. The results indicate that increasing the excitation speed leads to a reduction in the optimal width of the rail’s bottom flange for similar vibration modes. Additionally, increasing the width of the rail head from 40 to 80mm significantly reduces local stresses. These findings provide a practical basis for intelligent and resilient design of railway rails under dynamic loading conditions
Keywords
Subjects

اصل مقاله

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Volume 4, Issue 2 - Serial Number 7
February 2026
Pages 99-111

  • Receive Date 17 July 2025
  • Revise Date 10 August 2025
  • Accept Date 07 September 2025
  • First Publish Date 07 September 2025
  • Publish Date 21 January 2026