PLC-Controlled Rack and Pinion-Based Automated Railway Barricade System: Design, Structural Validation, and Prototype Implementation for Enhanced Level Crossing Safety

Authors

  • Akhil A. Deshpande Department of Mechanical Engineering, K.L.S. Gogte Institute of Technology, Udyambag, Belagavi, Karnataka, India.
  • Vinayak V. Kulkarni Department of Mechanical Engineering, K.L.S. Gogte Institute of Technology, Udyambag, Belagavi, Karnataka, India.
  • Vaidehi P. Deshpande Department of Electronics and Communication Engineering, K.L.S. Gogte Institute of Technology, Udyambag, Belagavi, Karnataka, India.
  • Swati P. Joshi Department of Civil Engineering, K.L.S. Vasantrao Potdar Polytechnic, Tilakwadi, Belagavi, Karnataka, India.
  • Anand A. Kulkarni Department of Mechanical Engineering, K.L.S. Gogte Institute of Technology, Udyambag, Belagavi, Karnataka, India.
  • Praveen P. Mirji Department of Mechanical Engineering, K.L.S. Gogte Institute of Technology, Udyambag, Belagavi, Karnataka, India.
  • Jyothi B. R. Department of Computer Science and Engineering, Jain College of Engineering and Research, Belagavi, Karnataka, India.

DOI:

https://doi.org/10.70917/ijcisim-2026-4755

Keywords:

Railway crossing safety, PLC automation, Rack and pinion mechanism, Level crossing design, Finite element analysis, Sensor-based automation

Abstract

Railway level crossings remain a persistent source of accidents and fatalities on mixed road-rail networks, particularly where crossings are unmanned or rely on manual gate operation. This paper presents the design, structural validation, and prototype implementation of an automated railway barricade in which a Programmable Logic Controller (PLC) drives an underground rack-and-pinion mechanism to raise and lower a physical barrier in response to sensor-detected train movement. The underground placement minimizes visual obstruction relative to conventional above-ground boom barriers while a robust mechanical drive is intended to withstand repeated, high-cycle outdoor operation. A structural analysis using Finite Element Analysis (FEA) is used to validate the mechanical integrity of the rack-and-pinion drive under expected loading, and shaft design calculations confirm an adequate safety margin. A fabricated prototype demonstrates the automation cycle end-to-end, including a manual push-button override for fail-safe operation. To situate the contribution, a focused review of thirteen directly relevant studies retrieved from a bibliographic export is presented; it indicates that existing automated level-crossing work concentrates on sensing and control logic, while structurally validated mechanical actuator design for the barrier itself is comparatively under-addressed. The proposed system is offered as a scalable, low-cost step toward reducing manual dependency and human error at level crossings.

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Published

2026-08-17

How to Cite

Akhil A. Deshpande, Vinayak V. Kulkarni, Vaidehi P. Deshpande, Swati P. Joshi, Anand A. Kulkarni, Praveen P. Mirji, & Jyothi B. R. (2026). PLC-Controlled Rack and Pinion-Based Automated Railway Barricade System: Design, Structural Validation, and Prototype Implementation for Enhanced Level Crossing Safety. International Journal of Computer Information Systems and Industrial Management Applications, 18(17s), 488–498. https://doi.org/10.70917/ijcisim-2026-4755

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Section

Original Articles