Energy-Absorbing Countermeasures for Subway-to-Pedestrian Collisions: A Combined Experimental and Multibody Modelling Approach
Abstract
:Featured Application
Abstract
1. Introduction
- Conduct a series of impactor tests to experimentally derive force–penetration relationships for hard-shelled energy-absorbing materials, which will serve as inputs for computational modelling;
- Use MADYMO V7.8 multibody modelling software to assess the effect of various countermeasure designs on primary and secondary head injury risk compared to a validated baseline model;
- Evaluate how each countermeasure design affects run-over risk, ensuring that new safety features do not introduce unintended hazards.
2. Materials and Methods
2.1. Impactor Test Setup
2.2. Simulation Test Setup
2.3. Simulation Test Matrix and Outputs
3. Results
3.1. Derivation of Experimental Force Penetration Curves
3.2. Multibody Modelling of Passive Countermeasures
4. Discussion
4.1. Impact Tests
4.2. Head Injury Risk
4.2.1. Primary Contact
4.2.2. Secondary Contact
4.2.3. Run-Over Risk
4.3. Overall Safety Effect
4.4. Limitations
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Foam EAC | 3 mm ABS Shell | 1 mm Aluminium Shell |
---|---|---|
7.5 m/s | 7.5 m/s | 7.5 m/s |
10 m/s | 10 m/s | 10 m/s |
11.5 m/s | 11.5 m/s | 11.5 m/s |
Countermeasure | Impact Posture | Impact Position | Impact Velocity (m/s) | Total |
---|---|---|---|---|
Baseline | Jumping (x2) | Jumping High (Left Middle Right) | 8 | 54 |
Standing (x2) | Jumping Low (Left Middle Right) | 10 | ||
Standing (Left Middle Right) | 12 | |||
Front Panels (FP) | Jumping (x2) | Jumping High (Left Middle Right) | 8 | 54 |
Standing (x2) | Jumping Low (Left Middle Right) | 10 | ||
Standing (Left Middle Right) | 12 | |||
Full Front Guard (FFG) | Jumping (x2) | Jumping High (Left Middle Right) | 8 | 54 |
Standing (x2) | Jumping Low (Left Middle Right) | 10 | ||
Standing (Left Middle Right) | 12 | |||
Track Guard (TG) with FFG | Jumping (x2) | Jumping High (Left Middle Right) | 8 | 54 |
Standing (x2) | Jumping Low (Left Middle Right) | 10 | ||
Standing (Left Middle Right) | 12 |
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Hall, D.; Zentz, L.; Lynch, P.; Simms, C. Energy-Absorbing Countermeasures for Subway-to-Pedestrian Collisions: A Combined Experimental and Multibody Modelling Approach. Appl. Sci. 2025, 15, 6219. https://doi.org/10.3390/app15116219
Hall D, Zentz L, Lynch P, Simms C. Energy-Absorbing Countermeasures for Subway-to-Pedestrian Collisions: A Combined Experimental and Multibody Modelling Approach. Applied Sciences. 2025; 15(11):6219. https://doi.org/10.3390/app15116219
Chicago/Turabian StyleHall, Daniel, Logan Zentz, Patrick Lynch, and Ciaran Simms. 2025. "Energy-Absorbing Countermeasures for Subway-to-Pedestrian Collisions: A Combined Experimental and Multibody Modelling Approach" Applied Sciences 15, no. 11: 6219. https://doi.org/10.3390/app15116219
APA StyleHall, D., Zentz, L., Lynch, P., & Simms, C. (2025). Energy-Absorbing Countermeasures for Subway-to-Pedestrian Collisions: A Combined Experimental and Multibody Modelling Approach. Applied Sciences, 15(11), 6219. https://doi.org/10.3390/app15116219