Safety and Reliability Assessment of Personal Electric Kick-Scooter Riding with Different Tire Types
Оценка безопасности и надежности эксплуатации персональных электрических самокатов при разных типах шин
2026-03-05
SCID: 54.1/hua5mw3n
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electric kick-scooter handlebar safety lockmodal analysis (laser scanning)pneumatic vs airless tiresresonance at 20 Hzvibration-induced failure
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Abstract (AI)
This study investigates the mechanical safety of personal electric kick-scooters, specifically the vibration-induced failure of handlebar safety lock. Utilizing a dual-methodology approach, pre-experimental modal analysis via laser scanning was combined with real-world field measurements on asphalt and brick pavements using pneumatic and airless tires. Modal analysis identified a primary resonance frequency at 20 Hz, where airless tires exhibited significantly lower damping coefficients compared to pneumatic tires. Research results quantified a critical vibration that limit correlates with the unintended disengagement of the folding mechanism. On brick surfaces, airless tires produced vibrations 40% higher than pneumatic tires. These findings demonstrate that the reduction in damping provided by aftermarket airless tires directly compromises structural reliability, necessitating secondary locking redundancies for safe urban operation.
Key Findings
1
A critical vibration limit was quantified that correlates with unintended disengagement of the folding (handlebar safety) mechanism.
2
Airless (aftermarket) tires showed significantly lower damping coefficients than pneumatic tires at the 20 Hz resonance.
3
Modal analysis identified a primary resonance frequency at 20 Hz for electric kick-scooter handlebars.
4
On brick pavement, airless tires produced vibrations 40% higher than pneumatic tires.
5
Reduced damping from airless tires directly compromises structural reliability, implying need for secondary locking redundancies for safe urban use.
Research Object
Personal electric kick-scooter folding handlebar safety lock system subject to vibrations from different tire types on asphalt and brick pavements
Research Subject
Vibration-induced failure and reliability of the handlebar safety lock as affected by tire type (pneumatic vs airless), including resonance behaviour, damping differences, critical vibration thresholds, and implications for structural safety
Publication Details
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2026-03-05
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