Chenchen HAN, Hao SU, Jie SUN. Analysis of the Impact of Primary Suspension Stiffness on Vehicle Hunting Motions. [J]. Electric Drive for Locomotives (4):42-47(2021)
DOI:
Chenchen HAN, Hao SU, Jie SUN. Analysis of the Impact of Primary Suspension Stiffness on Vehicle Hunting Motions. [J]. Electric Drive for Locomotives (4):42-47(2021) DOI: 10.13890/j.issn.1000-128x.2021.04.100.
Analysis of the Impact of Primary Suspension Stiffness on Vehicle Hunting Motions
There are two typical forms of hunting motions in vehicle systems, i.e., primary and secondary hunting motions, also called vehicle and bogie hunting motions. When primary hunting occurs, the vehicle body shakes intensely from left to right, which affects the stability of the vehicle and the comfort of passengers. By using the SIMPACK software to set up the 300 km/h nonlinear dynamic model, the vehicle hunting instability was simulated. Combined with the principle of frequency capture in nonlinear vibration systems, it was found that primary hunting motions was caused by the hunting frequency of the bogie being captured by the vehicle's hunting frequency. By changing the primary suspension stiffness, the bogie's hunting frequency was changed at the same operating speed, avoiding the frequency capture zone of the vehicle, effectively suppressing the vehicle hunting motion and improving the vehicle stability.
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