Study on the effects of air blowing on operation characteristics of high-speed trains with pantograph raised and lowered

To address the aerodynamic performance challenges caused by cavity flow in the pantograph area of high-speed trains, this study investigates a three-car train set using the improved delayed detached eddy simulation method based on the SST (Shear Stress Transport) k-ω turbulence model to systematically simulate active flow control with varying blowing angles and speeds. The results indicate that blowing control disturbs the airflow beneath the pantograph, significantly altering both the magnitude and distribution of positive and negative pressures in this region, this is the primary mechanism behind the reductions in pantograph drag and tail car lift. Blowing control also optimizes the flow-field structure and effectively weakens vortex intensity. At a train speed of 350 km/h, with a blowing angle of 45° and a blowing speed equal to 0.30 times the train speed, the overall train drag reduction reaches 5.79% during pantograph lifting with the pantograph drag reduced by 28.98% and the tail car lift decreased by 11.63%. During pantograph lowering, the overall train drag reduction is 6.96%, the pantograph drag decreases by 29.56%, and the tail car lift is reduced by 13.2%.

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Publication Details

Journal
Journal of Vibration and Control
Published
2026-09-04
DOI
https://doi.org/10.1177/10775463261484079
Primary Topic
Aerodynamics and Fluid Dynamics Research
Type
article
Field-Weighted Citation Impact
0.00

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article

Study on the effects of air blowing on operation characteristics of high-speed trains with pantograph raised and lowered

Hongtai Xie, Zhenfeng Wu, Huaxiang Xie
Journal of Vibration and Control
Aerodynamics and Fluid Dynamics Research
article

Study on the effects of air blowing on operation characteristics of high-speed trains with pantograph raised and lowered

Hongtai Xie, Zhenfeng Wu, Huaxiang Xie
article en

Abstract

To address the aerodynamic performance challenges caused by cavity flow in the pantograph area of high-speed trains, this study investigates a three-car train set using the improved delayed detached eddy simulation method based on the SST (Shear Stress Transport) k-ω turbulence model to systematically simulate active flow control with varying blowing angles and speeds. The results indicate that blowing control disturbs the airflow beneath the pantograph, significantly altering both the magnitude and distribution of positive and negative pressures in this region, this is the primary mechanism behind the reductions in pantograph drag and tail car lift. Blowing control also optimizes the flow-field structure and effectively weakens vortex intensity. At a train speed of 350 km/h, with a blowing angle of 45° and a blowing speed equal to 0.30 times the train speed, the overall train drag reduction reaches 5.79% during pantograph lifting with the pantograph drag reduced by 28.98% and the tail car lift decreased by 11.63%. During pantograph lowering, the overall train drag reduction is 6.96%, the pantograph drag decreases by 29.56%, and the tail car lift is reduced by 13.2%.

Journal of Vibration and Control
Lanzhou Jiaotong University (CN), China Design Group (China) (CN)
Natural Science Foundation of Gansu Province
Affordable and clean energy
Openalex Percentile: Top 7%
Aerodynamics and Fluid Dynamics Research
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Study on the effects of air blowing on operation characteristics of high-speed trains with pantograph raised and lowered — Hongtai Xie, Zhenfeng Wu, et al. · Journal of Vibration and Control (2026) | TGRS Research Map | TGRS