Ventilation performance study of a high-speed train cabin based on displacement ventilation and mixed ventilation

Исследование эффективности вентиляции салона скоростного поезда на основе вытеснительной и смешанной вентиляции
Songbo Wu, Tian Li, Jiye Zhang
2024-07-01

computational fluid dynamicsdisplacement ventilationhigh-speed train cabinmixed ventilationventilation efficiency
Indoor ventilation systems play an important role in controlling energy consumption, thermal comfort, and airborne pollutants. This work is concerned with whether the combination of displacement and mixed ventilation can overcome these systems' respective shortcomings to improve the ventilation performance of high-speed train cabins. This work is based on computational fluid dynamics. The results show that when more fresh airflow enters the compartment from the top vents, the flow field is mainly driven by mechanical forces, and two vortices are formed. When more fresh airflow enters the compartment from the bottom vents, the flow field is mainly driven by thermal buoyancy. Meanwhile, the airflow mainly spreads upward, with lower cooling energy consumption, lower wind speed, higher ventilation efficiency, and smaller longitudinal diffusion of pollutants, but increased temperature difference. When the ratio of top and bottom supply air flow is 75%/25%, thermal comfort can be improved, while balancing energy consumption and air quality. If there was a disease outbreak, the flow rate of the bottom air supply could be increased appropriately. To further improve the ventilation performance, on the one hand, it is necessary to appropriately increase the temperature of the bottom air supply, and on the other hand, it is necessary to avoid short-circuiting of the airflow, due to the lack of synergy between thermal buoyancy and mechanical force. The results of the study can provide a reference for safeguarding passengers and improving the ventilation design of high-speed trains.
1
A top:bottom supply flow ratio of 75%/25% improves thermal comfort while balancing energy consumption and air quality.
2
Bottom-dominant supply yields higher ventilation efficiency and smaller longitudinal pollutant diffusion but increases temperature difference.
3
Combining displacement and mixed ventilation can address respective shortcomings and improve high-speed train cabin ventilation performance according to CFD analysis.
4
During disease outbreaks, increasing bottom air supply flow rate is recommended to mitigate infection risk.
5
Improving performance further requires raising bottom supply air temperature appropriately and avoiding airflow short-circuiting due to poor synergy between buoyancy and mechanical forces.
6
When more fresh air enters from bottom vents, thermal buoyancy dominates, airflow spreads upward, reducing cooling energy consumption and wind speed.
7
When more fresh air enters from top vents, the flow is mechanically driven and forms two vortices.

High-speed train cabin ventilation system (displacement and mixed ventilation configurations)

Ventilation performance characteristics including flow driving mechanisms (mechanical vs thermal buoyancy), flow patterns (vortices, upward spread), energy consumption, wind speed, ventilation efficiency, pollutant longitudinal diffusion, and thermal comfort as influenced by top/bottom supply air flow ratios and supply temperatures

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Publication Date
2024-07-01
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Authors
Songbo Wu
Tian Li
Jiye Zhang
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