Tunnel-scale design of a floor-mounted electrostatic precipitation system: Piston-wind-assisted ultrafine particle control in subway tunnels

Ultrafine particles (UFPs) generated by wheel-rail interaction can accumulate in subway tunnels and are strongly affected by train-induced unsteady airflow. This study proposes a floor-mounted static two-stage electrostatic precipitation system for tunnel-scale particle control by utilizing piston wind during subway operation. A full-scale numerical model coupling train-induced airflow, UFPs transport, and electrostatic removal is developed to compare piston-wind-driven and fan-driven configurations and to optimize key layout parameters, including module spacing, inlet velocity, and ESP height. The results show that UFPs preferentially accumulate in the near-ground region beneath the train, supporting the feasibility of floor-mounted particle interception. The piston-wind-driven system provides passive purification without additional ventilation demand, whereas the fan-driven system improves removal only when the imposed inlet velocity exceeds the local piston-wind velocity of approximately 6 m/s. Reducing module spacing and increasing ESP height improve tunnel-scale removal by expanding spatial coverage and increasing the inlet airflow rate. The optimized configuration reduces the total amount of UFPs in the tunnel by up to 37.38 %. These findings provide practical guidance for tunnel-scale deployment of passive electrostatic purification systems in subway tunnel environments.

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Publication Details

Journal
Tunnelling and Underground Space Technology
Published
2026-09-12
DOI
https://doi.org/10.1016/j.tust.2026.108118
Primary Topic
Aerosol Filtration and Electrostatic Precipitation
Type
article
Field-Weighted Citation Impact
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article

Tunnel-scale design of a floor-mounted electrostatic precipitation system: Piston-wind-assisted ultrafine particle control in subway tunnels

Zhibo Chen, Yanling Na, Tamer M. Mansour, Mohamed O. Arnous et al.
Tunnelling and Underground Space Technology
Aerosol Filtration and Electrostatic Precipitation
article

Tunnel-scale design of a floor-mounted electrostatic precipitation system: Piston-wind-assisted ultrafine particle control in subway tunnels

Zhibo Chen, Yanling Na, Tamer M. Mansour, Mohamed O. Arnous, Zhuangbo Feng, Shuai Liu, Bo Zhao
article en

Abstract

Ultrafine particles (UFPs) generated by wheel-rail interaction can accumulate in subway tunnels and are strongly affected by train-induced unsteady airflow. This study proposes a floor-mounted static two-stage electrostatic precipitation system for tunnel-scale particle control by utilizing piston wind during subway operation. A full-scale numerical model coupling train-induced airflow, UFPs transport, and electrostatic removal is developed to compare piston-wind-driven and fan-driven configurations and to optimize key layout parameters, including module spacing, inlet velocity, and ESP height. The results show that UFPs preferentially accumulate in the near-ground region beneath the train, supporting the feasibility of floor-mounted particle interception. The piston-wind-driven system provides passive purification without additional ventilation demand, whereas the fan-driven system improves removal only when the imposed inlet velocity exceeds the local piston-wind velocity of approximately 6 m/s. Reducing module spacing and increasing ESP height improve tunnel-scale removal by expanding spatial coverage and increasing the inlet airflow rate. The optimized configuration reduces the total amount of UFPs in the tunnel by up to 37.38 %. These findings provide practical guidance for tunnel-scale deployment of passive electrostatic purification systems in subway tunnel environments.

Tunnelling and Underground Space TechnologyVol. 179
Suez Canal University (EG), China Communications Construction Company (China) (CN), China Railway Design Corporation (China) (CN), Southeast University (CN)
National Natural Science Foundation of China
Openalex Percentile: Top 20%
Aerosol Filtration and Electrostatic Precipitation
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