Numerical Evaluation of a Novel Vertical Drop Airflow System to Mitigate Droplet Transmission in Trains
Owing to the outbreak of COVID-19, researchers are exploring methods to prevent contact and non-contact infections that occur via multiple transmission routes. However, studies on preventing infections caused by droplet transmission in public transportation are insufficient. To prevent the spread of...
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MDPI AG
2022-05-01
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Series: | Atmosphere |
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Online Access: | https://www.mdpi.com/2073-4433/13/5/829 |
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author | Sungho Yun Jae-Chul Kim |
author_facet | Sungho Yun Jae-Chul Kim |
author_sort | Sungho Yun |
collection | DOAJ |
description | Owing to the outbreak of COVID-19, researchers are exploring methods to prevent contact and non-contact infections that occur via multiple transmission routes. However, studies on preventing infections caused by droplet transmission in public transportation are insufficient. To prevent the spread of infectious diseases, a new ventilation system in railway vehicles must be developed. In this study, a novel vertical drop airflow (VDA) system is proposed to mitigate the effect of droplet transmission in a high-speed train cabin. The droplet transmission route and droplet fate are investigated using three-dimensional fluid dynamics simulations, performed employing the Eulerian–Lagrangian model. Additionally, a porous model is adopted to simulate the effect of close-fitting masks. The results indicate that 120 s after coughing, the decrease in the droplet number in the VDA system is 72.1% of that observed in the conventional system. Moreover, the VDA system effectively suppresses droplet transmission because the maximum droplet travel distances of the VDA systems are 49.9% to 67.0% of those of the conventional systems. Furthermore, the effect of reducing droplet transmission by wearing a close-fitting mask is confirmed in all systems. Thus, the decrease in both droplet number and droplet transmission area in train cabins validate that the proposed VDA system has an effective airflow design to prevent droplet infection. |
first_indexed | 2024-03-10T03:20:25Z |
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id | doaj.art-62d2d9d1ce7a4898b4fa31b6688d6e19 |
institution | Directory Open Access Journal |
issn | 2073-4433 |
language | English |
last_indexed | 2024-03-10T03:20:25Z |
publishDate | 2022-05-01 |
publisher | MDPI AG |
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series | Atmosphere |
spelling | doaj.art-62d2d9d1ce7a4898b4fa31b6688d6e192023-11-23T10:03:27ZengMDPI AGAtmosphere2073-44332022-05-0113582910.3390/atmos13050829Numerical Evaluation of a Novel Vertical Drop Airflow System to Mitigate Droplet Transmission in TrainsSungho Yun0Jae-Chul Kim1Technical Regulations and Standards Research Department, Korea Railroad Research Institute, Uiwang-si 16105, Gyeonggi-do, KoreaTechnical Regulations and Standards Research Department, Korea Railroad Research Institute, Uiwang-si 16105, Gyeonggi-do, KoreaOwing to the outbreak of COVID-19, researchers are exploring methods to prevent contact and non-contact infections that occur via multiple transmission routes. However, studies on preventing infections caused by droplet transmission in public transportation are insufficient. To prevent the spread of infectious diseases, a new ventilation system in railway vehicles must be developed. In this study, a novel vertical drop airflow (VDA) system is proposed to mitigate the effect of droplet transmission in a high-speed train cabin. The droplet transmission route and droplet fate are investigated using three-dimensional fluid dynamics simulations, performed employing the Eulerian–Lagrangian model. Additionally, a porous model is adopted to simulate the effect of close-fitting masks. The results indicate that 120 s after coughing, the decrease in the droplet number in the VDA system is 72.1% of that observed in the conventional system. Moreover, the VDA system effectively suppresses droplet transmission because the maximum droplet travel distances of the VDA systems are 49.9% to 67.0% of those of the conventional systems. Furthermore, the effect of reducing droplet transmission by wearing a close-fitting mask is confirmed in all systems. Thus, the decrease in both droplet number and droplet transmission area in train cabins validate that the proposed VDA system has an effective airflow design to prevent droplet infection.https://www.mdpi.com/2073-4433/13/5/829droplet transmissionairflow systemmask effectventilation systemhigh-speed trainCOVID-19 |
spellingShingle | Sungho Yun Jae-Chul Kim Numerical Evaluation of a Novel Vertical Drop Airflow System to Mitigate Droplet Transmission in Trains Atmosphere droplet transmission airflow system mask effect ventilation system high-speed train COVID-19 |
title | Numerical Evaluation of a Novel Vertical Drop Airflow System to Mitigate Droplet Transmission in Trains |
title_full | Numerical Evaluation of a Novel Vertical Drop Airflow System to Mitigate Droplet Transmission in Trains |
title_fullStr | Numerical Evaluation of a Novel Vertical Drop Airflow System to Mitigate Droplet Transmission in Trains |
title_full_unstemmed | Numerical Evaluation of a Novel Vertical Drop Airflow System to Mitigate Droplet Transmission in Trains |
title_short | Numerical Evaluation of a Novel Vertical Drop Airflow System to Mitigate Droplet Transmission in Trains |
title_sort | numerical evaluation of a novel vertical drop airflow system to mitigate droplet transmission in trains |
topic | droplet transmission airflow system mask effect ventilation system high-speed train COVID-19 |
url | https://www.mdpi.com/2073-4433/13/5/829 |
work_keys_str_mv | AT sunghoyun numericalevaluationofanovelverticaldropairflowsystemtomitigatedroplettransmissionintrains AT jaechulkim numericalevaluationofanovelverticaldropairflowsystemtomitigatedroplettransmissionintrains |