Guardrail-based air supply terminal for improving ventilation effectiveness and saving energy in the waiting zone

In the waiting zones of airports, train stations, and other transportation hubs, poor indoor environment is primarily caused by human body-related factors in conjunction with the high density of people. Existing ventilation systems cannot effectively remove the waste heat and pollutants generated by...

Full description

Bibliographic Details
Main Authors: Ran Gao, Haimeng Li, Angui Li, Ting Lai, Wuyi Du, Baoshun Deng, Linhua Zhang, Wenjun Lei
Format: Article
Language:English
Published: SAGE Publishing 2021-09-01
Series:Energy Exploration & Exploitation
Online Access:https://doi.org/10.1177/0144598720976196
_version_ 1819364552214577152
author Ran Gao
Haimeng Li
Angui Li
Ting Lai
Wuyi Du
Baoshun Deng
Linhua Zhang
Wenjun Lei
author_facet Ran Gao
Haimeng Li
Angui Li
Ting Lai
Wuyi Du
Baoshun Deng
Linhua Zhang
Wenjun Lei
author_sort Ran Gao
collection DOAJ
description In the waiting zones of airports, train stations, and other transportation hubs, poor indoor environment is primarily caused by human body-related factors in conjunction with the high density of people. Existing ventilation systems cannot effectively remove the waste heat and pollutants generated by dense crowds. In this paper, a guardrail-based air supply terminal is proposed. Two indices, the velocity target value and temperature target value, were introduced to facilitate the evaluation of the guardrail-based air supply terminal. The jet air velocity, penetration air velocity and width of the unventilated strip are optimized based on CFD numerical simulations; the values obtained were V 1  = 0.25 m/s, V 2  = 0.15 m/s, and W = 290 mm. The guardrail-based air supply terminal was found to create a homogeneous air velocity of 0.3 m/s to avoid draft sensations. The uniformity and effectiveness of the air supply via the optimized guardrails are verified by full-scale experiments and visual experiments. The temperature of the working area was maintained at 26°C in the summer, creating a comfortable environment. Compared with other existing air distribution systems in high and large spaces, the velocity target value, air age, and temperature target value with the proposed air supply terminal were the smallest. The energy consumption of the guardrail-based air supply terminal was 61% less than that of the vertical wall jets. The results indicate that the guardrail-based air supply terminal not only meets the thermal comfort requirements but also saves energy.
first_indexed 2024-12-24T23:00:45Z
format Article
id doaj.art-e3900f4d21bd4894b67c45c85530108f
institution Directory Open Access Journal
issn 0144-5987
2048-4054
language English
last_indexed 2024-12-24T23:00:45Z
publishDate 2021-09-01
publisher SAGE Publishing
record_format Article
series Energy Exploration & Exploitation
spelling doaj.art-e3900f4d21bd4894b67c45c85530108f2022-12-21T16:35:08ZengSAGE PublishingEnergy Exploration & Exploitation0144-59872048-40542021-09-013910.1177/0144598720976196Guardrail-based air supply terminal for improving ventilation effectiveness and saving energy in the waiting zoneRan GaoHaimeng LiAngui LiTing LaiWuyi DuBaoshun DengLinhua ZhangWenjun LeiIn the waiting zones of airports, train stations, and other transportation hubs, poor indoor environment is primarily caused by human body-related factors in conjunction with the high density of people. Existing ventilation systems cannot effectively remove the waste heat and pollutants generated by dense crowds. In this paper, a guardrail-based air supply terminal is proposed. Two indices, the velocity target value and temperature target value, were introduced to facilitate the evaluation of the guardrail-based air supply terminal. The jet air velocity, penetration air velocity and width of the unventilated strip are optimized based on CFD numerical simulations; the values obtained were V 1  = 0.25 m/s, V 2  = 0.15 m/s, and W = 290 mm. The guardrail-based air supply terminal was found to create a homogeneous air velocity of 0.3 m/s to avoid draft sensations. The uniformity and effectiveness of the air supply via the optimized guardrails are verified by full-scale experiments and visual experiments. The temperature of the working area was maintained at 26°C in the summer, creating a comfortable environment. Compared with other existing air distribution systems in high and large spaces, the velocity target value, air age, and temperature target value with the proposed air supply terminal were the smallest. The energy consumption of the guardrail-based air supply terminal was 61% less than that of the vertical wall jets. The results indicate that the guardrail-based air supply terminal not only meets the thermal comfort requirements but also saves energy.https://doi.org/10.1177/0144598720976196
spellingShingle Ran Gao
Haimeng Li
Angui Li
Ting Lai
Wuyi Du
Baoshun Deng
Linhua Zhang
Wenjun Lei
Guardrail-based air supply terminal for improving ventilation effectiveness and saving energy in the waiting zone
Energy Exploration & Exploitation
title Guardrail-based air supply terminal for improving ventilation effectiveness and saving energy in the waiting zone
title_full Guardrail-based air supply terminal for improving ventilation effectiveness and saving energy in the waiting zone
title_fullStr Guardrail-based air supply terminal for improving ventilation effectiveness and saving energy in the waiting zone
title_full_unstemmed Guardrail-based air supply terminal for improving ventilation effectiveness and saving energy in the waiting zone
title_short Guardrail-based air supply terminal for improving ventilation effectiveness and saving energy in the waiting zone
title_sort guardrail based air supply terminal for improving ventilation effectiveness and saving energy in the waiting zone
url https://doi.org/10.1177/0144598720976196
work_keys_str_mv AT rangao guardrailbasedairsupplyterminalforimprovingventilationeffectivenessandsavingenergyinthewaitingzone
AT haimengli guardrailbasedairsupplyterminalforimprovingventilationeffectivenessandsavingenergyinthewaitingzone
AT anguili guardrailbasedairsupplyterminalforimprovingventilationeffectivenessandsavingenergyinthewaitingzone
AT tinglai guardrailbasedairsupplyterminalforimprovingventilationeffectivenessandsavingenergyinthewaitingzone
AT wuyidu guardrailbasedairsupplyterminalforimprovingventilationeffectivenessandsavingenergyinthewaitingzone
AT baoshundeng guardrailbasedairsupplyterminalforimprovingventilationeffectivenessandsavingenergyinthewaitingzone
AT linhuazhang guardrailbasedairsupplyterminalforimprovingventilationeffectivenessandsavingenergyinthewaitingzone
AT wenjunlei guardrailbasedairsupplyterminalforimprovingventilationeffectivenessandsavingenergyinthewaitingzone