PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
August 21, 2025Architecture0 citationsOpen Access

Application of Airfoil Arrays on Building Façades as a Passive Design Strategy to Improve Indoor Ventilation

View Full Paper
AAArdalan AflakiAJAtiye Jarrahi

Key Points

  • Symmetrical airfoil arrays increased air changes per hour up to 23 times under 0.37 m/s wind speed, enhancing ventilation.
  • Semi-symmetrical airfoil arrays boosted air changes per hour to 16 times, improving air capture performance significantly.
  • CFD simulation examined various configurations of airfoil arrays on façades for optimal airflow dynamics and indoor air quality.
  • Using grouped airfoil arrays highlights the importance of innovative passive design strategies for better building ventilation.

Abstract

Natural ventilation could be established as an effective passive design strategy for increasing air changes per hour in a built environment. Modern air conditioning systems often fail to provide sufficient fresh air, potentially causing health issues for occupants. In contrast, natural ventilation offers an effective alternative for maintaining sufficient indoor air quality in buildings. This study explores the application of grouped airfoil arrays on building façades as an innovative passive design to enhance the air change rate. Numerical simulations were conducted to analyze various airfoil configurations, determining the most effective design for building a façade. Three groups, including symmetrical, semi-symmetrical, and flat-bottomed grouped airfoils, were selected according to their aerodynamic properties and potential impacts on airflow dynamics. For this purpose, a typical high-rise residential building was selected as a case study for field measurement and CFD simulation. The results indicated that symmetrical airfoil arrays could increase the air changes per hour (ACH) up to 23 times per hour with a wind velocity of 0.37 m/s at 10 m above ground, whereas their bidirectional performance ensured stable airflow regardless of wind direction. Although semi-symmetrical airfoil arrays maximize air capture and induce beneficial turbulence, the ACH within a residential unit was boosted up to 16 times per hour under the same outdoor wind velocity conditions. The ACH was 14 times per hour for the flat-bottom airfoils, serving as a comparative baseline and providing insights into the performance advantages of more complex designs.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Aflaki et al. (2025) studied this question.

synapsesocial.com/papers/68a6fb955502675167ba9354https://doi.org/10.3390/architecture5030064
Ask AI
Helpful
Bookmark
Share
View Full Paper