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May 26, 2026Buildings0 citationsOpen Access

Enhanced Night Cooling of Low-Energy Buildings Using Directed Ventilation

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JKJohnathan KongoletosLGLeon Glicksman

Key Points

  • This work aims to investigate the effectiveness of directed ventilation in enhancing cooling in low-energy buildings.
  • Experiments conducted using a scale model of a typical room with a ceiling as primary thermal mass.
  • Upward-directed ventilation tested at angles of 30° to 40° from a window to assess airflow impacts.
  • Air change rates set at 4.9 air changes per hour to measure convective heat transfer coefficients.
  • Convective heat transfer coefficient at ceiling with upward-directed flow was 7.7 W/m2 K, significantly higher than 3.5 W/m2 K with horizontal flow.
  • Directed night ventilation reduced peak daytime air temperature by 5 °C compared to horizontal ventilation.
  • Results led to further testing in a full-scale home in Gujarat, India, enhancing cooling strategies for low-income communities.

Abstract

Night ventilation coupled with thermal mass is an effective means of reducing overheating in passive buildings. Successful systems require a high airflow rate coupled with enhanced convective heat transfer to the thermal mass. This work presents results for enhanced convection when the primary thermal mass is in the ceiling. Such mass distribution occurs, for example, in multi-story apartments in developing economies. Experimental results are measured in a scale model of a typical room. The original contribution is the use of upward-directed ventilation at an angle of 30° to 40° from a window located at a typical distance below the ceiling. At scaled air change rates of 4.9 air changes per hour, the measured convective heat transfer coefficient at the ceiling was 7.7 W/m2 K. In contrast, when air flowed horizontally from the window, the heat transfer coefficient was 3.5 W/m2 K or less, indicating that substantial improvement was gained by directing airflow toward the ceiling. To link the experimental results to an application in a full-size building, an approximate model is presented to estimate the impact of directed night ventilation on the thermal mass (specifically the concrete slab ceiling) and room air temperatures. Coupling angled flow with nighttime ventilation, the ceiling slab and peak daytime air temperature can be reduced by 5 °C compared to horizontal ventilation from a window at conventional height. These results have enabled collaborators in Gujarat, India, to launch tests in a full-scale home serving a low-income community without access to air conditioning.

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Cite This Study

Kongoletos et al. (2026) studied this question.

synapsesocial.com/papers/6a153a2eb5d9c58d83e8cf24https://doi.org/10.3390/buildings16112078
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