A ventilated roof consists of generating a series of ducts inside the roof of a building through the creation of openings near the rain gutters and on the ridge. Although in pitched roofs airflow is often buoyancy driven, for horizontal roofs or to enhance performance, forced convection becomes necessary. This study explores the use of a commercially available M-cycle evaporative cooler as a multifunctional solution for thermal management and ventilation in school buildings. By integrating the M-cycle with a ventilated roof, the study focuses on optimizing air renewal and cooling through the use of product air, while the working air, typically wasted, is used to ventilate the roof cavity. By employing an approach that combines psychrometric, analytical, and CFD models, it is demonstrated that, on a traditional roof configuration with cavity on top, the M-cycle can reduce solar gain by up to 68% when working air is used to ventilate the cavity. Furthermore, it is shown that the positioning of the ventilated cavity plays a crucial role, providing the best results when facing indoors. In such cases, it contributes to a solar gain reduction of up to 94%, leading to the development of a radiant cold surface that actively assists in cooling the room. These findings provide a first insight on a sustainable solution that can be applied beyond the specific case study, improving indoor climate control and reducing environmental impact.

Enhancing ventilated roof performance: A study on Maisotsenko indirect evaporative cooling for school buildings / Morselli, N.; Puglia, M.; Cossu, M.; Pedrazzi, S.; Allesina, G.; Tartarini, P.; Muscio, A.. - In: ENERGY AND BUILDINGS. - ISSN 0378-7788. - 338:(2025), pp. 0-15. [10.1016/j.enbuild.2025.115672]

Enhancing ventilated roof performance: A study on Maisotsenko indirect evaporative cooling for school buildings

Morselli N.;Puglia M.;Cossu M.;Pedrazzi S.;Allesina G.;Tartarini P.;Muscio A.
2025

Abstract

A ventilated roof consists of generating a series of ducts inside the roof of a building through the creation of openings near the rain gutters and on the ridge. Although in pitched roofs airflow is often buoyancy driven, for horizontal roofs or to enhance performance, forced convection becomes necessary. This study explores the use of a commercially available M-cycle evaporative cooler as a multifunctional solution for thermal management and ventilation in school buildings. By integrating the M-cycle with a ventilated roof, the study focuses on optimizing air renewal and cooling through the use of product air, while the working air, typically wasted, is used to ventilate the roof cavity. By employing an approach that combines psychrometric, analytical, and CFD models, it is demonstrated that, on a traditional roof configuration with cavity on top, the M-cycle can reduce solar gain by up to 68% when working air is used to ventilate the cavity. Furthermore, it is shown that the positioning of the ventilated cavity plays a crucial role, providing the best results when facing indoors. In such cases, it contributes to a solar gain reduction of up to 94%, leading to the development of a radiant cold surface that actively assists in cooling the room. These findings provide a first insight on a sustainable solution that can be applied beyond the specific case study, improving indoor climate control and reducing environmental impact.
2025
no
Inglese
338
0
15
Goal 7: Affordable and clean energy
open
info:eu-repo/semantics/article
Contributo su RIVISTA::Articolo su rivista
262
Enhancing ventilated roof performance: A study on Maisotsenko indirect evaporative cooling for school buildings / Morselli, N.; Puglia, M.; Cossu, M.; Pedrazzi, S.; Allesina, G.; Tartarini, P.; Muscio, A.. - In: ENERGY AND BUILDINGS. - ISSN 0378-7788. - 338:(2025), pp. 0-15. [10.1016/j.enbuild.2025.115672]
Morselli, N.; Puglia, M.; Cossu, M.; Pedrazzi, S.; Allesina, G.; Tartarini, P.; Muscio, A.
7
   Avviso pubblico per la presentazione di Proposte di intervento per la creazione e il rafforzamento di “ecosistemi dell’innovazione”, costruzione di “leader territoriali di R&S” – Ecosistemi dell’Innovazione
   ECOSISTER
   Unione Europea – NextGenerationEU (nell’ambito del PNRR)
   Piano Nazionale di Ripresa e Resilienza – Missione 4 “Istruzione e ricerca” – Componente 2 “Dalla ricerca all’impresa” – Investimento 1.5
   DD. 3277/2021
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11380/1390449
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