undefined

Improving Skylight Geometry for Daytime Passive Radiative Cooling

Publiceringsår

2024

Upphovspersoner

Gopalakrishna Gangisetty; Kennet Tallgren; Cornelis A P Zevenhoven

Abstrakt

Åbo Akademi University (ÅAU) is researching a passive radiative cooling (PRC) skylight window prototype utilizing greenhouse gases (GHGs) that interact strongly with thermal radiation. The first prototype achieved 100 W/m2 passive cooling using two ZnS windows, one at the bottom and one at the top, both transparent to long-wave (LW) infrared, and a central window. The aim of this ongoing work is to improve the skylight design by utilizing computational fluid dynamics (CFD) software (Ansys Fluent). The objective of this design improvement is to eliminate the usage of central window used in the earlier design. In this improved design, sections of ZnS glass are positioned symmetrically, at the top and at the bottom. The remaining window is composed of conventional window glass, while the side walls are made of wood. Another objective entails using various greenhouse gases, such as CO2 and NH3, inside the skylight and subsequently calculating the transmittive radiative fluxes within the atmospheric window (8–14 μm) wavelength range, followed by a comparative analysis with using air. Thus far, the radiative heat fluxes achieved with the new skylight design are as follows: 85.5 W/m2 when CO2 is used as the participating medium, 83.0 W/m2 with air, and 88.5 W/m2 when NH3 is used. Additionally, temperatures of the ZnS Cleartran glasses give a calculated lowering of approximately 3 to 4 ℃ in comparison to the ambient temperature. The ultimate aim is to develop a transparent PRC skylight with a net cooling capacity >> 100 W/m2 without moving parts also during daytime.
Visa mer

Organisationer och upphovspersoner

Åbo Akademi

Gangisetty Gopalakrishna Orcid -palvelun logo

Tallgren Kennet Orcid -palvelun logo

Zevenhoven Cornelis A P Orcid -palvelun logo

Publikationstyp

Publikationsform

Artikel

Moderpublikationens typ

Konferens

Artikelstyp

Annan artikel

Målgrupp

Vetenskaplig

Kollegialt utvärderad

Kollegialt utvärderad

UKM:s publikationstyp

A4 Artikel i en konferenspublikation

Öppen tillgång

Öppen tillgänglighet i förläggarens tjänst

Nej

Parallellsparad

Nej

Övriga uppgifter

Vetenskapsområden

Fysik; Maskin- och produktionsteknik; Teknisk kemi, kemisk processteknik; Materialteknik; Nanoteknologi

Nyckelord

[object Object],[object Object],[object Object]

Förlagets internationalitet

Internationell

Språk

engelska

Internationell sampublikation

Nej

Sampublikation med ett företag

Nej

DOI

10.1007/978-3-031-67241-5_24

Publikationen ingår i undervisnings- och kulturministeriets datainsamling

Ja