Infrared Spectral Emissivity Dynamics of Surfaces Under Water Condensation

Author:

Lavielle Nicolas1ORCID,Othman Ahmed M.12ORCID,Hervé Armande1,Hamaoui Georges1ORCID,Fei Jipeng3,Tan Jun Yan3,Marty Frédéric1,Li Hong34ORCID,Mongruel Anne5ORCID,Beysens Daniel56ORCID,Nefzaoui Elyes1ORCID,Bourouina Tarik14ORCID

Affiliation:

1. ESYCOM lab UMR 9007 CNRS Univ Gustave Eiffel Marne‐la‐Vallée 77454 France

2. Faculty of Engineering Ain‐Shams University 1 Elsarayat St. Abbassia Cairo 11535 Egypt

3. School of Mechanical & Aerospace Engineering Nanyang Technological University Singapore 639798 Singapore

4. CINTRA IRL 3288 CNRS‐NTU‐THALES Nanyang Technological University Singapore 637553 Singapore

5. Physique et Mécanique des Milieux Hétérogènes CNRS ESPCI PSL Research University, Sorbonne Université, Université Paris Cité Paris 75005 France

6. OPUR, 2 rue Verderet Paris 75016 France

Abstract

AbstractWater condensation on a surface strongly affects its effective emissivity, especially in the atmospheric window, a wavelength range essential for outdoor applications related to energetically passive cooling and heating. The evolution of emissivity of a silicon surface during dropwise and filmwise water deposition is studied. The evolution of the spectral radiative properties shows that the increase in effective emissivity due to the growth of a droplet pattern is steeper than for a growing water film of equivalent thickness. The change of surface emissivity takes place in the first moments of condensation where droplets as small as 10 µm drastically impact the reflectance of the pristine surface. The upper limit of effective emissivity is reached for a droplet radius or film thickness of 50 µm. During dropwise condensation, effective emissivity is weighted by the drop surface coverage and then remains within an asymptotic maximum value of 0.8, while in case of filmwise condensation, it is shown to reach 0.9 corresponding to water emissivity. Micrometer‐scale spatially‐resolved infrared spectral images enable to correlate the spatial variation of spectral properties to the droplet size and localization. Such findings are of interest to the implementation of moisture‐controlled emissivity tuning and radiative sky‐coolers for dew harvesting.

Publisher

Wiley

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