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Switchable multicyclic adsorption-based atmospheric water harvesting with solar and radiative sky cooling thermal concentration and heat pumps
ID Poredoš, Primož (Author), ID Shan, He (Author), ID Shao, Zhao (Author), ID Deng, Fangfang (Author), ID Zavrl, Eva (Author), ID Žižak, Tej (Author), ID Arkar, Ciril (Author), ID Gatarić, Pero (Author), ID Wang, Ruzhu (Author)

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Abstract
Water scarcity affects approximately four billion people worldwide and severely impacts 30 % of Europe’s territory, particularly in arid, landlocked regions with limited surface water. The energy–air–water nexus underscores the complex interplay between atmospheric moisture and the energy required for freshwater production. While recent progress since 2017 has advanced single-cycle diurnal atmospheric water harvesting (AWH) using sorbent materials, few studies have addressed material-to-system co-design for scalable, cost-effective operation across diverse conditions. To fill this gap, we experimentally evaluated activated carbon fiber felt loaded with hygroscopic LiCl in controlled temperature and humidity chamber. Furthermore, we utilized a mathematical model coupling sorption rates dynamics with simulations of passive thermal concentration using radiative sky cooling, solar heating, and heat pump technologies. The key novelty of this work lies in a comprehensive design and calculation framework for switchable, multicyclic AWH systems, integrating material properties with system-level performance. This interdisciplinary approach enables more efficient control of adsorption and desorption processes critical for continuous atmospheric moisture extraction. Our research demonstrates the significance of leveraging sky-based cooling concentration (heat emitter reaching 10 °C) and solar thermal concentration (heat absorber reaching 115 °C) to achieve breakthroughs in entirely passive water harvesters for arid conditions, potentially almost tripling (2.7x and 2.9x) daily water release compared to the baseline scenario with adsorption/desorption at 25 °C/75 °C and RH 15–30 %/11 %, respectively. Additionally, we highlight that optimal refrigerant selection, considering operating temperatures and sorbent characteristics, can achieve a 138 % improvement when the coefficient of performance is coupled with material water release at RH15 %.

Language:English
Keywords:atmospheric water harvesting, radiative sky cooling materials, spectral selective materials, solar energy, thermal concentration, energy efficiency, numerical model, heat and mass transfer, COMSOL Multiphysics simulations, multicyclic process, isotherm shift, radiative sky cooling, water release optimization, heat pumps
Work type:Article
Typology:1.01 - Original Scientific Article
Organization:FS - Faculty of Mechanical Engineering
Publication status:Published
Publication version:Version of Record
Year:2025
Number of pages:18 str.
Numbering:Vol. 332, art. 137255
PID:20.500.12556/RUL-170859 This link opens in a new window
UDC:620.9:502.131.1
ISSN on article:1873-6785
DOI:10.1016/j.energy.2025.137255 This link opens in a new window
COBISS.SI-ID:243036931 This link opens in a new window
Publication date in RUL:18.07.2025
Views:836
Downloads:417
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Record is a part of a journal

Title:Energy
Publisher:Elsevier
ISSN:1873-6785
COBISS.SI-ID:15306011 This link opens in a new window

Licences

License:CC BY 4.0, Creative Commons Attribution 4.0 International
Link:http://creativecommons.org/licenses/by/4.0/
Description:This is the standard Creative Commons license that gives others maximum freedom to do what they want with the work as long as they credit the author.

Secondary language

Language:Slovenian
Keywords:pridobivanje vode iz atmosfere, dnevno sevalni materiali, spektralni selektivni materiali, solarna energija, termalna koncentracija, energetska učinkovitost, numerični model, prenos toplote in snovi, COMSOL Multiphysics simulacije

Projects

Funder:ARIS - Slovenian Research and Innovation Agency
Project number:J2-50222
Name:Novi pristopi h kontinuirnemu pridobivanju atmosferske vode s hidrogeli na osnovi izmenjave sevalne energije z vesoljem in koriščenja odpadne toplote

Funder:ARIS - Slovenian Research and Innovation Agency
Project number:L7-4495
Name:Zelene stene za trajnostne stavbe in mesta prihodnosti

Funder:ARIS - Slovenian Research and Innovation Agency
Funding programme:University of Ljubljana, Interdisciplinary project
Name:Green Urban Communities of the Future

Funder:ARIS - Slovenian Research and Innovation Agency
Project number:P2-0223
Name:Prenos toplote in snovi

Funder:National Natural Science Foundation of China
Funding programme:Research Fund for International Young Scientists
Project number:52150410421

Funder:National Natural Science Foundation of China
Project number:52376200

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