Synergistic design of an integrated pv/distillation solar system based on nanofluid spectral splitting technique

In the present work, an improved hybrid photovoltaic/distillation (PV/D) solar collector with nanofluid-based spectral splitting technique is redesigned by a synergistic design strategy to overcome the flaws of previous experiment system. In such a system, gold nanofluid plays a dual role as a heat...

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Main Authors: Wei An, Yifan Zhang, Bo Pang, Jun Wu
Format: Article
Language:English
Published: AIMS Press 2021-05-01
Series:AIMS Energy
Subjects:
Online Access:https://www.aimspress.com/article/doi/10.3934/energy.2021026?viewType=HTML
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spelling doaj-4b17b6c2270b4023bc6a61ae95f791192021-09-13T02:18:44ZengAIMS PressAIMS Energy2333-83342021-05-019353455710.3934/energy.2021026Synergistic design of an integrated pv/distillation solar system based on nanofluid spectral splitting techniqueWei An0Yifan Zhang1Bo Pang2 Jun Wu3College of Mechanical Engineering, Tongji University, Shanghai, P.R. ChinaCollege of Mechanical Engineering, Tongji University, Shanghai, P.R. ChinaCollege of Mechanical Engineering, Tongji University, Shanghai, P.R. ChinaCollege of Mechanical Engineering, Tongji University, Shanghai, P.R. ChinaIn the present work, an improved hybrid photovoltaic/distillation (PV/D) solar collector with nanofluid-based spectral splitting technique is redesigned by a synergistic design strategy to overcome the flaws of previous experiment system. In such a system, gold nanofluid plays a dual role as a heat absorption medium and a spectral splitting filter to enhance the distillation of water. This system can maximize the utilization of solar energy in whole spectrum, and can obtain electricity and freshwater simultaneously. However, the design of such an integrated hybrid system also become more complicated. Optical and thermal features of the system must be considered carefully and should be synergistically designed in the system. Specifically, an optical simulation is used to improve the configurations of the evaporator and increase the PV efficiency of the system. Another numerical model based on computational fluid dynamics is performed to optimize the layout of moist air circulation and enhance the condensation of vapor in the system. The experimental results confirmed the potential of nanofluid-based spectral splitting technique in solar distillation application. In comparison with the conventional system, the total efficiency of solar energy in the improved system with gold nanoparticles of 3.1 μg/mL, 10.2 μg/mL and 14.1 μg/mL concentration increases by 59.27%, 62.80% and 64.40%, respectively. The water yield per unit area of the improved system with different nanoparticle concentration increases by 35.32%, 37.59% and 42.62%, respectively. These results indicate that the improved system not only can realize the self-sufficiency, but also can carry out a flexible adjustment between PV and desalination units by changing the optical properties of the nanofluid. It can meet a versatile demand of power and heat in more extensive applications.https://www.aimspress.com/article/doi/10.3934/energy.2021026?viewType=HTMLsolar distillationspectral splittingnanofluidpv/t
collection DOAJ
language English
format Article
sources DOAJ
author Wei An
Yifan Zhang
Bo Pang
Jun Wu
spellingShingle Wei An
Yifan Zhang
Bo Pang
Jun Wu
Synergistic design of an integrated pv/distillation solar system based on nanofluid spectral splitting technique
AIMS Energy
solar distillation
spectral splitting
nanofluid
pv/t
author_facet Wei An
Yifan Zhang
Bo Pang
Jun Wu
author_sort Wei An
title Synergistic design of an integrated pv/distillation solar system based on nanofluid spectral splitting technique
title_short Synergistic design of an integrated pv/distillation solar system based on nanofluid spectral splitting technique
title_full Synergistic design of an integrated pv/distillation solar system based on nanofluid spectral splitting technique
title_fullStr Synergistic design of an integrated pv/distillation solar system based on nanofluid spectral splitting technique
title_full_unstemmed Synergistic design of an integrated pv/distillation solar system based on nanofluid spectral splitting technique
title_sort synergistic design of an integrated pv/distillation solar system based on nanofluid spectral splitting technique
publisher AIMS Press
series AIMS Energy
issn 2333-8334
publishDate 2021-05-01
description In the present work, an improved hybrid photovoltaic/distillation (PV/D) solar collector with nanofluid-based spectral splitting technique is redesigned by a synergistic design strategy to overcome the flaws of previous experiment system. In such a system, gold nanofluid plays a dual role as a heat absorption medium and a spectral splitting filter to enhance the distillation of water. This system can maximize the utilization of solar energy in whole spectrum, and can obtain electricity and freshwater simultaneously. However, the design of such an integrated hybrid system also become more complicated. Optical and thermal features of the system must be considered carefully and should be synergistically designed in the system. Specifically, an optical simulation is used to improve the configurations of the evaporator and increase the PV efficiency of the system. Another numerical model based on computational fluid dynamics is performed to optimize the layout of moist air circulation and enhance the condensation of vapor in the system. The experimental results confirmed the potential of nanofluid-based spectral splitting technique in solar distillation application. In comparison with the conventional system, the total efficiency of solar energy in the improved system with gold nanoparticles of 3.1 μg/mL, 10.2 μg/mL and 14.1 μg/mL concentration increases by 59.27%, 62.80% and 64.40%, respectively. The water yield per unit area of the improved system with different nanoparticle concentration increases by 35.32%, 37.59% and 42.62%, respectively. These results indicate that the improved system not only can realize the self-sufficiency, but also can carry out a flexible adjustment between PV and desalination units by changing the optical properties of the nanofluid. It can meet a versatile demand of power and heat in more extensive applications.
topic solar distillation
spectral splitting
nanofluid
pv/t
url https://www.aimspress.com/article/doi/10.3934/energy.2021026?viewType=HTML
work_keys_str_mv AT weian synergisticdesignofanintegratedpvdistillationsolarsystembasedonnanofluidspectralsplittingtechnique
AT yifanzhang synergisticdesignofanintegratedpvdistillationsolarsystembasedonnanofluidspectralsplittingtechnique
AT bopang synergisticdesignofanintegratedpvdistillationsolarsystembasedonnanofluidspectralsplittingtechnique
AT junwu synergisticdesignofanintegratedpvdistillationsolarsystembasedonnanofluidspectralsplittingtechnique
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