Investigation of Nanofluids Circulating in a Volumetric Solar Receiver

Author:

Zanetti Emanuele1,Dugaria Simone2,Biscaglia Francesca3,Agresti Filippo4,Fedele Laura5,Meneghetti Moreno3,Del Col Davide1

Affiliation:

1. Department of Industrial Engineering, University of Padova, via Venezia 1, Padova 35131, Italy

2. Faculty of Science and Technology, Free University of Bolzano-Bozen, Piazza Università 5, Bolzano 39100, Italy

3. Department of Chemical Sciences, University of Padova, via Marzolo 1, Padova 35131, Italy

4. CNR-ICMATE, Institute of Condensed Matter Chemistry and Technologies for Energy, National Research Council, Corso Stati Uniti 4, Padova 35127, Italy

5. CNR-ITC, Construction Technologies Institute, National Research Council, Corso Stati Uniti 4, Padova 35127, Italy

Abstract

Abstract Single-wall carbon nanohorn (SWCNHs)-based nanofluids have been proven to be promising media for the direct absorption of solar radiation due to their favorable optical properties and potential low cost. Still their stability in real working conditions is an open issue because they have been studied mainly under stagnant conditions, while limited information is available on the performance of these nanofluids during circulation in real systems. In the present work, the optical behavior of SWCNH-based nanofluids has been investigated with the aim of detecting possible effects of circulation and exposure to radiation, avoiding other effects such as thermal instability. An ad hoc experimental apparatus has been realized to check the stability of the circulating fluids in situ using a novel approach based on the use of pyranometers. Three suspensions are tested, two are surfactant stabilized and one is based on preoxidized and functionalized SWCNHs. Efficiency values higher than 90% were measured for more than 65 h of circulation. The effects of fluid circulation and exposure to solar radiation have been addressed, finding that the absorption efficiency decreases during tests due to the degradation of the optical properties and the nanofluid circulation is the main responsible for such degradation.

Publisher

ASME International

Subject

Fluid Flow and Transfer Processes,General Engineering,Condensed Matter Physics,General Materials Science

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