4.7 Article

Are Nanofluids Suitable for Volumetric Absorption in PTC-CSP Plants? An Exemplified, Realistic Assessment with Characterized Metal-Oil Nanofluids

Journal

ENERGY & FUELS
Volume 36, Issue 15, Pages 8413-8421

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acs.energyfuels.2c01759

Keywords

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Funding

  1. Ministerio de Universidades del Gobierno de Espana
  2. NextGeneration EU programme of the European Union
  3. Ministerio de Ciencia e Innovacion del Gobierno de Espana [FEDER-UCA18-107510]
  4. 2014-2020 ERDF Operational Programme [FEDER-UCA18-107510]
  5. Consejeria de Transformacion Economica, Industria, Conocimiento y Universidades de la Junta de Andalucia
  6. call for Recualificacion del Sistema Universitario Espanol para 2021-2023 [RTI2018-096393-B-I00]
  7. [UNCA15-CE-2945]

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Concentrating solar power technology has the potential to reduce carbon dioxide emissions by mitigating the intermittency of wind and photovoltaic power. Nanofluids have been proposed as heat transfer fluids and volumetric absorbers to improve the efficiency of this technology. This study assesses the expected efficiencies of Pd and Au nanoplate-containing nanofluids in collectors and provides design requirements for achieving maximum working temperatures.
Concentrating sola r power (CSP) has the potential to make significant carbon dioxide emission cuts by mitigating the intermittency of wind and photovoltaic power, therefore boosting their presence in our energy landscape. The low achievable energy conversion efficiency with CSP defines a l i m i t for its operational value whose improvement could accelerate the deployment of this technology. The use of nanofluids as heat transfer fluids (HTF) has been proposed for such a purpose, if the physical properties that rule convection heat transfer are properly enhanced . More recently, nanofluids have been proposed to be used not only as HTF but also as volumetric absorbers for direct sunlight harvesting in CSP plants with parabolic-trough collectors (PTC), if the absorption and scattering profile of nanofluids provides good optical performance. Here, we report on the design requirements for the achievement of the maximum working temperatures and assess the expected efficiencies for surface and volumetric collectors with Pd and Au nanoplate-containing nanofluids, prepared using the eutectic and azeotropic mixture of biphenyl and diphenyl oxide (the conventional HTF in CSP-PTC plants) as a base fluid. Their stabi l i t y , spectral extinction, density, dynamic viscosity, thermal conductivity, and specific heat have been characterized. The efficiency analysis is based on numerical models for both types of collectors and considers the actual characteristics of these collectors and the optical, rheological, and thermal properties of the nanofluid which has been characterized. Different case scenarios are compared.

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