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Materials for High Temperature Liquid Lead Storage for Concentrated Solar Power (CSP) Air Tower Systems

Today the technical limit for solar towers is represented by the temperature that can be reached with current accumulation and exchange fluids (molten salts are generally adopted and the max temperatures are generally below 600 °C), even if other solutions have been suggested that reach 800 °C. An i...

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Autores principales: Rinaldi, Antonio, Barbieri, Giuseppe, Kosykh, Eduard, Szakalos, Peter, Testani, Claudio
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8231606/
https://www.ncbi.nlm.nih.gov/pubmed/34204775
http://dx.doi.org/10.3390/ma14123261
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author Rinaldi, Antonio
Barbieri, Giuseppe
Kosykh, Eduard
Szakalos, Peter
Testani, Claudio
author_facet Rinaldi, Antonio
Barbieri, Giuseppe
Kosykh, Eduard
Szakalos, Peter
Testani, Claudio
author_sort Rinaldi, Antonio
collection PubMed
description Today the technical limit for solar towers is represented by the temperature that can be reached with current accumulation and exchange fluids (molten salts are generally adopted and the max temperatures are generally below 600 °C), even if other solutions have been suggested that reach 800 °C. An innovative solution based on liquid lead has been proposed in an ongoing experimental project named Nextower. The Nextower project aims to improve current technologies of the solar sector by transferring experience, originally consolidated in the field of nuclear plants, to accumulate heat at higher temperatures (T = 850–900 °C) through the use of liquid lead heat exchangers. The adoption of molten lead as a heat exchange fluid poses important criticalities of both corrosion and creep resistance, due to the temperatures and structural stresses reached during service. Liquid lead corrosion issues and solutions in addition to creep-resistant material selection are discussed. The experimental activities focused on technical solutions adopted to overcome these problems in terms of the selected materials and technologies. Corrosion laboratory tests have been designed in order to verify if structural 800H steel coated with 6 mm of FeCrAl alloy layers are able to resist the liquid lead attack up to 900 °C and for 1000 h or more. The metallographic results were obtained by mean of scanning electron microscopy with an energy dispersive microprobe confirm that the 800H steel shows no sign of corrosion after the completion of the tests.
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spelling pubmed-82316062021-06-26 Materials for High Temperature Liquid Lead Storage for Concentrated Solar Power (CSP) Air Tower Systems Rinaldi, Antonio Barbieri, Giuseppe Kosykh, Eduard Szakalos, Peter Testani, Claudio Materials (Basel) Communication Today the technical limit for solar towers is represented by the temperature that can be reached with current accumulation and exchange fluids (molten salts are generally adopted and the max temperatures are generally below 600 °C), even if other solutions have been suggested that reach 800 °C. An innovative solution based on liquid lead has been proposed in an ongoing experimental project named Nextower. The Nextower project aims to improve current technologies of the solar sector by transferring experience, originally consolidated in the field of nuclear plants, to accumulate heat at higher temperatures (T = 850–900 °C) through the use of liquid lead heat exchangers. The adoption of molten lead as a heat exchange fluid poses important criticalities of both corrosion and creep resistance, due to the temperatures and structural stresses reached during service. Liquid lead corrosion issues and solutions in addition to creep-resistant material selection are discussed. The experimental activities focused on technical solutions adopted to overcome these problems in terms of the selected materials and technologies. Corrosion laboratory tests have been designed in order to verify if structural 800H steel coated with 6 mm of FeCrAl alloy layers are able to resist the liquid lead attack up to 900 °C and for 1000 h or more. The metallographic results were obtained by mean of scanning electron microscopy with an energy dispersive microprobe confirm that the 800H steel shows no sign of corrosion after the completion of the tests. MDPI 2021-06-12 /pmc/articles/PMC8231606/ /pubmed/34204775 http://dx.doi.org/10.3390/ma14123261 Text en © 2021 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Communication
Rinaldi, Antonio
Barbieri, Giuseppe
Kosykh, Eduard
Szakalos, Peter
Testani, Claudio
Materials for High Temperature Liquid Lead Storage for Concentrated Solar Power (CSP) Air Tower Systems
title Materials for High Temperature Liquid Lead Storage for Concentrated Solar Power (CSP) Air Tower Systems
title_full Materials for High Temperature Liquid Lead Storage for Concentrated Solar Power (CSP) Air Tower Systems
title_fullStr Materials for High Temperature Liquid Lead Storage for Concentrated Solar Power (CSP) Air Tower Systems
title_full_unstemmed Materials for High Temperature Liquid Lead Storage for Concentrated Solar Power (CSP) Air Tower Systems
title_short Materials for High Temperature Liquid Lead Storage for Concentrated Solar Power (CSP) Air Tower Systems
title_sort materials for high temperature liquid lead storage for concentrated solar power (csp) air tower systems
topic Communication
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8231606/
https://www.ncbi.nlm.nih.gov/pubmed/34204775
http://dx.doi.org/10.3390/ma14123261
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