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New preparation methods for coated heat exchangers in adsorption refrigeration and heat pumps applications

Adsorption refrigeration systems and heat pumps still possess a relatively reduced market share as compared to the traditional compression systems. Despite having the great advantage of being powered by cheap heat (instead of expensive electric work), the implementation of systems based on adsorptio...

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Autores principales: Banos, Oscar, Bergmann, Ute, Glorius, Maja, Ohmann, Sven, Seidel, Torsten, Breitkopf, Cornelia
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group UK 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9107492/
https://www.ncbi.nlm.nih.gov/pubmed/35568715
http://dx.doi.org/10.1038/s41598-022-11548-3
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author Banos, Oscar
Bergmann, Ute
Glorius, Maja
Ohmann, Sven
Seidel, Torsten
Breitkopf, Cornelia
author_facet Banos, Oscar
Bergmann, Ute
Glorius, Maja
Ohmann, Sven
Seidel, Torsten
Breitkopf, Cornelia
author_sort Banos, Oscar
collection PubMed
description Adsorption refrigeration systems and heat pumps still possess a relatively reduced market share as compared to the traditional compression systems. Despite having the great advantage of being powered by cheap heat (instead of expensive electric work), the implementation of systems based on adsorption principles remains limited to few specific applications. The main drawback that needs to be solved is their reduced specific power due to the low thermal conductivity and low stability of the adsorbents. The current state of the art of commercial adsorption cooling systems rely on adsorbers based on coated finned heat exchangers to optimize the cooling power. It is a well known result, that the reduction of the thickness of the coating derives in a reduction of the mass transport impedance, and that the increment of the ratio surface to volume of conductive structures increases the power without reducing the efficiency. The metallic fibres used in this work can offer a ratio of specific surface in the range of 2500–50,000 m(2)/m(3).Three methods of preparing very thin but stable salt-hydrate coatings on metallic surfaces, including metallic fibres, for the production of coated heat exchangers with high specific power, are presented for the first time. A surface treatment based on aluminium anodizing was chosen to create a stronger bond between coat and substrate. The microscopic structure of the resulting surface was analysed by Scan Electron Microscopy. To verify the presence of the desired species Attenuated Total Reflectance-Fourier Transformed Infrared and Energy dispersive X-ray spectroscopy were employed in the analysis. Their capacity to form hydrates was verified via simultaneous Thermogravimetric Analysis (TGA)/Differential Thermogravimetry (DTG). Over a mass difference of 0.07 g(water)/g(composite) was detected in the coating of MgSO(4), which showed signs of dehydration at temperatures around 60 °C, and repeatability after rehydration. Also positive results were obtained with SrCl(2) and ZnSO(4) with mass differences around 0.02 g/g below 100 °C. Hydroxyethyl Cellulose was chosen as additive to increase the stability and adherence of the coatings. The adsorption properties of the product were evaluated with simultaneous TGA-DTG, while their adherence was characterized by means of a procedure based on the test described in ISO2409. Coatings of CaCl(2) displayed a much improved consistency and adherence, while retaining its adsorption capacity, showing mass differences of around 0.1 g/g at temperatures below 100 °C. Also MgSO(4) retains the capacity of forming hydrates, showing a mass difference of more than 0.04 g/g below 100 °C. Finally, coated metallic fibres were investigated. Results show that the effective heat conductivity of a fibre structure coated with Al(2)(SO(4))(3) can be up to 4.7 times higher as compared to a block of pure Al(2)(SO(4))(3) . The coverage of the pursued coatings was visually investigated and the internal structure was evaluated by microscopic imaging of cross-sections. Coatings of around 50 µm of Al(2)(SO(4))(3) were generated, but in general the process requires optimization to achieve a more uniform distribution.
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spelling pubmed-91074922022-05-16 New preparation methods for coated heat exchangers in adsorption refrigeration and heat pumps applications Banos, Oscar Bergmann, Ute Glorius, Maja Ohmann, Sven Seidel, Torsten Breitkopf, Cornelia Sci Rep Article Adsorption refrigeration systems and heat pumps still possess a relatively reduced market share as compared to the traditional compression systems. Despite having the great advantage of being powered by cheap heat (instead of expensive electric work), the implementation of systems based on adsorption principles remains limited to few specific applications. The main drawback that needs to be solved is their reduced specific power due to the low thermal conductivity and low stability of the adsorbents. The current state of the art of commercial adsorption cooling systems rely on adsorbers based on coated finned heat exchangers to optimize the cooling power. It is a well known result, that the reduction of the thickness of the coating derives in a reduction of the mass transport impedance, and that the increment of the ratio surface to volume of conductive structures increases the power without reducing the efficiency. The metallic fibres used in this work can offer a ratio of specific surface in the range of 2500–50,000 m(2)/m(3).Three methods of preparing very thin but stable salt-hydrate coatings on metallic surfaces, including metallic fibres, for the production of coated heat exchangers with high specific power, are presented for the first time. A surface treatment based on aluminium anodizing was chosen to create a stronger bond between coat and substrate. The microscopic structure of the resulting surface was analysed by Scan Electron Microscopy. To verify the presence of the desired species Attenuated Total Reflectance-Fourier Transformed Infrared and Energy dispersive X-ray spectroscopy were employed in the analysis. Their capacity to form hydrates was verified via simultaneous Thermogravimetric Analysis (TGA)/Differential Thermogravimetry (DTG). Over a mass difference of 0.07 g(water)/g(composite) was detected in the coating of MgSO(4), which showed signs of dehydration at temperatures around 60 °C, and repeatability after rehydration. Also positive results were obtained with SrCl(2) and ZnSO(4) with mass differences around 0.02 g/g below 100 °C. Hydroxyethyl Cellulose was chosen as additive to increase the stability and adherence of the coatings. The adsorption properties of the product were evaluated with simultaneous TGA-DTG, while their adherence was characterized by means of a procedure based on the test described in ISO2409. Coatings of CaCl(2) displayed a much improved consistency and adherence, while retaining its adsorption capacity, showing mass differences of around 0.1 g/g at temperatures below 100 °C. Also MgSO(4) retains the capacity of forming hydrates, showing a mass difference of more than 0.04 g/g below 100 °C. Finally, coated metallic fibres were investigated. Results show that the effective heat conductivity of a fibre structure coated with Al(2)(SO(4))(3) can be up to 4.7 times higher as compared to a block of pure Al(2)(SO(4))(3) . The coverage of the pursued coatings was visually investigated and the internal structure was evaluated by microscopic imaging of cross-sections. Coatings of around 50 µm of Al(2)(SO(4))(3) were generated, but in general the process requires optimization to achieve a more uniform distribution. Nature Publishing Group UK 2022-05-14 /pmc/articles/PMC9107492/ /pubmed/35568715 http://dx.doi.org/10.1038/s41598-022-11548-3 Text en © The Author(s) 2022 https://creativecommons.org/licenses/by/4.0/Open Access This article is licensed under a Creative Commons Attribution 4.0 International License, which permits use, sharing, adaptation, distribution and reproduction in any medium or format, as long as you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons licence, and indicate if changes were made. The images or other third party material in this article are included in the article's Creative Commons licence, unless indicated otherwise in a credit line to the material. If material is not included in the article's Creative Commons licence and your intended use is not permitted by statutory regulation or exceeds the permitted use, you will need to obtain permission directly from the copyright holder. To view a copy of this licence, visit http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Article
Banos, Oscar
Bergmann, Ute
Glorius, Maja
Ohmann, Sven
Seidel, Torsten
Breitkopf, Cornelia
New preparation methods for coated heat exchangers in adsorption refrigeration and heat pumps applications
title New preparation methods for coated heat exchangers in adsorption refrigeration and heat pumps applications
title_full New preparation methods for coated heat exchangers in adsorption refrigeration and heat pumps applications
title_fullStr New preparation methods for coated heat exchangers in adsorption refrigeration and heat pumps applications
title_full_unstemmed New preparation methods for coated heat exchangers in adsorption refrigeration and heat pumps applications
title_short New preparation methods for coated heat exchangers in adsorption refrigeration and heat pumps applications
title_sort new preparation methods for coated heat exchangers in adsorption refrigeration and heat pumps applications
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9107492/
https://www.ncbi.nlm.nih.gov/pubmed/35568715
http://dx.doi.org/10.1038/s41598-022-11548-3
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