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Mono- and Multi-Objective CFD Optimization of Graded Foam-Filled Channels

Graded foam-filled channels are a very promising solution for improving the thermal performance of heat sinks because of their customized structures that leave large amounts of room for heat transfer enhancement. Accordingly, this paper proposes a comprehensive optimization framework to address the...

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Autores principales: Mauro, Gerardo Maria, Iasiello, Marcello, Bianco, Nicola, Chiu, Wilson K. S., Naso, Vincenzo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8839521/
https://www.ncbi.nlm.nih.gov/pubmed/35160914
http://dx.doi.org/10.3390/ma15030968
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author Mauro, Gerardo Maria
Iasiello, Marcello
Bianco, Nicola
Chiu, Wilson K. S.
Naso, Vincenzo
author_facet Mauro, Gerardo Maria
Iasiello, Marcello
Bianco, Nicola
Chiu, Wilson K. S.
Naso, Vincenzo
author_sort Mauro, Gerardo Maria
collection PubMed
description Graded foam-filled channels are a very promising solution for improving the thermal performance of heat sinks because of their customized structures that leave large amounts of room for heat transfer enhancement. Accordingly, this paper proposes a comprehensive optimization framework to address the design of such components, which are subjected to a uniform heat flux boundary condition. The graded foam is achieved by parameterizing the spatial distributions of porosity and/or Pores Per Inch (PPI). Mono- and multi-objective optimizations are implemented to find the best combination of the foam’s fluid-dynamic, geometrical and morphological design variables. The mono-objective approach addresses the Performance Evaluation Criterion (PEC) as an objective function to maximize the thermal efficiency of graded foams. The multi-objective approach addresses different objective functions by means of Pareto optimization to identify the optimal tradeoff solutions between heat transfer enhancement and pressure drop reduction. Optimizations are performed by assuming a local thermal non-equilibrium in the foam. They allowed us to achieve a 1.51 PEC value with H* = 0.50, Re(H) = 15000, i(ε) = i(PPI) = 0.50, ε(0) = 0.85, ε(1) = 0.97, PPI(0) = 5, PPI(1) = 40, and k(s)(→f) = 10(4) as the design variables. For the three multi-objective functions investigated, one can extrapolate the optimum from the Pareto front via the utopia criterion, obtaining [Formula: see text] = 502 W/m(2) K and Δp = 80 Pa, [Formula: see text] = 2790 and f = 42, [Formula: see text] = 0.011, and Δp* = 91. The optimal solutions provide original insights and guidelines for the thermal design of graded foam-filled channels.
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spelling pubmed-88395212022-02-13 Mono- and Multi-Objective CFD Optimization of Graded Foam-Filled Channels Mauro, Gerardo Maria Iasiello, Marcello Bianco, Nicola Chiu, Wilson K. S. Naso, Vincenzo Materials (Basel) Article Graded foam-filled channels are a very promising solution for improving the thermal performance of heat sinks because of their customized structures that leave large amounts of room for heat transfer enhancement. Accordingly, this paper proposes a comprehensive optimization framework to address the design of such components, which are subjected to a uniform heat flux boundary condition. The graded foam is achieved by parameterizing the spatial distributions of porosity and/or Pores Per Inch (PPI). Mono- and multi-objective optimizations are implemented to find the best combination of the foam’s fluid-dynamic, geometrical and morphological design variables. The mono-objective approach addresses the Performance Evaluation Criterion (PEC) as an objective function to maximize the thermal efficiency of graded foams. The multi-objective approach addresses different objective functions by means of Pareto optimization to identify the optimal tradeoff solutions between heat transfer enhancement and pressure drop reduction. Optimizations are performed by assuming a local thermal non-equilibrium in the foam. They allowed us to achieve a 1.51 PEC value with H* = 0.50, Re(H) = 15000, i(ε) = i(PPI) = 0.50, ε(0) = 0.85, ε(1) = 0.97, PPI(0) = 5, PPI(1) = 40, and k(s)(→f) = 10(4) as the design variables. For the three multi-objective functions investigated, one can extrapolate the optimum from the Pareto front via the utopia criterion, obtaining [Formula: see text] = 502 W/m(2) K and Δp = 80 Pa, [Formula: see text] = 2790 and f = 42, [Formula: see text] = 0.011, and Δp* = 91. The optimal solutions provide original insights and guidelines for the thermal design of graded foam-filled channels. MDPI 2022-01-27 /pmc/articles/PMC8839521/ /pubmed/35160914 http://dx.doi.org/10.3390/ma15030968 Text en © 2022 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 Article
Mauro, Gerardo Maria
Iasiello, Marcello
Bianco, Nicola
Chiu, Wilson K. S.
Naso, Vincenzo
Mono- and Multi-Objective CFD Optimization of Graded Foam-Filled Channels
title Mono- and Multi-Objective CFD Optimization of Graded Foam-Filled Channels
title_full Mono- and Multi-Objective CFD Optimization of Graded Foam-Filled Channels
title_fullStr Mono- and Multi-Objective CFD Optimization of Graded Foam-Filled Channels
title_full_unstemmed Mono- and Multi-Objective CFD Optimization of Graded Foam-Filled Channels
title_short Mono- and Multi-Objective CFD Optimization of Graded Foam-Filled Channels
title_sort mono- and multi-objective cfd optimization of graded foam-filled channels
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8839521/
https://www.ncbi.nlm.nih.gov/pubmed/35160914
http://dx.doi.org/10.3390/ma15030968
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