Articles producció científicaEnginyeria Mecànica

Heat Transfer and Fluid Flow Characteristics in a Micro Heat Exchanger Employing Warm Nanofluids for Cooling of Electronic Components

  • Datos identificativos

    Identificador:  imarina:9369691
    Autores:  Mokrane, M; Bourouis, M
    Resumen:
    The heat transfer enhancement and hydrodynamic characteristics of nanofluid use in a micro heat exchanger is investigated for cooling electronic components working in hot climatic conditions. The cooling fluid employed was water and TiO2 nanoparticles at mass concentrations of 1% and 5%, the Reynolds numbers ranged from 400 to 2000, and the inlet temperatures ranged between 35 degrees C and 65 degrees C. At a nanofluid inlet temperature of 55 degrees C and a nanoparticle concentration of 1%, the Nusselt number increased by 23% up to 54% as the Reynolds number varied between 400 and 2000. At a nanoparticle concentration of 5%, the percentages that correspondingly enhanced the Nusselt number were 32% and 63%. The temperature of the electronic heating component decreased by 4.6-5.2 degrees C when the nanofluid concentration was increased from 0 to 5% at a Reynolds number of 400 and a nanofluid inlet temperature of 35 degrees C. Small increments in the pressure drop of about 6% and 13% were observed at nanofluid concentrations of 1% and 5%, respectively. With nanoparticle concentrations of 1% and 5%, a Reynolds number of 2000, and a nanofluid inlet temperature of 35 degrees C, performance evaluation criterion (PEC) values of 1.36 and 1.45 were obtained. When the nanofluid inlet temperature increased to 65 degrees C, the PEC parameter decreased to 1.02-1.10 for both concentrations.
  • Otros:

    Enlace a la fuente original: https://www.mdpi.com/1996-1073/17/10/2383
    Referencia de l'ítem segons les normes APA: Mokrane, M; Bourouis, M (2024). Heat Transfer and Fluid Flow Characteristics in a Micro Heat Exchanger Employing Warm Nanofluids for Cooling of Electronic Components. Energies, 17(10), 2383-. DOI: 10.3390/en17102383
    Referencia al articulo segun fuente origial: Energies. 17 (10): 2383-
    DOI del artículo: 10.3390/en17102383
    Año de publicación de la revista: 2024-05-01
    Entidad: Universitat Rovira i Virgili
    Versión del articulo depositado: info:eu-repo/semantics/publishedVersion
    Fecha de alta del registro: 2026-05-09
    Autor/es de la URV: Bourouis Chebata, Mahmoud
    Departamento: Enginyeria Mecànica
    URL Documento de licencia: https://repositori.urv.cat/ca/proteccio-de-dades/
    Tipo de publicación: Journal Publications
    Autor según el artículo: Mokrane, M; Bourouis, M
    Acceso a la licencia de uso: https://creativecommons.org/licenses/by/3.0/es/
    Áreas temáticas: Renewable energy, sustainability and the environment, General computer science, Fuel technology, Engineering (miscellaneous), Engenharias ii, Energy engineering and power technology, Energy (miscellaneous), Energy & fuels, Electrical and electronic engineering, Control and optimization, Ciências agrárias i, Building and construction, Administração pública e de empresas, ciências contábeis e turismo
    Direcció de correo del autor: mahmoud.bourouis@urv.cat
  • Palabras clave:

    Water
    Transfer enhancement
    Single-phase
    Pressure-drop
    Performance
    Optimization
    Nanofluids
    Microchannel
    Micro heat exchanger
    Friction
    Cooling of electronic heating components
    Constructal-theory
    Channel
    Cfd simulation
    Cfd simulatio
    Control and Optimization
    Electrical and Electronic Engineering
    Energy & Fuels
    Energy (Miscellaneous)
    Energy Engineering and Power Technology
    Engineering (Miscellaneous)
    Fuel Technology
    Renewable Energy
    Sustainability and the Environment
    General computer science
    Engenharias ii
    Ciências agrárias i
    Building and construction
    Administração pública e de empresas
    ciências contábeis e turismo
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