Advances of Heat Transfer in Porous Media

This reprint is a collection of recent advanced studies in the field of heat and fluid flow in porous media. The pore size of the studied porous media in this reprint starts from a nanoscale, and the applications include the drying process of materials such as clay and lentil grain as well as the en...

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Bibliographic Details
Other Authors: Mobedi, Moghtada (Editor), Hooman, Kamel (Editor)
Format: Electronic Book Chapter
Language:English
Published: Basel MDPI - Multidisciplinary Digital Publishing Institute 2023
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Online Access:DOAB: download the publication
DOAB: description of the publication
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520 |a This reprint is a collection of recent advanced studies in the field of heat and fluid flow in porous media. The pore size of the studied porous media in this reprint starts from a nanoscale, and the applications include the drying process of materials such as clay and lentil grain as well as the enhancement of heat transfer by using high thermal conductive porous media such as metal foams and stacked woven wire mesh. The use of a suitable porous structure for helium gas cooling under high heat flux conditions of a nuclear fusion divertor is an interesting application of porous structures for heat transfer enhancement, which is discussed in this reprint. A method for the trade-off thermo-hydrodynamic performance of a porous medium, which is an important issue for heat transfer enhancement, is also discussed. In the performed numerical studies, different methods such as finite volume method, lumped analysis and molecular dynamics are employed. Heat and mass transfer in structural ceramic blocks is analyzed by an analytical and phenomenological approach. All chapters of this reprint are advanced studies including wide application areas of porous media as well as interesting computational models that are useful for the researchers in the field of "Heat Transfer in Porous Media". 
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653 |a mass 
653 |a heat 
653 |a sisal fiber 
653 |a experimental 
653 |a simulation 
653 |a drying 
653 |a lentil grain 
653 |a oblate spheroid 
653 |a modeling 
653 |a numerical simulation 
653 |a ceramic materials 
653 |a industrial brick 
653 |a lumped model 
653 |a metal foam 
653 |a graphite foam 
653 |a geometric modelling 
653 |a heat transfer 
653 |a porous media 
653 |a metal foams 
653 |a thickness ratio 
653 |a pore density 
653 |a porosity 
653 |a pressure drop 
653 |a trade-off 
653 |a TOPSIS 
653 |a unidirectional porous tube 
653 |a gas cooling 
653 |a high heat flux condition 
653 |a fusion reactor 
653 |a divertor 
653 |a effective thermal conductivity 
653 |a sintered particles 
653 |a porous silicon 
653 |a thermal cloak 
653 |a phonon localization 
653 |a molecular dynamics 
653 |a nanoscale 
653 |a porous media modeling 
653 |a woven wire-mesh 
653 |a LTNE 
653 |a correlations 
653 |a stacking types 
653 |a ceramic block 
653 |a lumped analysis 
653 |a analytical 
653 |a local thermal nonequilibrium model (LTNE) 
653 |a forced convection 
653 |a performance factor 
653 |a solar air heater 
653 |a single pass 
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