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    Impact of Wall Temperature on Aerothermal Characteristics of an Array of Surface Microstructures

    Source: Journal of Fluids Engineering:;2022:;volume( 145 ):;issue: 002::page 21203-1
    Author:
    Campanaro, D.
    ,
    He, L.
    DOI: 10.1115/1.4056036
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: The aero-thermal behavior of surface microstructures is of wide relevance, especially given the development of additive manufacturing (AM). Of particular interest is the interaction between fluid flow and heat transfer. In this work, two contrasting configurations, a flat plate boundary layer and an array of hemispheric microstructures are examined at three wall-inflow temperature ratios (TR): cooled (TR = 0.5), adiabatic (TR = 1) and heated wall (TR = 1.5). Due to compensation between fluid viscosity and velocity gradient in the boundary layer, the heat transfer effects may appear deceptively small if judged using the common aerothermal parameters (Cf, Nu). The authors find instead the local Reynolds number to be more usefully indicative of such aerothermal interaction. The scale-resolving large eddy simulations (LES) simulations at a range of Reynolds numbers show that the cooled wall case is characterized by a markedly earlier transition which takes place at a much lower (by 50%) bulk flow Reynolds number compared to a near-adiabatic case. Furthermore, it is shown that the incompressible flow LES solutions fail to capture the early transition under the same cooling condition. Finally, a regrouping of the nondimensional parameters (CD, Nu) with TR is proposed leading to a more unified characterization for easier scaling of wall heat transfer effects in practical applications.
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      Impact of Wall Temperature on Aerothermal Characteristics of an Array of Surface Microstructures

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    contributor authorCampanaro, D.
    contributor authorHe, L.
    date accessioned2023-08-16T18:15:58Z
    date available2023-08-16T18:15:58Z
    date copyright11/23/2022 12:00:00 AM
    date issued2022
    identifier issn0098-2202
    identifier otherfe_145_02_021203.pdf
    identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4291732
    description abstractThe aero-thermal behavior of surface microstructures is of wide relevance, especially given the development of additive manufacturing (AM). Of particular interest is the interaction between fluid flow and heat transfer. In this work, two contrasting configurations, a flat plate boundary layer and an array of hemispheric microstructures are examined at three wall-inflow temperature ratios (TR): cooled (TR = 0.5), adiabatic (TR = 1) and heated wall (TR = 1.5). Due to compensation between fluid viscosity and velocity gradient in the boundary layer, the heat transfer effects may appear deceptively small if judged using the common aerothermal parameters (Cf, Nu). The authors find instead the local Reynolds number to be more usefully indicative of such aerothermal interaction. The scale-resolving large eddy simulations (LES) simulations at a range of Reynolds numbers show that the cooled wall case is characterized by a markedly earlier transition which takes place at a much lower (by 50%) bulk flow Reynolds number compared to a near-adiabatic case. Furthermore, it is shown that the incompressible flow LES solutions fail to capture the early transition under the same cooling condition. Finally, a regrouping of the nondimensional parameters (CD, Nu) with TR is proposed leading to a more unified characterization for easier scaling of wall heat transfer effects in practical applications.
    publisherThe American Society of Mechanical Engineers (ASME)
    titleImpact of Wall Temperature on Aerothermal Characteristics of an Array of Surface Microstructures
    typeJournal Paper
    journal volume145
    journal issue2
    journal titleJournal of Fluids Engineering
    identifier doi10.1115/1.4056036
    journal fristpage21203-1
    journal lastpage21203-12
    page12
    treeJournal of Fluids Engineering:;2022:;volume( 145 ):;issue: 002
    contenttypeFulltext
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