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    Experimental and Computational Investigation of Flow Boiling in a 52 μm Hydraulic Diameter Microchannel Evaporator With Inlet Restrictions and Heat Spreading

    Source: ASME Journal of Heat and Mass Transfer:;2024:;volume( 146 ):;issue: 006::page 61601-1
    Author:
    Anderson, Caleb
    ,
    Gao, Zhaosheng
    ,
    Hanchak, Michael
    ,
    Bandhauer, Todd
    DOI: 10.1115/1.4064688
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: Microchannel flow boiling presents an effective thermal management strategy for high heat flux (>1 kW/cm2) devices. Fundamental mechanisms of microchannel flow boiling behaviors are difficult to determine due to macroscopic limitations of experimental hardware. In addition, flow stabilizing features of microchannel evaporators such as inlet restrictions and heat spreading further complicate fluid flow and heat transfer dynamics. Computational models, when utilized with experiments, can provide a more detailed understanding of behaviors which cannot be determined experimentally. The present study developed a computational model for flow boiling heat transfer in a 52 μm silicon microchannel evaporator designed to cool a laser diode bar, with inlet restrictions and a nonuniform heating profile at the channel level. A conjugate heat transfer model along with a coupled level set and volume of fluid (CLSVOF) model was created in ansysfluent and compared with experimental flow boiling data to gain further insights into the performance of a realistic microdevice. Heat spreading in the channel outside of the heater footprint was observed due to the high thermal conductivity of the silicon substrate. The inlet orifices impacted local flow patterns by creating a large pressure drop and forming a recirculation zone immediately downstream. This behavior resulted in pressure recovery zones and regions of separated flow boiling behavior. Bubbly, slug, and churn flows were seen to be dominant flow regimes. The heat transfer coefficient was found to be dependent on heat flux and flow regime, and more weakly on mass flux and outlet vapor quality.
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      Experimental and Computational Investigation of Flow Boiling in a 52 μm Hydraulic Diameter Microchannel Evaporator With Inlet Restrictions and Heat Spreading

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    http://yetl.yabesh.ir/yetl1/handle/yetl/4295313
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    contributor authorAnderson, Caleb
    contributor authorGao, Zhaosheng
    contributor authorHanchak, Michael
    contributor authorBandhauer, Todd
    date accessioned2024-04-24T22:29:21Z
    date available2024-04-24T22:29:21Z
    date copyright3/15/2024 12:00:00 AM
    date issued2024
    identifier issn2832-8450
    identifier otherht_146_06_061601.pdf
    identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4295313
    description abstractMicrochannel flow boiling presents an effective thermal management strategy for high heat flux (>1 kW/cm2) devices. Fundamental mechanisms of microchannel flow boiling behaviors are difficult to determine due to macroscopic limitations of experimental hardware. In addition, flow stabilizing features of microchannel evaporators such as inlet restrictions and heat spreading further complicate fluid flow and heat transfer dynamics. Computational models, when utilized with experiments, can provide a more detailed understanding of behaviors which cannot be determined experimentally. The present study developed a computational model for flow boiling heat transfer in a 52 μm silicon microchannel evaporator designed to cool a laser diode bar, with inlet restrictions and a nonuniform heating profile at the channel level. A conjugate heat transfer model along with a coupled level set and volume of fluid (CLSVOF) model was created in ansysfluent and compared with experimental flow boiling data to gain further insights into the performance of a realistic microdevice. Heat spreading in the channel outside of the heater footprint was observed due to the high thermal conductivity of the silicon substrate. The inlet orifices impacted local flow patterns by creating a large pressure drop and forming a recirculation zone immediately downstream. This behavior resulted in pressure recovery zones and regions of separated flow boiling behavior. Bubbly, slug, and churn flows were seen to be dominant flow regimes. The heat transfer coefficient was found to be dependent on heat flux and flow regime, and more weakly on mass flux and outlet vapor quality.
    publisherThe American Society of Mechanical Engineers (ASME)
    titleExperimental and Computational Investigation of Flow Boiling in a 52 μm Hydraulic Diameter Microchannel Evaporator With Inlet Restrictions and Heat Spreading
    typeJournal Paper
    journal volume146
    journal issue6
    journal titleASME Journal of Heat and Mass Transfer
    identifier doi10.1115/1.4064688
    journal fristpage61601-1
    journal lastpage61601-14
    page14
    treeASME Journal of Heat and Mass Transfer:;2024:;volume( 146 ):;issue: 006
    contenttypeFulltext
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    DSpace software copyright © 2002-2015  DuraSpace
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