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    An Experimentally Validated Numerical Modeling Technique for Perforated Plate Heat Exchangers

    Source: Journal of Heat Transfer:;2010:;volume( 132 ):;issue: 011::page 111801
    Author:
    M. J. White
    ,
    G. F. Nellis
    ,
    W. Zhu
    ,
    Y. Gianchandani
    ,
    S. A. Klein
    DOI: 10.1115/1.4000673
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: Cryogenic and high-temperature systems often require compact heat exchangers with a high resistance to axial conduction in order to control the heat transfer induced by axial temperature differences. One attractive design for such applications is a perforated plate heat exchanger that utilizes high conductivity perforated plates to provide the stream-to-stream heat transfer and low conductivity spacers to prevent axial conduction between the perforated plates. This paper presents a numerical model of a perforated plate heat exchanger that accounts for axial conduction, external parasitic heat loads, variable fluid and material properties, and conduction to and from the ends of the heat exchanger. The numerical model is validated by experimentally testing several perforated plate heat exchangers that are fabricated using microelectromechanical systems based manufacturing methods. This type of heat exchanger was investigated for potential use in a cryosurgical probe. One of these heat exchangers included perforated plates with integrated platinum resistance thermometers. These plates provided in situ measurements of the internal temperature distribution in addition to the temperature, pressure, and flow rate measured at the inlet and exit ports of the device. The platinum wires were deposited between the fluid passages on the perforated plate and are used to measure the temperature at the interface between the wall material and the flowing fluid. The experimental testing demonstrates the ability of the numerical model to accurately predict both the overall performance and the internal temperature distribution of perforated plate heat exchangers over a range of geometry and operating conditions. The parameters that were varied include the axial length, temperature range, mass flow rate, and working fluid.
    keyword(s): Flow (Dynamics) , Temperature , Computer simulation , Heat exchangers , Fluids , Heat transfer AND Plates (structures) ,
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      An Experimentally Validated Numerical Modeling Technique for Perforated Plate Heat Exchangers

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    http://yetl.yabesh.ir/yetl1/handle/yetl/143736
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    contributor authorM. J. White
    contributor authorG. F. Nellis
    contributor authorW. Zhu
    contributor authorY. Gianchandani
    contributor authorS. A. Klein
    date accessioned2017-05-09T00:38:45Z
    date available2017-05-09T00:38:45Z
    date copyrightNovember, 2010
    date issued2010
    identifier issn0022-1481
    identifier otherJHTRAO-27900#111801_1.pdf
    identifier urihttp://yetl.yabesh.ir/yetl/handle/yetl/143736
    description abstractCryogenic and high-temperature systems often require compact heat exchangers with a high resistance to axial conduction in order to control the heat transfer induced by axial temperature differences. One attractive design for such applications is a perforated plate heat exchanger that utilizes high conductivity perforated plates to provide the stream-to-stream heat transfer and low conductivity spacers to prevent axial conduction between the perforated plates. This paper presents a numerical model of a perforated plate heat exchanger that accounts for axial conduction, external parasitic heat loads, variable fluid and material properties, and conduction to and from the ends of the heat exchanger. The numerical model is validated by experimentally testing several perforated plate heat exchangers that are fabricated using microelectromechanical systems based manufacturing methods. This type of heat exchanger was investigated for potential use in a cryosurgical probe. One of these heat exchangers included perforated plates with integrated platinum resistance thermometers. These plates provided in situ measurements of the internal temperature distribution in addition to the temperature, pressure, and flow rate measured at the inlet and exit ports of the device. The platinum wires were deposited between the fluid passages on the perforated plate and are used to measure the temperature at the interface between the wall material and the flowing fluid. The experimental testing demonstrates the ability of the numerical model to accurately predict both the overall performance and the internal temperature distribution of perforated plate heat exchangers over a range of geometry and operating conditions. The parameters that were varied include the axial length, temperature range, mass flow rate, and working fluid.
    publisherThe American Society of Mechanical Engineers (ASME)
    titleAn Experimentally Validated Numerical Modeling Technique for Perforated Plate Heat Exchangers
    typeJournal Paper
    journal volume132
    journal issue11
    journal titleJournal of Heat Transfer
    identifier doi10.1115/1.4000673
    journal fristpage111801
    identifier eissn1528-8943
    keywordsFlow (Dynamics)
    keywordsTemperature
    keywordsComputer simulation
    keywordsHeat exchangers
    keywordsFluids
    keywordsHeat transfer AND Plates (structures)
    treeJournal of Heat Transfer:;2010:;volume( 132 ):;issue: 011
    contenttypeFulltext
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