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    Using Direct Simulation Monte Carlo With Improved Boundary Conditions for Heat and Mass Transfer in Microchannels

    Source: Journal of Heat Transfer:;2010:;volume( 132 ):;issue: 004::page 41008
    Author:
    I. Wong
    ,
    C. K. Lam
    ,
    P. Xu
    ,
    R. X. Chen
    ,
    J. Yang
    ,
    J. J. Ye
    ,
    Z. H. Zhu
    ,
    J. Y. Zheng
    DOI: 10.1115/1.4000880
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: Micro-electromechanical systems and nano-electromechanical systems have attracted a great deal of attention in recent years. The flow and heat transfer behaviors of micromachines for separation applications are usually different from that of macro counterparts. In this paper, heat and mass transfer characteristics of rarefied nitrogen gas flows in microchannels are investigated using direct simulation Monte Carlo with improved pressure boundary conditions. The influence of aspect ratio and wall temperature on mass flowrate and wall heat flux in microchannels are studied parametrically. In order to examine the aspect ratio effect on heat and mass transfer behaviors, the wall temperature is set constant at 350 K and the aspect ratio of the microchannel varies from 5 to 20. The results show that as the aspect ratio increases, the velocity of the flow decreases, so does the mass flowrate. In a small aspect ratio channel, the heat transfer occurs throughout the microchannel; as the aspect ratio of the microchannel increases, the region of thermal equilibrium extends. To investigate the effects of wall temperature (Tw) on the mass flowrate and wall heat flux in a microchannel, the temperature of the incoming gas flow (Tin) is set constant at 300 K and the wall temperature varies from 200 K to 800 K while the aspect ratio is remained unchanged. Results show that majority of the wall heat flux stays within the channel entrance region and drops to nearly zero at the halfway in the channel. When Tw<Tin, under the restriction of pressure-driven condition and continuity of pressure, the molecular number density of the flow decreases along the flow direction after a short increase at the entrance region. When Tw>Tin, the molecular number density of the flow drops rapidly near the inlet and the temperature of the gas flow increases along the channel. As Tw increases, the flow becomes more rarefied, the mass flowrate decreases, and the resistance at the entrance region increases. Furthermore, when Tw>Tin, a sudden jump of heat transfer flux and temperature are observed at the exit region of the channel.
    keyword(s): Pressure , Flow (Dynamics) , Heat , Temperature , Mass transfer , Channels (Hydraulic engineering) , Boundary-value problems , Microchannels , Simulation , Heat transfer , Wall temperature AND Gas flow ,
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      Using Direct Simulation Monte Carlo With Improved Boundary Conditions for Heat and Mass Transfer in Microchannels

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    http://yetl.yabesh.ir/yetl1/handle/yetl/143888
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    • Journal of Heat Transfer

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    contributor authorI. Wong
    contributor authorC. K. Lam
    contributor authorP. Xu
    contributor authorR. X. Chen
    contributor authorJ. Yang
    contributor authorJ. J. Ye
    contributor authorZ. H. Zhu
    contributor authorJ. Y. Zheng
    date accessioned2017-05-09T00:39:01Z
    date available2017-05-09T00:39:01Z
    date copyrightApril, 2010
    date issued2010
    identifier issn0022-1481
    identifier otherJHTRAO-27885#041008_1.pdf
    identifier urihttp://yetl.yabesh.ir/yetl/handle/yetl/143888
    description abstractMicro-electromechanical systems and nano-electromechanical systems have attracted a great deal of attention in recent years. The flow and heat transfer behaviors of micromachines for separation applications are usually different from that of macro counterparts. In this paper, heat and mass transfer characteristics of rarefied nitrogen gas flows in microchannels are investigated using direct simulation Monte Carlo with improved pressure boundary conditions. The influence of aspect ratio and wall temperature on mass flowrate and wall heat flux in microchannels are studied parametrically. In order to examine the aspect ratio effect on heat and mass transfer behaviors, the wall temperature is set constant at 350 K and the aspect ratio of the microchannel varies from 5 to 20. The results show that as the aspect ratio increases, the velocity of the flow decreases, so does the mass flowrate. In a small aspect ratio channel, the heat transfer occurs throughout the microchannel; as the aspect ratio of the microchannel increases, the region of thermal equilibrium extends. To investigate the effects of wall temperature (Tw) on the mass flowrate and wall heat flux in a microchannel, the temperature of the incoming gas flow (Tin) is set constant at 300 K and the wall temperature varies from 200 K to 800 K while the aspect ratio is remained unchanged. Results show that majority of the wall heat flux stays within the channel entrance region and drops to nearly zero at the halfway in the channel. When Tw<Tin, under the restriction of pressure-driven condition and continuity of pressure, the molecular number density of the flow decreases along the flow direction after a short increase at the entrance region. When Tw>Tin, the molecular number density of the flow drops rapidly near the inlet and the temperature of the gas flow increases along the channel. As Tw increases, the flow becomes more rarefied, the mass flowrate decreases, and the resistance at the entrance region increases. Furthermore, when Tw>Tin, a sudden jump of heat transfer flux and temperature are observed at the exit region of the channel.
    publisherThe American Society of Mechanical Engineers (ASME)
    titleUsing Direct Simulation Monte Carlo With Improved Boundary Conditions for Heat and Mass Transfer in Microchannels
    typeJournal Paper
    journal volume132
    journal issue4
    journal titleJournal of Heat Transfer
    identifier doi10.1115/1.4000880
    journal fristpage41008
    identifier eissn1528-8943
    keywordsPressure
    keywordsFlow (Dynamics)
    keywordsHeat
    keywordsTemperature
    keywordsMass transfer
    keywordsChannels (Hydraulic engineering)
    keywordsBoundary-value problems
    keywordsMicrochannels
    keywordsSimulation
    keywordsHeat transfer
    keywordsWall temperature AND Gas flow
    treeJournal of Heat Transfer:;2010:;volume( 132 ):;issue: 004
    contenttypeFulltext
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