Heat-And-Mass Transfer Relationship to Determine Shear Stress in Tubular Membrane Systems

Nicolas Rios Ratkovich, Ingmar Nopens

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    Abstract

    The main drawback of Membrane Bioreactors (MBRs) is the fouling of the membrane. One way to reduce this fouling is through controlling the hydrodynamics of the two-phase slug flow near the membrane surface. It has been proven in literature that the slug flow pattern has a higher scouring effect to remove particulates due to the high shear rates and high mass transfer between the membrane surface and the bulk region. However, to calculate the mass transfer coefficient in an efficient and accurate way is not straightforward. Indeed, for accurate determination, numerous complex experimental measurements are required. Therefore, this work proposes an alternative method that uses already existing heat transfer relationships for two phase flow and links them through a dimensionless number to the mass transfer coefficient (Sherwood number) to obtain an empirical relationship which can be used to determine the shear stress.
    OriginalsprogEngelsk
    TidsskriftInternational Journal of Heat and Mass Transfer
    Vol/bind55
    Udgave nummer21-22
    Sider (fra-til)6152–6162
    Antal sider11
    ISSN0017-9310
    DOI
    StatusUdgivet - 2012

    Emneord

    • Membrane Bioreactor
    • Heat-and-Mass Transfer Analogy
    • Shear Stress
    • Sherwood Number
    • Empirical Model

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