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Effect of compressibility on velocity profile and friction factor of gaseous laminar flows in a microtube

Murakami, Shintaro and Toyoda, Kaoru and Asako, Yutaka (2021) Effect of compressibility on velocity profile and friction factor of gaseous laminar flows in a microtube. Journal of Fluids Engineering, Transactions of the ASME, 143 (11). ISSN 0098-2202

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Official URL: http://dx.doi.org/10.1115/1.4051422

Abstract

Laminar flow of nitrogen gas in a microtube was simulated numerically to obtain velocity profile and Fanning friction factor in a quasi-fully developed region. The numerical procedure based on arbitrary-Lagrangian-Eulerian method solved two-dimensional compressible momentum and energy equations. The computations were performed for a wide range of Reynolds number in laminar flow regime with adiabatic wall condition. It was found that the velocity profile deviates from the parabola as Mach number increases, and the product of Fanning friction factor and Reynolds number is not a constant but a function of only Mach number. To explain the compressibility effect, a new theoretical flow model that gives the velocity profile of gaseous laminar flows in a microtube was proposed under the assumption of purely axial flow. The theoretical velocity profile is taking radial-direction density change into account and coincides with the numerically obtained velocity profile. The proposed flow model also shows that the Fanning friction factor of a compressible flow in a microtube is expressed by a quadratic function of Mach number. The coefficient of the Mach squared term is 40% of the numerically obtained correlation. The compressibility effect on friction factor of gaseous laminar flows in a microtube partly results from velocity profile change, which must occur to keep the mass velocity profile when density changes in radial direction. The remainder of the compressibility effect can be considered to result from actual mass transfer in the radial direction whose existence was demonstrated by the numerical results.

Item Type:Article
Uncontrolled Keywords:fanning friction factor, flow modelling, friction factors, microtube
Subjects:T Technology > TJ Mechanical engineering and machinery
Divisions:Malaysia-Japan International Institute of Technology
ID Code:94651
Deposited By: Yanti Mohd Shah
Deposited On:31 Mar 2022 15:51
Last Modified:31 Mar 2022 15:51

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