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The effect of creep flow on two-dimensional isoflux microchannels
Affiliation:1. School of Mechanical Engineering, Pusan National University, San 30, Jangjeon-dong, Geumjeong-gu, Busan 609-735, Republic of Korea;2. Department of Environmental Administration, Catholic University of Pusan, 57 Oryundae-ro, Geumjeong-gu, Busan 609-757, Republic of Korea;1. TIMA Laboratory (CNRS, Grenoble INP, UJF), 46, avenue Felix Viallet, 38031 Grenoble, France;2. Electronic and Microelectronic Laboratory, Sciences Faculty of Monastir, 5019 Monastir, Tunisia;3. College of Computer and Information Sciences, King Saud University, Saudi Arabia;1. National Engineering Research Center of Clean Coal Combustion, Xi’an Thermal Power Research Institute Co., Ltd., Xi’an 710032, PR China;2. State Key Laboratory of Multiphase Flow in Power Engineering, Xi’an Jiaotong University, Xi’an 710049, PR China;1. Université de Jijel, Laboratoire d’Energétique Appliquée et des Matériaux, Faculté des Sciences et de la Technologie, BP. 96, 18000 Jijel, Algeria;2. Université Constantine I, Laboratoire d’Energétique Appliquée et de Pollution LEAP, Faculté des Sciences de la Technologie, Route de Ain el Bey, 25000 Constantine, Algeria;3. Université de Reims Champagne-Ardenne, GRESPI/Laboratoire de Thermomécanique, Faculté des Sciences, BP. 1039, 51687 Reims, France
Abstract:Microchannel convective heat transfer and friction loss characteristics are numerically evaluated for gaseous, two-dimensional, steady state, laminar, constant wall heat flux flows. The effects of Knudsen number, accommodation coefficients, second-order slip boundary conditions, creep flow, and hydrodynamically/thermally developing flow are considered. These effects are compared through the Poiseuille number and the Nusselt number. Numerical values for the Poiseuille and Nusselt numbers are obtained using a continuum based three-dimensional, unsteady, compressible computational fluid dynamics algorithm that has been modified with slip boundary conditions. To verify the numerical results, analytic solutions of the hydrodynamically and thermally fully developed momentum and energy equations have been derived subject to both first- and second-order slip velocity and temperature jump boundary conditions. The resulting velocity and temperature profiles are then utilized to obtain the microchannel Poiseuille and Nusselt numbers as a function of Knudsen number, first- and second-order velocity slip and temperature jump coefficients, Brinkman number, and the ratio of the thermal creep velocity to the mean velocity. Excellent agreement between the numerical and analytical data is demonstrated. Second-order slip terms and creep velocity are shown to have significant effects on microchannel Poiseuille and Nusselt numbers within the slip flow regime.
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