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This article is cited in 9 scientific papers (total in 9 papers)
Analysis of the turbulent boundary layer and skin-friction drag reduction of a flat plate by using the micro-blowing technique
H. N. Khaboshana, E. Yousefib, J. Svorcanc a Young Researchers and Elites Club, Science and Research Branch,
Tehran, Iran
b Department of Mechanical Engineering, Imam Khomeini International University, Qazvin, Iran
c University of Belgrade, Belgrade, Serbia
Abstract:
Numerical analyses of turbulent boundary layer parameters and skin-friction drag reduction on a flat plate under the
effect of air micro-blowing with the use of the SST $k{-}\omega$ turbulence model are performed. The macroscale characteristics of a
huge number of microjets are simulated by using a microporous wall model (MPWM) incorporated into ANSYS FLUENT by user-defined functions. Numerical results obtained within the Mach number range $\mathrm{M}=0.2{-}0.5$ (Reynolds number $\mathrm{Re}=2.88\cdot 10^6{-}7.20\cdot 10^6$) confirm the experimental data of other researchers. Furthermore, a slight increase in the boundary layer thickness, displacement thickness, and momentum thickness, as well as a decrease in the velocity gradient and shear friction are well captured. In comparison to a simple flat plate, applying air
micro-blowing reduces the skin-friction coefficient by $51 \%$ at the Mach number $\mathrm{M}=0.4$ and blowing fraction of $0.008$.
Additionally, the skin-friction coefficient decreases as the blowing fraction and Mach number increase.
Keywords:
drag reduction, micro-blowing technique, active flow control, turbulent boundary layer, flat plate.
Received: 10.06.2021 Revised: 28.06.2021 Accepted: 26.07.2021
Citation:
H. N. Khaboshan, E. Yousefi, J. Svorcan, “Analysis of the turbulent boundary layer and skin-friction drag reduction of a flat plate by using the micro-blowing technique”, Prikl. Mekh. Tekh. Fiz., 63:3 (2022), 62–74; J. Appl. Mech. Tech. Phys., 63:3 (2022), 425–436
Linking options:
https://www.mathnet.ru/eng/pmtf52 https://www.mathnet.ru/eng/pmtf/v63/i3/p62
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Abstract page: | 37 | References: | 13 | First page: | 5 |
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