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Investigation of the Flow behind the Roughness Element on the UAV Surface at a Favorable Pressure Gradient

https://doi.org/10.25205/2541-9447-2020-15-2-61-72

Abstract

In a wind tunnel of low subsonic speeds, an experimental study was conducted of the windward flow of a trapezoidal model of a flying wing (UAV) with a locally installed perturbation generator in the region of maximum susceptibility on its surface. The generator was a three-dimensional roughness element whose height was comparable to the thickness of the boundary layer. The uniqueness of the work was that the experiments were carried out in a wind tunnel at real flight Reynolds numbers on a UAV model at a scale of 1:1. The results of visualization of the flow near a smooth surface and behind roughness were obtained using the method of liquid crystal thermography. The internal structure and processes of development of the longitudinal perturbation behind the roughness downstream were studied in detail using the thermoanemometry method.

About the Authors

A. M. Pavlenko
Khristianovich Institute of Theoretical and Applied Mechanics SB RAS
Russian Federation

Alexander M. Pavlenko, PhD, senior researcher

Novosibirsk



V. S. Kaprilevskaya
Khristianovich Institute of Theoretical and Applied Mechanics SB RAS
Russian Federation

Valeria S. Kaprilevskaya, PhD Student, senior laboratory assistant, Khristianovich Institute of Theoretical and Applied Mechanics

Novosibirsk



V. V. Kozlov
Khristianovich Institute of Theoretical and Applied Mechanics SB RAS; Novosibirsk State University
Russian Federation

Victor V. Kozlov, Doctor of Science (Physics and Mathematics), Professor, Head of Laboratory 8

Novosibirsk



M. M. Katasonov
Khristianovich Institute of Theoretical and Applied Mechanics SB RAS
Russian Federation

Mikhail M. Katasonov, Doctor of Science (Physics and Mathematics), Leading Researcher

Novosibirsk



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Review

For citations:


Pavlenko A.M., Kaprilevskaya V.S., Kozlov V.V., Katasonov M.M. Investigation of the Flow behind the Roughness Element on the UAV Surface at a Favorable Pressure Gradient. SIBERIAN JOURNAL OF PHYSICS. 2020;15(2):61-72. (In Russ.) https://doi.org/10.25205/2541-9447-2020-15-2-61-72

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