Journal of Siberian Federal University. Mathematics & Physics / Flow and Heat Transfer Characteristics during the Flow around Tandem of Circular Cylinders

Full text (.pdf)
Issue
Journal of Siberian Federal University. Mathematics & Physics. 2023 16 (5)
Authors
Seroshtanov, Vladimir V.; Selezneva, Marina D.; Maslov, Vladislav A.; Gusakov, Andrey A.
Contact information
Seroshtanov, Vladimir V.: Science Educational Centre "Energy Thermophysics" Peter the Great St. Petersburg Polytechnic University St. Petersburg, Russian Federation; OCRID: 0000-0001-6619-271X; Selezneva, Marina D.: Science Educational Centre "Energy Thermophysics" Peter the Great St. Petersburg Polytechnic University St. Petersburg, Russian Federation; Maslov, Vladislav A.: Science Educational Centre "Energy Thermophysics" Peter the Great St. Petersburg Polytechnic University St. Petersburg, Russian Federation; Gusakov, Andrey A.: Science Educational Centre "Energy Thermophysics" Peter the Great St. Petersburg Polytechnic University St. Petersburg, Russian Federation
Keywords
flow over cylinders; convective heat transfer; gradient heatmetry; heat transfer coefficient
Abstract

The forced convection into the tandem circular cylinders is investigated using gradient heatmetry and particle image velocimetry-based experiments. The study’s objective is to understand the effect of geometry on the flow characteristics and heat transfer coefficient distribution over the heat transfer surface. The experiments are conducted over Reynolds numbers Re = 9600 and Re = 20200, thereby uncovering there is highly complicated flow structure, depending on centre-to-center spacing and orientation of the two cylinders with respect to free-stream flow. Different transversal and longitudinal pitch (S1 and S2, respectively) between the cylinders are considered, and its effect on the flow and thermal characteristics are studied. Velocity fields and longitudinal and transversal velocity components obtained using Particle Image Velocimetry (PIV), and heat transfer parameters obtained using gradient heatmetry and temperature measurement. The distributions of the local heat transfer coefficient on the heat transfer surface are obtained. Based on these distributions, the surface-averaged Nusselt number for the studied Reynolds number is determined

Pages
628–638
EDN
LEVQPI
Paper at repository of SibFU
https://elib.sfu-kras.ru/handle/2311/151677