LAPSE:2023.26876
Published Article
LAPSE:2023.26876
Numerical and Physical Simulation of Heat Transfer Enhancement Using Oval Dimple Vortex Generators—Review and Recommendations
Alexander Mironov, Sergey Isaev, Artem Skrypnik, Igor Popov
April 3, 2023
Abstract
Vortex generation and flow disruption in heat exchanger passages by means of surface modification is a widely used passive heat transfer augmentation technique. The present paper contains the results of numerical and experimental studies of the hydraulic resistance and heat transfer in the rectangle duct with oval-trench- and oval-arc-shaped dimples applied to the heat transfer surface. For the turbulent flow in the duct (Pr = 0.71, Red = 3200−9 × 104—for heat transfer determination and Red = 500−104—for the friction factor measurements), rational geometrical parameters of the oval-trench dimple were determined: relative elongation of dimple l/b = 5.57−6.78 and relative depth l/b = 5.57−6.78, while the value of the attack angle to the mean flow was fixed φ = (45−60)°. The comparison of the experimental and numerical modeling for the flow in the narrow duct over the surface with a single- and multi-row dimple arrangement has revealed a good agreement. It was found that the average heat transfer coefficient magnitudes in such ducts could be increased 1.5−2.5 times by means of single and multi-row dimple application on the heat transfer surface. The heat transfer augmentation for the surfaces with the oval-arched dimples was found to be 10% greater than the one for the oval-trench dimples. The corresponding friction factor augmentation was found to be 125−300% in comparison to the smooth surface duct. The obtained experimental data were used for the data generalization. Derived generalized equation allows for predicting the friction factor and heat transfer coefficient values for the flow over the single-row oval-trench simple arrangement. The maximal deviation of the experimental data from the proposed equations was found to be 20%. The application of the artificial neural networks for predicting the hydraulic resistance and heat transfer augmentation in such ducts was presented.
Keywords
efficiency, experiment, heat transfer enhancement, hydraulic resistance, numerical simulation, oval dimples, vortex generators
Suggested Citation
Mironov A, Isaev S, Skrypnik A, Popov I. Numerical and Physical Simulation of Heat Transfer Enhancement Using Oval Dimple Vortex Generators—Review and Recommendations. (2023). LAPSE:2023.26876
Author Affiliations
Mironov A: Department of Heat Engineering and Power Machinery, Kazan National Research Technical University named after A. N. Tupolev−KAI, 10 K.Marx.str., 420111 Kazan, Russia
Isaev S: Department of Aero and Aircraft Flight Dynamics, Saint Petersburg State University of Civil Aviation, 38 Pilotov Street, 196210 Saint Petersburg, Russia
Skrypnik A: Department of Heat Engineering and Power Machinery, Kazan National Research Technical University named after A. N. Tupolev−KAI, 10 K.Marx.str., 420111 Kazan, Russia
Popov I: Department of Heat Engineering and Power Machinery, Kazan National Research Technical University named after A. N. Tupolev−KAI, 10 K.Marx.str., 420111 Kazan, Russia [ORCID]
Journal Name
Energies
Volume
13
Issue
20
Article Number
E5243
Year
2020
Publication Date
2020-10-09
ISSN
1996-1073
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Original Submission
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PII: en13205243, Publication Type: Journal Article
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LAPSE:2023.26876
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https://doi.org/10.3390/en13205243
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