Thermal characterization of longitudinal merging of turbulent spots

© 2018, © 2018 Taylor & Francis. This study presents the thermal behavior of two young turbulent spots merging into a longitudinal direction on an isothermal flat plate for the local Reynolds number between 6.1 × 104 and 1.3 × 105 in a low freestream turbulence water tunnel having a turbulent...

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Main Authors: Sudarat Srichan, Wannarat Rakpakdee, Tanongkiat Kiatsiriroat, Weerachai Chaiworapuek
Format: Journal
Published: 2018
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http://cmuir.cmu.ac.th/jspui/handle/6653943832/62974
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Institution: Chiang Mai University
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spelling th-cmuir.6653943832-629742018-12-14T04:11:47Z Thermal characterization of longitudinal merging of turbulent spots Sudarat Srichan Wannarat Rakpakdee Tanongkiat Kiatsiriroat Weerachai Chaiworapuek Engineering Physics and Astronomy © 2018, © 2018 Taylor & Francis. This study presents the thermal behavior of two young turbulent spots merging into a longitudinal direction on an isothermal flat plate for the local Reynolds number between 6.1 × 104 and 1.3 × 105 in a low freestream turbulence water tunnel having a turbulent intensity of 1.16%. The two turbulent spots are generated by water injection through a 1-mm-diameter hole in the perpendicular direction of the mainstream flow with a dimensionless separating time (Δτ) of 42.08, 84.16, and 126.24. Thermochromic liquid crystals are utilized mutually with an image processing technique to extract the spot characteristics qualitatively and quantitatively. The results demonstrate that the following turbulent spot directly causes an increase in the local Nusselt number and heat rate within the footprint of the merging spots. The relatively highest increase in this study occurs when Δτ = 84.16. The average Nusselt number and effectiveness characterize differently in the intersection zone, non-intersection zone of the leading spot, and non-intersection zone of the following spot. The results confirm that turbulent spots under the boundary layer transition augment the heat transfer rate to the level of full turbulence by not only their spot maturity but also the merging mechanism. Finally, the heat transfer mechanism is discussed and the predictive formulas for the Nusselt number and heat flux of the longitudinal merging of turbulent spots for Δτ from 0 to 126.24 are provided. 2018-12-14T03:56:52Z 2018-12-14T03:56:52Z 2018-01-01 Journal 15210480 08916152 2-s2.0-85057347683 10.1080/08916152.2018.1545806 https://www.scopus.com/inward/record.uri?partnerID=HzOxMe3b&scp=85057347683&origin=inward http://cmuir.cmu.ac.th/jspui/handle/6653943832/62974
institution Chiang Mai University
building Chiang Mai University Library
country Thailand
collection CMU Intellectual Repository
topic Engineering
Physics and Astronomy
spellingShingle Engineering
Physics and Astronomy
Sudarat Srichan
Wannarat Rakpakdee
Tanongkiat Kiatsiriroat
Weerachai Chaiworapuek
Thermal characterization of longitudinal merging of turbulent spots
description © 2018, © 2018 Taylor & Francis. This study presents the thermal behavior of two young turbulent spots merging into a longitudinal direction on an isothermal flat plate for the local Reynolds number between 6.1 × 104 and 1.3 × 105 in a low freestream turbulence water tunnel having a turbulent intensity of 1.16%. The two turbulent spots are generated by water injection through a 1-mm-diameter hole in the perpendicular direction of the mainstream flow with a dimensionless separating time (Δτ) of 42.08, 84.16, and 126.24. Thermochromic liquid crystals are utilized mutually with an image processing technique to extract the spot characteristics qualitatively and quantitatively. The results demonstrate that the following turbulent spot directly causes an increase in the local Nusselt number and heat rate within the footprint of the merging spots. The relatively highest increase in this study occurs when Δτ = 84.16. The average Nusselt number and effectiveness characterize differently in the intersection zone, non-intersection zone of the leading spot, and non-intersection zone of the following spot. The results confirm that turbulent spots under the boundary layer transition augment the heat transfer rate to the level of full turbulence by not only their spot maturity but also the merging mechanism. Finally, the heat transfer mechanism is discussed and the predictive formulas for the Nusselt number and heat flux of the longitudinal merging of turbulent spots for Δτ from 0 to 126.24 are provided.
format Journal
author Sudarat Srichan
Wannarat Rakpakdee
Tanongkiat Kiatsiriroat
Weerachai Chaiworapuek
author_facet Sudarat Srichan
Wannarat Rakpakdee
Tanongkiat Kiatsiriroat
Weerachai Chaiworapuek
author_sort Sudarat Srichan
title Thermal characterization of longitudinal merging of turbulent spots
title_short Thermal characterization of longitudinal merging of turbulent spots
title_full Thermal characterization of longitudinal merging of turbulent spots
title_fullStr Thermal characterization of longitudinal merging of turbulent spots
title_full_unstemmed Thermal characterization of longitudinal merging of turbulent spots
title_sort thermal characterization of longitudinal merging of turbulent spots
publishDate 2018
url https://www.scopus.com/inward/record.uri?partnerID=HzOxMe3b&scp=85057347683&origin=inward
http://cmuir.cmu.ac.th/jspui/handle/6653943832/62974
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