Turbulent heat transfer enhancement in an axially rotating pipe fitted with kenics segment mixer

This study reports heat transfer in an axially rotating pipe fitted with Kenics segment mixer. Numerical simulations were processed with the commercial finite volume Computational Fluid Dynamics (CFD) code, ANSYS Fluent 19.2. The rotating domain was modeled with the single rotating reference frame s...

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Main Authors: Obed Y.W. Abotsi, John P. Kizito
Format: Article
Language:English
Published: Elsevier 2020-09-01
Series:Results in Engineering
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2590123020300529
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spelling doaj-8b6265e6f4a44c449cc1a5f27ba178222020-11-25T03:37:38ZengElsevierResults in Engineering2590-12302020-09-017100146Turbulent heat transfer enhancement in an axially rotating pipe fitted with kenics segment mixerObed Y.W. Abotsi0John P. Kizito1Department of Mechanical Engineering, North Carolina A&T State University, Greensboro, NC, 27411, USACorresponding author.; Department of Mechanical Engineering, North Carolina A&T State University, Greensboro, NC, 27411, USAThis study reports heat transfer in an axially rotating pipe fitted with Kenics segment mixer. Numerical simulations were processed with the commercial finite volume Computational Fluid Dynamics (CFD) code, ANSYS Fluent 19.2. The rotating domain was modeled with the single rotating reference frame scheme. Natural convection was considered in the numerical procedure. Computations were carried out for axial Reynolds numbers between 5000 and 25,000 ​at different rotation rates. Rotation rate (N) is the ratio of the rotational Reynolds number to the axial Reynolds number. Predictions revealed that the Kenics segment mixer significantly improved the heat transfer of the rotating pipe. This remarkable augmentation in heat transfer was attributed to additional swirl flow created by the inserted tape. By using the Kenics segment mixer with twist ratio of 1.75, the Nusselt number of the plain rotating pipe was augmented by 92–66% at N ​= ​1, 74-55% at N ​= ​3, and 60-44% at N ​= ​5. Reduction in Nusselt number augmentation as the rotating speed of the pipe increased indicated that swirl flows induced by the Kenics segment mixer was more dominant at lower rotation rates.http://www.sciencedirect.com/science/article/pii/S2590123020300529Rotation rateNusselt numberSwirl flowHeat transferKenics segment mixer
collection DOAJ
language English
format Article
sources DOAJ
author Obed Y.W. Abotsi
John P. Kizito
spellingShingle Obed Y.W. Abotsi
John P. Kizito
Turbulent heat transfer enhancement in an axially rotating pipe fitted with kenics segment mixer
Results in Engineering
Rotation rate
Nusselt number
Swirl flow
Heat transfer
Kenics segment mixer
author_facet Obed Y.W. Abotsi
John P. Kizito
author_sort Obed Y.W. Abotsi
title Turbulent heat transfer enhancement in an axially rotating pipe fitted with kenics segment mixer
title_short Turbulent heat transfer enhancement in an axially rotating pipe fitted with kenics segment mixer
title_full Turbulent heat transfer enhancement in an axially rotating pipe fitted with kenics segment mixer
title_fullStr Turbulent heat transfer enhancement in an axially rotating pipe fitted with kenics segment mixer
title_full_unstemmed Turbulent heat transfer enhancement in an axially rotating pipe fitted with kenics segment mixer
title_sort turbulent heat transfer enhancement in an axially rotating pipe fitted with kenics segment mixer
publisher Elsevier
series Results in Engineering
issn 2590-1230
publishDate 2020-09-01
description This study reports heat transfer in an axially rotating pipe fitted with Kenics segment mixer. Numerical simulations were processed with the commercial finite volume Computational Fluid Dynamics (CFD) code, ANSYS Fluent 19.2. The rotating domain was modeled with the single rotating reference frame scheme. Natural convection was considered in the numerical procedure. Computations were carried out for axial Reynolds numbers between 5000 and 25,000 ​at different rotation rates. Rotation rate (N) is the ratio of the rotational Reynolds number to the axial Reynolds number. Predictions revealed that the Kenics segment mixer significantly improved the heat transfer of the rotating pipe. This remarkable augmentation in heat transfer was attributed to additional swirl flow created by the inserted tape. By using the Kenics segment mixer with twist ratio of 1.75, the Nusselt number of the plain rotating pipe was augmented by 92–66% at N ​= ​1, 74-55% at N ​= ​3, and 60-44% at N ​= ​5. Reduction in Nusselt number augmentation as the rotating speed of the pipe increased indicated that swirl flows induced by the Kenics segment mixer was more dominant at lower rotation rates.
topic Rotation rate
Nusselt number
Swirl flow
Heat transfer
Kenics segment mixer
url http://www.sciencedirect.com/science/article/pii/S2590123020300529
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