Numerical study of flow characteristics and heat transfer mechanism in Tesla valve tube

In this study, we conducted a numerical analysis of the flow characteristics and heat transfer mechanism of a Tesla valve. Our aim was to illustrate the improvement in heat transfer by presenting velocity clouds, temperature clouds, pressure clouds, velocity vectors, and local flow lines. The findin...

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Main Authors: Feiya Huang, Liancheng Ren, Shuai Xie, Minhan Leng, Ping Liao
Format: Article
Language:English
Published: Elsevier 2024-03-01
Series:Results in Engineering
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2590123024000483
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author Feiya Huang
Liancheng Ren
Shuai Xie
Minhan Leng
Ping Liao
author_facet Feiya Huang
Liancheng Ren
Shuai Xie
Minhan Leng
Ping Liao
author_sort Feiya Huang
collection DOAJ
description In this study, we conducted a numerical analysis of the flow characteristics and heat transfer mechanism of a Tesla valve. Our aim was to illustrate the improvement in heat transfer by presenting velocity clouds, temperature clouds, pressure clouds, velocity vectors, and local flow lines. The findings of our study indicate that the formation of different vortices at the inlet of the Tesla valve has varying effects on heat transfer and fluid flow in forward and reverse flow scenarios. During forward flow, longitudinal vortices are more likely to form, whereas transverse vortices tend to form during reverse flow. These vortices have the ability to disrupt the boundary layer and enhance heat transfer, resulting in improved heat transfer efficiency, albeit with a slight pressure drop. When the flow angle was increased from 40° to 80°, we observed a decrease in the Nusselt number (Nu) by 17.8 % and 8.1 % in forward and reverse flows, respectively. Conversely, the friction factor (f) increased by 22.6 % and 3.1 %, while the Dittus-Boelter factor (Dit) increased by 11.8 %. In addition, the extension of the lateral groove length from 10 cm to 18 cm resulted in a decrease of 7.5 % and 11.7 % in Nu for forward and reverse flows, respectively. Similarly, f decreased by 13.8 % and 9.1 %, while Dit decreased by 5.2 %. Moreover, mathematical equations were developed to describe the relationship between the lead angle, side channel length, Re, Nu, and f. These findings aim to offer valuable insights for the design and implementation of Tesla valves.
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spelling doaj.art-cb25368b02e0408abda177b63dec3c932024-03-24T07:00:41ZengElsevierResults in Engineering2590-12302024-03-0121101795Numerical study of flow characteristics and heat transfer mechanism in Tesla valve tubeFeiya Huang0Liancheng Ren1Shuai Xie2Minhan Leng3Ping Liao4Corresponding author.; Chongqing Science and Technology University, Chongqing 400000, ChinaChongqing Science and Technology University, Chongqing 400000, ChinaChongqing Science and Technology University, Chongqing 400000, ChinaChongqing Science and Technology University, Chongqing 400000, ChinaChongqing Science and Technology University, Chongqing 400000, ChinaIn this study, we conducted a numerical analysis of the flow characteristics and heat transfer mechanism of a Tesla valve. Our aim was to illustrate the improvement in heat transfer by presenting velocity clouds, temperature clouds, pressure clouds, velocity vectors, and local flow lines. The findings of our study indicate that the formation of different vortices at the inlet of the Tesla valve has varying effects on heat transfer and fluid flow in forward and reverse flow scenarios. During forward flow, longitudinal vortices are more likely to form, whereas transverse vortices tend to form during reverse flow. These vortices have the ability to disrupt the boundary layer and enhance heat transfer, resulting in improved heat transfer efficiency, albeit with a slight pressure drop. When the flow angle was increased from 40° to 80°, we observed a decrease in the Nusselt number (Nu) by 17.8 % and 8.1 % in forward and reverse flows, respectively. Conversely, the friction factor (f) increased by 22.6 % and 3.1 %, while the Dittus-Boelter factor (Dit) increased by 11.8 %. In addition, the extension of the lateral groove length from 10 cm to 18 cm resulted in a decrease of 7.5 % and 11.7 % in Nu for forward and reverse flows, respectively. Similarly, f decreased by 13.8 % and 9.1 %, while Dit decreased by 5.2 %. Moreover, mathematical equations were developed to describe the relationship between the lead angle, side channel length, Re, Nu, and f. These findings aim to offer valuable insights for the design and implementation of Tesla valves.http://www.sciencedirect.com/science/article/pii/S2590123024000483Heat transfer mechanismVortexInflow angle and side channel lengthPower law relationship
spellingShingle Feiya Huang
Liancheng Ren
Shuai Xie
Minhan Leng
Ping Liao
Numerical study of flow characteristics and heat transfer mechanism in Tesla valve tube
Results in Engineering
Heat transfer mechanism
Vortex
Inflow angle and side channel length
Power law relationship
title Numerical study of flow characteristics and heat transfer mechanism in Tesla valve tube
title_full Numerical study of flow characteristics and heat transfer mechanism in Tesla valve tube
title_fullStr Numerical study of flow characteristics and heat transfer mechanism in Tesla valve tube
title_full_unstemmed Numerical study of flow characteristics and heat transfer mechanism in Tesla valve tube
title_short Numerical study of flow characteristics and heat transfer mechanism in Tesla valve tube
title_sort numerical study of flow characteristics and heat transfer mechanism in tesla valve tube
topic Heat transfer mechanism
Vortex
Inflow angle and side channel length
Power law relationship
url http://www.sciencedirect.com/science/article/pii/S2590123024000483
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