Mixing enhancement with generation of effective secondary flow parallel to fluid interface in three-dimensional serpentine channel

Mixing efficiency is an important factor for various miniaturized systems that handle small volumes of samples. Serpentine channels, which are commonly employed for passive mixing, have been modified and designed based on three-dimensional (3D) structures. In this study, to investigate the effects o...

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Main Authors: Hyeonji Hong, Il Doh, Jaehwan Jeong, Eunseop Yeom
Format: Article
Language:English
Published: Elsevier 2024-12-01
Series:Results in Engineering
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Online Access:http://www.sciencedirect.com/science/article/pii/S2590123024016153
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author Hyeonji Hong
Il Doh
Jaehwan Jeong
Eunseop Yeom
author_facet Hyeonji Hong
Il Doh
Jaehwan Jeong
Eunseop Yeom
author_sort Hyeonji Hong
collection DOAJ
description Mixing efficiency is an important factor for various miniaturized systems that handle small volumes of samples. Serpentine channels, which are commonly employed for passive mixing, have been modified and designed based on three-dimensional (3D) structures. In this study, to investigate the effects of the sequential flow direction on mixing while considering the fluid interface, different models of 3D channels having the same length and number of bending parts were simulated under various Reynolds number conditions using liquid water as the working fluid. The mixing behaviors in these models varied because bends in different directions noticeably affected the mixing index. The mixing index increased when the net direction change of the secondary flow was varied, because of the relation of the mixing with the alignment between the fluid interface orientation and Dean vortices generated by the bending structure. Among the six designed models, the channel with the best mixing performance exhibited the most active interaction between the direction change of the secondary flow and fluid interface. Conversely, channels with a few direction changes exhibited low performances. To validate the simulation results, the mixing performances of two representative channels were experimentally compared using transparent 3D-printed chips. Similar to the simulation results, the 3D-printed chips showed noticeably different mixing performances.
format Article
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issn 2590-1230
language English
publishDate 2024-12-01
publisher Elsevier
record_format Article
series Results in Engineering
spelling doaj-art-4f01683cb2ff49339bb57c865e0c083f2025-08-20T02:34:43ZengElsevierResults in Engineering2590-12302024-12-012410336210.1016/j.rineng.2024.103362Mixing enhancement with generation of effective secondary flow parallel to fluid interface in three-dimensional serpentine channelHyeonji Hong0Il Doh1Jaehwan Jeong2Eunseop Yeom3Korea Research Institute of Standards and Science (KRISS), South KoreaKorea Research Institute of Standards and Science (KRISS), South KoreaSchool of Mechanical Engineering, Pusan National University, Busan, South KoreaSchool of Mechanical Engineering, Pusan National University, Busan, South Korea; Corresponding author.Mixing efficiency is an important factor for various miniaturized systems that handle small volumes of samples. Serpentine channels, which are commonly employed for passive mixing, have been modified and designed based on three-dimensional (3D) structures. In this study, to investigate the effects of the sequential flow direction on mixing while considering the fluid interface, different models of 3D channels having the same length and number of bending parts were simulated under various Reynolds number conditions using liquid water as the working fluid. The mixing behaviors in these models varied because bends in different directions noticeably affected the mixing index. The mixing index increased when the net direction change of the secondary flow was varied, because of the relation of the mixing with the alignment between the fluid interface orientation and Dean vortices generated by the bending structure. Among the six designed models, the channel with the best mixing performance exhibited the most active interaction between the direction change of the secondary flow and fluid interface. Conversely, channels with a few direction changes exhibited low performances. To validate the simulation results, the mixing performances of two representative channels were experimentally compared using transparent 3D-printed chips. Similar to the simulation results, the 3D-printed chips showed noticeably different mixing performances.http://www.sciencedirect.com/science/article/pii/S2590123024016153Passive mixingSerpentine channelMixing indexSecondary flowAdvection
spellingShingle Hyeonji Hong
Il Doh
Jaehwan Jeong
Eunseop Yeom
Mixing enhancement with generation of effective secondary flow parallel to fluid interface in three-dimensional serpentine channel
Results in Engineering
Passive mixing
Serpentine channel
Mixing index
Secondary flow
Advection
title Mixing enhancement with generation of effective secondary flow parallel to fluid interface in three-dimensional serpentine channel
title_full Mixing enhancement with generation of effective secondary flow parallel to fluid interface in three-dimensional serpentine channel
title_fullStr Mixing enhancement with generation of effective secondary flow parallel to fluid interface in three-dimensional serpentine channel
title_full_unstemmed Mixing enhancement with generation of effective secondary flow parallel to fluid interface in three-dimensional serpentine channel
title_short Mixing enhancement with generation of effective secondary flow parallel to fluid interface in three-dimensional serpentine channel
title_sort mixing enhancement with generation of effective secondary flow parallel to fluid interface in three dimensional serpentine channel
topic Passive mixing
Serpentine channel
Mixing index
Secondary flow
Advection
url http://www.sciencedirect.com/science/article/pii/S2590123024016153
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AT jaehwanjeong mixingenhancementwithgenerationofeffectivesecondaryflowparalleltofluidinterfaceinthreedimensionalserpentinechannel
AT eunseopyeom mixingenhancementwithgenerationofeffectivesecondaryflowparalleltofluidinterfaceinthreedimensionalserpentinechannel