With liquid cold plates being widely applied in industries such as battery energy storage systems, advanced heat transfer enhancement technologies are urgently needed to efficiently dissipate the ever-increasing heat load. The present work numerically and experimentally explores the potential of flow intermittency in a laminar serpentine channel for thermal performance improvement. The numerical analysis shows that the dynamic Dean vortex evolution induced by the intermittent mainstream disrupts the thermal boundary layer more effectively than the steady-flow vortices and enhances local Nusselt number at the U-turns by 117% maximally. Such secondary vortices are transported intermittently to the straight segments, resulting in a 55% increase in the area-averaged heat transfer by promoting mainstream-boundary flow mixing. The optimization of the flow intermittency profile is achieved by matching the pulse-on and deceleration stage durations with the characteristic times of secondary vortex growth and transport. The numerical results are qualitatively validated by the experimental measurement conducted in a water bath. The current study novelly demonstrates the design concept of enhancing heat transfer in curved channels by actively controlling the intermittent flow and proposes the design criteria for the intermittency profile to achieve optimal performance.
Skip Nav Destination
Article navigation
March 2024
Research Article|
March 14 2024
Impact of flow intermittency on heat transfer enhancement in serpentine channels Available to Purchase
Guanqing Xiong
;
Guanqing Xiong
(Formal analysis, Methodology, Software, Validation, Visualization, Writing – original draft)
UM-SJTU Joint Institute, Shanghai Jiao Tong University
, Shanghai, China
Search for other works by this author on:
Zhaoguang Wang
Zhaoguang Wang
a)
(Conceptualization, Methodology, Project administration, Supervision, Writing – review & editing)
UM-SJTU Joint Institute, Shanghai Jiao Tong University
, Shanghai, China
a)Author to whom correspondence should be addressed: [email protected]
Search for other works by this author on:
Guanqing Xiong
Formal analysis, Methodology, Software, Validation, Visualization, Writing – original draft
UM-SJTU Joint Institute, Shanghai Jiao Tong University
, Shanghai, China
Zhaoguang Wang
Conceptualization, Methodology, Project administration, Supervision, Writing – review & editing
a)
UM-SJTU Joint Institute, Shanghai Jiao Tong University
, Shanghai, China
a)Author to whom correspondence should be addressed: [email protected]
Physics of Fluids 36, 033620 (2024)
Article history
Received:
November 14 2023
Accepted:
February 29 2024
Citation
Guanqing Xiong, Zhaoguang Wang; Impact of flow intermittency on heat transfer enhancement in serpentine channels. Physics of Fluids 1 March 2024; 36 (3): 033620. https://doi.org/10.1063/5.0187513
Download citation file:
Pay-Per-View Access
$40.00
Sign In
You could not be signed in. Please check your credentials and make sure you have an active account and try again.
Citing articles via
Phase behavior of Cacio e Pepe sauce
G. Bartolucci, D. M. Busiello, et al.
Direct numerical simulations of immiscible two-phase flow in rough fractures: Impact of wetting film resolution
R. Krishna, Y. Méheust, et al.
Chinese Academy of Science Journal Ranking System (2015–2023)
Cruz Y. Li (李雨桐), 李雨桐, et al.
Related Content
Performance comparison among the variants of curved serpentine coil
Physics of Fluids (July 2021)
Thermohydraulic performance of a novel curved serpentine coil
Physics of Fluids (August 2020)
An analysis of heat transfer characteristics in serpentine flow configuration at different angle in rectangular microchannel
AIP Conf. Proc. (May 2023)
Study of the thermal behavior of a battery pack with a serpentine channel
AIP Advances (May 2022)
Thermal performance analysis and prediction of a circumferential serpentine tube for high-power motor cooling
Physics of Fluids (September 2024)