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Thermal-hydraulic performance of a plate heat exchanger with grooved copper foam
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Metadata
Document Title
Thermal-hydraulic performance of a plate heat exchanger with grooved copper foam
Author
Nilpueng K. Chomamuang T. Mesgarpour M. Mahian O. Wongwises S.
Affiliations
King Mongkut's University of Technology North Bangkok Bangsue Bangkok 10800 Thailand; King Mongkut's University of Technology Thonburi Bangmod Bangkok 10140 Thailand; Malardalen University Hogskoleplan 1 Vasteras 72220 Sweden; Zhejiang Provincial Engineering Research Center for the Safety of Pressure Vessel and Pipeline Faculty of Mechanical Engineering and Mechanics Ningbo University Ningbo China; National Science and Technology Development Agency (NSTDA) Pathum Thani 12120 Thailand
Type
Article
Source Title
Case Studies in Thermal Engineering
ISSN
2214157X
Year
2023
Volume
51
Open Access
All Open Access Gold
Publisher
Elsevier Ltd
DOI
10.1016/j.csite.2023.103525
Abstract
This study proposes a plate heat exchanger (PHE) partially filled with metal foam having checkered pattern grooves. The study presents new experimental data obtained from PHE with grooved copper foam that elucidates the effect of mass flux copper foam groove width and pore density on the heat transfer coefficient (HTC) and pressure drop (?P). The testing is conducted with a water mass flux ranging from 120 to 320 kg/m2s a groove width ranging from 2 to 6 mm and a pore density of 30 pores per inch (PPI) and 50 PPI. The results demonstrate that HTC and ?P increase as the copper foam groove width is reduced. Considering the impact of copper foam groove width on the filling rate the HTC ratio increases significantly at a filling rate between 50 and 75%. Furthermore an increase in pore density enhances HTC and ?P. The plate heat exchanger inserted with copper foam (PHE_CF) provides the optimum thermal-hydraulic performance (TP). However at a low Reynolds number the results show that TP of PHE with grooved copper foam with a groove width of 2 mm is similar to PHE_CF. New correlations are also proposed to predict ?P and HTC in the practical applications. ? 2023 The Authors
License
CC BY-NC-ND
Rights
Authors
Publication Source
WOS