Ajou University repository

Thermal performance analysis of heat pipe heat exchanger for effective waste heat recovery
  • Geum, Gyohoon ;
  • Kang, Sukkyung ;
  • Cho, Sehyeon ;
  • Kong, Daeyoung ;
  • Lee, Seungjae ;
  • Seo, Jin Hyeuk ;
  • Shin, Dong Hwan ;
  • Lee, Seong Hyuk ;
  • Lee, Jungho ;
  • Lee, Hyoungsoon
Citations

SCOPUS

14

Citation Export

Publication Year
2024-02-01
Publisher
Elsevier Ltd
Citation
International Communications in Heat and Mass Transfer, Vol.151
Keyword
Boiling heat pipeEffectivenessHeat pipe heat exchangerThermal performanceThermosyphonWaste heat recovery
Mesh Keyword
Boiling heat pipeEffectivenessHeat pipe heat exchangersHeat transfer rateIndustrial processsThermal PerformanceThermal performance analysisThermal testsWaste heat recovery systemsWaste-heat recovery
All Science Classification Codes (ASJC)
Atomic and Molecular Physics, and OpticsChemical Engineering (all)Condensed Matter Physics
Abstract
The importance of waste heat recovery systems for various industrial processes has been growing steadily, driven by their potential to improve energy efficiency, reduce fuel consumption, and minimize environmental impacts. Heat exchangers are key components in these systems, facilitating the transfer of heat from waste sources to useful media. Among them, heat pipe heat exchangers (HPHX) have been widely employed in industries such as steel and ceramic as an energy-saving measure to cut carbon emissions. Previous studies have mainly focused on experimental analyses of HPHX thermal performance. However, due to the high cost of full-scale thermal tests, there is a lack of research investigating the effect of detailed geometrical and operational variations on HPHX thermal performance. This study addresses the existing gap by conducting a comprehensive conjugate numerical investigation to explore the influence of flow path structure and condenser area on the performance of an air-to-liquid HPHX. We first utilize a full-scale conjugate simulation to propose an optimized HPHX design that enhances both heat transfer rate and effectiveness through the variation of baffle configurations and condenser height. Subsequently, we experimentally validate the proposed design through a full-scale HPHX thermal test. Results revealed that the baffle design significantly improved the heat transfer rate and effectiveness by up to 36.3% and 36.0%, respectively. Conversely, increasing the condenser height by five times enhanced the heat transfer rate by only 3.5%, with the condenser area showing a minor impact owing to the higher heat capacity rate of water compared to air. The outcomes revealed remarkable energy-recovery capabilities, revealing a total thermal energy wastage recovery rate up to 19.7 kW. These findings demonstrate the potential and effectiveness of the proposed HPHX in waste heat recovery applications.
ISSN
0735-1933
Language
eng
URI
https://dspace.ajou.ac.kr/dev/handle/2018.oak/33884
DOI
https://doi.org/10.1016/j.icheatmasstransfer.2023.107223
Fulltext

Type
Article
Funding
This work was supported by the Korea Institute of Energy Technology Evaluation and Planning (KETEP) grant funded by the Ministry of Trade, Industry & Energy, Korea (Grant No. 20212020800270 , and No. 20214000000280 ) and the Chung-Ang University Graduate Research Scholarship in 2022 .
Show full item record

Items in DSpace are protected by copyright, with all rights reserved, unless otherwise indicated.

Related Researcher

Lee, Jungho  Image
Lee, Jungho 이정호
Department of Mechanical Engineering
Read More

Total Views & Downloads

File Download

  • There are no files associated with this item.