Heat transfer augmentation in 3D inner finned helical tube

Longjian Li, Wenzhi Cui, Quan Liao, Xin Mingdao, Tien Chien Jen, Qinghua Chen

Research output: Contribution to conferencePaperpeer-review

Abstract

Experiments were performed to investigate the performance enhancement of single-phase flow and boiling heat transfer in the 3D inner finned helical tubes. The tests for single-phase flow and heat transfer were carried out in the helical tubes with a curvature of 0.0663 and a length of 1.15m, the range of the Reynolds number examined varies from 1000 to 8500. In comparison to the smooth helical tube, the experimental results of two finned helical tubes with different inner fin geometry showed that the heat transfer and flow resistance in the 3D inner finned helical tube gains greater augmentation. Within the measured range of Reynolds number, the average augmentation ratio of heat transfer of the two finned tubes are 71% and 103%, compared with the smooth helical tube, and 90% and 140% for flow resistance, respectively. The tests for flow boiling heat transfer was carried out in the 3D inner finned helical tube with a curvature of 0.0605 and a length of 0.668m.Compared with that in the smooth helical tube, the boiling heat transfer coefficient in the 3D inner finned helical tube is increased by 40%-120% under varied mass flow rate and wall heat flux conditions, meanwhile, the flow resistance coefficient increased by 18%-119%.

Original languageEnglish
Pages139-143
Number of pages5
DOIs
Publication statusPublished - 2004
Externally publishedYes
EventProceedings of the ASME Heat Transfer/Fluids Engineering Summer Conference 2004, HT/FED 2004 - Charlotte, NC, United States
Duration: 11 Jul 200415 Jul 2004

Conference

ConferenceProceedings of the ASME Heat Transfer/Fluids Engineering Summer Conference 2004, HT/FED 2004
Country/TerritoryUnited States
CityCharlotte, NC
Period11/07/0415/07/04

Keywords

  • Boiling heat transfer
  • Convective heat transfer
  • Finned tube
  • Helical tube

ASJC Scopus subject areas

  • General Engineering

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