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Conjugated heat transfer investigation with racetrack-shaped jet hole and double swirling chamber in rotating jet impingement

Wang, Jinsheng LU ; Liu, Jian LU ; Wang, Lei LU ; Sundén, Bengt LU and Wang, Songtao (2018) In Numerical Heat Transfer; Part A: Applications 73(11). p.768-787
Abstract

A numerical study is performed to investigate the effects of jet hole shape and channel geometry on impingement cooling for both stationary and rotating condition. Two hole shapes and two channel geometries are introduced to counteract the adverse effects of centrifugal force and Coriolis force which are induced by rotation. Both the fluid and solid part are considered for realizing the conjugate heat transfer simulation. The unsteady k-ω SST turbulence model was employed to obtain the time-averaged Nusselt number distributions, time-averaged temperature and temperature gradient fields and the turbulent flow structure. The results show that the cooling jet from the racetrack-shaped hole can effectively withstand the intensive streamwise... (More)

A numerical study is performed to investigate the effects of jet hole shape and channel geometry on impingement cooling for both stationary and rotating condition. Two hole shapes and two channel geometries are introduced to counteract the adverse effects of centrifugal force and Coriolis force which are induced by rotation. Both the fluid and solid part are considered for realizing the conjugate heat transfer simulation. The unsteady k-ω SST turbulence model was employed to obtain the time-averaged Nusselt number distributions, time-averaged temperature and temperature gradient fields and the turbulent flow structure. The results show that the cooling jet from the racetrack-shaped hole can effectively withstand the intensive streamwise crossflow to enhance the heat transfer. The double swirling chamber (DSC) channel significantly improves the heat transfer characteristics on the cambered surface and diminishes the adverse effects of the Coriolis force. The high Nu number region is expanded while the temperature uniformity is improved. The combination of the racetrack-shaped hole and DSC channel provides the highest heat transfer among the four cases. The averaged Nu numbers on both the leading and trailing sides for all tested cases show obvious downtrend as rotation number increases, especially at high Reynolds number.

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author
; ; ; and
organization
publishing date
type
Contribution to journal
publication status
published
subject
in
Numerical Heat Transfer; Part A: Applications
volume
73
issue
11
pages
20 pages
publisher
Taylor & Francis
external identifiers
  • scopus:85049306708
ISSN
1040-7782
DOI
10.1080/10407782.2018.1454753
language
English
LU publication?
yes
id
13ebcc55-47fb-4187-939f-0bd148554b7b
date added to LUP
2018-07-16 11:18:43
date last changed
2022-04-02 01:15:30
@article{13ebcc55-47fb-4187-939f-0bd148554b7b,
  abstract     = {{<p>A numerical study is performed to investigate the effects of jet hole shape and channel geometry on impingement cooling for both stationary and rotating condition. Two hole shapes and two channel geometries are introduced to counteract the adverse effects of centrifugal force and Coriolis force which are induced by rotation. Both the fluid and solid part are considered for realizing the conjugate heat transfer simulation. The unsteady k-ω SST turbulence model was employed to obtain the time-averaged Nusselt number distributions, time-averaged temperature and temperature gradient fields and the turbulent flow structure. The results show that the cooling jet from the racetrack-shaped hole can effectively withstand the intensive streamwise crossflow to enhance the heat transfer. The double swirling chamber (DSC) channel significantly improves the heat transfer characteristics on the cambered surface and diminishes the adverse effects of the Coriolis force. The high Nu number region is expanded while the temperature uniformity is improved. The combination of the racetrack-shaped hole and DSC channel provides the highest heat transfer among the four cases. The averaged Nu numbers on both the leading and trailing sides for all tested cases show obvious downtrend as rotation number increases, especially at high Reynolds number.</p>}},
  author       = {{Wang, Jinsheng and Liu, Jian and Wang, Lei and Sundén, Bengt and Wang, Songtao}},
  issn         = {{1040-7782}},
  language     = {{eng}},
  month        = {{06}},
  number       = {{11}},
  pages        = {{768--787}},
  publisher    = {{Taylor & Francis}},
  series       = {{Numerical Heat Transfer; Part A: Applications}},
  title        = {{Conjugated heat transfer investigation with racetrack-shaped jet hole and double swirling chamber in rotating jet impingement}},
  url          = {{http://dx.doi.org/10.1080/10407782.2018.1454753}},
  doi          = {{10.1080/10407782.2018.1454753}},
  volume       = {{73}},
  year         = {{2018}},
}