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Hydraulic and Thermal Simulations of a Cross-Corrugated Plate Heat Exchanger Unitary Cell

Etemad, Sassan and Sundén, Bengt LU (2016) In Heat Transfer Engineering 37(5). p.475-486
Abstract
Simulations have been carried out by means of computational fluid dynamics for turbulent convective heat transfer in a cross-corrugated plate pattern heat exchanger unitary cell at a Reynolds number of 4930. Chen's high-Reynolds-number k-E model, the Reynolds stress model (RSM), Suga's low-Reynolds-number k-E model, and the V2F model were used. The predicted hydraulic and thermal behaviors using these models have been compared and explained. The simulations showed that the interaction between the upper flow and lower flow in the cell creates a shear zone at their interface with a rotating motion and as a consequence the heat transfer is enhanced. This phenomenon was captured best by the V2F model, which predicted the highest Nusselt number... (More)
Simulations have been carried out by means of computational fluid dynamics for turbulent convective heat transfer in a cross-corrugated plate pattern heat exchanger unitary cell at a Reynolds number of 4930. Chen's high-Reynolds-number k-E model, the Reynolds stress model (RSM), Suga's low-Reynolds-number k-E model, and the V2F model were used. The predicted hydraulic and thermal behaviors using these models have been compared and explained. The simulations showed that the interaction between the upper flow and lower flow in the cell creates a shear zone at their interface with a rotating motion and as a consequence the heat transfer is enhanced. This phenomenon was captured best by the V2F model, which predicted the highest Nusselt number and friction factor. Chen's k-E model provided results similar to the RSM. The fact that the RSM was instable and required more computational power makes it less interesting for further use in similar studies. It was also found rewarding to generate multiblock all-hexahedral grids to resolve the existing thermal and hydraulic phenomena in the domain. (Less)
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author
and
organization
publishing date
type
Contribution to journal
publication status
published
subject
in
Heat Transfer Engineering
volume
37
issue
5
pages
475 - 486
publisher
Taylor & Francis
external identifiers
  • wos:000362940100007
  • scopus:84945447291
ISSN
1521-0537
DOI
10.1080/01457632.2015.1057458
language
English
LU publication?
yes
id
8377e32e-4a41-4e05-993f-4650bb8c7b20 (old id 8201766)
date added to LUP
2016-04-01 11:16:27
date last changed
2022-03-12 21:17:13
@article{8377e32e-4a41-4e05-993f-4650bb8c7b20,
  abstract     = {{Simulations have been carried out by means of computational fluid dynamics for turbulent convective heat transfer in a cross-corrugated plate pattern heat exchanger unitary cell at a Reynolds number of 4930. Chen's high-Reynolds-number k-E model, the Reynolds stress model (RSM), Suga's low-Reynolds-number k-E model, and the V2F model were used. The predicted hydraulic and thermal behaviors using these models have been compared and explained. The simulations showed that the interaction between the upper flow and lower flow in the cell creates a shear zone at their interface with a rotating motion and as a consequence the heat transfer is enhanced. This phenomenon was captured best by the V2F model, which predicted the highest Nusselt number and friction factor. Chen's k-E model provided results similar to the RSM. The fact that the RSM was instable and required more computational power makes it less interesting for further use in similar studies. It was also found rewarding to generate multiblock all-hexahedral grids to resolve the existing thermal and hydraulic phenomena in the domain.}},
  author       = {{Etemad, Sassan and Sundén, Bengt}},
  issn         = {{1521-0537}},
  language     = {{eng}},
  number       = {{5}},
  pages        = {{475--486}},
  publisher    = {{Taylor & Francis}},
  series       = {{Heat Transfer Engineering}},
  title        = {{Hydraulic and Thermal Simulations of a Cross-Corrugated Plate Heat Exchanger Unitary Cell}},
  url          = {{http://dx.doi.org/10.1080/01457632.2015.1057458}},
  doi          = {{10.1080/01457632.2015.1057458}},
  volume       = {{37}},
  year         = {{2016}},
}