Energy conservation and heat transfer enhancement for mixed convection on the vertical galvanizing furnace
The alloying temperature is an important parameter that affects the properties of galvanized products. The objective of this study is to explore the mechanism of conjugate mixed convection in the vertical galvanizing furnace and propose a novel energy conservation method to improve the soaking zone...
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VINCA Institute of Nuclear Sciences
2020-01-01
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doaj-0d04785a29064791abca182afe69f6162021-01-02T07:48:30ZengVINCA Institute of Nuclear SciencesThermal Science0354-98362020-01-01242 Part B1055106510.2298/TSCI180105180M0354-98361800180MEnergy conservation and heat transfer enhancement for mixed convection on the vertical galvanizing furnaceMei Dan0Zhu Yuzheng1Xu Xuemei2Xing Futang3Hubei Provincial Industrial Safety Engineering Technology Research Center, Wuhan University of Science and Technology, Wuhan Hubei, China + Old Dominion University, Department of Mechanical and Aerospace Engineering, Norfolk Virginia, USAWuhan University of Science and Technology, Hubei Provincial Industrial Safety Engineering Technology Research Center, Wuhan Hubei, China + Wuhan University of Science and Technology, Hubei Key Laboratory for Efficient Utilization and Agglomeration of MetWuhan University of Science and Technology, Hubei Provincial Industrial Safety Engineering Technology Research Center, Wuhan Hubei, China + Wuhan University of Science and Technology, Hubei Key Laboratory for Efficient Utilization and Agglomeration of MetWuhan University of Science and Technology, Hubei Provincial Industrial Safety Engineering Technology Research Center, Wuhan Hubei, China + Wuhan University of Science and Technology, Hubei Key Laboratory for Efficient Utilization and Agglomeration of MetThe alloying temperature is an important parameter that affects the properties of galvanized products. The objective of this study is to explore the mechanism of conjugate mixed convection in the vertical galvanizing furnace and propose a novel energy conservation method to improve the soaking zone temperature based on the flow pattern and heat transfer characteristics. Herein, the present study applied the k-ε two-equation turbulence model to enclose the Navier-Stokes fluid dynamic and energy conservation equations, and the temperature distributions of the steel plate and air-flow field in the furnace were obtained for six Richardson numbers between 1.91 ⋅ 105 and 6.30 ⋅ 105. In the industrial practice, the side baffles were installed at the lateral opening of the cooling tower to alter the height of vertical flow passage, which affected the Richardson number. The results indicate that the Richardson number of 2.4 ⋅ 105 generated the highest heat absorption and maximal temperature in the steel plate due to the balance between natural and forced convection. Furthermore, the results of the on-line experiments validated the simulation research. The method enhanced the steel plate temperature in the soaking zone without increasing the heat power, thereby characterizing it as energy conservation technology.http://www.doiserbia.nb.rs/img/doi/0354-9836/2020/0354-98361800180M.pdfenergy conservationvertical galvanizing furnaceheat transfermixed convectionnumerical simulation |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Mei Dan Zhu Yuzheng Xu Xuemei Xing Futang |
spellingShingle |
Mei Dan Zhu Yuzheng Xu Xuemei Xing Futang Energy conservation and heat transfer enhancement for mixed convection on the vertical galvanizing furnace Thermal Science energy conservation vertical galvanizing furnace heat transfer mixed convection numerical simulation |
author_facet |
Mei Dan Zhu Yuzheng Xu Xuemei Xing Futang |
author_sort |
Mei Dan |
title |
Energy conservation and heat transfer enhancement for mixed convection on the vertical galvanizing furnace |
title_short |
Energy conservation and heat transfer enhancement for mixed convection on the vertical galvanizing furnace |
title_full |
Energy conservation and heat transfer enhancement for mixed convection on the vertical galvanizing furnace |
title_fullStr |
Energy conservation and heat transfer enhancement for mixed convection on the vertical galvanizing furnace |
title_full_unstemmed |
Energy conservation and heat transfer enhancement for mixed convection on the vertical galvanizing furnace |
title_sort |
energy conservation and heat transfer enhancement for mixed convection on the vertical galvanizing furnace |
publisher |
VINCA Institute of Nuclear Sciences |
series |
Thermal Science |
issn |
0354-9836 |
publishDate |
2020-01-01 |
description |
The alloying temperature is an important parameter that affects the properties of galvanized products. The objective of this study is to explore the mechanism of conjugate mixed convection in the vertical galvanizing furnace and propose a novel energy conservation method to improve the soaking zone temperature based on the flow pattern and heat transfer characteristics. Herein, the present study applied the k-ε two-equation turbulence model to enclose the Navier-Stokes fluid dynamic and energy conservation equations, and the temperature distributions of the steel plate and air-flow field in the furnace were obtained for six Richardson numbers between 1.91 ⋅ 105 and 6.30 ⋅ 105. In the industrial practice, the side baffles were installed at the lateral opening of the cooling tower to alter the height of vertical flow passage, which affected the Richardson number. The results indicate that the Richardson number of 2.4 ⋅ 105 generated the highest heat absorption and maximal temperature in the steel plate due to the balance between natural and forced convection. Furthermore, the results of the on-line experiments validated the simulation research. The method enhanced the steel plate temperature in the soaking zone without increasing the heat power, thereby characterizing it as energy conservation technology. |
topic |
energy conservation vertical galvanizing furnace heat transfer mixed convection numerical simulation |
url |
http://www.doiserbia.nb.rs/img/doi/0354-9836/2020/0354-98361800180M.pdf |
work_keys_str_mv |
AT meidan energyconservationandheattransferenhancementformixedconvectionontheverticalgalvanizingfurnace AT zhuyuzheng energyconservationandheattransferenhancementformixedconvectionontheverticalgalvanizingfurnace AT xuxuemei energyconservationandheattransferenhancementformixedconvectionontheverticalgalvanizingfurnace AT xingfutang energyconservationandheattransferenhancementformixedconvectionontheverticalgalvanizingfurnace |
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