Numerical Study on Characteristics of Flow and Heat Transfer of Steam Vortex Cooling for Blade Leading Edges[J]. 2015, 49(10): 72-78.
DOI:
Numerical Study on Characteristics of Flow and Heat Transfer of Steam Vortex Cooling for Blade Leading Edges[J]. 2015, 49(10): 72-78.DOI: 10.7652/xjtuxb201510012.
Numerical Study on Characteristics of Flow and Heat Transfer of Steam Vortex Cooling for Blade Leading Edges
The fundamental principle of steam vortex cooling is numerically investigated by means of 3-D Reynolds-averaged Navier-Stokes equations coupled with the standard k-ω turbulent model. Effects of Reynolds number and inlet to wall temperature ratio on the flow and heat transfer characteristics are analyzed to clarify the mechanism of steam vortex cooling and to summarize properties of the flow and heat transfer. The heat transfer correlation of steam vortex cooling is obtained based on numerical data. The results show that violent convective motion is caused by the high speed rotational flow of steam in the vortex chamber
and results in an enhanced heat transfer performance. When the Reynolds number is increased
the heat transfer coefficient increases while the friction factor significantly decreases because of an increase in steam vorticity. An increase in inlet to wall temperature ratio results in a slight decrease in heat transfer coefficient
an increase in steam vorticity a decrease in density
and a clear decrease in friction factor of vortex chamber. The thermal performance factor increases as the Reynolds number is increased
and decreases as the temperature ratio is increased. The heat transfer correlation can be applied to predict the heat transfer coefficient of steam vortex cooling.
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references
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Related Institution
School of Energy and Power Engineering, Xi’an Jiaotong University
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