Numerical Investigation on Steam Film Holes Blowing for moisture removal on Steam Turbine Hollow Blade Surface[J]. 2015, 49(7): 61-66.
DOI:
Numerical Investigation on Steam Film Holes Blowing for moisture removal on Steam Turbine Hollow Blade Surface[J]. 2015, 49(7): 61-66.DOI: 10.7652/xjtuxb201507011.
Numerical Investigation on Steam Film Holes Blowing for moisture removal on Steam Turbine Hollow Blade Surface
To reduce the steam condensation and moisture deposition on the last stage of steam turbine
three rows of disperse steam film holes are set on the surface of a hollow stator blade with the reference of the gas turbine film cooling system. The moisture removal performance of this method and its influence on the blade main flow field are numerically investigated by solving the 3-D Reynold time averaged Navier-Stokes equation with the ANSYS-CFX commercial code
as well as the k-ω turbulence model and the wall function. The results show that when the steam blowing ratio gets less than 1.0%
the hot steam film on the blade surface is prone to form and the wetness of the surface declines apparently
and this level of blowing ratio slightly affects the main flow. With the increase of the blowing mass flow rate or the blowing temperature
the averaged cascade outlet wetness decreases
however
the flow efficiency of the main flow decreases sharply in consequence. Considering the blade surface wetness and the main flow efficiency
the best moisture removal performance can be achieved in this designed structure as the steam blowing ratio is taken between 0.5% and 1.0%.
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references
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