Influence of Oblique Stator on Erosion Characteristics of Solid Particles in the First Reheat Stage Blades of a Supercritical Steam Turbine
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Influence of Oblique Stator on Erosion Characteristics of Solid Particles in the First Reheat Stage Blades of a Supercritical Steam Turbine
Vol. 46, Issue 7, Pages: 12-15+107(2012)
作者机构:
西安交通大学叶轮机械研究所,西安,710049
作者简介:
基金信息:
DOI:
CLC:TK262
Online First:10 July 2012,
Published:2012
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Influence of Oblique Stator on Erosion Characteristics of Solid Particles in the First Reheat Stage Blades of a Supercritical Steam Turbine[J]. 2012, 46(7): 12-15+107.
DOI:
Influence of Oblique Stator on Erosion Characteristics of Solid Particles in the First Reheat Stage Blades of a Supercritical Steam Turbine[J]. 2012, 46(7): 12-15+107.DOI:
Influence of Oblique Stator on Erosion Characteristics of Solid Particles in the First Reheat Stage Blades of a Supercritical Steam Turbine
From the blade material erosion models and the particle rebound models produced by the high temperature and high speed accelerated erosion test results
the simulations and analyses were performed on the influence of the oblique stator on the erosion characteristics of solid particles in the first reheat stage of an ultra-supercritical steam turbine by the 3D numerical computing method. The results show that when the oblique angle of the oblique stator in first reheat stage is 30 degrees
the maximum weight loss on the vane pressure surface drops by about 30% and the erosion damage to the trailing edge on the vane suction surface also decreases obviously
and the stage efficiency decreases by only 0.1%. The further increase in the oblique angle may enhance the blade anti-wear property slightly but reduce stage efficiency by 1%. However
the decrease in the oblique angle will increase the maximum weight loss on the vane pressure surface by 23%
leading to a significant reduction in the blade anti-wear property. The results of this study will provide a technical basis for reducing the erosion on first reheat stages.
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references
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