Forces and Surface Pressure on a Blade Moving in Front of the Admission Region

Author:

Cho Soo-Yong1,Cho Chong-Hyun1,Ahn Kook-Young2,Kim Young-Cheol2

Affiliation:

1. Department of Mechanical and Aerospace Engineering (ReCAPT), Gyeongsang National University, 900 Gajwadong, Jinju, Gyeongnam 660-701, Republic of Korea

2. Department of Eco-Machinery, Korea Institute of Machinery and Materials, Daejeon 305-343, Republic of Korea

Abstract

The partial admission technique is widely used to control the output power of turbines. In some cases, it has more merits than full admission. However, additional losses, such as expansion, mixing, or pumping, are generated in partial admission as compared with full admission. Thus, an experiment was conducted in a linear cascade apparatus having a partial admission region in order to investigate the effect of partial admission on a blade row. The admission region was formed by a spouting nozzle installed at the inlet of the linear cascade apparatus. Its cross section was rectangular and its size is 200×200 mm2. The tested blade was axial-type and its chord was 200 mm. Nineteen identical blades were applied to the linear cascade for the partial admission experiment. The blades moved along the rotational direction in front of the admission region, and then operating forces and surface pressures on the blades were measured at the steady state. The experiment was conducted at a Reynolds number of 3×105 based on the chord. The nozzle flow angle was set to 65 deg with a solidity of 1.38 for performance test at the design point. In addition, another two different solidities of 1.25 and 1.67 were applied. From the experimental results, when the solidity was decreased, the maximum rotational force increased but the maximum axial force decreased.

Publisher

ASME International

Subject

Mechanical Engineering

Reference20 articles.

1. Robert, C. K., Howard, Z. H., and Warren, J. W., 1949, “Effects of Partial Admission on Performance of a Gas Turbine,” NACA Technical Note No. 1807.

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