Performance Improvement of a Centrifugal Compressor Stage by Increasing Degree of Reaction and Optimizing Blade Loading of a 3D Impeller

Author:

Shibata Takanori1,Yagi Manabu1,Nishida Hideo2,Kobayashi Hiromi2,Tanaka Masanori2

Affiliation:

1. Energy and Environmental Systems Laboratory, Hitachi, Ltd., 7-2-1 Omika-cho, Hitachi-shi, Ibaraki-ken 319-1221, Japan

2. Tsuchiura Research Laboratory, Hitachi Plant Technologies, Ltd., 603 Kandatsu-machi, Tsuchiura-shi, Ibaraki-ken 300-0013, Japan

Abstract

Performance improvement of 3D impellers in a high specific speed range was investigated using computational fluid dynamics analyses and experimental tests. In order to reduce the loss production within the stator passages, the backsweep angle of the impellers was increased. At the same time, the inlet-to-exit relative velocity diffusion ratio was also increased by increasing the impeller exit width to prevent the reduction in the pressure ratio. Moreover, the blade loading distribution at the impeller shroud side was optimized to suppress the surge margin reduction caused by the increased relative velocity diffusion ratio. Five types of unshrouded impellers were designed, manufactured, and tested to evaluate the effects of blade loading, backsweep angle, and relative velocity diffusion ratio on the compressor performance. The design suction flow coefficient was 0.125 and the machine Mach number was 0.87. Test results showed that the compressor stage efficiency was increased by 5% compared with the base design without reducing the pressure coefficient and surge margin. It was concluded that an increased relative velocity diffusion ratio coupled with large backsweep angle was a very effective way to improve the compressor stage efficiency. An appropriate blade loading distribution was also important in order to achieve a wide operating range as well as high efficiency.

Publisher

ASME International

Subject

Mechanical Engineering

Reference11 articles.

1. Development of Wedge Type Impellers for Low Specific Speed Centrifugal Compressors;Tanaka

2. Performance Improvement of Centrifugal Compressor Impellers by Optimizing Blade-Lading Distribution;Yagi

3. Expert System for Radial Impeller Optimisation;Cosentino

4. Multidisciplinary Optimization of a Radial Compressor for Micro Gas Turbine Applications;Verstraete

5. An Optimization Technique for Radial Compressor;Casey

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