This is part II of a two-part paper involving the development of an asymmetrical flow control method to widen the operating range of a turbocharger centrifugal compressor with high-pressure ratio. A nonaxisymmetrical self-recirculation casing treatment (SRCT) as an instance of asymmetrical flow control method is presented. Experimental and numerical methods were used to investigate the impact of nonaxisymmetrical SRCT on the surge point of the centrifugal compressor. First, the influence of the geometry of a symmetric SRCT on the compressor performance was studied by means of numerical simulation. The key parameter of the SRCT was found to be the distance from the main blade leading edge to the rear groove (Sr). Next, several arrangements of a nonaxisymmetrical SRCT were designed, based on flow analysis presented in part I. Then, a series of experiments were carried out to analyze the influence of nonaxisymmetrical SRCT on the compressor performance. Results show that the nonaxisymmetrical SRCT has a certain influence on the performance and has a larger potential for stability improvement than the traditional symmetric SRCT. For the investigated SRCT, the surge flow rate of the compressor with the nonaxisymmetrical SRCTs is about 10% lower than that of the compressor with symmetric SRCT. The largest surge margin (smallest surge flow rate) can be obtained when the phase of the largest Sr is coincident with the phase of the minimum static pressure in the vicinity of the leading edge of the splitter blades.
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March 2013
Research-Article
Stability Improvement of High-Pressure-Ratio Turbocharger Centrifugal Compressor by Asymmetrical Flow Control—Part II: Nonaxisymmetrical Self-Recirculation Casing Treatment
Xinqian Zheng,
Mingyang Yang,
Mingyang Yang
State Key Laboratory of Automotive Safety and Energy,
Tsinghua University,
Beijing 100084
, China
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Hideaki Tamaki
Yokohama, 235-8501,
Hideaki Tamaki
Turbo Machinery and Engine Technology
,Department, IHI Corporation
,Yokohama, 235-8501,
Japan
Search for other works by this author on:
Xinqian Zheng
e-mail: zhengxq@tsinghua.edu.cn
Mingyang Yang
State Key Laboratory of Automotive Safety and Energy,
Tsinghua University,
Beijing 100084
, China
Hideaki Tamaki
Turbo Machinery and Engine Technology
,Department, IHI Corporation
,Yokohama, 235-8501,
Japan
Contributed by the International Gas Turbine Institute (IGTI) of ASME for publication in the JOURNALOF TURBOMACHINERY. Manuscript received April 26, 2010; final manuscript received December 26, 2011; published online November 1, 2012. Assoc. Editor: Michael Casey.
J. Turbomach. Mar 2013, 135(2): 021007 (8 pages)
Published Online: November 1, 2012
Article history
Received:
April 26, 2010
Revision Received:
December 26, 2011
Citation
Zheng, X., Zhang, Y., Yang, M., Bamba, T., and Tamaki, H. (November 1, 2012). "Stability Improvement of High-Pressure-Ratio Turbocharger Centrifugal Compressor by Asymmetrical Flow Control—Part II: Nonaxisymmetrical Self-Recirculation Casing Treatment." ASME. J. Turbomach. March 2013; 135(2): 021007. https://doi.org/10.1115/1.4006637
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