A numerical investigation of flow structure and heat transfer in the backface clearance of deeply scalloped radial turbines is conducted in this paper. It is found that the leakage flow is very strong in the upper radial region whereas in the lower radial region, the scraping flow dominates over the clearance and a recirculation zone is formed. Pressure distributions are given to explain the flow structure in the backface clearance, and it is found that due to the sharp reduction of radial velocity and Coriolis force, the pressure difference in the lower radial region is reduced drastically, which is the mechanism for the domination of the scraping flow and the corresponding recirculation zone. There are two high heat transfer coefficient zones on the backface surface. One is located in the upper radial region due to the reattachment of the leakage flow and the other is located in the lower radial region caused by the impingement of the scraping flow. Increase of the clearance height reduces the high heat transfer coefficient caused by the impingement of the scraping flow, although it increases the leakage loss. On the other hand, the high heat transfer coefficient in the upper radial region can be reduced remarkably by using the suction side squealer geometry.
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March 2013
Research-Article
Aerothermal Investigation of Backface Clearance Flow in Deeply Scalloped Radial Turbines
Ping He,
Ping He
Graduate University of Chinese Academy of Sciences,
Beijing, 100190,
Chinese Academy of Sciences,
Beijing, 100190,
e-mail: heping@mail.etp.ac.cn
Beijing, 100190,
China
;Institute of Engineering Thermophysics
,Chinese Academy of Sciences,
Beijing, 100190,
China
e-mail: heping@mail.etp.ac.cn
Search for other works by this author on:
Haisheng Chen,
Chunqing Tan
Chunqing Tan
e-mail: tan@mail.etp.ac.cn
Chinese Academy of Sciences,
Institute of Engineering Thermophysics
,Chinese Academy of Sciences,
Beijing, 100190
, China
Search for other works by this author on:
Ping He
Graduate University of Chinese Academy of Sciences,
Beijing, 100190,
Chinese Academy of Sciences,
Beijing, 100190,
e-mail: heping@mail.etp.ac.cn
Beijing, 100190,
China
;Institute of Engineering Thermophysics
,Chinese Academy of Sciences,
Beijing, 100190,
China
e-mail: heping@mail.etp.ac.cn
Zhigang Sun
e-mail: sunsonofjilin@126.com
Baoting Guo
e-mail: guobt@mail.etp.ac.cn
Haisheng Chen
e-mail: chen_hs@mail.etp.ac.cn
Chunqing Tan
e-mail: tan@mail.etp.ac.cn
Chinese Academy of Sciences,
Institute of Engineering Thermophysics
,Chinese Academy of Sciences,
Beijing, 100190
, China
Contributed by the International Gas Turbine Institute (IGTI) of ASME for publication in the JOURNAL OF TURBOMACHINERY. Manuscript received July 28, 2011; final manuscript received December 4, 2011; published online October 31, 2012. Assoc. Editor: Ricardo F. Martinez-Botas.
J. Turbomach. Mar 2013, 135(2): 021002 (12 pages)
Published Online: October 31, 2012
Article history
Received:
July 28, 2011
Revision Received:
December 4, 2011
Citation
He, P., Sun, Z., Guo, B., Chen, H., and Tan, C. (October 31, 2012). "Aerothermal Investigation of Backface Clearance Flow in Deeply Scalloped Radial Turbines." ASME. J. Turbomach. March 2013; 135(2): 021002. https://doi.org/10.1115/1.4006664
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