Analysis of Shroud Cavity Leakage in a Radial Turbine for Optimal Operation in Compressed Air Energy Storage System

Author:

Shao Ziyi1,Li Wen2,Wang Xing3,Zhang Xuehui3,Chen Haisheng1

Affiliation:

1. Institute of Engineering Thermophysics, Chinese Academy of Sciences, Beisihuanxi Road 11, Beijing 100190, China; University of Chinese Academy of Sciences, Yuquan Road No. 19(A), Beijing 100049, China

2. Institute of Engineering Thermophysics, Chinese Academy of Sciences, Beisihuanxi Road 11, Beijing 100190, China; University of Chinese Academy of Sciences, Yuquan Road No. 19(A), Beijing 100049, China; National Energy Large Scale Physical Energy Storage Technologies R&D Center (Bijie), Xiaoba Town, Bijie 551712, China

3. National Energy Large Scale Physical Energy Storage Technologies R&D Center (Bijie), Xiaoba Town, Bijie 551712, China

Abstract

Abstract As an important energy generation device of the compressed air energy storage (CAES) system, the radial-inflow turbine with shrouded impeller is employed to avoid the leakage flow in the rotor, especially in the high-pressure stages. However, a lack of clarity in the leakage characteristics and their drivers still prevents a systematic approach to the efficient performance and proper design of the shrouded radial turbine. In the present work, the shroud cavity leakage of the shrouded radial turbine has been studied numerically. The physical quantity synergy is innovatively employed to research the internal flow field of the shroud cavity. It is found that the influence of high rotating speed on the seal leakage cannot be neglected, and the average reduced rate of seal leakage is found to be about 9.9% for the designed clearance. The leakage mass flow rate could be reduced by increasing the rotating speed or decreasing the seal clearance. The synergy angle is able to predict the flow resistance in shroud cavity very well. According to the volume-averaged synergy angle in the seal, the dimensionless seal clearance smaller than 1.5% in the shrouded radial turbine is recommended. Compared with the seal clearance in other high-pressure shrouded turbomachines, the current recommended clearance should be within a reasonable field.

Funder

International Partnership Program, Bureau of International Cooperation of Chinese Academy of Sciences

National Key R&D Plan

National Science Fund for Distinguished Young Scholars

Publisher

ASME International

Subject

Mechanical Engineering,Energy Engineering and Power Technology,Aerospace Engineering,Fuel Technology,Nuclear Energy and Engineering

Reference35 articles.

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