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Over-tip leakage flow and loss in a turbine cascade equipped with suction-side partial squealers
Institution:1. School of Energy & Power Engineering, Beijing Univ. of Aero. & Astro., Naional Key Laboratory of Science and Technology on Aero-Engine Aero-thermodynamics, Collaborative Innovation Center of Advanced Aero-Engine, Beijing 100191, China;2. AVIC Shenyang Engine Design and Research Institute, Shenyang 110015, China;1. Istanbul Technical University, Dept. of Mechanical Eng., Istanbul, Turkey;2. The Pennsylvania State University, Dept. of Aerospace Eng., Turbomachinery Aero-Heat Lab., University Park, PA, USA;1. Department of Mechanical Engineering, Kumoh National Institute of Technology, 61 Daehak-ro, Gumi, Gyeongbuk 730-701, Republic of Korea;2. University of Michigan–Shanghai Jiao Tong University Joint Institute, Shanghai 200240, China
Abstract:Over-tip leakage flow and loss in a turbine cascade equipped with suction-side partial squealer rims have been investigated for the squealer rim height-to-span ratios (hst/s) of 0.94%, 1.88%. 3.75%, and 5.63% in the case of a tip gap height-to-span ratio of h/s = 1.36%. The casing wall and tip surface visualizations for hst/s = 3.75% show that most of the incoming tip leakage flow tends to accelerate through a convergent (nozzle-like) tip gap flow channel and penetrates into the neighboring blade flow passage even upstream of the mid-chord in the form of a wall jet, whereas the rest of it is entrapped by the suction-side squealer rim, flows backward, and is separated from the tip surface along a backward flow separation line. Therefore, the tip surface can be divided into a separation bubble and a backward flow area by the backward flow separation line. A qualitative tip gap flow model for the suction-side squealer tip is suggested in this study. For the present suction-side squealer tip, the total pressure loss coefficient mass-averaged throughout the present measurement plane decreases consistently with increasing hst/s and is higher than that for the cavity squealer tip or the pressure-side squealer tip regardless of hst/s.
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