Effects of Area Ratio and Mean Rise Angle on the Aerodynamics of Interturbine Ducts

Author:

Zhang Yanfeng1,Hu Shuzhen1,Mahallati Ali2,Zhang Xue-Feng1,Vlasic Edward3

Affiliation:

1. National Research Council of Canada, 1200 Montreal Road, Ottawa, ON K1A 0R6, Canada

2. National Research Council of Canada, 1200 Montreal Road, Ottawa, ON K1A 0R6, Canada e-mail:

3. Pratt & Whitney Canada, 1000 Boulevard Marie-Victorin, Longueuil, QC J4G 1A1, Canada

Abstract

This work, a continuation of a series of investigations on the aerodynamics of aggressive interturbine ducts (ITD), is aimed at providing detailed understanding of the flow physics and loss mechanisms in four different ITD geometries. A systematic experimental and computational study was carried out by varying duct outlet-to-inlet area ratios (ARs) and mean rise angles while keeping the duct length-to-inlet height ratio, Reynolds number, and inlet swirl constant in all four geometries. The flow structures within the ITDs were found to be dominated by the boundary layer separation and counter-rotating vortices in both the casing and hub regions. The duct mean rise angle determined the severity of adverse pressure gradient in the casing's first bend, whereas the duct AR mainly governed the second bend's static pressure rise. The combination of upstream wake flow and the first bend's adverse pressure gradient caused the boundary layer to separate and intensify the strength of counter-rotating vortices. At high mean rise angle, the separation became stronger at the casing's first bend and moved farther upstream. At high ARs, a two-dimensional separation appeared on the casing and resulted in increased loss. Pressure loss penalties increased significantly with increasing duct mean rise angle and AR.

Publisher

ASME International

Subject

Mechanical Engineering

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