Endwall Loss Reduction of High Lift Low Pressure Turbine Airfoils Using Profile Contouring: Part I — Airfoil Design

Author:

Lyall M. Eric1,King Paul I.2,Clark John P.1,Sondergaard Rolf1

Affiliation:

1. Air Force Research Laboratory, Wright-Patterson AFB, OH

2. Air Force Institute of Technology, Wright-Patterson AFB, OH

Abstract

This paper presents the reasoning for and the design process of contouring a high lift front-loaded low pressure turbine (LPT) airfoil near the endwall to reduce the endwall loss. The test airfoil, L2F, was designed to the approximate gas angles with 38% larger pitchwise spacing than the widely studied Pack B airfoil. Being more front-loaded with a higher stagger angle, L2F is shown to produce more endwall losses than Pack B. It is suggested that the high endwall loss of L2F is due to the high stagger angle, not front-loading as usually suggested in the literature. A procedure is presented to approximate the front-loading and stall resistance of L2F and obtain a low stagger version of that airfoil, designated L2F-LS. A contoured airfoil is then designed by transitioning L2F into L2F-LS at the endwall to obtain a benefit from the reduced stagger angle at the endwall. The contouring process generates a fillet, so the contoured airfoil is referred to as L2F-EF (“Endwall Fillet”). Predictions in this paper suggest endwall loss reductions between 17% and 24% at Re = 100,000. Linear cascade experiments in Part II [1] of this paper indicate that L2F-EF reduces endwall losses more than 20% compared to L2F. The overall conclusion is that the stagger angle has a significant effect on endwall loss and should be considered for designing high lift LPT airfoils at the endwall.

Publisher

American Society of Mechanical Engineers

Cited by 10 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Effect of Large Stagger Angle Endwall on Secondary Losses in a High-Lift Turbine;Lecture Notes in Electrical Engineering;2024

2. Effect of fillets on a blade/vane of wave energy harvesting impulse turbine;Proceedings of the Institution of Mechanical Engineers, Part M: Journal of Engineering for the Maritime Environment;2022-08-09

3. Numerical Investigation of Strategies Aimed at Reduction of Low-Pressure Turbine Endwall Losses;AIAA Scitech 2019 Forum;2019-01-06

4. Numerical Investigation of Active Flow Control for Front-Loaded Low-Pressure Turbine Cascade;2018 AIAA Aerospace Sciences Meeting;2018-01-07

5. Numerical Simulations of Active Flow Control for Highly Loaded Low-Pressure Turbine Cascade;55th AIAA Aerospace Sciences Meeting;2017-01-05

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