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A GPU-based Approach for Turbomachinery ApplicationAccurate modeling of coolant airflows, which form protective films over turbine blades, is essential for designing fuel-efficient and environmentally sustainable gas turbine engines. Excessive coolant reduces thermal efficiency, while insufficient coolant leads to blade overheating and causes damage. Therefore, precise prediction of flow field interactions with cooling air is critical for optimizing turbine performance. This study numerically investigates the cooling effectiveness of purge and film cooling flows within a high-pressure turbine (HPT) rotor using Large Eddy Simulation (LES). The study utilizes NASA Glenn Research Center’s Glenn-HT solver. The simulation models ethe conditions of the Penn State University START rotating rig. A high-fidelity structured mesh comprising up to 800 million cells is employed to resolve high-Reynolds number flow (Re ≈ 350,000) and to capture intricate secondary flow structures, including tip leakage and purge-induced vortices. Film cooling effectiveness computations are highly sensitive to boundary conditions at the cooling holes and to grid resolution. Even with well-resolved grids and included plena, strong mixing challenges traditional eddy viscosity models. To address this, a simplified configuration is simulated: a truncated row of shaped holes on the suction side near the leading edge and a row on the pressure side, both fed from internal plena while the purge slot and tip clearance are also modeled. Two isothermal LES cases are conducted at two distinct wall temperatures, which yield the adiabatic wall temperature and the heat transfer coefficient. The definition and means of computation of the effectiveness is discussed in this paper. The simulations reveal detailed three-dimensional unsteady flow features, including coherent vortical structures and secondary flows originating from the purge cavity. Film cooling effectiveness and Nusselt number distributions are presented for both the blade surface and tip, highlighting regions of elevated heat transfer and complex thermal behavior. These findings underscore the importance of high-resolution LES and realistic boundary conditions in capturing the dynamics of purge and film cooling, offering valuable insights for improving turbine blade design and thermal management strategies.
Document ID
20260004652
Acquisition Source
Glenn Research Center
Document Type
Presentation
Authors
Ali A Ameri
(HX5 (United States) Fort Walton Beach, Florida, United States)
Azab Mohammad
(HX5 (United States) Fort Walton Beach, Florida, United States)
David Rigby
(HX5 (United States) Fort Walton Beach, Florida, United States)
Erlendur Steinthorsson
(HX5 (United States) Fort Walton Beach, Florida, United States)
Gabriele Jost
(HX5 (United States) Fort Walton Beach, Florida, United States)
Kenji Miki
(Glenn Research Center Cleveland, United States)
Paht Juangphanich
(Glenn Research Center Cleveland, United States)
Date Acquired
May 22, 2026
Subject Category
Fluid Mechanics and Thermodynamics
Meeting Information
Meeting: Turbomachinery Technical Conference and Exposition (Turbo Expo)
Location: Milan
Country: IT
Start Date: June 15, 2026
End Date: June 19, 2026
Sponsors: American Society of Mechanical Engineers
Funding Number(s)
WBS: 649097.04.03.02.92.02
Distribution Limits
Public
Copyright
Public Use Permitted.
Technical Review
Single Expert
Keywords
Gas Turbine
LES
Film Cooling
Heat Transfer
Secondary Flows
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