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Experimental and numerical study of film cooling performance on turbine vanes with cylindrical and trapezoidal slot holes

  • Fangshun Zhang
  • , Kun Du
  • , Hui Song
  • , Wenxuan Wang
  • , Lei Chen
  • , Wanyue Zhang
  • , Cunliang Liu
  • Northwestern Polytechnical University Xian
  • Science and Technology on Altitude Simulation Laboratory
  • National Key Laboratory of Science and Technology on Advanced Light-duty Gas-turbine
  • AECC Sichuan Gas Turbine Establishment

Research output: Contribution to journalArticlepeer-review

Abstract

Modern gas turbines operate beyond the thermal limits of metallic alloys, making film cooling indispensable for turbine blade protection. Although shaped-hole configurations can enhance film-cooling performance compared with conventional cylindrical holes, their geometric complexity often increases manufacturing difficulty. To simultaneously improve film-cooling performance and manufacturability, a trapezoidal slot-hole configuration featuring a simple geometry and continuous outlet is proposed and evaluated as an alternative film-cooling design for turbine applications. A systematic comparison between trapezoidal slot holes and conventional cylindrical holes was conducted on both the suction and pressure surfaces of a turbine guide vane through Pressure-Sensitive Paint measurements and Computational Fluid Dynamics simulations. Tests were conducted over a range of blowing ratios ( BRs ) using two rows of staggered holes. Results demonstrate that trapezoidal slot holes significantly outperform cylindrical holes: on the suction surface, they eliminate film detachment observed at BR ≥ 2.0 with cylindrical holes, improving area-averaged film cooling effectiveness by 26.8%–125.3% across BR = 0.5–3.0. On the pressure surface, they provide continuous spanwise coolant coverage, with area-averaged film cooling effectiveness increased by at least 32.4% and improved uniformity. Furthermore, trapezoidal slots exhibit a consistently higher discharge coefficient, indicating lower flow resistance and more efficient coolant delivery under lower supply pressure. The performance enhancement is attributed to suppressed jet lift-off and enhanced lateral coolant spreading. The optimal BR differs between surfaces, being lower on the pressure side. These findings offer practical guidance for designing high-efficiency profiled film cooling holes in gas turbines.

Original languageEnglish
Article number132390
JournalApplied Thermal Engineering
Volume303
DOIs
StatePublished - Aug 2026

Keywords

  • Discharge coefficient
  • Film cooling effectiveness
  • Pressure-sensitive paint (PSP) technique
  • Trapezoidal slot holes
  • Turbine vane

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