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September 27, 2025Proceedings0 citations

Analysis of the influence of swirl circumferential position on the aerothermal performance of turbine blades

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XWXuan WuNorth Sichuan Medical UniversityYHYuxiang HeJiangsu UniversityYZYanfeng ZhangPeking University

Key Points

  • Aerodynamic loss is minimized when the swirl center aligns with the blade leading edge, improving performance.
  • Swirl positioned between blades enhances secondary flow, deteriorating aerodynamic performance, especially at the blade tip.
  • The distribution of the heat transfer coefficient on the blade surface becomes uneven due to the presence of swirl.
  • There is a critical need for fundamental research to optimize turbine blade design and cooling mechanisms.

Abstract

The high-pressure turbine faces inlet distortion caused by swirl at the combustion chamber exit, leading to complex internal flow mechanisms. The rotational momentum associated with the swirl alters the classic internal flow structure of the turbine, resulting in degraded thermodynamic performance. There is an urgent need for extensive fundamental mechanism research to support subsequent design and optimization efforts. Therefore, this paper conducts a detailed numerical simulation study on the aerodynamic performance and internal flow mechanisms of a high-pressure turbine linear blade row, focusing on five different circumferential positions of the swirl center. The results indicate that when the swirl center is aligned with the blade leading edge, the aerodynamic loss of the turbine blades is minimized. When the swirl center is located between two blades, the rotational momentum enhances the secondary flow at the tip region of NGV2, causing the flow on the blade surface to exhibit radial velocity components. This significantly deteriorates the aerodynamic performance of the NGV. Additionally, the swirl leads to a more uneven distribution of the heat transfer coefficient (HTC) on the blade surface, posing challenges for the cooling design of the blades.

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Cite This Study

Wu et al. (2025) studied this question.

synapsesocial.com/papers/68d7b3ddeebfec0fc52368d1https://doi.org/10.33737/gpps25-tc-054
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Effect of Combined Film Cooling and Swirl on the Thermal Performance of a Contoured High Pressure Turbine Vane of a Modern Turbofan Engine: A Numerical Study2026
  2. 2Analysis of turbine endwall aerothermal performance under inlet non-uniform fields2026
  3. 3Numerical Analysis of Heat Transfer Characteristics According to Relative Positions of Swirler and First-stage Nozzle Vane of Turboshaft Engine Reverseflow Combustor2026
  4. 4Effects of Combustor Residual Swirl and Hot Spot on Aerothermal Characteristics and Cooling Performance of Gas Turbine Blade2024 · 2 citations
  5. 5Effect of Straight and Compound Blade Lean on the Aerodynamic Performance of a High-Pressure Turbine Nozzle Guide Vane under Residual Swirl2026