Flow and Conjugate Heat Transfer of Swirl Chamber With Micro-Ribs in Turbine Vane Leading Edge

Author:

Han Shaohua1,Zhang Runsheng1,Xing Jiangjiang2,Song Yuanyuan1,An Na1,Huo Tianyi1,Zhou Leping34,Li Li34,Zhang Hui34,Du Xiaoze34

Affiliation:

1. North China Electric Power University School of Energy, Power and Mechanical Engineering, , Beijing 102206 , China

2. North China Electric, Power University School of Energy, Power and Mechanical Engineering, , Beijing 102206 , China

3. North China Electric Power University School of Energy, Power and Mechanical Engineering, , Beijing 102206 , China ;

4. Ministry of Education Key Laboratory of Power Station Energy Transfer Conversion and System (North China Electric Power University), , Beijing 102206 , China

Abstract

Abstract Swirl cooling can provide effective protection for the turbine vane leading edge (LE). In this paper, a swirl cooling model for improving the turbine vane heat transfer is established. The model includes the high-temperature mainstream region, LE region, and swirl cooling region. The conjugate heat transfer (CHT) method is used to examine the influence of wall structures on swirl cooling. Then, the best surface structure in the studied range is selected to further analyze the impact of the coolant inlet mass flow. The results show that the circumferential micro-rib structure has a more excellent performance in both fluid flow and cooling performance. The hindering effect of the micro-ribs can effectively avoid the development of axial cross-flow, thus enhancing the heat transfer with a small friction loss increment and providing a lower surface temperature and more uniform temperature distribution. When the inlet mass flowrate improves, the thermal performance factor increases and the LE temperature decreases gradually. Under the same pumping power condition, the circumferential micro-ribs structure has higher heat transfer efficiency. This investigation can provide a new design for further improving the thermal performance of swirl cooling for turbine vanes.

Publisher

ASME International

Subject

Fluid Flow and Transfer Processes,General Engineering,Condensed Matter Physics,General Materials Science

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