On the Heat Transfer and Flow Structures’ Characteristics of the Turbine Blade Tip Underside With Dirt Purge Holes at Different Locations by Using Topological Analysis

Author:

Luo Lei1,Zhao Zhiqi2,Kan Xiaoxu3,Qiu Dandan4,Wang Songtao5,Wang Zhongqi6

Affiliation:

1. School of Energy Science and Engineering,Harbin Institute of Technology,Harbin 150001, Chinae-mail: leiluo@hit.edu.cn

2. School of Energy Science and Engineering,Harbin Institute of Technology,Harbin 150001, Chinae-mail: 494334270@qq.com

3. School of Energy Science and Engineering,Harbin Institute of Technology,Harbin 150001, Chinae-mail: kanxiaoxu@163.com

4. School of Energy Science and Engineering,Harbin Institute of Technology,Harbin 150001, Chinae-mail: qiu_ddan@163.com

5. School of Energy Science and Engineering,Harbin Institute of Technology,Harbin 150001, Chinae-mail: 736899318@qq.com

6. School of Energy Science and Engineering,Harbin Institute of Technology,Harbin 150001, Chinae-mail: wangzhongqi@hit.edu.cn

Abstract

Abstract This paper numerically investigated the impact of the holes and their location on the flow and tip internal heat transfer in a U-bend channel (aspect ratio = 1:2), which is applicable to the cooling passage with dirt purge holes in the mid-chord region of a typical gas turbine blade. Six different tip ejection configurations are calculated at Reynolds numbers from 25,000 to 200,000. The detailed three-dimensional flow and heat transfer over the tip wall are presented, and the overall thermal performances are evaluated. The topological methodology, which is first applied to the flow analysis in an internal cooling passage of the blade, is used to explore the mechanisms of heat transfer enhancement on the tip wall. This study concludes that the production of the counter-rotating vortex pair in the bend region provides a strong shear force and then increases the local heat transfer. The side-mounted single hole and center-mounted double holes can further enhance tip heat transfer, which is attributed to the enhanced shear effect and disturbed low-energy fluid. The overall thermal performance of the optimum hole location is a factor of 1.13 higher than that of the smooth tip. However, if double holes are placed on the upstream of a tip wall, the tip surface cannot be well protected. The results of this study are useful for understanding the mechanism of heat transfer enhancement in a realistic gas turbine blade and for efficient designing of blade tips for engine service.

Funder

National Natural Science Foundation of China

Publisher

ASME International

Subject

Mechanical Engineering

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