Effect of Rotation on a Gas Turbine Blade Internal Cooling System: Experimental Investigation

Author:

Massini Daniele1,Burberi Emanuele2,Carcasci Carlo2,Cocchi Lorenzo2,Facchini Bruno2,Armellini Alessandro3,Casarsa Luca3,Furlani Luca3

Affiliation:

1. DIEF—Department of Industrial Engineering, University of Florence, Via di Santa Marta 3, Florence 50139, Italy e-mail:

2. DIEF—Department of Industrial Engineering, University of Florence, Via di Santa Marta 3, Florence 50139, Italy

3. Polytechnical Department of Engineering and Architecture, University of Udine, Via delle Scienze 206, Udine 33100, Italy

Abstract

A detailed aerothermal characterization of an advanced leading edge (LE) cooling system has been performed by means of experimental measurements. Heat transfer coefficient distribution has been evaluated exploiting a steady-state technique using thermochromic liquid crystals (TLCs), while flow field has been investigated by means of particle image velocimetry (PIV). The geometry key features are the multiple impinging jets and the four rows of coolant extraction holes, and their mass flow rate distribution is representative of real engine working conditions. Tests have been performed in both static and rotating conditions, replicating a typical range of jet Reynolds number (Rej), from 10,000 to 40,000, and rotation number (Roj) up to 0.05. Different crossflow conditions (CR) have been used to simulate the three main blade regions (i.e., tip, mid, and hub). The aerothermal field turned out to be rather complex, but a good agreement between heat transfer coefficient and flow field measurement has been found. In particular, jet bending strongly depends on crossflow intensity, while rotation has a weak effect on both jet velocity core and area-averaged Nusselt number. Rotational effects increase for the lower crossflow tests. Heat transfer pattern shape has been found to be substantially Reynolds independent.

Publisher

ASME International

Subject

Mechanical Engineering,Energy Engineering and Power Technology,Aerospace Engineering,Fuel Technology,Nuclear Energy and Engineering

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