Heat Transfer Measurements Using Liquid Crystals in a Preswirl Rotating-Disk System

Author:

Lock Gary D.1,Yan Youyou1,Newton Paul J.1,Wilson Michael1,Owen J. Michael1

Affiliation:

1. Department of Mechanical Engineering, University of Bath, Bath BA2 7AY, UK

Abstract

Preswirl nozzles are often used in gas turbines to deliver the cooling air to the turbine blades through receiver holes in a rotating disk. The distribution of the local Nusselt number, Nu, on the rotating disk is governed by three nondimensional fluid-dynamic parameters: preswirl ratio, βp, rotational Reynolds number, Reϕ, and turbulent flow parameter, λT. A scaled model of a gas turbine rotor–stator cavity, based on the geometry of current engine designs, has been used to create appropriate flow conditions. This paper describes how a thermochromic liquid crystal, in conjunction with a stroboscopic light and digital camera, is used in a transient experiment to obtain contour maps of Nu on the rotating disk. The thermal boundary conditions for the transient technique are such that an exponential-series solution to Fourier’s one-dimensional conduction equation is necessary. A method to assess the uncertainty in the measurements is discussed and these uncertainties are quantified. The experiments reveal that Nu on the rotating disk is axisymmetric except in the region of the receiver holes, where significant two-dimensional variations have been measured. At the higher coolant flow rates studied, there is a peak in heat transfer at the radius of the preswirl nozzles. The heat transfer is governed by two flow regimes: one dominated by inertial effects associated with the impinging jets from the preswirl nozzles, and another dominated by viscous effects at lower flow rates. The Nusselt number is observed to increase as either Reϕ or λT increases.

Publisher

ASME International

Subject

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

Reference16 articles.

1. Owen, J. M., and Rogers, R. H., 1989, Flow and Heat Transfer in Rotating Disc Systems: Vol. 1, Rotor-Stator Systems, Research Studies Press, Taunton, UK and Wiley, NY.

2. Owen, J. M., and Wilson, M., 2000, “Some Current Research in Rotating-Disc Systems,” in Turbine 2000 Int. Symp. on Heat Transfer in Gas Turbine Systems, Turkey, August 13–18, in Heat Transfer in Gas Turbine Systems, Annals of the New York Academy of Sciences, 934, pp. 206–221.

3. Metzger, D. E., Bunker, R. S., and Bosch, G., 1991, “Transient Liquid Crystal Measurement of Local Heat Transfer on a Rotating Disk With Jet Impingement,” ASME J. Turbomach., 113, pp. 52–59.

4. Karabay, H., Wilson, M., and Owen, J. M., 2001, “Predictions of Effect of Swirl on Flow and Heat Transfer in a Rotating Cavity,” Int. J. Heat Fluid Flow, 22, pp. 143–155.

5. Pilbrow, R., Karabay, H., Wilson, M., and Owen, J. M., 1999, “Heat Transfer in a ‘Cover-Plate’ Pre-Swirl Rotating-Disc System,” ASME J. Turbomach., 121, pp. 249–256.

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