A Novel Liquid Crystal Image Processing Technique Using Multiple Gas Temperature Steps to Determine Heat Transfer Coefficient Distribution and Adiabatic Wall Temperature

Author:

Talib Abd Rahim Abu1,Neely Andrew J.2,Ireland Peter T.3,Mullender Andrew J.4

Affiliation:

1. Department of Aerospace Engineering, Faculty of Engineering, Universiti Putra Malaysia, Serdang, 43400 Selangor, Malaysia

2. School of Aerospace and Mechanical Engineering, University of New South Wales, Australian Defense Force Academy, Northcott Drive, Canberra ACT 2600, Australia

3. Department of Engineering Science, University of Oxford, Parks Road, Oxford OX1 3PJ, UK

4. Fire Precautions Group, Rolls-Royce plc., P.O. Box 31, Derby DE24 8BJ, UK

Abstract

This paper presents a novel experimental technique, which combines thermochromic liquid crystals with multiple steps in gas temperature, to determine heat transfer coefficient and adiabatic wall temperature distributions. The transient heat transfer experiments have been conducted on a flat plate using the low-temperature analogue of an ISO standard propane-air burner commonly used in aero-engine fire certification. The technique involves the measurement of the surface temperature response of an insulating model to a change in gas temperature. A coating comprising more than one thermochromic liquid crystal material is used to increase the range of the surface measurement and this is combined with multiple step changes in gas temperature. These measures induce several peaks in liquid crystal intensity throughout the transient experiment and these are shown to improve the accuracy. The current technique employs useful data from both the heating and cooling phases in the heat transfer test. To the authors’ knowledge, this has not been investigated before and it is likely to be very useful for other applications of the liquid crystal transient heat transfer experiment. The uncertainties in all measurements have been quantified and are presented in this paper.

Publisher

ASME International

Subject

Mechanical Engineering

Reference32 articles.

1. Jones, T. V., Wang, Z., and Ireland, P. T., 1992, “Liquid Crystals in Aerodynamic and Heat Transfer Testing,” Proceedings, IMechE Conference-Optical Methods and Data Processing in Heat and Fluid Flow, ImechE, London, UK.

2. Ireland, P. T., Wang, Z., and Jones, T. V., 1995, “Liquid Crystal Heat Transfer Measurement,” Measurement Techniques Lecture Series, von Karman Institute for Fluid Dynamics.

3. Baughn, J. W. , 1995, “Liquid Crystal Methods for Studying Turbulent Heat Transfer,” Int. J. Heat Fluid Flow, 16(5), pp. 365–375.

4. Wilson, M., Syson, B. J., and Owen, J. M., 1993, “Image Processing Techniques Applied to Wide-Band Thermochromic Liquid Crystals,” Proceedings, Eurotherm, 32, pp. 41–49.

5. Wang, Z., Ireland, P. T., Jones, T. V., and Davenport, R., 1994, “A Color Image Processing System for Transient Liquid Crystal Heat Transfer Experiments,” ASME Paper No. 94-GT-290.

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