Isotherm Identification on the Surface of Gas Turbine Engine Hot Components using Temperature Indicating Paint through Image Processing Algorithm
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newlineABSTRACT
newlineGas Turbines has been used in the applications of the aircraft
newlinepropulsion system and land-based power generating systems in more
newlineeffective way. Optimization of the individual component temperature of
newlinethe gas turbine engine is mandatory by the manufacturers of aeronautical
newlinecomponents in order to enhance the life span of the turbo shaft and the
newlinethermal efficiency of an aircraft propulsion system. Thermal efficiency
newlineand power output of the gas turbine system can be increased if the
newlinetemperature of flue gases entering the turbine increased from 1500
newline0
newlineC to
newline19500
newlineC. Combustion Chamber and Turbine are to be considered as the
newlineessential sections of gas turbine engine for maximizing the energy
newlineoutput. The flame produced due to combustion of air and fuel propagates
newlinethrough these two components of the gas turbine system. As the hot
newlinecombustible gases flows through these components, high thermal
newlinestresses are imposed on these components. The maximum exposure
newlinetemperature leads to thermal stress, fatigue and creep of the components.
newlineThe exposure temperature and the temperature gradient on the surface of
newlinethese components should be kept to an acceptable level for better health
newlinemonitoring.
newlineThe current research work concentrates on the identification of
newlineisotherms on the components of a gas turbine engine exposed to high
newlinetemperature. The prime objective of surface temperature detection is
newlineachieved by using a novel method called as Temperature Indicating
newlinepaint (TIP). A Multi Colour Change (MC) 350-8, Temperature
newlineIndicating Paint (TIP) was chosen to achieve this objective. A
newlinev
newlinecalibration data base has been framed based on the colour change of MC
newline350-8 with temperature variation. The behavior of MC 350-8 with
newlinechange in temperature, time, cross sectional area and flame distribution
newlinehas been observed with a bow-tie specimen. The experimental research
newlinealso comprises the calibration of temperature detected using MC 350-8
newlinealong with the temperature recorded by K type thermocouple.
newlineThe colour attributes has been found for each colour change and
newlinea relation between temperature and colour attributes has been
newlineestablished. Based on the relation, an image processing algorithm has
newlinebeen formed for detection of surface temperature using colour attributes.
newlineThe temperature gradient on the surface of fabricated combustion
newlinechamber and turbine blades has been detected using the proposed
newlinealgorithm. A steady state thermal analysis also has been carried out on
newlinethe miniature of the experimental specimens for the numerical validation
newlineof MC 350-8 results.
newlineAn optimum configuration and the suitable material for the
newlinecombustion chamber and turbine blade has been identified based on
newlinesurface temperature profiling of MC 350-8. The observed results from
newlinethe research work reveals that the proposed image processing algorithm
newlineusing the colour change of MC 350-8 is an simple and cost-effective
newlinemethod in the surface temperature detection of gas turbine engine
newlinecomponents.
newline