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A generalized analysis on material invariant characteristics for microwave heating of slabs
Authors:Tanmay Basak  Sucheta S Kumaran
Affiliation:Department of Chemical Engineering, Indian Institute of Technology, Madras, Chennai 600 036, India
Abstract:A generalized dimensionless formulation has been developed to predict the spatial distribution of microwave power and temperature. The ‘dimensionless analysis’ is mainly based on three numbers: wave number, View the MathML source; free space wave number, View the MathML source; and penetration number, View the MathML source, where View the MathML source is the ratio of sample thickness to wavelength of microwaves within a material, View the MathML source is based on wavelength within free space and View the MathML source is the ratio of sample thickness to penetration depth. The material dielectric properties and sample thicknesses form the basis of these dimensionless numbers. The volumetric heat source due to microwaves can be expressed as a combination of dimensionless numbers and electric field distributions. The spatial distributions of microwave power for uniform plane waves can be obtained from the combination of transmitted and reflected waves within a material. Microwave heating characteristics are obtained by solving energy balance equations where the dimensionless temperature is scaled with respect to incident microwave intensity. The generalized trends of microwave power absorption are illustrated via average power plots as a function of View the MathML source, View the MathML source and View the MathML source. The average power contours exhibit oscillatory behavior with View the MathML source corresponding to smaller View the MathML source for smaller values of View the MathML source. The spatial distributions of dimensionless electric fields and power are obtained for various View the MathML source and View the MathML source. The spatial resonance or maxima on microwave power is represented by zero phase difference between transmitted and reflected waves. It is observed that the number of spatial resonances increases with View the MathML source for smaller View the MathML source regimes whereas the spatial power follows the exponential decay law for higher View the MathML source regimes irrespective of View the MathML source and View the MathML source. These trends are observed for samples incident with microwaves at one face and both the faces. The heating characteristics are shown for various materials and generalized heating patterns are shown as functions of View the MathML source, View the MathML source and View the MathML source. The generalized heating characteristics involve either spatial temperature distributions or uniform temperature profiles based on both thermal parameters and dimensionless numbers (View the MathML source).
Keywords:Microwave  Heating  Dimensionless analysis  Material invariance
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