Literature DB >> 23464237

Thermocouple error correction for measuring the flame temperature with determination of emissivity and heat transfer coefficient.

V Hindasageri1, R P Vedula, S V Prabhu.   

Abstract

Temperature measurement by thermocouples is prone to errors due to conduction and radiation losses and therefore has to be corrected for precise measurement. The temperature dependent emissivity of the thermocouple wires is measured by the use of thermal infrared camera. The measured emissivities are found to be 20%-40% lower than the theoretical values predicted from theory of electromagnetism. A transient technique is employed for finding the heat transfer coefficients for the lead wire and the bead of the thermocouple. This method does not require the data of thermal properties and velocity of the burnt gases. The heat transfer coefficients obtained from the present method have an average deviation of 20% from the available heat transfer correlations in literature for non-reacting convective flow over cylinders and spheres. The parametric study of thermocouple error using the numerical code confirmed the existence of a minimum wire length beyond which the conduction loss is a constant minimal. Temperature of premixed methane-air flames stabilised on 16 mm diameter tube burner is measured by three B-type thermocouples of wire diameters: 0.15 mm, 0.30 mm, and 0.60 mm. The measurements are made at three distances from the burner tip (thermocouple tip to burner tip/burner diameter = 2, 4, and 6) at an equivalence ratio of 1 for the tube Reynolds number varying from 1000 to 2200. These measured flame temperatures are corrected by the present numerical procedure, the multi-element method, and the extrapolation method. The flame temperatures estimated by the two-element method and extrapolation method deviate from numerical results within 2.5% and 4%, respectively.

Year:  2013        PMID: 23464237     DOI: 10.1063/1.4790471

Source DB:  PubMed          Journal:  Rev Sci Instrum        ISSN: 0034-6748            Impact factor:   1.523


  2 in total

1.  Nanostructure Transition of Young Soot Aggregates to Mature Soot Aggregates in Diluted Diffusion Flames.

Authors:  Justin Davis; Eric Molnar; Igor Novosselov
Journal:  Carbon N Y       Date:  2019-12-19       Impact factor: 9.594

2.  0D Dynamic Modeling and Experimental Characterization of a Biomass Boiler with Mass and Energy Balance.

Authors:  Fateh Mameri; Eric Delacourt; Céline Morin; Jesse Schiffler
Journal:  Entropy (Basel)       Date:  2022-01-28       Impact factor: 2.524

  2 in total

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