A Transient Method for Determining Thermal Diffusivity of Tobacco Stems

A microwave generator and a closed-circuit wind tunnel were used to measure the thermal diffusivity of tobacco (Nicotianatabacum L.) stems in vivo by the unsteady-state method. A simple mathematical model for heat flow, based on Fourier's heat-conduction equation and Newton's law of coolin...

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Main Authors: Barthakur NN, Arnold NP
Format: Article
Language:English
Published: Sciendo 1989-10-01
Series:Beiträge zur Tabakforschung International
Online Access:https://doi.org/10.2478/cttr-2013-0609
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spelling doaj-696b020188374c6d808733cdef76632c2021-09-06T19:22:12ZengSciendoBeiträge zur Tabakforschung International1612-92371989-10-0114532132610.2478/cttr-2013-0609A Transient Method for Determining Thermal Diffusivity of Tobacco StemsBarthakur NN0Arnold NP1Department of Renewable Resources, Macdonald College of McGill University, Ste. Anne de Bellevue, Quebec, CanadaExperimental Farm, Agriculture Canada, L ‘Assomption, Quebec, CanadaA microwave generator and a closed-circuit wind tunnel were used to measure the thermal diffusivity of tobacco (Nicotianatabacum L.) stems in vivo by the unsteady-state method. A simple mathematical model for heat flow, based on Fourier's heat-conduction equation and Newton's law of cooling, was used in this study. The microwave method was found to be relatively rapid as both heating and cooling of a cylindrical stem in an air stream could be completed in approximately 30 minutes for thermal-diffusivity determinations. Thermal-diffusivity value of the tobacco stems, containing 94 % moisture and a mean stem temperature of 30°C, was found to be (1.38 ± 0.06) × 10-7 m2 s-1. The coefficient of variation for the measurements did not exceed 1.4 % as determined through the analysis of cooling curves for five different air-flow rates over the stems. This study showed that the microwave technique could be effectively used to determine both accurately and reliably the thermal diffusivity of tobacco stems in vivo.https://doi.org/10.2478/cttr-2013-0609
collection DOAJ
language English
format Article
sources DOAJ
author Barthakur NN
Arnold NP
spellingShingle Barthakur NN
Arnold NP
A Transient Method for Determining Thermal Diffusivity of Tobacco Stems
Beiträge zur Tabakforschung International
author_facet Barthakur NN
Arnold NP
author_sort Barthakur NN
title A Transient Method for Determining Thermal Diffusivity of Tobacco Stems
title_short A Transient Method for Determining Thermal Diffusivity of Tobacco Stems
title_full A Transient Method for Determining Thermal Diffusivity of Tobacco Stems
title_fullStr A Transient Method for Determining Thermal Diffusivity of Tobacco Stems
title_full_unstemmed A Transient Method for Determining Thermal Diffusivity of Tobacco Stems
title_sort transient method for determining thermal diffusivity of tobacco stems
publisher Sciendo
series Beiträge zur Tabakforschung International
issn 1612-9237
publishDate 1989-10-01
description A microwave generator and a closed-circuit wind tunnel were used to measure the thermal diffusivity of tobacco (Nicotianatabacum L.) stems in vivo by the unsteady-state method. A simple mathematical model for heat flow, based on Fourier's heat-conduction equation and Newton's law of cooling, was used in this study. The microwave method was found to be relatively rapid as both heating and cooling of a cylindrical stem in an air stream could be completed in approximately 30 minutes for thermal-diffusivity determinations. Thermal-diffusivity value of the tobacco stems, containing 94 % moisture and a mean stem temperature of 30°C, was found to be (1.38 ± 0.06) × 10-7 m2 s-1. The coefficient of variation for the measurements did not exceed 1.4 % as determined through the analysis of cooling curves for five different air-flow rates over the stems. This study showed that the microwave technique could be effectively used to determine both accurately and reliably the thermal diffusivity of tobacco stems in vivo.
url https://doi.org/10.2478/cttr-2013-0609
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