Study on prediction method for the insulation of gypsum board using inclusive thermal conductivity in fire resistance tests

Abstract In this study, a method for predicting the unexposed surface temperature of a wall is proposed based on the concept of “inclusive thermal conductivity,” which considers the heat and mass transfer of materials containing moisture. The inclusive thermal conductivity is estimated based on the...

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Main Authors: Kimie Yoshitani, Takafumi Shimizu, Masatomo Yoshida
Format: Article
Language:English
Published: Wiley 2018-10-01
Series:Japan Architectural Review
Subjects:
Online Access:https://doi.org/10.1002/2475-8876.12057
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spelling doaj-212c4678510441d6a09d56eb42b83d092021-05-02T19:04:38ZengWileyJapan Architectural Review2475-88762018-10-011454856210.1002/2475-8876.12057Study on prediction method for the insulation of gypsum board using inclusive thermal conductivity in fire resistance testsKimie Yoshitani0Takafumi Shimizu1Masatomo Yoshida2Daiwa House Industry Co., Ltd. Central Research Laboratory Nara‐shi Nara JapanDaiwa House Industry Co., Ltd. Central Research Laboratory Nara‐shi Nara JapanYawata Engineering Laboratory Osaka Institute of Technology Yawata‐shi Kyoto JapanAbstract In this study, a method for predicting the unexposed surface temperature of a wall is proposed based on the concept of “inclusive thermal conductivity,” which considers the heat and mass transfer of materials containing moisture. The inclusive thermal conductivity is estimated based on the results of temperature measurements obtained from actual fire resistance tests. The proposed method enables the estimation of material thermal conductivities that are difficult to assess using conventional methods. The inclusive thermal conductivity is affected by the deterioration and evaporation that occurs in the materials, which are estimated from the fire resistance test results. The unexposed surface temperature predictions for the gypsum boards of different thicknesses are numerically analyzed by changing the number of inclusive thermal conductivities. The inclusive thermal conductivity of the gypsum board increases as the temperature increases. The unexposed surface temperature prediction is affected by the exposed surface temperature of the fire resistance tests, and the prediction accuracy increases as the difference in the material thickness decreases. The exposed surface temperature obtained from the fire resistance test results influences the prediction of the unexposed surface temperature. The prediction accuracy of the numerical analysis using the inclusive thermal conductivity is confirmed to be practically sufficient.https://doi.org/10.1002/2475-8876.12057finite‐difference methodfire resistancegypsum boardinclusive thermal conductivityunexposed surface temperature prediction
collection DOAJ
language English
format Article
sources DOAJ
author Kimie Yoshitani
Takafumi Shimizu
Masatomo Yoshida
spellingShingle Kimie Yoshitani
Takafumi Shimizu
Masatomo Yoshida
Study on prediction method for the insulation of gypsum board using inclusive thermal conductivity in fire resistance tests
Japan Architectural Review
finite‐difference method
fire resistance
gypsum board
inclusive thermal conductivity
unexposed surface temperature prediction
author_facet Kimie Yoshitani
Takafumi Shimizu
Masatomo Yoshida
author_sort Kimie Yoshitani
title Study on prediction method for the insulation of gypsum board using inclusive thermal conductivity in fire resistance tests
title_short Study on prediction method for the insulation of gypsum board using inclusive thermal conductivity in fire resistance tests
title_full Study on prediction method for the insulation of gypsum board using inclusive thermal conductivity in fire resistance tests
title_fullStr Study on prediction method for the insulation of gypsum board using inclusive thermal conductivity in fire resistance tests
title_full_unstemmed Study on prediction method for the insulation of gypsum board using inclusive thermal conductivity in fire resistance tests
title_sort study on prediction method for the insulation of gypsum board using inclusive thermal conductivity in fire resistance tests
publisher Wiley
series Japan Architectural Review
issn 2475-8876
publishDate 2018-10-01
description Abstract In this study, a method for predicting the unexposed surface temperature of a wall is proposed based on the concept of “inclusive thermal conductivity,” which considers the heat and mass transfer of materials containing moisture. The inclusive thermal conductivity is estimated based on the results of temperature measurements obtained from actual fire resistance tests. The proposed method enables the estimation of material thermal conductivities that are difficult to assess using conventional methods. The inclusive thermal conductivity is affected by the deterioration and evaporation that occurs in the materials, which are estimated from the fire resistance test results. The unexposed surface temperature predictions for the gypsum boards of different thicknesses are numerically analyzed by changing the number of inclusive thermal conductivities. The inclusive thermal conductivity of the gypsum board increases as the temperature increases. The unexposed surface temperature prediction is affected by the exposed surface temperature of the fire resistance tests, and the prediction accuracy increases as the difference in the material thickness decreases. The exposed surface temperature obtained from the fire resistance test results influences the prediction of the unexposed surface temperature. The prediction accuracy of the numerical analysis using the inclusive thermal conductivity is confirmed to be practically sufficient.
topic finite‐difference method
fire resistance
gypsum board
inclusive thermal conductivity
unexposed surface temperature prediction
url https://doi.org/10.1002/2475-8876.12057
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