Effects of Combined Surface and In‐Depth  Absorption on Ignition of PMMA

A one‐dimensional numerical model and theoretical analysis involving both surface and in‐depth radiative heat flux absorption are utilized to investigate the influence of their combination on ignition of PMMA (Polymethyl Methacrylate). Ignition time, transient temperature in a solid and optimized co...

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Main Authors: Junhui Gong, Yixuan Chen, Jing Li, Juncheng Jiang, Zhirong Wang, Jinghong Wang
Format: Article
Language:English
Published: MDPI AG 2016-10-01
Series:Materials
Subjects:
Online Access:http://www.mdpi.com/1996-1944/9/10/820
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spelling doaj-b79f9fe50d094385a8f33c08a7af2d0c2020-11-24T22:58:18ZengMDPI AGMaterials1996-19442016-10-0191082010.3390/ma9100820ma9100820Effects of Combined Surface and In‐Depth  Absorption on Ignition of PMMAJunhui Gong0Yixuan Chen1Jing Li2Juncheng Jiang3Zhirong Wang4Jinghong Wang5College of Safety Science and Engineering, Nanjing Tech University, Nanjing, Jiangsu 210009, ChinaCollege of Safety Science and Engineering, Nanjing Tech University, Nanjing, Jiangsu 210009, ChinaDepartment of Fire Science & Professional Studies, University of New Haven, West Haven, CT 06516, USACollege of Safety Science and Engineering, Nanjing Tech University, Nanjing, Jiangsu 210009, ChinaCollege of Safety Science and Engineering, Nanjing Tech University, Nanjing, Jiangsu 210009, ChinaCollege of Safety Science and Engineering, Nanjing Tech University, Nanjing, Jiangsu 210009, ChinaA one‐dimensional numerical model and theoretical analysis involving both surface and in‐depth radiative heat flux absorption are utilized to investigate the influence of their combination on ignition of PMMA (Polymethyl Methacrylate). Ignition time, transient temperature in a solid and optimized combination of these two absorption modes of black and clear PMMA are examined to understand the ignition mechanism. Based on the comparison, it is found that the selection of constant or variable thermal parameters of PMMA barely affects the ignition time of simulation results. The linearity between tig-0.5 and heat flux does not exist anymore for high heat flux. Both analytical and numerical models underestimate the surface temperature and overestimate the temperature in a solid beneath the heat penetration layer for pure in‐depth absorption. Unlike surface absorption circumstances, the peak value of temperature is in the vicinity of the surface but not on the surface for in‐depth absorption. The numerical model predicts the ignition time better than the analytical model due to the more reasonable ignition criterion selected. The surface temperature increases with increasing incident heat flux. Furthermore, it also increases with the fraction of surface absorption and the radiative extinction coefficient for fixed heat flux. Finally, the combination is optimized by ignition time, temperature distribution in a solid and mass loss rate.http://www.mdpi.com/1996-1944/9/10/820surface absorption in‐depth absorption ignition thermal degradation PMMA
collection DOAJ
language English
format Article
sources DOAJ
author Junhui Gong
Yixuan Chen
Jing Li
Juncheng Jiang
Zhirong Wang
Jinghong Wang
spellingShingle Junhui Gong
Yixuan Chen
Jing Li
Juncheng Jiang
Zhirong Wang
Jinghong Wang
Effects of Combined Surface and In‐Depth  Absorption on Ignition of PMMA
Materials
surface absorption
 in‐depth absorption
 ignition
 thermal degradation
 PMMA
author_facet Junhui Gong
Yixuan Chen
Jing Li
Juncheng Jiang
Zhirong Wang
Jinghong Wang
author_sort Junhui Gong
title Effects of Combined Surface and In‐Depth  Absorption on Ignition of PMMA
title_short Effects of Combined Surface and In‐Depth  Absorption on Ignition of PMMA
title_full Effects of Combined Surface and In‐Depth  Absorption on Ignition of PMMA
title_fullStr Effects of Combined Surface and In‐Depth  Absorption on Ignition of PMMA
title_full_unstemmed Effects of Combined Surface and In‐Depth  Absorption on Ignition of PMMA
title_sort effects of combined surface and in‐depth  absorption on ignition of pmma
publisher MDPI AG
series Materials
issn 1996-1944
publishDate 2016-10-01
description A one‐dimensional numerical model and theoretical analysis involving both surface and in‐depth radiative heat flux absorption are utilized to investigate the influence of their combination on ignition of PMMA (Polymethyl Methacrylate). Ignition time, transient temperature in a solid and optimized combination of these two absorption modes of black and clear PMMA are examined to understand the ignition mechanism. Based on the comparison, it is found that the selection of constant or variable thermal parameters of PMMA barely affects the ignition time of simulation results. The linearity between tig-0.5 and heat flux does not exist anymore for high heat flux. Both analytical and numerical models underestimate the surface temperature and overestimate the temperature in a solid beneath the heat penetration layer for pure in‐depth absorption. Unlike surface absorption circumstances, the peak value of temperature is in the vicinity of the surface but not on the surface for in‐depth absorption. The numerical model predicts the ignition time better than the analytical model due to the more reasonable ignition criterion selected. The surface temperature increases with increasing incident heat flux. Furthermore, it also increases with the fraction of surface absorption and the radiative extinction coefficient for fixed heat flux. Finally, the combination is optimized by ignition time, temperature distribution in a solid and mass loss rate.
topic surface absorption
 in‐depth absorption
 ignition
 thermal degradation
 PMMA
url http://www.mdpi.com/1996-1944/9/10/820
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