Assessment of the thermal conductivity of intumescent coatings in fire

被引:56
|
作者
Cirpici, Burak Kaan [1 ]
Wang, Y. C. [1 ]
Rogers, B. [1 ]
机构
[1] Univ Manchester, Manchester M13 9PL, Lancs, England
关键词
Intumescent coatings; Thermal conductivity; Expansion; Prediction; Different fire conditions; Steel temperature; PERFORMANCE;
D O I
10.1016/j.firesaf.2016.01.011
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
This paper presents the results of the detailed assessment of a method that can be used to predict the intumescent coating behaviour and thermal conductivity under different conditions (changing steel section factor, intumescent coating thickness and fire condition). The basis of this method is the analytical solution of Amon and Denson (1984) [1] for predicting bubble growth under pressure under an idealised condition, which has previously been extended by the authors to non-uniform temperature field and temperature-dependent viscosity of intumescent melt. This paper demonstrates the accuracy of the predictive method to quantify the expansion process of intumescent coatings under different fire conditions, by comparing the temperatures of intumescent coating protected steel plates under different fire conditions with the fire test results of Zhang et al. (2012) [18]. The method is then applied to assess how the intumescent coating expansion and effective thermal conductivity are affected by changing the coating thickness, the steel thickness and the fire condition including smouldering fire. The results indicate that the expansion ratio of intumescent coating decreases, and hence the effective thermal conductivity increases, as the rate of heating increases. Therefore, the intumescent coating thermal conductivity obtained from the Standard fire exposure can be safely used for slower realistic fires, but would produce unsafe results for faster fires. (C) 2016 Elsevier Ltd. All rights reserved.
引用
收藏
页码:74 / 84
页数:11
相关论文
共 50 条
  • [21] Influence of magnesium hydroxide on thermal decomposition of intumescent fire-retardant epoxy coatings
    Zhang, Feng
    Wang, Wenting
    Cheng, Yunfei
    JOURNAL OF THERMOPLASTIC COMPOSITE MATERIALS, 2016, 29 (08) : 1151 - 1164
  • [22] Thermal degradation and pyrolysis analysis of zinc borate reinforced intumescent fire retardant coatings
    Gillani, Qandeel Fatima
    Ahmad, Faiz
    Mutalib, M. I. Abdul
    Megat-Yusoff, Puteri S. M.
    Ullab, Sami
    Messet, Patrick J.
    Zia-ul-Mustafa, M.
    PROGRESS IN ORGANIC COATINGS, 2018, 123 : 82 - 98
  • [23] Predicting intumescent coating protected steel temperature in fire using constant thermal conductivity
    Li, Guo-Qiang
    Han, Jun
    Lou, Guo-Biao
    Wang, Yong C.
    THIN-WALLED STRUCTURES, 2016, 98 : 177 - 184
  • [24] The thermal characteristics of different intumescent coatings
    Wladyka-Przybylak, M
    Kozlowski, R
    FIRE AND MATERIALS, 1999, 23 (01) : 33 - 43
  • [25] On a planar thermal analysis of intumescent coatings
    Ogrin, Anita
    Saje, Miran
    Hozjan, Tomaz
    FIRE AND MATERIALS, 2018, 42 (02) : 145 - 155
  • [26] THERMAL-CONDUCTIVITY OF INTUMESCENT CHARS
    ANDERSON, CE
    KETCHUM, DE
    MOUNTAIN, WP
    JOURNAL OF FIRE SCIENCES, 1988, 6 (06) : 390 - 410
  • [27] Intumescent paints: fire protective coatings for metallic substrates
    Duquesne, S
    Magnet, S
    Jama, C
    Delobel, R
    SURFACE & COATINGS TECHNOLOGY, 2004, 180 : 302 - 307
  • [28] New fire-protective intumescent coatings for wood
    Hassan, M.A.
    Kozlowski, Ryszard
    Obidzinski, Bartoz
    Journal of Applied Polymer Science, 2008, 110 (01): : 83 - 90
  • [29] Biomaterials in intumescent fire-retardant coatings: A review
    Zhan, Wang
    Li, Lixia
    Chen, Le
    Kong, Qinghong
    Chen, Mingyi
    Chen, Chao
    Zhang, Qingwu
    Jiang, Juncheng
    PROGRESS IN ORGANIC COATINGS, 2024, 192
  • [30] THE DESIGN AND DEVELOPMENT OF INTUMESCENT COATINGS FOR STRUCTURAL FIRE PROTECTION
    ASLIN, DC
    JOURNAL OF THE OIL & COLOUR CHEMISTS ASSOCIATION, 1989, 72 (05): : 185 - &