Research into non-stationary temperature field in the protected metallic structure under conditions of fire
DOI:
https://doi.org/10.15587/1729-4061.2017.112370Keywords:
stationary temperature field, metallic structure, convection heat exchange, flame-retardant coating, fire-retardant efficiency of coatingAbstract
We tackled a problem of research into temperature field that makes it possible to determine effectiveness of the fire-retardant coating applied onto metallic wall. When stating the problem, we took into account a nonstandard temperature regime and conditions for a non-ideal thermal contact on the conjugating surfaces "metallic wall ‒ flame-retardant coating". To solve a nonstationary heat conduction problem, the integral Laplace transform by time was employed.
By using the devised mathematical model, we determined a non-stationary temperature field in the examined structure under condition of a non-ideal thermal contact. In the process of research, the time needed to reach a critical temperature was calculated, which is 45 minutes under condition that the value of the critical temperature on the unheated surface is 480 °C. Comparison of experimental data with the obtained numerical results showed that the difference is 9.7 %.
The devised adequate and experimentally confirmed mathematical model makes it possible to determine effectiveness of a fire-retardant coating without conducting expensive experimental studies. In future, based on the results obtained, it is necessary to find new formulations for the fire-retardant coating that would enable increasing the time needed to reach the critical temperature for the structure "metallic wall ‒ flame-retardant coating".References
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Copyright (c) 2017 Vasyl Loik, Oleksandr Lazarenko, Taras Bojko, Sergiy Vovk
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