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Title:Numerical heat transfer model for swelling intumescent coatings during heating
Authors:ID Lucherini, Andrea (Author)
ID Hidalgo, Juan P. (Author)
ID Torero, Jose L. (Author)
ID Maluk, Cristian (Author)
Files:URL URL - Source URL, visit https://www.sciencedirect.com/science/article/abs/pii/S1290072922004501
 
.pdf PDF - Presentation file. (1,21 MB, This file will be accessible after 28.09.2024)
MD5: 6CCC70841683EF7CBC443A6833203164
 
Language:English
Typology:1.01 - Original Scientific Article
Organization:Logo ZAG - Slovenian National Building and Civil Engineering Institute
Abstract:This research study presents a heat transfer model aimed at estimating the thermal and physical response of intumescent coatings. The numerical model is inspired by the outcomes of an experimental study focused on analysing the insulating effectiveness of a commercial intumescent coating for a range of heating conditions and initial coating thickness. The model solves the one-dimensional heat conduction problem using the finite-difference Crank-Nicolson method, and it assumes that the effectiveness of intumescent coatings is mainly dependent on their ability to develop swelled porous char. The coating swelling is implemented in the model by adopting an approach based on expanding the mesh representing the physical domain in proximity to the substrate-coating interface. The model described herein offers researchers and engineers a tool to estimate the heat transfer of swelling intumescent coatings (i.e. in-depth thermal gradient). Outcomes of the analysis shown herein demonstrate that the heat conduction within intumescent coatings is governed by the physical coating swelling and the thermal conditions at the coating-substrate interface. The numerical model shows that its accuracy is highly influenced by the coating thickness ahead of the reaction zone. Consequently, the coating swelling rate plays a key role, while the thermo-physical properties of the intumescent coating have a secondary effect. According to its assumptions, the model defines a quasi-steady-state thermal problem: it is more accurate for conditions close to steady-state (e.g. high heat fluxes), but it loses accuracy for cases characterised by transient phenomena (e.g. phases prior to the onset of swelling and low heat fluxes).
Keywords:intumescent coatings, heat transfer, numerical model, swelling, fire safety
Publication status:Published
Publication version:Author Accepted Manuscript
Publication date:28.09.2022
Publisher:Elsevier
Year of publishing:2023
Number of pages:str. 1-13
Numbering:Vol. 184
PID:20.500.12556/DiRROS-17648 New window
UDC:620.1/.2
ISSN on article:1290-0729
DOI:10.1016/j.ijthermalsci.2022.107922 New window
COBISS.SI-ID:125555715 New window
Copyright:© 2022 Elsevier Ltd. All rights reserved
Note:Št. članka: 107922;
Publication date in DiRROS:08.01.2024
Views:180
Downloads:34
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Record is a part of a journal

Title:International journal of thermal sciences
Shortened title:Int. j. therm. sci.
Publisher:Elsevier
ISSN:1290-0729
COBISS.SI-ID:3258651 New window

Licences

License:CC BY-NC-ND 4.0, Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International
Link:http://creativecommons.org/licenses/by-nc-nd/4.0/
Description:The most restrictive Creative Commons license. This only allows people to download and share the work for no commercial gain and for no other purposes.

Secondary language

Language:Slovenian
Keywords:intumescentni premazi, prenos toplote, numerični model, nabrekanje, požarna varnost


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