Сalculation of fire resistance of fire protected reinforced concrete structures

 

Kovalov Andrii

National University of Civil Defence of Ukraine

https://orcid.org/0000-0002-6525-7558

 

Poklonskyi Viktor

National University of Civil Defence of Ukraine

http://orcid.org/0000-0001-7801-7118

 

Otrosh Yurii

National University of Civil Defence of Ukraine

http://orcid.org/0000-0003-0698-2888

 

Tоmеnkо Vitalii

National University of Civil Defence of Ukraine

http://orcid.org/0000-0001-7139-9141

 

Yurchenko Serhii

National University of Civil Defence of Ukraine

http://orcid.org/0000-0002-2775-238X

 

DOI: https://doi.org/10.52363/2524-0226-2022-35-2

 

Keywords: fire resistance, reinforced concrete structures, thermal engineering calculation, numerical modeling, fire protection, fire protection coating, ANSYS

 

Аnnotation

A finite-element model was developed for thermal engineering calculation of a fire-resistant multi-cavity reinforced concrete floor in the ANSYS software complex. With the help of the developed model, a thermal engineering calculation of a fire-resistant reinforced concrete multi-hollow floor slab was carried out, the essence of which was to solve the problem of non-stationary thermal conductivity and was reduced to determining the temperature of the concrete of the reinforced concrete floor at any point of the cross section at a given time (including at the place of installation of the fittings).A comparison of the results of numerical modeling with the results of an experimental study of fire resistance was carried out. An approach is proposed that allows taking into account all types of heat exchange by specifying cavities as a solid body with an equivalent coefficient of thermal conductivity. The model makes it possible to study stationary and non-stationary heating of both unprotected and fire-protected reinforced concrete structures. At the same time, with the help of the developed model, it is possible to take into account various factors affecting fire-resistant reinforced concrete structures: fire temperature regimes, thermophysical characteristics of reinforced concrete structures, coatings for fire protection of reinforced concrete structures. The adequacy of the developed model was tested, as a result of which it was established that the calculated values of temperatures satisfactorily correlate with experimental data. The largest area of deviation in temperature measurement is observed at the 100 th minute of calculation and is about 3 ºС, which is 9 %. The workability of the developed model for evaluating the fire resistance of fire-resistant reinforced concrete structures and its adequacy to real processes that occur during heating of fire-resistant reinforced concrete structures with the application of a load under the conditions of fire exposure under the standard fire temperature regime have been proven.

 

References

  1. Zhang, H. Y., Lv, H. R., Kodur, V., Qi, S. L. (2018). Performance comparison of fiber sheet strengthened RC beams bonded with geopolymer and epoxy resin under ambient and fire conditions. Journal of Structural Fire Engineering, 9(3), 174–188. https://doi.org/10.1108/JSFE-01-2017-0023
  2. Hertz, K., Giuliani, L., Sorensen, L. S. (2017). Fire resistance of extruded hollow-core slabs. Journal of Structural Fire Engineering, 8(3), 324–336.
  3. Franssen, J. M., Gernay, T. (2017). Modeling structures in fire with SAFIR®: Theoretical background and capabilities. Journal of Structural Fire Engineering, 8(3), 300–323. https://doi.org/10.1108/JSFE-07-2016-0010
  4. Mwangi, S. (2017). Why Broadgate Phase 8 composite floor did not fail under fire : Numerical investigation using ANSYS® FEA code. Journal of Structural Fire Engineering, 8(3), 238–257. https://doi.org/10.1108/JSFE-05-2017-0032
  5. Walls, R., Viljoen, C., de Clercq, H. (2020). Parametric investigation into the cross-sectional stress-strain behaviour, stiffness and thermal forces of steel, concrete and composite beams exposed to fire. Journal of Structural Fire Engineering, 11(1), 100–117. https://doi.org/10.1108/JSFE-10-2018-0031
  6. Vishal, M., Satyanarayanan, K. S. (2021). A review on research of fire-induced progressive collapse on structures. Journal of Structural Fire Engineering, 12(3), 410–425. https://doi.org/10.1108/JSFE-07-2020-0023
  7. Li, S., Jiaolei, Z., Zhao, D., Deng, L. (2021). Study on fire resistance of a prefabricated reinforced concrete frame structure. Journal of Structural Fire Engineering, 12(3), 363–376. https://doi.org/10.1108/JSFE-12-2020-0039
  8. Golovanov, V. I., Pekhotikov, A. V., Pavlov, V. V. (2021). Fire protection of steel and reinforced concrete structures of industrial buildings and structures. Bezopasnost’ Truda v Promyshlennosti, (9), 50–56. https://doi.org/10.24000/0409-2961-2021-9-50-56.
  9. Poklonskiy, V., Krukovskiy, P., Novak, S. (2021). Raschet zhelezobetonnoy plity perekrytiya pri vozdeystvii povyshennykh temperatur pozhara. Naukoviy vіsnik: tsivіlniy zakhist ta pozhezhna bezpeka, 2(10), 69–82. https://doi.org/10.33269/nvcz.2020.2.69-82
  10. ENV 1993-1-2:2005. Eurocode 3, Design of steel structures, Part 1.2, general rules – Structural fire design.
  11. Kovalov, A., Otrosh, Y., Semkiv, O., Konoval, V., Сhernenko, O. (2020). Influence of the fire temperature regime on the fire-retardant ability of reinforced-concrete floors coating. In Materials Science Forum (1006 MSF, 87–92). Trans Tech Publications Ltd. https://doi.org/10.4028/www.scientific.net/MSF.1006.87
  12. Kovalov, A. I., Otrosh, Y. A., Kovalevska, T. M., Safronov, S. O. (2019). Methodology for assessment of the fire-resistant quality of reinforced-concrete floors protected by fire-retardant coatings. In IOP Conference Series: Materials Science and Engineering 708. IOP Publishing Ltd. https://doi.org/10.1088/1757-899X/708/1/012058
  13. Kovalov, A., Yurii, O., Surianinov, M., Tatiana, K. (2019). Experimental and computer researches of ferroconcrete floor slabs at high-temperature influences. In Materials Science Forum. 968 MSF, 361–367. Trans Tech Publications Ltd. https://doi.org/10.4028/www.scientific.net/MSF.968.361