[1]
A. Kovalov, Yu. Otrosh, S. Vedula, O. Danilin, T. Kovalevska, Parameters of fire-retardant coatings of steel constructions under the influence of climatic factors, Naukovyi Visnyk Natsionalnoho Hirnychoho Universytetu, 3 (2019) 46–53.
DOI: 10.29202/nvngu/2019-3/9
Google Scholar
[2]
A. Vasilchenko, Yu. Otrosh, N. Adamenko, E. Doronin, A. Kovalov, Feature of fire resistance calculation of steel structures with intumescent coating, MATEC Web of Conferences, 230 (2018) 02036.
DOI: 10.1051/matecconf/201823002036
Google Scholar
[3]
V.K.R. Kodur, Guidelines for Fire Resistance Design of High-Strength Concrete Columns, J. of Fire Protection Engineering, 15:2 (2005) 93–106.
DOI: 10.1177/1042391505047740
Google Scholar
[4]
A. Kovalov, Yu. Otrosh, M. Surianinov, T. Kovalevska, Experimental and computer researches of ferroconcrete floor slabs at high-temperature influences, Materials Science Forum, 968 MSF (2019) 361–367.
DOI: 10.4028/www.scientific.net/msf.968.361
Google Scholar
[5]
Long T. Phan, Therese P. McAllister, John L. Gross, Morgan J. Hurley, Best Practice Guidelines for Structural Fire Resistance Design of Concrete and Steel Buildings, NIST Technical Note 1681 (2010) 217 p.
DOI: 10.6028/nist.tn.1681
Google Scholar
[6]
V. Sadkovyi, V. Andronov, O. Semkiv, A. Kovalov, E. Rybka, Yu. Otrosh et. al.; Sadkovyi, V., Rybka, E., Otrosh, Yu. (Eds.), Fire resistance of reinforced concrete and steel structures, Kharkiv: РС ТЕСHNOLOGY СЕNTЕR, (2021) 180.
DOI: 10.15587/978-617-7319-43-5
Google Scholar
[7]
A. Kovalov, Yu. Otrosh, E. Rybka, T. Kovalevska, V. Togobytska, I. Rolin, Treatment of Determination method for strength characteristics of reinforcing steel by using thread cutting method after temperature influence, 1006 MSF (2020) 179–184.
DOI: 10.4028/www.scientific.net/msf.1006.179
Google Scholar
[8]
M. Surianinov, V. Andronov, Yu. Otrosh, T. Makovkina, S. Vasiukov, Concrete and fiber concrete impact strength, Materials Science Forum, 1006 MSF (2020) 101–106.
DOI: 10.4028/www.scientific.net/msf.1006.101
Google Scholar
[9]
S.L. Fomyn, O.A. Stelmakh, Dzhafar Shaker Shakhyn Fire resistance of centrally compressed reinforced concrete elements, Fire Safety: Organizational and technical support, Kharkiv: KhIPB MVD Ukraine, (1996) 78–81.
Google Scholar
[10]
Building structures. Test method for fire resistance. General requirements. Fire safety. (ISO 834: 1975) DSTU B B.1.1-4-98*. [Effective from 1998-10-28.] Kyiv: Ukrarkhbudinform, (2005) 20 p. (The National Standard of Ukraine).
Google Scholar
[11]
A. Buchanan, Structural Design for Fire Safety, New York: John Wiley & Sons, (2001).
Google Scholar
[12]
S. Gurung, O. Salem, Effects of Load Level on the Structural Fire Behaviour of GFRP-Reinforced Concrete Beams with Straight-End bar Lap Splices, Lecture Notes in Civil Engineering, 267 (2023) 85–92.
DOI: 10.1007/978-3-031-09409-5_10
Google Scholar
[13]
S. Pozdieiev, O. Nuianzin, S. Sidnei, S. Shchipets, Computational study of bearing walls fire resistance tests efficiency using different combustion furnaces configurations, MATEC Web of Conferences, 116 (2017) 02027.
DOI: 10.1051/matecconf/201711602027
Google Scholar
[14]
Y. Otrosh, Y. Rybka, O. Danilin, M. Zhuravskyi, Assessment of the technical state and the possibility of its control for the further safe operation ofbuilding structures of mining facilities, E3S Web of Conferences, 123 (2019) 01012.
DOI: 10.1051/e3sconf/201912301012
Google Scholar
[15]
O. Nuianzin, O. Tyshchenko, S. Zhartovskyi, P. Zaika, A. Peregin, The research of carrying capacity of reinforced concrete walls under uneven warming, IOP Conference Series: Materials Science and Engineering, 708 1 (2019) 012063.
DOI: 10.1088/1757-899x/708/1/012063
Google Scholar
[16]
Yu. Otrosh, M. Surianinov, O. Holodnov, O. Starova, Experimental and computer researches of ferroconcrete beams at high-temperature influences, Materials Science Forum, 968 (2019) 355–360.
DOI: 10.4028/www.scientific.net/msf.968.355
Google Scholar
[17]
S. Pozdieiev, O. Nekora, V. Slovynsky, The research of bearing capacity of reinforced concrete beam with use combined experimental-computational method, MATEC Web of Conferences, 116 02024.
DOI: 10.1051/matecconf/201711602024
Google Scholar
[18]
Pilipenko A., Pancheva H., Reznichenko A., Myrgorod O., Miroshnichenko N., Sincheskul A. The study of inhibiting structural material corrosion in water recycling systems by sodium hydroxide. Eastern-European Journal of Enterprise Technologies. 2017. Vol. 2, No. 1–85. P. 21–28.
DOI: 10.15587/1729-4061.2017.95989
Google Scholar
[19]
B. Pospelov, V. Andronov, E. Rybka, O. Krainiukov, K. Karpets, O. Pirohov, I. Semenyshyna, R. Kapitan, A. Promska, O. Horbov, Development of the correlation method for operative detection of recurrent states, Eastern-European Journal of Enterprise, 6/4 (102) (2019) 39–46.
DOI: 10.15587/1729-4061.2019.187252
Google Scholar
[20]
O. Nekora, V. Slovynsky, S. Pozdieiev, The research of bearing capacity of reinforced concrete beam with use combined experimental-computational method, MATEC Web of Conferences, 116 (2017) 02024.
DOI: 10.1051/matecconf/201711602024
Google Scholar
[21]
A. Vasilchenko, E. Doronin, O. Chernenko, I. Ponomarenko, Estimation of fire resistance of bending reinforced concrete elements based on concrete with disperse fibers, IOP Conference Series: Materials Science and Engineering, 708 1 (2019) 012075.
DOI: 10.1088/1757-899x/708/1/012075
Google Scholar
[22]
S.D. Shchipets, Improvement of the method of testing the fire resistance of reinforced concrete and stone load-bearing walls: Ph.D. thesis in technical sciences, (2015)160 p.
Google Scholar
[23]
S. Lamont, B. Lane, A. Usmani, D. Drysdale, Assessment of the Fire Resistance Test with Respect to Beams in Real Structures, Engrg. J. AISC, 40:2 (2003) 63–75.
Google Scholar
[24]
EC2, Design of Concrete Structures–Part 1.2, General Rules–Structural Fire Design, ENV 1992-1-2, CEN, (2002).
Google Scholar
[25]
Fire safety of construction objects. General requirements of State Construction norms B.1.1-7-2016 [Effective from 2017-06-01] The Ministry of Regional Development and Construction, (2017) 35 p. (The National Standard of Ukraine).
Google Scholar