Determination of the technical state of buildings and constructions after force and temperature influences

Authors

  • Mykola Gordiuk Limited Liability Company «V. Shimanovsky Ukrainian Institute of Steel Construction», 2/1, Shymanovskoho str., Kyiv, Ukraine, 02125, Ukraine https://orcid.org/0000-0003-0517-9612
  • Mykola Semynoh Limited Liability Company «V. Shimanovsky Ukrainian Institute of Steel Construction», 2/1, Shymanovskoho str., Kyiv, Ukraine, 02125, Ukraine https://orcid.org/0000-0002-8633-5041
  • Oleksandr Holodnov Limited Liability Company «V. Shimanovsky Ukrainian Institute of Steel Construction», 2/1, Shymanovskoho str., Kyiv, Ukraine, 02125, Ukraine https://orcid.org/0000-0002-9722-9164
  • Igor Tkachuk Limited Liability Company «V. Shimanovsky Ukrainian Institute of Steel Construction», 2/1, Shymanovskoho str., Kyiv, Ukraine, 02125, Ukraine https://orcid.org/0000-0001-9334-7369

DOI:

https://doi.org/10.15587/2312-8372.2019.179220

Keywords:

reinforced concrete elements of buildings and structures, deflections of weakly armored elements, structural analysis, residual life

Abstract

The object of research is the technical condition and bearing capacity of reinforced concrete structures of buildings and structures after power and high-temperature influences. Calculation methods, which are recommended by the current regulatory documents of Ukraine, do not always allow to correctly predict the growth of structural deformations and assess the real stock of bearing capacity.

One of the most problematic places is the calculation of structures working under forced displacements of supports and/or possible high-temperature influences. The situation is further aggravated by the fact that calculations are carried out, as a rule, using non-deformable schemes.

Strengthening of structures of buildings that have suffered damage after various impacts is usually carried out using metal elements. At the same time, the main thing remains to perform structural analysis for the justified purpose of the sections of reinforcing elements.

In the course of the study, various methods were used, primarily modeling the operation of structures using the finite element method and modern computer systems. This is due to the fact that the proposed method for solving the problem has a number of features, in particular, it allows determining the distribution of forces in the building elements after changing the stiffness characteristics or introducing additional core elements into the design scheme. In the course of solving the problem, the appearance and development of cracks is modeled by changing the stiffness characteristics of the elements.

The efforts that could have arisen in the elements of the building and reinforcement are obtained. Thanks to this, it is possible to make decisions about the possibility of further operation, reinforcement or replacement of structures. Changing the conditions of consolidation is considered as action on the part of the foundation. Compared with similar well-known calculation methods, this approach makes it possible to predict changes in the technical condition over time, that is, taking into account changes in fixing conditions and characteristics of building materials will allow a more reasonable approach to assessing the stress-strain state and the residual life of the structure or structure as a whole.

Author Biographies

Mykola Gordiuk, Limited Liability Company «V. Shimanovsky Ukrainian Institute of Steel Construction», 2/1, Shymanovskoho str., Kyiv, Ukraine, 02125

Applicant

Mykola Semynoh, Limited Liability Company «V. Shimanovsky Ukrainian Institute of Steel Construction», 2/1, Shymanovskoho str., Kyiv, Ukraine, 02125

Applicant

Oleksandr Holodnov, Limited Liability Company «V. Shimanovsky Ukrainian Institute of Steel Construction», 2/1, Shymanovskoho str., Kyiv, Ukraine, 02125

Doctor of Technical Sciences, Professor

Igor Tkachuk, Limited Liability Company «V. Shimanovsky Ukrainian Institute of Steel Construction», 2/1, Shymanovskoho str., Kyiv, Ukraine, 02125

Applicant

References

  1. Semynoh, M., Holodnov, O. (2009). Modelyuvannya napruzheno-deformovanoho stanu dlya obgruntuvannya mozhlyvosti prodovzhennya terminu ekspluatatsiyi budivel'nykh konstruktsiy, budivel' ta sporud. Zbirnyk naukovykh prats' Ukrayins'koho naukovo-doslidnoho ta proektnoho instytutu stalevykh konstruktsiy im. V. M. Shymanovs'koho, 4, 243–249.
  2. Semynoh, M., Holodnov, O. (2011). Nadiynist' ekspluatatsiyi zalizobetonnykh konstruktsiy pislya sylovykh, deformatsiynykh i vysokotemperaturnykh vplyviv. Budivel'ni konstruktsiyi, 74 (2), 56–63.
  3. Holodnov, O., Antoshyna, T., Otrosh, Yu. (2017). Pro neobkhidnist' rozrakhunku budivel' zi stalevym karkasom na temperaturni vplyvy. Zbirnyk naukovykh prats' Ukrayins'koho instytutu stalevykh konstruktsiy imeni V. M. Shymanovs'koho, 20, 65–84.
  4. Abdel-Fttah, A., Said, M., Salah, A. (2016). Nonlinear finite element analysis for reinforced concrete slabs under punching loads. International Journal of Civil Engineering and Technology, 7 (3), 392–397.
  5. Balomenos, G. P., Genikomsou, A. S., Polak, M. A., Pandey, M. D. (2015). Efficient method for probabilistic finite element analysis with application to reinforced concrete slabs. Engineering Structures, 103, 85–101. doi: http://doi.org/10.1016/j.engstruct.2015.08.038
  6. Fraile-Garcia, E., Ferreiro-Cabello, J., Martinez-Camara, E., Jimenez Macias, E. (2016). Frail Optimization based on life cycle analysis for reinforced concrete structures with one-way slabs. Engineering Structures, 109, 126–138. doi: http://doi.org/10.1016/j.engstruct.2015.12.001
  7. Kwan, A. K. H., Ma, F. J. (2016). Crack width analysis of reinforced concrete under direct tension by finite element method and crack queuing algorithm. Engineering Structures, 126, 618–627. doi: http://doi.org/10.1016/j.engstruct.2016.08.027
  8. Lantsoght, E. O. L., van der Veen, C., Walraven, J., de Boer, A. (2015). Experimental investigation on shear capacity of reinforced concrete slabs with plain bars and slabs on elastomeric bearings. Engineering Structures, 103, 1–14. doi: http://doi.org/10.1016/j.engstruct.2015.08.028
  9. Einpaul, J., Ospina, C. E., Fernández Ruiz, M., Muttoni, A. (2016). Punching shear capacity of continuous slabs. ACI Structural Journal, 113 (4), 861–872. doi: http://doi.org/10.14359/51688758
  10. Smolka, J., Slupik, L., Fic, A., Nowak, A. J., Kosyrczyk, L. (2015). CFD analysis of the thermal behaviour of heating walls in a coke oven battery. International Journal of Thermal Sciences, 104, 186–193. doi: http://doi.org/10.1016/j.ijthermalsci.2016.01.010
  11. Caldas, R. B., Fakury, R. H., Sousa Jr., João Batista M.. (2014). Finite element implementation for the analysis of 3D steel and composite frames subjected to fire. Latin American Journal of Solids and Structures, 11 (1), 1–18. doi: http://doi.org/10.1590/s1679-78252014000100001
  12. Vatulia, G., Orel, E., Kovalov, M. (2014). Evaluation of steel-concrete beams fire resistance with the selection of effective fire protection. Proceedings of the 6th International Conference on Dynamics of Civil Engineering and Transport Structures and Wind Engineering, Zilina, 327–331.
  13. DSTU-N B V.1.2-18:2016. Nastanova shchodo obstezhennya budivel' i sporud dlya vyznachennya ta otsinky yikh tekhnichnoho stanu. (2017). Kyiv: DP «UkrNDNTs», 45.
  14. DBN V. 2.6-98:2009. Derzhavni budivel'ni normy Ukrayiny. Konstruktsiyi budynkiv i sporud. Betonni ta zalizobetonni konstruktsiyi. Osnovni polozhennya (2011). Kyiv: Minrehionbud Ukrayiny, 71.

Published

2019-07-12

How to Cite

Gordiuk, M., Semynoh, M., Holodnov, O., & Tkachuk, I. (2019). Determination of the technical state of buildings and constructions after force and temperature influences. Technology Audit and Production Reserves, 4(1(48), 4–10. https://doi.org/10.15587/2312-8372.2019.179220

Issue

Section

Mechanics: Original Research