File:FIRE RESISTANCE OF REINFORCED CONCRETE AND STEEL STRUCTURES.pdf

From Wikimedia Commons, the free media repository
Jump to navigation Jump to search
Go to page
next page →
next page →
next page →

Original file(856 × 1,179 pixels, file size: 6.79 MB, MIME type: application/pdf, 180 pages)

Captions

Captions

Monograph

Summary

[edit]
Description
English: The scientific bases of ensuring fire resistance of reinforced concrete and steel building structures in the conditions of modern extreme influences are laid.

The current state of fire safety of buildings and structures, as well as approaches, methods and tools for its assessment are analyzed. Analysis of emergencies and fires in the world has shown that the vast majority of them occur in buildings and structures. It is shown that the cause of catastrophic consequences and destruction is the non-compliance of the actual limit of fire resistance of building structures with regulatory requirements. This is due to the imperfection of methods and means of assessing the fire resistance of building structures, including fire-retardant.

To overcome the shortcomings identified during the analysis, the paper develops physical and mathematical models of thermal processes occurring in the fire-retardant reinforced concrete structure. Based on the proposed models, a computational-experimental method for estimating the fire resistance of such structures has been developed. The efficiency of the proposed method was tested by identifying the relationship between the parameters of the fire-retardant plaster coating “Neospray” and the fire resistance of fire-retardant multi-hollow reinforced concrete floor.

The study of fire resistance of steel structures is proposed to be carried out using reduced samples in the form of steel plates with dimensions of 500×500×5 mm. Based on the proposed models, a calculation and experimental method for estimating the fire resistance of steel structures, as well as an algorithm and procedures for its implementation have been developed. The verification of the efficiency of the proposed method was carried out in the ANSYS software package using the aged coating “Phoenix STS” and the coating “Amotherm Steel Wb” under heating conditions at the temperature of the hydrocarbon fire.

The reliability of the developed models and methods is checked. It is established that random errors in temperature measurement significantly affect the accuracy of determining the thermophysical characteristics and limits of fire resistance. In general, the efficiency of the proposed calculation and experimental methods with sufficient accuracy for engineering calculations is confirmed.
Date
Source https://doi.org/10.15587/978-617-7319-43-5
Author Volodymyr Sadkovyi, Volodymyr Andronov, Oleg Semkiv, Andrii Kovalov, Evgenіy Rybka, Yurii Otrosh, Mykola Udianskyi, Volodymyr Koloskov, Alexander Danilin, Pavlo Kovalov

Licensing

[edit]
w:en:Creative Commons
attribution
This file is licensed under the Creative Commons Attribution 4.0 International license.
You are free:
  • to share – to copy, distribute and transmit the work
  • to remix – to adapt the work
Under the following conditions:
  • attribution – You must give appropriate credit, provide a link to the license, and indicate if changes were made. You may do so in any reasonable manner, but not in any way that suggests the licensor endorses you or your use.

File history

Click on a date/time to view the file as it appeared at that time.

Date/TimeThumbnailDimensionsUserComment
current11:26, 12 January 2022Thumbnail for version as of 11:26, 12 January 2022856 × 1,179, 180 pages (6.79 MB)Technology057 (talk | contribs)Uploaded a work by Volodymyr Sadkovyi, Volodymyr Andronov, Oleg Semkiv, Andrii Kovalov, Evgenіy Rybka, Yurii Otrosh, Mykola Udianskyi, Volodymyr Koloskov, Alexander Danilin, Pavlo Kovalov from https://doi.org/10.15587/978-617-7319-43-5 with UploadWizard

There are no pages that use this file.

Metadata