CONDUCTING A SYNTHESIS OF A DIGITAL AUTOMATON FOR AN AUTOMATED FIREFIGHTING SYSTEM

Authors

  • Ksenia Mikhailovna Volkova State Fire Academy of EMERCOM of Russia, Moscow, Russian Federation

DOI:

https://doi.org/10.14529/ctcr210105

Keywords:

Mili automaton, digital automaton, graph, graph vertex, minimization of logic function

Abstract

Every year the industry in the world is gaining momentum: the number of industrial enterprises is growing, and with it the number of accidents at them. Oil today is the most common product for the synthesis and production of products. Increasing the level of fire protection systems at oil refine­ries remains one of the most important components of protecting people from technogenic hazards. The speed of innovation allows the application of artificial intelligence in the creation of automated fire protection systems. Research objective. This study is aimed at building a model of an automated integrated fire protection system (AISPPO).Through the synthesis of digital automata and minimizing the control functions of the digital model is created a system of automated integrated fire protection system. Materials and methods. To solve the problems of research used methods of constructing graphical algorithms of automated integrated fire protection system. This system is a new approach to solving the issue of safety of industrial facilities in the oil refining industry. Results. The proposed new model of the software implementation of a digital automaton in an automated integrated system of fire detection and monitoring of an oil refinery has made it possible
to create a bank of calculated and analytical data on all potential types of failures in the structure of the enterprise in order to train personnel and make changes to existing methodological documents and instructions for personnel actions in a particular situation. Conclusion. The developed technology allows you to process the incoming signal contained in cyclograms into an intermediate form for the synthesis of digital automata using innovative tools.

Author Biography

Ksenia Mikhailovna Volkova, State Fire Academy of EMERCOM of Russia, Moscow, Russian Federation

Волкова Ксения Михайловна, адъюнкт факультета подготовки научно-педагогических кадров, Академия Государственной противопожарной службы МЧС России, г. Москва

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Published

2021-03-04

Issue

Section

Control in Technical Systems