Mathematical Modeling of Hybrid Electrical Engineering Systems

A large class of systems that have found application in various industries and households, electrified transportation facilities and energy sector has been classified as electrical engineering systems. Their characteristic feature is a combination of continuous and discontinuous modes of operation,...

Full description

Bibliographic Details
Main Authors: A. A. Lobaty, Yu. N. Petrenko, I. Elzein, A. S. Abufanas
Format: Article
Language:Russian
Published: Belarusian National Technical University 2016-08-01
Series:Nauka i Tehnika
Subjects:
Online Access:https://sat.bntu.by/jour/article/view/937
id doaj-141bd95b4f0943ebb4e2dfa74980e70b
record_format Article
spelling doaj-141bd95b4f0943ebb4e2dfa74980e70b2021-07-29T08:29:34ZrusBelarusian National Technical UniversityNauka i Tehnika2227-10312414-03922016-08-0115432232810.21122/2227-1031-2016-15-4-322-328895Mathematical Modeling of Hybrid Electrical Engineering SystemsA. A. Lobaty0Yu. N. Petrenko1I. Elzein2A. S. Abufanas3Belarusian National Technical UniversityBelarusian National Technical UniversityBelarusian National Technical UniversityBelarusian National Technical UniversityA large class of systems that have found application in various industries and households, electrified transportation facilities and energy sector has been classified as electrical engineering systems. Their characteristic feature is a combination of continuous and discontinuous modes of operation, which is reflected in the appearance of a relatively new term “hybrid systems”. A wide class of hybrid systems is pulsed DC converters operating in a pulse width modulation, which are non-linear systems with variable structure. Using various methods for linearization it is possible to obtain linear mathematical models that rather accurately simulate behavior of such systems. However, the presence in the mathematical models of exponential nonlinearities creates considerable difficulties in the implementation of digital hardware. The solution can be found while using an approximation of exponential functions by polynomials of the first order, that, however, violates the rigor accordance of the analytical model with characteristics of a real object. There are two practical approaches to synthesize algorithms for control of hybrid systems. The first approach is based on the representation of the whole system by a discrete model which is described by difference equations that makes it possible to synthesize discrete algorithms. The second approach is based on description of the system by differential equations. The equations describe synthesis of continuous algorithms and their further implementation in a digital computer included in the control loop system. The paper considers modeling of a hybrid electrical engineering system using differential equations. Neglecting the pulse duration, it has been proposed to describe behavior of vector components in phase coordinates of the hybrid system by stochastic differential equations containing generally non-linear differentiable random functions. A stochastic vector-matrix equation describing dynamics of the processes has been obtained in the paper. The equation contains both continuous and discrete components, which characterize an amplitude signal modulation. An equation for probability density of phase coordinate distribution in the system has been developed on the basis of a mathematical model for a hybrid system.https://sat.bntu.by/jour/article/view/937mathematical modelhybrid systemstate spacestochastic equations
collection DOAJ
language Russian
format Article
sources DOAJ
author A. A. Lobaty
Yu. N. Petrenko
I. Elzein
A. S. Abufanas
spellingShingle A. A. Lobaty
Yu. N. Petrenko
I. Elzein
A. S. Abufanas
Mathematical Modeling of Hybrid Electrical Engineering Systems
Nauka i Tehnika
mathematical model
hybrid system
state space
stochastic equations
author_facet A. A. Lobaty
Yu. N. Petrenko
I. Elzein
A. S. Abufanas
author_sort A. A. Lobaty
title Mathematical Modeling of Hybrid Electrical Engineering Systems
title_short Mathematical Modeling of Hybrid Electrical Engineering Systems
title_full Mathematical Modeling of Hybrid Electrical Engineering Systems
title_fullStr Mathematical Modeling of Hybrid Electrical Engineering Systems
title_full_unstemmed Mathematical Modeling of Hybrid Electrical Engineering Systems
title_sort mathematical modeling of hybrid electrical engineering systems
publisher Belarusian National Technical University
series Nauka i Tehnika
issn 2227-1031
2414-0392
publishDate 2016-08-01
description A large class of systems that have found application in various industries and households, electrified transportation facilities and energy sector has been classified as electrical engineering systems. Their characteristic feature is a combination of continuous and discontinuous modes of operation, which is reflected in the appearance of a relatively new term “hybrid systems”. A wide class of hybrid systems is pulsed DC converters operating in a pulse width modulation, which are non-linear systems with variable structure. Using various methods for linearization it is possible to obtain linear mathematical models that rather accurately simulate behavior of such systems. However, the presence in the mathematical models of exponential nonlinearities creates considerable difficulties in the implementation of digital hardware. The solution can be found while using an approximation of exponential functions by polynomials of the first order, that, however, violates the rigor accordance of the analytical model with characteristics of a real object. There are two practical approaches to synthesize algorithms for control of hybrid systems. The first approach is based on the representation of the whole system by a discrete model which is described by difference equations that makes it possible to synthesize discrete algorithms. The second approach is based on description of the system by differential equations. The equations describe synthesis of continuous algorithms and their further implementation in a digital computer included in the control loop system. The paper considers modeling of a hybrid electrical engineering system using differential equations. Neglecting the pulse duration, it has been proposed to describe behavior of vector components in phase coordinates of the hybrid system by stochastic differential equations containing generally non-linear differentiable random functions. A stochastic vector-matrix equation describing dynamics of the processes has been obtained in the paper. The equation contains both continuous and discrete components, which characterize an amplitude signal modulation. An equation for probability density of phase coordinate distribution in the system has been developed on the basis of a mathematical model for a hybrid system.
topic mathematical model
hybrid system
state space
stochastic equations
url https://sat.bntu.by/jour/article/view/937
work_keys_str_mv AT aalobaty mathematicalmodelingofhybridelectricalengineeringsystems
AT yunpetrenko mathematicalmodelingofhybridelectricalengineeringsystems
AT ielzein mathematicalmodelingofhybridelectricalengineeringsystems
AT asabufanas mathematicalmodelingofhybridelectricalengineeringsystems
_version_ 1721255483952594944