Selected Mathematical Models Describing Flow in Gas Pipelines

The main aim of simulation programs is to study the behavior of gas pipe networks in certain conditions. Solving a specified set of differential equations describing transient (unsteady) flow in a gas pipeline for the adopted parameters of load and supply will help us find out the value of pressure...

Full description

Bibliographic Details
Main Authors: Andrzej J. Osiadacz, Marta Gburzyńska
Format: Article
Language:English
Published: MDPI AG 2022-01-01
Series:Energies
Subjects:
Online Access:https://www.mdpi.com/1996-1073/15/2/478
_version_ 1827665857867677696
author Andrzej J. Osiadacz
Marta Gburzyńska
author_facet Andrzej J. Osiadacz
Marta Gburzyńska
author_sort Andrzej J. Osiadacz
collection DOAJ
description The main aim of simulation programs is to study the behavior of gas pipe networks in certain conditions. Solving a specified set of differential equations describing transient (unsteady) flow in a gas pipeline for the adopted parameters of load and supply will help us find out the value of pressure or flow rate at selected points or along selected sections of the network. Transient gas flow may be described by a set of simple or partial differential equations classified as hyperbolic or parabolic. Derivation of the mathematical model of transient gas flow involves certain simplifications, of which one-dimensional flow is most important. It is very important to determine the conditions of pipeline/transmission network operation in which the hyperbolic model and the parabolic model, respectively, should be used. Parabolic models can be solved numerically in a much simpler way and can be used to design simulation programs which allow us to calculate the network of any structure and any number of non-pipe elements. In some conditions, however, they describe the changes occurring in the network less accurately than hyperbolic models do. The need for analysis, control, and optimization of gas flows in high-pressure gas pipelines with complex structure increases significantly. Very often, the time allowed for analysis and making operational decisions is limited. Therefore, efficient models of unsteady gas flows and high-speed algorithms are essential.
first_indexed 2024-03-10T01:34:00Z
format Article
id doaj.art-daf3c0bb2bcf4b40be2ebcdd26c6631e
institution Directory Open Access Journal
issn 1996-1073
language English
last_indexed 2024-03-10T01:34:00Z
publishDate 2022-01-01
publisher MDPI AG
record_format Article
series Energies
spelling doaj.art-daf3c0bb2bcf4b40be2ebcdd26c6631e2023-11-23T13:36:51ZengMDPI AGEnergies1996-10732022-01-0115247810.3390/en15020478Selected Mathematical Models Describing Flow in Gas PipelinesAndrzej J. Osiadacz0Marta Gburzyńska1Department of Building Installations, Hydrotechnics and Environmental Engineering, Warsaw University of Technology, 20, Nowowiejska Street, 00-653 Warsaw, Poland“I. Mościcki” State Vocational College in Ciechanów, 9 Gabriela Narutowicza Street, 06-400 Ciechanów, PolandThe main aim of simulation programs is to study the behavior of gas pipe networks in certain conditions. Solving a specified set of differential equations describing transient (unsteady) flow in a gas pipeline for the adopted parameters of load and supply will help us find out the value of pressure or flow rate at selected points or along selected sections of the network. Transient gas flow may be described by a set of simple or partial differential equations classified as hyperbolic or parabolic. Derivation of the mathematical model of transient gas flow involves certain simplifications, of which one-dimensional flow is most important. It is very important to determine the conditions of pipeline/transmission network operation in which the hyperbolic model and the parabolic model, respectively, should be used. Parabolic models can be solved numerically in a much simpler way and can be used to design simulation programs which allow us to calculate the network of any structure and any number of non-pipe elements. In some conditions, however, they describe the changes occurring in the network less accurately than hyperbolic models do. The need for analysis, control, and optimization of gas flows in high-pressure gas pipelines with complex structure increases significantly. Very often, the time allowed for analysis and making operational decisions is limited. Therefore, efficient models of unsteady gas flows and high-speed algorithms are essential.https://www.mdpi.com/1996-1073/15/2/478mathematical modelinglumped modelsgas networks simulation
spellingShingle Andrzej J. Osiadacz
Marta Gburzyńska
Selected Mathematical Models Describing Flow in Gas Pipelines
Energies
mathematical modeling
lumped models
gas networks simulation
title Selected Mathematical Models Describing Flow in Gas Pipelines
title_full Selected Mathematical Models Describing Flow in Gas Pipelines
title_fullStr Selected Mathematical Models Describing Flow in Gas Pipelines
title_full_unstemmed Selected Mathematical Models Describing Flow in Gas Pipelines
title_short Selected Mathematical Models Describing Flow in Gas Pipelines
title_sort selected mathematical models describing flow in gas pipelines
topic mathematical modeling
lumped models
gas networks simulation
url https://www.mdpi.com/1996-1073/15/2/478
work_keys_str_mv AT andrzejjosiadacz selectedmathematicalmodelsdescribingflowingaspipelines
AT martagburzynska selectedmathematicalmodelsdescribingflowingaspipelines