Integrated gas dynamic and thermodynamic computational modeling of multicylinder 4-stroke spark ignition engine using gasoline as a fuel

This paper presents a computational tool for the evaluation of engine performance and exhaust emissions for four stroke multi-cylinder spark ignition engine which uses gasoline as a fuel. Gas dynamics flow in multi-cylinder intake and exhaust systems are modeled by using one-dimensional unsteady com...

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Main Authors: Tirkey Jeevan V., Gupta Hari N., Shukla Shailendra K.
Format: Article
Language:English
Published: VINCA Institute of Nuclear Sciences 2009-01-01
Series:Thermal Science
Subjects:
Online Access:http://www.doiserbia.nb.rs/img/doi/0354-9836/2009/0354-98360903113T.pdf
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spelling doaj-aa27c07553644facb40dc32b3bbeac652021-01-02T01:57:16ZengVINCA Institute of Nuclear SciencesThermal Science0354-98362334-71632009-01-0113311313010.2298/TSCI0903113T0354-98360903113TIntegrated gas dynamic and thermodynamic computational modeling of multicylinder 4-stroke spark ignition engine using gasoline as a fuelTirkey Jeevan V.0Gupta Hari N.1Shukla Shailendra K.2Institute of Technology, Mechanical Engineering Department, Banaras Hindu University, Varanasi, IndiaInstitute of Technology, Mechanical Engineering Department, Banaras Hindu University, Varanasi, IndiaInstitute of Technology, Mechanical Engineering Department, Banaras Hindu University, Varanasi, IndiaThis paper presents a computational tool for the evaluation of engine performance and exhaust emissions for four stroke multi-cylinder spark ignition engine which uses gasoline as a fuel. Gas dynamics flow in multi-cylinder intake and exhaust systems are modeled by using one-dimensional unsteady compressible flow equations. The hyperbolic partial differential equations are transferred into a set of ordinary differential equations by using method of characteristics and solved by finite difference method. Compatibility relationships between local fluid velocity and sonic velocity are expressed in terms of Riemann variables, which are constant along the position characteristics. The equations are solved numerically by using rectangular grid in the flow direction and time. In this model nitric oxide concentration is predicted by using the rate kinetic model in the power cycle and along the exhaust pipes. Carbon monoxide is computed under chemical equilibrium condition and then empirical adjustment is made for kinetic behaviors based upon experimental results. A good agreement is obtained in the comparison of computed and experimental results of instantaneous cylinder pressure, manifold pressure and temperature, and nitric oxide and carbon monoxide emissions level.http://www.doiserbia.nb.rs/img/doi/0354-9836/2009/0354-98360903113T.pdfcomputer simulationmethod of characteristicsRiemann variablesnon-homentropicrate kineticsexhaust species
collection DOAJ
language English
format Article
sources DOAJ
author Tirkey Jeevan V.
Gupta Hari N.
Shukla Shailendra K.
spellingShingle Tirkey Jeevan V.
Gupta Hari N.
Shukla Shailendra K.
Integrated gas dynamic and thermodynamic computational modeling of multicylinder 4-stroke spark ignition engine using gasoline as a fuel
Thermal Science
computer simulation
method of characteristics
Riemann variables
non-homentropic
rate kinetics
exhaust species
author_facet Tirkey Jeevan V.
Gupta Hari N.
Shukla Shailendra K.
author_sort Tirkey Jeevan V.
title Integrated gas dynamic and thermodynamic computational modeling of multicylinder 4-stroke spark ignition engine using gasoline as a fuel
title_short Integrated gas dynamic and thermodynamic computational modeling of multicylinder 4-stroke spark ignition engine using gasoline as a fuel
title_full Integrated gas dynamic and thermodynamic computational modeling of multicylinder 4-stroke spark ignition engine using gasoline as a fuel
title_fullStr Integrated gas dynamic and thermodynamic computational modeling of multicylinder 4-stroke spark ignition engine using gasoline as a fuel
title_full_unstemmed Integrated gas dynamic and thermodynamic computational modeling of multicylinder 4-stroke spark ignition engine using gasoline as a fuel
title_sort integrated gas dynamic and thermodynamic computational modeling of multicylinder 4-stroke spark ignition engine using gasoline as a fuel
publisher VINCA Institute of Nuclear Sciences
series Thermal Science
issn 0354-9836
2334-7163
publishDate 2009-01-01
description This paper presents a computational tool for the evaluation of engine performance and exhaust emissions for four stroke multi-cylinder spark ignition engine which uses gasoline as a fuel. Gas dynamics flow in multi-cylinder intake and exhaust systems are modeled by using one-dimensional unsteady compressible flow equations. The hyperbolic partial differential equations are transferred into a set of ordinary differential equations by using method of characteristics and solved by finite difference method. Compatibility relationships between local fluid velocity and sonic velocity are expressed in terms of Riemann variables, which are constant along the position characteristics. The equations are solved numerically by using rectangular grid in the flow direction and time. In this model nitric oxide concentration is predicted by using the rate kinetic model in the power cycle and along the exhaust pipes. Carbon monoxide is computed under chemical equilibrium condition and then empirical adjustment is made for kinetic behaviors based upon experimental results. A good agreement is obtained in the comparison of computed and experimental results of instantaneous cylinder pressure, manifold pressure and temperature, and nitric oxide and carbon monoxide emissions level.
topic computer simulation
method of characteristics
Riemann variables
non-homentropic
rate kinetics
exhaust species
url http://www.doiserbia.nb.rs/img/doi/0354-9836/2009/0354-98360903113T.pdf
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