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Common Rail System for GDI Engines: Modelling, Identification, and Control

Progressive reductions in vehicle emission requirements have forced the automotive industry to invest in research and development of alternative control strategies. Continual control action exerted by a dedicated electronic control unit ensures that best performance in terms of pollutant emissions a...

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Detalles Bibliográficos
Autores principales: Fiengo, Giovanni, di Gaeta, Alessandro, Palladino, Angelo, Giglio, Veniero
Lenguaje:eng
Publicado: Springer 2013
Materias:
Acceso en línea:https://dx.doi.org/10.1007/978-1-4471-4468-7
http://cds.cern.ch/record/1500150
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author Fiengo, Giovanni
di Gaeta, Alessandro
Palladino, Angelo
Giglio, Veniero
author_facet Fiengo, Giovanni
di Gaeta, Alessandro
Palladino, Angelo
Giglio, Veniero
author_sort Fiengo, Giovanni
collection CERN
description Progressive reductions in vehicle emission requirements have forced the automotive industry to invest in research and development of alternative control strategies. Continual control action exerted by a dedicated electronic control unit ensures that best performance in terms of pollutant emissions and power density is married with driveability and diagnostics. Gasoline direct injection (GDI) engine technology is a way to attain these goals. This brief describes the functioning of a GDI engine equipped with a common rail (CR) system, and the devices necessary to run test-bench experiments in detail. The text should prove instructive to researchers in engine control and students are recommended to this brief as their first approach to this technology. Later chapters of the brief relate an innovative strategy designed to assist with the engine management system; injection pressure regulation for fuel pressure stabilization in the CR fuel line is proposed and validated by experiment. The resulting control scheme is composed of a feedback integral action and a static model-based feed-forward action, the gains of which are scheduled as a function of fundamental plant parameters. The tuning of closed-loop performance is supported by an analysis of the phase-margin and the sensitivity function. Experimental results confirm the effectiveness of the control algorithm in regulating the mean-value rail pressure independently from engine working conditions (engine speed and time of injection) with limited design effort.
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institution Organización Europea para la Investigación Nuclear
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spelling cern-15001502021-04-22T00:02:54Zdoi:10.1007/978-1-4471-4468-7http://cds.cern.ch/record/1500150engFiengo, Giovannidi Gaeta, AlessandroPalladino, AngeloGiglio, VenieroCommon Rail System for GDI Engines: Modelling, Identification, and ControlEngineeringProgressive reductions in vehicle emission requirements have forced the automotive industry to invest in research and development of alternative control strategies. Continual control action exerted by a dedicated electronic control unit ensures that best performance in terms of pollutant emissions and power density is married with driveability and diagnostics. Gasoline direct injection (GDI) engine technology is a way to attain these goals. This brief describes the functioning of a GDI engine equipped with a common rail (CR) system, and the devices necessary to run test-bench experiments in detail. The text should prove instructive to researchers in engine control and students are recommended to this brief as their first approach to this technology. Later chapters of the brief relate an innovative strategy designed to assist with the engine management system; injection pressure regulation for fuel pressure stabilization in the CR fuel line is proposed and validated by experiment. The resulting control scheme is composed of a feedback integral action and a static model-based feed-forward action, the gains of which are scheduled as a function of fundamental plant parameters. The tuning of closed-loop performance is supported by an analysis of the phase-margin and the sensitivity function. Experimental results confirm the effectiveness of the control algorithm in regulating the mean-value rail pressure independently from engine working conditions (engine speed and time of injection) with limited design effort.Springeroai:cds.cern.ch:15001502013
spellingShingle Engineering
Fiengo, Giovanni
di Gaeta, Alessandro
Palladino, Angelo
Giglio, Veniero
Common Rail System for GDI Engines: Modelling, Identification, and Control
title Common Rail System for GDI Engines: Modelling, Identification, and Control
title_full Common Rail System for GDI Engines: Modelling, Identification, and Control
title_fullStr Common Rail System for GDI Engines: Modelling, Identification, and Control
title_full_unstemmed Common Rail System for GDI Engines: Modelling, Identification, and Control
title_short Common Rail System for GDI Engines: Modelling, Identification, and Control
title_sort common rail system for gdi engines: modelling, identification, and control
topic Engineering
url https://dx.doi.org/10.1007/978-1-4471-4468-7
http://cds.cern.ch/record/1500150
work_keys_str_mv AT fiengogiovanni commonrailsystemforgdienginesmodellingidentificationandcontrol
AT digaetaalessandro commonrailsystemforgdienginesmodellingidentificationandcontrol
AT palladinoangelo commonrailsystemforgdienginesmodellingidentificationandcontrol
AT giglioveniero commonrailsystemforgdienginesmodellingidentificationandcontrol