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Featured researches published by E. Galloni.


ASME 2006 Internal Combustion Engine Division Spring Technical Conference (ICES2006) | 2006

Numerical Analysis of a Small Turbo-Charged Spark-Ignition Engine

G. Fontana; E. Galloni; R. Palmaccio; Enrico Torella

The reduction of green-house gas emissions, that is the reduction of engine fuel consumption, is becoming a primary requirement for the automotive industry as well as meeting current and future emission legislations. Performing high torque values with small displacement engines, the so-called “downsizing”, permits, in general, to limit some typical engine losses (for instance: pumping and friction losses), increasing the overall engine efficiency. This means to improve vehicle fuel economy and, as a consequence, the CO2 emissions avoiding a performance decrease. In this paper, the behavior of a small displacement turbocharged spark-ignition engine prototype, for medium size passenger cars, has been analyzed. 3-D numerical simulations have been carried out in order to achieve a lot of information on engine performance and control parameters. Thus, at different engine operating points, intake and exhaust manifold pressure, volumetric efficiency, high pressure curves, the flow field of the fresh charge within the cylinder, the air to fuel ratio distribution, the residual gas fraction distribution and so long have been calculated. Since, as usual, the turbocharged version of the engine under study derives from an existing naturally aspirated engine, the purpose of this investigation is to obtain a detailed picture of the variations produced by turbo-charging on engine main parameters. The increase of knock risk due to higher cylinder pressures has been evaluated as well. Thanks to the three dimensional analysis, sound information have been obtained, so that suggestions for modifying some geometric engine parameters, according to the variations imposed by turbo-charging, have been proposed. Computations have been performed by means of the 3-D AVL Fire code. Initial and boundary conditions have been evaluated by means of 1-D, unsteady computations running separately from the 3-D code. The model utilized in this study has been validated by comparing the obtained results to the measured data provided by the research center of the engine manufacturer.Copyright


Applied Energy | 2009

Variable valve timing for fuel economy improvement in a small spark-ignition engine

G. Fontana; E. Galloni


Applied Energy | 2010

Experimental analysis of a spark-ignition engine using exhaust gas recycle at WOT operation

G. Fontana; E. Galloni


Applied Thermal Engineering | 2009

Analyses about parameters that affect cyclic variation in a spark ignition engine

E. Galloni


Applied Energy | 2013

Effects of exhaust gas recycle in a downsized gasoline engine

E. Galloni; G. Fontana; R. Palmaccio


International Journal of Hydrogen Energy | 2011

Theoretical and experimental investigations on thermal management of a PEMFC stack

Raphael Cozzolino; S.P. Cicconardi; E. Galloni; M. Minutillo; Alessandra Perna


Energy Conversion and Management | 2012

Dynamic knock detection and quantification in a spark ignition engine by means of a pressure based method

E. Galloni


8th International Conference on Engines for Automobiles | 2007

3D-1D Analyses of the Turbulent Flow Field, Burning Speed and Knock Occurrence in a Turbocharged SI Engine

Fabio Bozza; G. Fontana; E. Galloni; E. Torella


Energy | 2015

Design and experimental analysis of a mini ORC (organic Rankine cycle) power plant based on R245fa working fluid

E. Galloni; G. Fontana; S. Staccone


Energy Conversion and Management | 2016

Performance analyses of a spark-ignition engine firing with gasoline-butanol blends at partial load operation.

E. Galloni; G. Fontana; S. Staccone; Fabio Scala

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M. Minutillo

University of Naples Federico II

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Fabio Bozza

University of Naples Federico II

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