The results of previous experimental researches showed that great advantages can be achieved, both in terms of fuel consumption and pollutant emissions, in bifuel vehicles by means of the double-fuel combustion, i.e., the simultaneous combustion of gasoline and a gaseous fuel, such as liquefied petroleum gas (LPG) or natural gas (NG). The substantial increase in knock resistance pursued by adding LPG to gasoline, which allowed to maintain an overall stoichiometric proportion with air also at full load, is not documented in the scientific literature and induced the authors to perform a proper experimental campaign. The motor octane number (MON) of LPG–gasoline mixtures has been hence determined on a standard cooperative fuel research (CFR) engine, equipped with a double-fuel injection system in order to realize different proportions between the two fuels and electronically control the overall air–fuels mixture. The results of the measurement show a quadratic dependence of the MON of the mixture as function of the LPG concentration evaluated on a mass basis, with higher increase for the lower LPG content. A good linear relation, instead, has been determined on the basis of the evaluated LPG molar fraction. The simultaneous combustion of LPG and gasoline may become a third operative mode of bifuel vehicles, allowing to optimize fuel economy, performances, and pollutant emissions; turbocharged bifuel engines could strongly take advantage of the knock resistance of the fuels mixture thus adopting high compression ratio (CR) both in pure gas and double-fuel mode, hence maximizing performance and reducing engine size. The two correlations determined in this work, hence, can be useful for the design of future bifuel engines running with knock safe simultaneous combustion of LPG and gasoline.
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December 2014
Research-Article
Experimental Determination of Liquefied Petroleum Gas–Gasoline Mixtures Knock Resistance
Emiliano Pipitone,
Emiliano Pipitone
1
Dipartimento di Ingegneria Chimica,
Gestionale, Informatica, Meccanica,
e-mail: emiliano.pipitone@unipa.it
Gestionale, Informatica, Meccanica,
University of Palermo
,Viale delle Scienze
,Palermo 90128
, Italy
e-mail: emiliano.pipitone@unipa.it
1Corresponding author.
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Giuseppe Genchi
Giuseppe Genchi
Dipartimento di Ingegneria Chimica,
Gestionale, Informatica, Meccanica,
e-mail: giuseppe.genchi@unipa.it
Gestionale, Informatica, Meccanica,
University of Palermo
,Viale delle Scienze
,Palermo 90128
, Italy
e-mail: giuseppe.genchi@unipa.it
Search for other works by this author on:
Emiliano Pipitone
Dipartimento di Ingegneria Chimica,
Gestionale, Informatica, Meccanica,
e-mail: emiliano.pipitone@unipa.it
Gestionale, Informatica, Meccanica,
University of Palermo
,Viale delle Scienze
,Palermo 90128
, Italy
e-mail: emiliano.pipitone@unipa.it
Giuseppe Genchi
Dipartimento di Ingegneria Chimica,
Gestionale, Informatica, Meccanica,
e-mail: giuseppe.genchi@unipa.it
Gestionale, Informatica, Meccanica,
University of Palermo
,Viale delle Scienze
,Palermo 90128
, Italy
e-mail: giuseppe.genchi@unipa.it
1Corresponding author.
Contributed by the Combustion and Fuels Committee of ASME for publication in the JOURNAL OF ENGINEERING FOR GAS TURBINES AND POWER. Manuscript received November 27, 2013; final manuscript received June 5, 2014; published online July 2, 2014. Assoc. Editor: Stani Bohac.
J. Eng. Gas Turbines Power. Dec 2014, 136(12): 121502 (7 pages)
Published Online: July 2, 2014
Article history
Received:
November 27, 2013
Revision Received:
June 5, 2014
Citation
Pipitone, E., and Genchi, G. (July 2, 2014). "Experimental Determination of Liquefied Petroleum Gas–Gasoline Mixtures Knock Resistance." ASME. J. Eng. Gas Turbines Power. December 2014; 136(12): 121502. https://doi.org/10.1115/1.4027831
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