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Development of an Experimental Database and Kinetic Models for Surrogate Diesel Fuels

John T. FarrellNicholas P. CernanskyF.L. DryerChung K. LawD. G. FriendCarl-Anders HergartRobert M. McDavidAmar PatelCharles J. MuellerHeinz Pitsch

Abstract

<div class="htmlview paragraph">Computational fluid dynamic (CFD) simulations that include realistic combustion/emissions chemistry hold the promise of significantly shortening the development time for advanced high-efficiency, low-emission engines. However, significant challenges must be overcome to realize this potential. This paper discusses these challenges in the context of diesel combustion and outlines a technical program based on the use of surrogate fuels that sufficiently emulate the chemical complexity inherent in conventional diesel fuel. The essential components of such a program are discussed and include: (a) surrogate component selection; (b) the acquisition or estimation of requisite elementary chemical kinetic, thermochemical, and physical property data; (c) the development of accurate predictive chemical kinetic models, together with the measurement of the necessary fundamental laboratory data to validate these mechanisms; and (d) mechanism reduction tools to render the coupled chemistry/flow calculations feasible. In parallel to these efforts, the need exists to develop similarly robust models for fuel injection and spray processes involving multicomponent mixtures of wide distillation character, as well as methodologies to include all of these high fidelity submodels in computationally efficient CFD tools. Near- and longer-term research plans are proposed based on an application target of premixed diesel combustion. In the near term, the recommended surrogate components include n-decane, iso-octane, methylcyclohexane, and toluene. For the longer term, n-hexadecane, heptamethylnonane, n-decylbenzene, and 1-methylnaphthalene are proposed.</div>

Advanced Combustion Engine TechnologiesCombustion and flame dynamicsBiodiesel Production and ApplicationsDiesel fuelKinetic energyComputer scienceDatabaseNuclear engineeringAutomotive engineeringProcess engineeringEngineeringPhysics

Funding

  • Princeton University
  • Drexel University
Citations
471
FWCI
21.58
field-weighted impact
References
215
Percentile
100%
vs. same field & year
Citations per year
References
Scaling Liquid-Phase Fuel Penetration in Diesel Sprays Based on Mixing-Limited Vaporization
SAE technical papers on CD-ROM/SAE technical paper series · 1999 · 669 citations
Liquid-Phase Fuel Penetration in Diesel Sprays
SAE technical papers on CD-ROM/SAE technical paper series · 1998 · 671 citations
Models for Combustion and Formation of Nitric Oxide and Soot in Direct Injection Diesel Engines
SAE technical papers on CD-ROM/SAE technical paper series · 1976 · 554 citations
Development of an Experimental Database and Chemical Kinetic Models for Surrogate Gasoline Fuels
SAE technical papers on CD-ROM/SAE technical paper series · 2007 · 372 citations
Development and Validation of a Reduced Reaction Mechanism for HCCI Engine Simulations
SAE technical papers on CD-ROM/SAE technical paper series · 2004 · 380 citations
A Multi-Zone Model for Prediction of HCCI Combustion and Emissions
SAE technical papers on CD-ROM/SAE technical paper series · 2000 · 399 citations
Short Fundamental Equations of State for 20 Industrial Fluids
Journal of Chemical & Engineering Data · 2006 · 735 citations
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