Zugriffsnummer 41113
Dokumenttyp Zeitschriftenartikel
Peer Review mit Peer Review
Sprache Englisch
Titel Experimental and chemical kinetic modeling investigation of methyl butanoate as a component of biodiesel surrogate
Autor(in); Institution
Lele, Aditya D.; Indian Institute of Technology Madras, Department of Mechanical Engineering, Chennai, INDIA
Vallabhuni, Sonal Kumar; 3.3, Thermophysikalische Größen, PTB-Braunschweig
Moshammer, Kai; 3.3, Thermophysikalische Größen, PTB-Braunschweig
Fernandes, Ravi; 3.3, Thermophysikalische Größen, PTB-Braunschweig
Krishnasamy, Anand; Indian Institute of Technology Madras, Department of Mechanical Engineering, Chennai, INDIA
Narayanaswamy, Krithika; Indian Institute of Technology Madras, Department of Mechanical Engineering, Chennai, INDIA
Quelle/Jahr Combustion and Flame: 197 (2018), 49 - 64
ISSN 0010-2180 (PRINT) ; 1556-2921 (ONLINE)
DOI
Verlag Amsterdam: Elsevier
Freie Schlagworte Methyl esters ; Methyl butanoate kinetics ; Skeletal model ; Rapid compression machine ; Biodiesel surrogate
Zusammenfassung Biodiesel is a potential alternative to fossil diesel. In combustion simulations, in order to circumvent the difficulty in integrating reaction schemes for biodiesels, which are typically of a large size and not well understood, a surrogate approach to simplify the representation of its long chain methyl ester components is adopted. In this work, a compact reaction scheme for methyl butanoate, which is a potentially important candidate for biodiesel surrogates, is derived from a detailed reference mechanism (Dooley et al., 2008). An existing well-validated model for n-dodecane (Narayanaswamy et al., 2014) oxidation, which is a suitable base to model biodiesel surrogates, is augmented with the oxidation pathways of methyl butanoate. The resulting combined mechanism is comprehensively assessed for methyl butanoate kinetic description. Several rate constants pertaining to methyl butanoate kinetics are updated in the resulting chemical mechanism based on recent rate recommendations from the literature in a consistent manner. The revised kinetic model has been validated comprehensively against a wide range of experimental data and found to be satisfactory. In addition, auto-ignition delay times of methyl butanoate have been measured in a rapid compression machine (RCM). The ignition delay time measurements cover a wide range of experimental conditions: temperatures of 850-1100 K and pressures of 10-40 bar. The impact of varying equivalence ratios on ignition delay times has also been investigated for φ = 0.5-1.5 and ignition delay times are reported for the rich mixtures for the first time as a part of this work. No two-stage ignition or negative temperature coefficient (NTC) behavior has been observed for methyl butanoate in the experimental investigation. The effect of addition of low-temperature chemistry pathways to the methyl butanoate chemical kinetic mechanism has also been explored.
Themenbereich der Metrologie Metrologie in der Chemie und Stoffeigenschaften
Forschungsprojekt BiofCFD: "Verbundvorhaben, Teilvorhaben deutscher Teil: Niedrigere Emissionen und höhere Effizienz bei der Verbrennung von Biokraftstoffen aus Indien: Entwicklung eines CFD-Modells für Praxisanwendungen auf der Basis validierter und reduzierter Verbrennungskinetik"
Förderinformationen (1) Förderername: Bundesministerium für Bildung und Forschung (BMBF)
Förderer ID: 0000 0000 9090 0344
Förderer ID Typ: ISNI
Förderprogramm: Europäisch-indisches Netzwerk INNO INDIGO III
Titel der Förderung: BiofCFD: "Verbundvorhaben, Teilvorhaben deutscher Teil: Niedrigere Emissionen und höhere Effizienz bei der Verbrennung von Biokraftstoffen aus Indien: Entwicklung eines CFD-Modells für Praxisanwendungen auf der Basis validierter und reduzierter Verbrennungskinetik"
Förderungsnummer: 01DQ17013

Zitierung

Lele, A. D., Vallabhuni, S. K., Moshammer, K., Fernandes, R., Krishnasamy, A., & Narayanaswamy, K. (2018). Experimental and chemical kinetic modeling investigation of methyl butanoate as a component of biodiesel surrogate. Combustion and Flame, 197, 49–64. https://doi.org/10.1016/j.combustflame.2018.06.033

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