Matches in SemOpenAlex for { <https://semopenalex.org/work/W1970014476> ?p ?o ?g. }
- W1970014476 endingPage "128" @default.
- W1970014476 startingPage "112" @default.
- W1970014476 abstract "A motored engine study using premixed charges of fuel and air at a wide range of diesel-relevant equivalence ratios was performed to investigate autoignition differences among surrogates for conventional diesel fuel, gas-to-liquid (GTL) diesel fuel, and biodiesel, as well as, n-heptane. Experiments were performed by delivering a premixed charge of vaporized fuel and air and increasing the compression ratio in a stepwise manner to increase the extent of reaction while monitoring the exhaust composition via Fourier transform infrared (FTIR) spectrometry and collecting condensable exhaust gas for subsequent gas chromatography/mass spectrometry (GC/MS) analysis. Each fuel demonstrated a two-stage ignition process, with a low-temperature heat release (LTHR) event followed by the main combustion, or high-temperature heat release (HTHR). Among the three diesel-relevant fuels, the magnitude of LTHR was highest for GTL diesel, followed by methyl decanoate, and conventional diesel fuel last. FTIR analysis of the exhaust for n-heptane, the conventional diesel surrogate, and the GTL diesel surrogate revealed that LTHR produces high concentrations of aldehydes and CO while producing only negligible amounts of CO2. Methyl decanoate differed from the other two-stage ignition fuels only in that there were significant amounts of CO2 produced during LTHR; this was the result of decarboxylation of the ester group, not the result of oxidation. GC/MS analysis of LTHR exhaust condensate for n-heptane revealed high concentrations of 2,5-heptanedione, a di-ketone that can be closely tied to species in existing autoignition models for n-heptane. GC/MS analysis of the LTHR condensate for conventional diesel fuel and GTL diesel fuel revealed a series of high molecular weight aldehydes and ketones, which were expected, as well as a series of organic acids, which are not commonly reported as products of combustion. The GC/MS analysis of the methyl decanoate exhaust condensate revealed that the aliphatic chain acts similarly to n-paraffins during LTHR, while the ester group remains intact. Thus, although the FTIR data revealed that decarboxylation occurs at significant levels for methyl decanoate, it was concluded that this occurs after the aliphatic chain has been largely consumed by other LTHR reactions." @default.
- W1970014476 created "2016-06-24" @default.
- W1970014476 creator A5000210204 @default.
- W1970014476 creator A5018468826 @default.
- W1970014476 creator A5032429252 @default.
- W1970014476 creator A5071655265 @default.
- W1970014476 date "2007-04-01" @default.
- W1970014476 modified "2023-09-23" @default.
- W1970014476 title "Premixed ignition behavior of alternative diesel fuel-relevant compounds in a motored engine experiment" @default.
- W1970014476 cites W1486352970 @default.
- W1970014476 cites W1499911880 @default.
- W1970014476 cites W1500999157 @default.
- W1970014476 cites W1512181922 @default.
- W1970014476 cites W1544501266 @default.
- W1970014476 cites W1550109360 @default.
- W1970014476 cites W1556672711 @default.
- W1970014476 cites W1572777785 @default.
- W1970014476 cites W1648139233 @default.
- W1970014476 cites W167948205 @default.
- W1970014476 cites W1773489794 @default.
- W1970014476 cites W1970883807 @default.
- W1970014476 cites W1990757716 @default.
- W1970014476 cites W1992139625 @default.
- W1970014476 cites W2005223098 @default.
- W1970014476 cites W2009318675 @default.
- W1970014476 cites W2017658150 @default.
- W1970014476 cites W2030060315 @default.
- W1970014476 cites W2030227272 @default.
- W1970014476 cites W2039367953 @default.
- W1970014476 cites W2048943000 @default.
- W1970014476 cites W2048998010 @default.
- W1970014476 cites W2067127136 @default.
- W1970014476 cites W2073542066 @default.
- W1970014476 cites W2074465986 @default.
- W1970014476 cites W2084433866 @default.
- W1970014476 cites W2086631862 @default.
- W1970014476 cites W2096407655 @default.
- W1970014476 cites W2128640241 @default.
- W1970014476 cites W2151023078 @default.
- W1970014476 cites W2161816028 @default.
- W1970014476 cites W2253357496 @default.
- W1970014476 cites W350476921 @default.
- W1970014476 doi "https://doi.org/10.1016/j.combustflame.2006.12.011" @default.
- W1970014476 hasPublicationYear "2007" @default.
- W1970014476 type Work @default.
- W1970014476 sameAs 1970014476 @default.
- W1970014476 citedByCount "139" @default.
- W1970014476 countsByYear W19700144762012 @default.
- W1970014476 countsByYear W19700144762013 @default.
- W1970014476 countsByYear W19700144762014 @default.
- W1970014476 countsByYear W19700144762015 @default.
- W1970014476 countsByYear W19700144762016 @default.
- W1970014476 countsByYear W19700144762017 @default.
- W1970014476 countsByYear W19700144762018 @default.
- W1970014476 countsByYear W19700144762019 @default.
- W1970014476 countsByYear W19700144762020 @default.
- W1970014476 countsByYear W19700144762021 @default.
- W1970014476 countsByYear W19700144762022 @default.
- W1970014476 countsByYear W19700144762023 @default.
- W1970014476 crossrefType "journal-article" @default.
- W1970014476 hasAuthorship W1970014476A5000210204 @default.
- W1970014476 hasAuthorship W1970014476A5018468826 @default.
- W1970014476 hasAuthorship W1970014476A5032429252 @default.
- W1970014476 hasAuthorship W1970014476A5071655265 @default.
- W1970014476 hasConcept C103206924 @default.
- W1970014476 hasConcept C105923489 @default.
- W1970014476 hasConcept C113196181 @default.
- W1970014476 hasConcept C121332964 @default.
- W1970014476 hasConcept C127413603 @default.
- W1970014476 hasConcept C138171918 @default.
- W1970014476 hasConcept C159063594 @default.
- W1970014476 hasConcept C178790620 @default.
- W1970014476 hasConcept C185592680 @default.
- W1970014476 hasConcept C2775925408 @default.
- W1970014476 hasConcept C2780804531 @default.
- W1970014476 hasConcept C3432839 @default.
- W1970014476 hasConcept C548081761 @default.
- W1970014476 hasConcept C64127748 @default.
- W1970014476 hasConcept C97355855 @default.
- W1970014476 hasConceptScore W1970014476C103206924 @default.
- W1970014476 hasConceptScore W1970014476C105923489 @default.
- W1970014476 hasConceptScore W1970014476C113196181 @default.
- W1970014476 hasConceptScore W1970014476C121332964 @default.
- W1970014476 hasConceptScore W1970014476C127413603 @default.
- W1970014476 hasConceptScore W1970014476C138171918 @default.
- W1970014476 hasConceptScore W1970014476C159063594 @default.
- W1970014476 hasConceptScore W1970014476C178790620 @default.
- W1970014476 hasConceptScore W1970014476C185592680 @default.
- W1970014476 hasConceptScore W1970014476C2775925408 @default.
- W1970014476 hasConceptScore W1970014476C2780804531 @default.
- W1970014476 hasConceptScore W1970014476C3432839 @default.
- W1970014476 hasConceptScore W1970014476C548081761 @default.
- W1970014476 hasConceptScore W1970014476C64127748 @default.
- W1970014476 hasConceptScore W1970014476C97355855 @default.
- W1970014476 hasIssue "1-2" @default.
- W1970014476 hasLocation W19700144761 @default.
- W1970014476 hasOpenAccess W1970014476 @default.
- W1970014476 hasPrimaryLocation W19700144761 @default.