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contributor authorRiebl, Sebastian
contributor authorBraun-Unkhoff, Marina
contributor authorRiedel, Uwe
date accessioned2017-11-25T07:15:58Z
date available2017-11-25T07:15:58Z
date copyright2017/21/3
date issued2017
identifier issn0742-4795
identifier othergtp_139_08_081503.pdf
identifier urihttp://138.201.223.254:8080/yetl1/handle/yetl/4233757
description abstractCurrently, the aviation sector is seeking for alternatives to kerosene from crude oil, as part of the efforts combating climate change by reducing greenhouse gas (GHG) emissions, in particular carbon dioxide (CO2), and ensuring security of supply at affordable prices. Several synthetic jet fuels have been developed including sustainable biokerosene, a low-carbon fuel. Over the last years, the technical feasibility as well as the compatibility of alternative jet fuels with today's planes has been proven However, when burning a jet fuel, the exhaust gases are a mixture of many species, going beyond CO2 and water (H2O) emissions, with nitrogen oxides (NOx), carbon monoxide (CO), unburned hydrocarbons (UHC) including aromatic species and further precursors of particles and soot among them. These emissions have an impact on the local air quality as well as on the climate (particles, soot, contrails). Therefore, a detailed knowledge and understanding of the emission patterns when burning synthetic aviation fuels are inevitable. In the present paper, these issues are addressed by studying numerically the combustion of four synthetic jet fuels (Fischer–Tropsch fuels). For reference, two types of crude-oil-based kerosene (Jet A-1 and Jet A) are considered, too. Plug flow calculations were performed by using a detailed chemical-kinetic model validated previously. The composition of the multicomponent jet fuels was imaged by using the surrogate approach. Calculations were done for relevant temperatures, pressures, residence times, and fuel equivalence ratios φ. Results are discussed for NOx, CO as well as for benzene and acetylene as major soot precursors. According to the predictions, the NOx and CO emissions are within about ±10% for all fuels considered, within the parameter range studied: T = 1800 K, T = 2200 K; 0.25 ≤ φ ≤ 1.8; p = 40 bar; t = 3 ms. The aromatics free GtL (gas to liquid) fuel displayed higher NOx values compared to Jet A-1/A. In addition, synthetic fuels show slightly lower (better) CO emission data than Jet A-1/A. The antagonist role of CO and NOx is apparent. Major differences were predicted for benzene emissions, depending strongly on the aromatics content in the specific fuel, with lower levels predicted for the synthetic aviation fuels. Acetylene levels show a similar, but less pronounced, effect.
publisherThe American Society of Mechanical Engineers (ASME)
titleA Study on the Emissions of Alternative Aviation Fuels
typeJournal Paper
journal volume139
journal issue8
journal titleJournal of Engineering for Gas Turbines and Power
identifier doi10.1115/1.4035816
journal fristpage81503
journal lastpage081503-11
treeJournal of Engineering for Gas Turbines and Power:;2017:;volume( 139 ):;issue: 008
contenttypeFulltext


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