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Technical Paper

Overall Results: Phase I Ad Hoc Diesel Fuel Test Program

2001-03-05
2001-01-0151
The future of diesel-engine-powered passenger cars and light-duty vehicles in the United States depends on their ability to meet Federal Tier 2 and California LEV2 tailpipe emission standards. The experimental purpose of this work was to examine the potential role of fuels; specifically, to determine the sensitivity of engine-out NOx and particulate matter (PM) to gross changes in fuel formulation. The fuels studied were a market-average California baseline fuel and three advanced low sulfur fuels (<2 ppm). The advanced fuels were a low-sulfur-highly-hydrocracked diesel (LSHC), a neat (100%) Fischer-Tropsch (FT100) and 15% DMM (dimethoxy methane) blended into LSHC (DMM15). The fuels were tested on modern, turbocharged, common-rail, direct-injection diesel engines at DaimlerChrysler, Ford and General Motors. The engines were tested at five speed/load conditions with injection timing set to minimize fuel consumption.
Technical Paper

Oxygenates screening for AdvancedPetroleum-Based Diesel Fuels: Part 2. The Effect of Oxygenate Blending Compounds on Exhaust Emissions

2001-09-24
2001-01-3632
Adding oxygenates to diesel fuel has shown the potential for reducing particulate (PM) emissions in the exhaust. The objective of this study was to select the most promising oxygenate compounds as blending components in diesel fuel for advanced engine testing. A fuel matrix was designed to consider the effect of molecular structure and boiling point on the ability of oxygenates to reduce engine-out exhaust emissions from a modern diesel engine. Nine test fuels including a low-sulfur (∼1 ppm), low-aromatic hydrocracked base fuel and 8 oxygenate-base fuel blends were utilized. All oxygenated fuels were formulated to contain 7% wt. of oxygen. A DaimlerChrysler OM611 CIDI engine for light-duty vehicles was controlled with a SwRI Rapid Prototyping Electronic Control System. The base fuel was evaluated in four speed-load modes and oxygenated blends only in one mode. Each operating mode and fuel combination was run in triplicate.
Technical Paper

Effect of a Non-Metallic Combustion Enhancer Diesel Additive on Mass and Number Particulate Emissions from Light Duty Vehicles and Heavy Duty Engines

2000-06-19
2000-01-1910
Tests were conducted at independent laboratories on a patented ashless additive technology designed generically for Fuel Charter I, II and III diesel fuels as defined by, AAMA (American Automobile Manufacturers Association), ACEA (European Automobile Manufacturers Association), EMA (Engine Manufacturers Association) & JAMA (Japan Automobile Manufacturers Association). The instantaneous effect of these additives in 6 light and 2 heavy duty engines in reducing particle number and particle mass emissions were measured as were mileage accumulation effects. Emission tests confirmed PM reduction of up to 19 % from both light duty vehicles tested under ECE15+EUDC or MVEG cycles and heavy-duty engines tested under the R49 or FiGE cycle. The results also indicated that such reduction had negligible or possibly a beneficial effect on NOx emissions.
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