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Technical Paper

Cetane Numbers of Fatty Compounds:Influence of Compound Structure and of Various Potential Cetane Improvers

1997-05-01
971681
Biodiesel is a mixture of esters (usually methyl esters) of fatty acids found in the triglycerides of vegetable oils. The different fatty compounds comprising biodiesel possess different ignition properties. To investigate and potentially improve these properties, the cetane numbers of various fatty acids and esters were determined in a Constant Volume Combustion Apparatus. The cetane numbers range from 20.4 for linolenic acid to 80.1 for butyl stearate. The cetane numbers depend on the number of CH2 groups as well as the number of double bonds and other factors. Various oxygenated compounds were studied for their potential of improving the cetane numbers of fatty compounds. Several potential cetane improvers with ignition delay properties giving calculated cetane numbers over 100 were identified. The effect of these cetane improvers depended on their concentration and also on the fatty material investigated.
Technical Paper

Cetane Effect on Diesel Ignition Delay Times Measured in a Constant Volume Combustion Apparatus

1995-10-01
952352
The key feature of diesel fuel ignition quality is ignition delay time. In the American Society for Testing and Materials standard test for cetane number measurement, (ASTM D 613) the ignition delay time is held constant while the compression ratio is varied until ignition occurs at the set time. On the other hand, commercial diesel engines have set compression ratios and therefore, the ignition delay time varies with the cetane number of the fuel. The shorter this delay time, the wider the time window over which the combustion processes are spread. This leads to a more controlled heat release rate and pressure rise, resulting in prevention of diesel knock and in lowering of emissions. High cetane fuels exhibit short ignition delay times. The Constant Volume Combustion Apparatus (CVCA) precisely measures the ignition delay time of fuels. This study investigates the CVCA as a supplementary tool for characterization of diesel fuel ignition quality under a variety of conditions.
Technical Paper

Analysis of the Ignition Behaviour of the ASTM D-613 Primary Reference Fuels and Full Boiling Range Diesel Fuels in the Ignition Quality Tester (IQT™) - Part III

1999-10-25
1999-01-3591
This paper reports on the third part of a continued study (SAE Papers 961182, 971636) to develop the Ignition Quality Tester (IQT™). Past research has shown that this automated laboratory/refinery apparatus can be used to accurately predict the cetane number of middle distillates and alternative fuels using small sample volumes (< 50 mL). The paper reports on the main objective of a study performed by Advanced Engine Technology Ltd. (AET), in co-operation with its research partners. The primary research objective of this work is to further the understanding of fuel preparation (fuel air mixing) and start of combustion processes in the IQT™. Key to this understanding is the manner in which single molecule compounds and full boiling-range diesel fuels behave during these processes. Insights are provided into the manner in which the American Society for Testing and Materials (ASTM) D-613 primary reference fuels (PRFs) undergo fuel preparation and start of combustion in the IQT™.
Technical Paper

Acquisition and Interpretation of Diesel Engine Heat Release Data

1985-10-01
852068
The technique of using cylinder pressure data for diagnosing the combustion process in a reciprocating internal combustion engine has been used for some time. Much of the early work, however, was qualitative comparisons of the heat release rate diagrams. Only recently have efforts been made to reduce the heat release diagrams to functional or numerical representations which could be used to make fuel-to-fuel and engine-to-engine comparisons. This paper describes work in which cylinder pressure measurements were taken from an operating diesel engine using a high-speed data acquisition system. Combustion chamber pressure measurements were made at approximately 1.0- degree increments over several engine cycles using a real-time data acquisition system. The pressure data were used to calculate apparent heat release and indicated horsepower. Both radiative and convective heat transfer computations were included in the calculational procedures.
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