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Technical Paper

Effect of Fuel Properties on Diesel PM Components

2007-07-23
2007-01-1941
In this study, compositions, size distributions and activation energy in oxidation of diesel PM were investigated. Benzene (C6H6) was mixed to diesel fuel as a promoter of PM formation, and further, ferrocene (Fe(C5H5)2) was added as a promoter for oxidation processes during in-cylinder combustion and after-treatment. The effect of those additions on the PM characteristics was discussed on the basis of measured results such as SOF and dry-soot ratio in PM, primary and aggregate particle size distributions of PM, activation energy of PM oxidation, and PM components with elemental analysis. As a result, it was shown that ferrocene had special effect on the PM size distribution and the activation energy.
Technical Paper

Evaluation of SOF Effects on Deposit Characteristics of the EGR Cooler Using a PM Generator

2011-04-12
2011-01-1156
The high concentration of particulate matter (PM) in diesel exhaust gas causes significant soot deposition on the wall of EGR cooler, and reduces the heat transfer performance of the EGR cooler and the reduction rate of NOx. The deposition of PM tends to be occurred more severely with "heavy wet PM," which is more frequently at the LTC (low temperature combustion) engine. The objective of this work is to evaluate the effects of soluble organic fraction (SOF) on deposit characteristics of the EGR cooler. To measure reliable mean particle concentration values and surrogate SOFs, the soot generator with SOF vaporizer was used. As for two surrogate SOFs, n-dodecane and diesel lube oil, deposit mass increased when they were injected. Especially from the experiment results, it was found that the lube oil effect was more significant than the n-dodecane effect and lube oil also had a stronger effect on reduction of thermal conductivity by filling pores in deposits.
Technical Paper

Combustion Characteristics and Generating Efficiency Using Biogas with Added Hydrogen

2013-10-14
2013-01-2506
Biogas has been used as a fuel because of its lean-burn capability, low cost, and direct application to current engine systems. However, some performance loss occurs when using biogas as a fuel in a typical gas engine. To compensate that performance loss, hydrogen can be added to enhance combustion. Given the increasing need to substitute energy sources, many studies have been performed to examine the performance of biogas-hydrogen blends. In this study, experiments and simulations of a gas engine fueled with biogas were compared to confirm the accuracy of the simulation model under a fixed excess air ratio of 1.2 and spark timing of 16 CA BTDC. Performance predictions were made numerically for various spark timings, excess air ratios, and amounts of added hydrogen. With increased amounts of added hydrogen, the cylinder pressure and heat release rate increased and the ignition delay was reduced.
Technical Paper

End-Gas Temperature Measurements in a DOHC Spark-Ignition Engine Using CARS

2000-03-06
2000-01-0237
CARS temperature measurements were carried out both in a constant volume combustion chamber and in a spark-ignition engine. The CARS temperature measurement under engine-like condition was validated by comparing the unburned gas temperatures for premixed propane-air flame in a constant volume combustion chamber obtained by CARS with predicted temperatures of 2-zone flame propagation simulation model. There was good agreement between the predicted temperatures and the mean values of 10 CARS measurements. The standard deviation of 10 measurements at each measuring timing was about ±40 K. End-gas temperatures were measured by CARS technique in a conventional 4-cylinder DOHC spark-ignition engine with the engine motoring and firing. The measured motoring temperature matched well with the adiabatic core temperature calculated from the measured cylinder pressure. The engine was fueled with primary reference fuel (PRF80) of 80% iso-octane and 20% n-heptane by volume.
Technical Paper

Effect of Hydrogen as an Additive on Lean Limit and Emissions of a Turbo Gasoline Direct Injection Engine

2015-09-01
2015-01-1886
For gasoline engine, thermal efficiency can be improved by using lean burn. However, combustion instability occurs when gasoline engine is operated on lean condition. Hydrogen has features that can be used for improving combustion stability of gasoline engine. In this paper, an experimental study of hydrogen effect on lean limit was carried out using a four-cylinder 2.0L turbo gasoline direct injection engine. The engine torque was fixed at 110Nm on 1600RPM, 2000RPM and 2400RPM. The results showed that lean limit was extended and brake thermal efficiency was improved by hydrogen addition. Especially, at lower engine speed, the large improvement of lean limit was achieved. However, improvement of brake thermal efficiency was achieved at high speed. HC and CO2 emissions were decreased and NO emissions increased with hydrogen addition. CO emissions were slightly reduced with hydrogen addition.
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