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Technical Paper

Study on HCCI-SI Combustion Using Fuels Ethanol Containing

2007-10-29
2007-01-4051
Bio-ethanol is one of the candidates for automotive alternative fuels. For reduction of carbon dioxide emissions, it is important to investigate its optimum combustion procedure. This study has explored effect of ethanol fuels on HCCI-SI hybrid combustion using dual fuel injection (DFI). Steady and transient characteristics of the HCCI-SI hybrid combustion were evaluated using a single cylinder engine and a four-cylinder engine equipped with two port injectors and a direct injector. The experimental results indicated that DFI has the potential for optimizing ignition timing of HCCI combustion and for suppressing knock in SI combustion under fixed compression ratio. The HCCI-SI hybrid combustion using DFI achieved increasing efficiency compared to conventional SI combustion.
Technical Paper

On Demand Octane Number Enhancement Technology by Aerobic Oxidation

2016-10-17
2016-01-2167
For the purpose of developing onboard gasoline reforming technology for higher octane number fuel on demand, octane number enhancement of gasoline surrogate by aerobic oxidation using N-hydroxyphthalimide catalyst was investigated. At first, octane numbers of the oxygen-containing products from alkane and aromatic compound were estimated using a fuel ignition analyzer. As a result, not only alcohol but also ketones and aldehydes have higher octane numbers than the original alkanes and aromatic compound. Next, gasoline surrogate was oxidized aerobically with N-hydroxyphthalimide derivative catalyst and cobalt catalyst at conditions below 100 °C. As a result, fuel molecules were oxidized to produce alcohols, ketones, aldehydes, and carboxylic acids. N-hydroxyphthalimide derivative catalyst with higher solubility in gasoline surrogate has higher oxidation ability. Furthermore, the estimated octane number of the oxidized gasoline surrogate improves 17 RON.
Technical Paper

Effect of Mixture Stratification and Fuel Reactivity on Dual-Fuel Compression Ignition Combustion Process for SI-Based Engine

2016-10-17
2016-01-2304
Compression ignition combustion with a lean mixture has high potential in terms of high theoretical thermal efficiency and low NOx emission characteristics due to low combustion temperatures. In particular, a Dual-Fuel concept is proposed to achieve high ignition timing controllability and an extended operation range. This concept controls ignition timing by adjusting the fraction of two fuels with different ignition characteristics. However, a rapid combustion process after initial ignition cannot be avoided due to the homogenous nature of the fuel mixture, because the combustion process depends entirely on the high reaction rate of thermal ignition. In this study, the effect of mixture stratification in the cylinder on the combustion process after ignition based on the Dual-Fuel concept was investigated. Port injection of one fuel creates the homogeneous mixture, while direct injection of the other fuel prepares a stratified mixture in the cylinder at the compression stroke.
Technical Paper

Study on Homogeneous Lean Charge Spark Ignition Combustion

2013-10-14
2013-01-2562
In practical lean burn engines used to date, the use of a stratified air-fuel configuration, with a comparatively rich mixture in the vicinity of the spark plugs, has resulted in the stable combustion of an overall lean mixture. However, because a comparatively rich mixture is burned during the first half of combustion, NOx emissions are not reduced sufficiently. This research focused on a form of lean burn with homogeneous premixture that would be able to balance low NOx emissions with combustion controllability. It is widely known that homogeneous lean premixed gas has poor flame propagation characteristics. To determine the dominant cause of this, this study investigated the combustion properties of a single-cylinder engine while changing the compression ratio and intake temperature. As a result, the primary cause of combustion fluctuation, the abnormal cycle has a low TDC temperature compared to that of other cycles.
Technical Paper

Fuel Ignition Quality Control by Addition and Catalytic Decomposition of Cetane Improver

2006-10-16
2006-01-3361
A new method for controlling fuel ignition quality has been developed. A cetane improver, such as organic peroxide, is added to a base fuel to create a fuel with higher ignition quality. The cetane improver in the fuel is then decomposed using a catalyst. This process lowers the ignition quality. To demonstrate this concept, the effects of a cumene hydroperoxide (CHP) addition and its catalytic decomposition on fuel ignition quality were investigated. It was found that addition of CHP improved ignition quality in the base fuel, and that following catalytic decomposition, the ignition quality was reduced below that of the base fuel.
Technical Paper

Effects of Fuel Properties on the Combustion and Emission of Direct-Injection Gasoline Engine

2000-03-06
2000-01-0253
Experiments using a single-cylinder direct-injection gasoline engine were conducted to evaluate pure substances and refinery feedstocks in order to clarify the effects of fuel properties on the combustion and emission of the direct-injection gasoline engine. Under the stratified charge combustion conditions, olefins had shorter mass-burning periods with a higher indicated mean effective pressure (IMEP), lower hydrocarbon (HC) emissions and higher NOx emissions than other substances. The boiling point affected the mass-burning periods and the HC emissions of paraffins. Aromatic compounds caused poor combustion and smoke production. Under the homogeneous stoichiometric combustion conditions, the combustion of substances was affected by both their boiling points and their chemical properties. Also, a shorter mass-burning period induced a higher IMEP and a lower coefficient of variance of the IMEP.
Technical Paper

Development of an LPG DI Diesel Engine Using Cetane Number Enhancing Additives

1999-10-25
1999-01-3602
A feasibility study of an LPG DI diesel engine has been carried out to study the effectiveness of two selected cetane enhancing additives: Di-tertiary-butyl peroxide (DTBP) and 2-Ethylhexyl nitrate (EHN). When more than either 5 wt% DTBP or 3.5 wt% 2EHN was added to the base fuel (100 % butane), stable engine operation over a wide range of engine loads was possible (BMEPs of 0.03 to 0.60 MPa). The thermal efficiency of LPG fueled operation was found to be comparable to diesel fuel operation at DTBP levels over 5 wt%. Exhaust emissions measurements showed that NOx and smoke levels can be significantly reduced using the LPG+DTBP fuel blend compared to a light diesel fuel at the same experimental conditions. Correlations were derived for the measured ignition delay, BMEP, and either DTBP concentration or cetane number. When propane was added to a butane base fuel, the ignition delay became longer.
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