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Technical Paper

Gasoline Combustion with Future Fuels

2007-01-17
2007-26-021
This paper describes the demands and potentials of current and future gasoline combustion systems regarding the fuels gasoline, natural gas, and Hydrogen. At first, fuel specifications that are crucial for the spark ignition process are compared. These are compared with the requirements of the combustion system. Potentials for the compensation of power loss, efficiency improvement and emission reduction using alternative fuels are discussed taking into account fuel-specific properties. While full load drawbacks with natural gas compared with gasoline can be reduced to less than 5% by combustion system tuning, Hydrogen operation with port injection leads to reductions of about 25 to 30%. These drawbacks can be compensated with boosting where both methane and Hydrogen are qualified due to their burning characteristics. Compared with λ=1 operation especially Hydrogen offers efficiency benefits of up to 30% in a wide mapping range due to quality control.
Technical Paper

Potential of the Spray-guided Combustion System in Combination with Turbocharging

2008-04-14
2008-01-0139
Based on the TurboDISI engine presented earlier [1], [2], a new Spray Guided Turbo (SGT) concept with enhanced engine performance was developed. The turbocharged engine was modified towards utilizing a spray-guided combustion system with a central piezo injector location. Higher specific power and torque levels were achieved by applying specific design and cooling solutions. The engine was developed utilizing a state-of-the-art newly developed charge motion design (CMD) process in combination with single cylinder investigations. The engine control unit has a modular basis and is realized using rapid prototyping hardware. Additional fuel consumption potentials can be achieved with high load EGR, use of alternative fuels and a hybrid powertrain. The CO2 targets of the EU (120 g/km by 2012 in the NEDC) can be obtained with a mid-size vehicle applying the technologies presented within this paper.
Technical Paper

Development of Fuel Cell System Air Management Utilizing HIL Tools

2002-03-04
2002-01-0409
In this paper, boosting strategies are investigated for part load operation of typical fuel-cell-systems. The optimal strategy can mainly be obtained by simulation. The boosting strategy is one of the most essential parameters for design and operation of a fuel-cell-system. High pressure ratios enable high power densities, low size and weight. Simultaneously, the demands in humidification and water recovery for today's systems are reduced. But power consumption and design effort of the system increases strongly with the pressure level. Therefore, the main focus must be on the system efficiencies at part load. In addition, certain boundary conditions like the inlet temperature of the fuel-cell stack must be maintained. With high pressure levels the humidification of the intake air before, within or after the compressor is not sufficient to dissipate enough heat. Vaporization during the compression process shows efficiency advantages while the needs in heat dissipation decreases.
Technical Paper

System Comparison of Hybrid and Fuel Cell Systems to Internal Combustion Engines

2002-10-21
2002-21-0070
Increasing shortages of energy resources as well as emission legislation development is increasing the pressure to develop more efficient, environmentally friendly propulsion systems for vehicles. Alternatives such as fuel cell systems or hybrid propulsion are in discussion or have already been introduced. This paper gives a survey on the present technical status of internal combustion engines, hybrid concepts and current fuel cell vehicles. Different solutions will be presented, so that an evaluation of advantages and drawbacks can be given. The further potentials of each concept, as well as combinations of different systems are discussed, and an outlook into the future is given.
Technical Paper

CFD Simulation of Diesel Injection and Combustion

2002-03-04
2002-01-0945
A Diesel spray and combustion model has been connected to the CFD-code StarCD. The paper provides an overview of the submodels implemented, which account for liquid core atomization, droplet secondary break-up, droplet collision, impingement, turbulent dispersion and evaporation. Auto-ignition and combustion is described by the Representative Interactive Flamelet (RIF)-model. This concept allows to separate the fluid dynamics from the chemical processes with their significantly smaller timescales, and enables to account for a sufficiently large number of chemical species and reactions in order to predict pollutant formation such as NOx and soot. The CFD-predictions are extensively compared to experimental data. Spray model validation cases focus on the distribution of droplet sizes, velocities and fuel vapor in free and impinging sprays.
Technical Paper

Transportation Sector and Fuel Cell Technology - A Perspective

2003-01-18
2003-26-0041
Over the past decade, the fuel cell has risen to prominence as a future option for many energy-using systems. For motor vehicles, Polymer Electrolyte Membrane (PEM) fuel cells promise to address public concerns about air pollution, oil dependence, and global warming while providing ample on-board electricity to efficiently meet growing customer needs. Rapid R&D progress has yielded hydrogen-fueled stack designs suitable for mass production. This paper discusses PEM fuel stack and balance of plant technologies along with fueling options. Also puts the fuel cell transportation applications in perspective and suggests government role in accelerating these applications.
Technical Paper

Start-Up Behavior of Fuel Processors for PEM Fuel Cell Applications

2003-03-03
2003-01-0420
This paper focuses on start-up technology for fuel processing systems with special emphasis on gasoline fueled burners. Initially two different fuel processing systems, an autothermal reformer with preferential oxidation and a steam reformer with membrane, are introduced and their possible starting strategies are discussed. Energy consumption for preheating up to light-off temperature and the start-up time is estimated. Subsequently electrical preheating is compared with start-up burners and the different types of heat generation are rated with respect to the requirements on start-up systems. Preheating power for fuel cell propulsion systems necessarily reaches up to the magnitude of the electrical fuel cell power output. A gasoline fueled burner with thermal combustion has been build-up, which covers the required preheating power.
Technical Paper

Future Potential and Development Methods for High Output Turbocharged Direct Injected Gasoline Engines

2006-04-03
2006-01-0046
With rising gasoline prices in the US the need for increasingly fuel efficient powertrain concepts has never been more critical. Evaluation of the market on the other hand shows that the vehicle-buying consumer is unwilling to compromise engine power output for this needed fuel efficiency. Boosted, direct-injected gasoline engines with high specific output and low end torque seem to be the most logical path to satisfying both good part load fuel economy and generous power and torque characteristics. Turbo lag and subsequent lack of torque during transient acceleration (with low initial engine speeds) are characteristics of current turbocharged gasoline engines. These phenomena have prevented successful penetration of these boosted powertrains into the marketplace. Larger displacement, naturally aspirated gasoline engines have been the preferred choice.
Technical Paper

A Low NVH Range-Extender Application with a Small V-2 Engine - Based on a New Vibration Compensation System

2012-10-23
2012-32-0081
The interest in electric propulsion of vehicles has increased in recent years and is being discussed extensively by experts as well as the public. Up to now the driving range and the utilization of pure electric vehicles are still limited in comparison to conventional vehicles due to the limited capacity and the long charging times of today's batteries. This is a challenge to customer acceptance of a pure electric vehicle, even for a city car application. A Range Extender concept could achieve the desired customer acceptance, but should not impact the “electric driving” experience, and should not cause further significant increases in the manufacturing and purchasing cost. The V2 engine concept presented in this paper is particularly suited to a low cost, modular vehicle concept. Advantages regarding packaging can be realized with the use of two generators in combination with the V2 engine.
Technical Paper

Boosting and Direct Injection -Synergies for Future Gasoline Engines

2005-04-11
2005-01-1144
To further reduce the Corporate Average Fuel Economy in order to meet the ACEA target values agreed upon, more intense efforts are required in the areas of engine and drive train development by 2008 or 2012. Boosted gasoline engines with a high specific output or torque have to be considered the tools that lead to this goal, while combining driving pleasure and consumption reduction in an ideal way. FEV has thoroughly analyzed this kind of concept and analyzed the fundamental synergy effects resulting from the additional combination of supercharging with direct injection in close detail.
Technical Paper

CAE-Based Port Development and Flow Design for SI Engines

2005-04-11
2005-01-0243
Today's engine and combustion process development is closely related to the port layout. Combustion and emission performance are coupled to the intensity of turbulence, the quality of mixture formation or the distribution of residual gas - consequently depending on in-cylinder charge motion, which is mainly determined by the port and cylinder head design. Additionally, an increasing level of volumetric efficiency is demanded for a high power output. It is between these two mostly opposing aims that an optimized trade-off must be found. Traditionally, an experimental investigation carried out on flow test benches defines the port layout. The results of these investigations are global flow parameters, describing flow coefficient and swirl and tumble intensity. The ongoing progress for the development of CAE tools has led to the creation of new methodologies. CFD calculations provide insight into the details of port and in-cylinder flow, thus enabling efficient optimization.
Technical Paper

Benefits of the Electromechanical Valve Train in Vehicle Operation

2000-03-06
2000-01-1223
One of the most promising methods to reduce fuel consumption is to use unthrottled engine operation, where load control occurs by means of variable valve timing with an electromechanical valve train (EMV) system. This method allows for a reduction in fuel consumption while operating under a stoichiometric air-fuel-ratio and preserves the ability to use conventional exhaust gas aftertreatment technology with a 3-way-catalyst. Compared with an engine with a camshaft-driven valve train, the variable valve timing concept makes possible an additional optimization of cold start, warm-up and transient operation. In contrast with the conventionally throttled engine, optimized control of load and in-cylinder gas movement is made possible from the start of the first cycle. A load control strategy using a “Late Intake Valve Open” (LIO) provides a reduction in start-up HC emissions of approximately 60%.
Technical Paper

Low fuel consumption and low emissions~Electromechanical valve train in vehicle operation

2000-06-12
2000-05-0018
The electromechanical valve train (EMV) technology allows for a reduction in fuel consumption while operating under a stoichiometric air-fuel ratio and preserves the ability to use conventional exhaust gas aftertreatment technology with a 3-way catalyst. Compared with an engine with a camshaft-driven valve train, the variable valve timing concept makes possible an additional optimization of cold start, warm-up and transient operation. In contrast with the conventionally throttled engine, optimized control of load and in-cylinder gas movement can be used for each individual cylinder and engine cycle. A load control strategy using a "Late Intake Valve Open" (LIO) provides a reduction in start-up HC emissions of approximately 60%. Due to reduced wall-wetting, the LIO control strategy improves the transition from start to idle.
Technical Paper

Direct Injection Gasoline Engines - Combustion and Design

1999-03-01
1999-01-0170
The charge motion controlled combustion concept for SI engines with direct fuel injection exhibits an excellent fuel economy and emission potential in comparison with other DI combustion concepts. It realizes a stable combustion behavior all over the engine map. Because injection and ignition timing has little bearing on emission and ignition safety, the new concept can be easily applied under DI specific operational conditions. The combination of fired engine tests and optical investigations with CFD calculations enables an efficient process optimization under the boundary conditions as imposed by the respective design. The high EGR tolerance enables a large reduction of NOx emission, which is the expected basic requirement to meet future emission standards. In addition to favorable part load behavior, the new combustion concept also displays all of the characteristics for a good full load behavior.
Technical Paper

Analysis of Cyclic Fluctuations of Charge Motion and Mixture Formation in a DISI Engine in Stratified Operation

2007-04-16
2007-01-1412
Engine processes are subject to cyclic fluctuations, which a have direct effect on the operating and emission behavior of the engine. The fluctuations in direct injection gasoline engines are induced and superimposed by the flow and the injection. In stratified operation they can cause serious operating problems, such as misfiring. The current state of knowledge on the formation and causes of cyclic fluctuations is rather limited, which can be attributed to the complex nature of flow instabilities. The current investigation analyzes the cyclic fluctuations of the in-cylinder charge motion and the mixture formation in a direct injection gasoline engine using laser-optical diagnostics and numerical 3D-calculation. Optical measurement techniques and pressure indication are used to measure flow, mixture formation, and combustion processes of the individual cycles.
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