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Modeling of Combustion and Emission Characteristics in a Dual-fuel Engine by Combining Diffusion and Premixed Combustion : 확산 연소와 예혼합 연소의 결합을 통한 혼소 연소 엔진의 연소 및 배기 배출물 모델링

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dc.contributor.advisor민경덕-
dc.contributor.author이상열-
dc.date.accessioned2017-07-26T16:30:11Z-
dc.date.available2017-07-26T16:30:11Z-
dc.date.issued2013-02-
dc.identifier.other000000010075-
dc.identifier.urihttps://hdl.handle.net/10371/134863-
dc.description학위논문 (박사)-- 서울대학교 대학원 : 협동과정 자동차공학전공, 2013. 2. 민경덕.-
dc.description.abstractDual-fuel combustion is a combustion concept which uses a split injection strategy where the second injected fuel is used as an ignition trigger and the first injected fuel is used as heat release. Classical dual-fuel combustion has been studied for a long time to reduce the usage of liquid fuel. Recently, the dual-fuel combustion concept is coupled with the HCCI combustion concept and it receives much attention. However, the numerical approach to the dual-fuel combustion needs a great deal of calculation costs because there is no dual-fuel combustion models so they solve chemical kinetic directly. Classical dual-fuel combustion uses liquid fuel and RCCI combustion uses higher reactivity fuel as an ignition trigger and combustion propagates from the ignition source although the specific combustion behaviors are different to each other. Therefore, the dual-fuel combustion could be arranged into the couple of diffusion flame characteristics and premixed flame characteristics. In this study, dual-fuel combustion and emission models were developed from the laminar flamelet model which could describe the diffusion flame and from the level-set model which could describe the premixed flame.
At first, the laminar flamelet model was applied to describe the diffusion combustion in dual-fuel combustion. The second injected fuel is ignited by the high temperature and pressure without spark plug during the compression stroke. In addition, the first injected fuel has a possibility to auto-ignite by the high temperature, pressure and radicals. By the early injection, multiple ignition points could be generated and it was also described in this study.
Secondly, the level-set model was applied to the combustion model to describe the combustion propagation. The flame propagation speed was determined by competition between ignition propagation speed by the flamelet model and flame propagation speed by the level-set model. The burned gas composition and flame brush species composition were pre-calculated by the flamelet solution database.
This new model was preliminary applied to a simple planar geometry to investigate the fundamentals of model behavior. In this two-dimensional mesh, the combustion model described the ignition of the higher reactivity fuel and flame propagation to the lower reactivity fuel. Then, three-dimensional CFD simulations were performed in a practical engine mesh. The simulation results were compared with the experimental data and showed a very good agreement with experimental cylinder pressure curve. The predicted levels of NOx, soot, and THC emissions showed reasonable agreement to the experimental data.
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dc.description.tableofcontentsChapter 1. Introduction 1
1.1 Backgrounds and Motivations 1
1.1.1 Overview 1
1.1.2 Potentials of Dual-Fuel Engine 3
1.1.3 Numerical Approach as an Engine Development Tool 5
1.1.4 History and Limitations of Numerical Models for the Dual Fuel Combustion 6
1.2 Combustion Characteristics of Dual-Fuel Engine 10
1.2.1 Flame structure characteristics 10
1.2.2 Emission characteristics 12
1.3 Objectives 16
Chapter 2. Combustion and Emission Models Review 17
2.1 Classical Turbulence Models with Combustion 17
2.1.1 Moment Methods 17
2.1.2 Turbulence models 19
2.2 Models for the Non-premixed Combustion 23
2.2.1 Basics in premixed turbulent combustion 23
2.2.2 Laminar Flamelet Model 26
2.2.3 Turbulent Averaging Laminar Flamelet Equations 28
2.2.4 Coupling Flamelet Equations with CFD Code 30
2.3 Modeling of Turbulent Flame Propagation 34
2.3.1 Basics in premixed turbulent combustion 34
2.3.2 Flamelet model for laminar premixed combustion 36
2.3.3 Flamelet model for turbulent premixed combustion 39
2.3.4 Numerical calculation of laminar flame speed 44
2.4 Modeling of burnt gas composition 51
2.4.1 Flamelet library approach 51
2.4.2 Library generation 53
2.5 Chemical Kinetics 59
2.5.1 Normal heptane 59
2.5.2 Propane 59
2.6 Modeling of Emissions 65
2.6.1 NOx model 65
2.6.2 Soot model 65
2.7 Summary of Modeling 69
Chapter 3. Simulation in a Simple Geometry 73
3.1 Flamelet Model Modifications 73
3.1.1 Boundary Conditions for the Dual-fuel Combustion 73
3.1.2 Computational Setup 74
3.1.3 Simulation Results 75
3.2 Coupling flamelet model to the Level-set model 82
3.2.1 Level-set model for the Dual-fuel Combustion 82
3.2.2 Computational setup 82
3.2.3 Simulation results 83
Chapter 4. Simulation in an Engine Geometry 86
4.1 Experiments of dual-fuel combustion 86
4.1.1 Experimental setup 86
4.1.2 Calculation of Air-Fuel Ratio (AFR) for Dual-fuel Condition 87
4.1.3 Experimental results 88
4.2 Computational setup 94
4.2.1 Numerical modeling of practical dual-fuel engine 94
4.2.2 Calculation conditions 94
4.3 Simulation results 98
4.3.1 Comparison with experimental results 98
4.3.2 Simulation of ignition and flame propagation process 99
4.3.3 Simulation of pollutant formation process 100
4.3.4 Effects of Operating Conditions 100
Chapter 5. Conclusions 118
References 121
초록 130
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dc.formatapplication/pdf-
dc.format.extent4233275 bytes-
dc.format.mediumapplication/pdf-
dc.language.isoen-
dc.publisher서울대학교 대학원-
dc.subjectdual-fuel combustion engine-
dc.subjectthree-dimensional CFD simulation-
dc.subjectflamelet model-
dc.subjectlevel-set model-
dc.subjectNOx emission-
dc.subjectsoot emission-
dc.subjectdual-fuel combustion model-
dc.subject.ddc629-
dc.titleModeling of Combustion and Emission Characteristics in a Dual-fuel Engine by Combining Diffusion and Premixed Combustion-
dc.title.alternative확산 연소와 예혼합 연소의 결합을 통한 혼소 연소 엔진의 연소 및 배기 배출물 모델링-
dc.typeThesis-
dc.contributor.AlternativeAuthorSangyul Lee-
dc.description.degreeDoctor-
dc.citation.pages146-
dc.contributor.affiliation공과대학 협동과정 자동차공학전공-
dc.date.awarded2013-02-
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