A Numerical Study on the Pilot Injection Conditions of a Marine 2-Stroke Lean-Burn Dual Fuel Engine
Abstract
:1. Introduction
2. Model Description
2.1. Engine Dimensions
2.2. Multidimensional CFD Model
3. Results and Discussion
3.1. Pilot Injector Orifices Variation
3.2. Pilot SOI Timing Variation
3.2.1. Influence on Combustion
3.2.2. Influence on Performance
3.3. Pilot Injection Duration Variation
3.3.1. Influence on Combustion
3.3.2. Influence on Performance
4. Conclusions
- (1)
- The number of pilot injector orifices affected the ignition of pilot fuel and the flame propagation speed inside the combustion chamber. Due to the small space of the pre-combustion chamber, a large number of nozzle orifices caused the pilot oil beam to hit the wall of the pre-combustion chamber—affecting the atomization and evaporation of the oil droplets. When the number of pilot injector orifices was 1, engine performance and emission characteristics were very good.
- (2)
- The SOI timing of pilot had a great impact on engine performance. With the delay of pilot injection timing, the in-cylinder pressure and the average temperature decreased significantly, the duration of heat release increased, and the engine performance deteriorated. In addition, NOx emissions gradually decreased with the delay of SOI timing of pilot.
- (3)
- The duration of pilot injection mainly affected the ignition delay of pilot fuel and had a greater impact on the flame propagation. The longer the pilot injection duration, the later the pilot was ignited at the compression stroke and the lower the cylinder pressure and the average temperature were. The long duration of pilot injection resulted in poor engine performance and increased NOx emissions. HC emissions showed a trend of first decreasing and then increasing with the increase of injection duration.
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
Abbreviations
1D | One-Dimensional |
3D | Three-Dimensional |
aTDC | After Top Dead Center |
bTDC | Before Top Dead Center |
BSPC | Brake Specific Pilot Fuel Consumption |
BSGC | Brake Specific Gas Consumption |
°CA | Crank Angle Degree |
CFD | Computational Fluid Dynamics |
CH4 | Methane |
CO | Carbon Monoxide |
ECAs | Emission Control Areas |
EGR | Exhaust Gas Re-circulation |
HC | Hydrocarbon |
HCCI | Homogeneous Charge Compression Ignition |
HFID | Heated Flame Ionization Detector |
IMO | International Maritime Organization |
LNG | Liquefied Natural Gas |
LP-DF | Low-Pressure Dual-Fuel |
LSFO | Low Sulphur Fuel Oil |
MCC | Main Combustion Chamber |
NG | Natural Gas |
NOx | Nitrogen Oxides |
PCC | Pre-combustion Chamber |
ROHR | Rate of Heat Release |
SCR | Selective Catalytic Reduction |
SOI | Start of Injection |
SOx | Sulfur Oxides |
TDC | Top Dead Center |
WinGD | Winterthur Gas and Diesel |
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Parameter | Value |
---|---|
Bore/Stroke | 500/2050 mm |
Engine Speed | 124 r/min |
IMEP | 17.3 bar (at R1) |
Engine Output | 8640 kW |
Compression Ratio | 12 |
Number of PCC | 2 |
Brake Specific Pilot Fuel Consumption (BSPC) (GAS Mode at R1) | 1.8 g/kWh |
Brake Specific Gas Consumption (BSGC) (GAS Mode at R1) | 142.7 g/kWh |
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Guo, H.; Zhou, S.; Zou, J.; Shreka, M. A Numerical Study on the Pilot Injection Conditions of a Marine 2-Stroke Lean-Burn Dual Fuel Engine. Processes 2020, 8, 1396. https://doi.org/10.3390/pr8111396
Guo H, Zhou S, Zou J, Shreka M. A Numerical Study on the Pilot Injection Conditions of a Marine 2-Stroke Lean-Burn Dual Fuel Engine. Processes. 2020; 8(11):1396. https://doi.org/10.3390/pr8111396
Chicago/Turabian StyleGuo, Hao, Song Zhou, Jiaxuan Zou, and Majed Shreka. 2020. "A Numerical Study on the Pilot Injection Conditions of a Marine 2-Stroke Lean-Burn Dual Fuel Engine" Processes 8, no. 11: 1396. https://doi.org/10.3390/pr8111396
APA StyleGuo, H., Zhou, S., Zou, J., & Shreka, M. (2020). A Numerical Study on the Pilot Injection Conditions of a Marine 2-Stroke Lean-Burn Dual Fuel Engine. Processes, 8(11), 1396. https://doi.org/10.3390/pr8111396