Effect of the Hydrogen Injection Position on the Combustion Process of a Direct Injection X-Type Rotary Engine with a Hydrogen Blend
Abstract
:1. Introduction
2. Models Establishment and Verification
2.1. Establishment of Geometric Model
2.2. Mathematical Model and Boundary Conditions
2.3. HB Method and Nozzle Positions
2.4. Model Validation
3. Results and Discussion
3.1. Flow Field Distribution and Mixture Formation
3.2. Combustion Process Analysis
3.2.1. In-Cylinder Flame Propagation
3.2.2. Overall Combustion Performance of Engine
3.3. Emission Process Analysis
4. Conclusions
- (1)
- The interaction between the in-cylinder flow of the mainstream flow field and the hydrogen injection affects the distribution of hydrogen gas before ignition. On the one hand, due to the influence of the hydrogen injection, a large vortex is formed in the injection direction. On the other hand, the vortex makes the hydrogen mix faster with the gas. When the injection position is from the front to the back of the combustion chamber, namely position 2, the hydrogen thick distribution area in the cylinder is the largest and closest to the ignition position.
- (2)
- The different injection position leads to different in-cylinder hydrogen distribution, which affects the combustion area and combustion rate after the stable flame kernel is formed. Furthermore, position 2 presents the largest combustion area, leading to the highest in-cylinder peak temperature of 1835.16 K and cycle work of 14.90 J. Compared to position 4 that has the lowest thermal efficiency of 24.13%, position 2 presents the highest thermal efficiency of 26.56%, which is 10.08% higher than that of position 4. Thus, it is suggested to drill nozzles at position 2 for injecting hydrogen in the practical work.
- (3)
- Position 2 shows the most intense combustion, resulting in its CO generation speed being the fastest. Meanwhile, its highest combustion completeness leads to its lowest final unburned carbon emission of 0.36 mg. Although the combustion speed in the pre-combustion period is fast at position 3, the in-cylinder temperature drops obviously in the post-combustion period. Therefore, the incomplete combustion of position 3 in the post-combustion period results in the highest unburned carbon emission of 0.42 mg. The NOx emission of position 2 is the highest at 9.15 μg due to its higher temperature. Meanwhile, the differences in carbon soot emission quality among the different positions are not noticeable. Thus, it can be concluded that carbon emissions can only be minimized by controlling the complete combustion of the whole combustion process.
- (4)
- In the future, the influences of hydrogen injection timing, secondary injection, injection nozzle diameter and other factors on XRE overall performance with hydrogen–gasoline fuel will be conducted.
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
XRE | X-type rotary engine |
WRE | Wankel rotary engine |
HEHC | high-efficiency hybrid cycle |
CFD | Computational Fluid Dynamics |
HB | hydrogen-blended |
DI | direct injection |
PI | port injection |
RPM | Revolutions per minute |
CA | crankshaft angle |
BTDC | before top dead center |
ATDC | after top dead center |
HRR | Heat Release Rate |
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Project | Value |
---|---|
Generating radius/mm | 41 |
Eccentricity/mm | 6 |
Cylinder thick/mm | 18.5 |
Offset/mm | 0.7 |
Geometry compression ratio | 11:1 |
One chamber displacement/cc | 23 |
Cooling method | Water cooled |
Ignition source | Spark plug |
Top dead center angle/°CA | 360 |
Intake value closing/°CA | 585 |
Exhaust value opening/°CA | 161 |
Calculated Parameters | Value |
---|---|
Engine speed/RPM | 9000, 10,000 |
Intake pressure/bar | 1.03 |
Spark advance angle/°CA | 30 |
Cooling gas flow to housing/kg·s−1 | 165 |
Fuel | Gasoline, hydrogen–gasoline |
Lambda | 0.85 |
Specification Parameters | Value |
---|---|
Hydrogen energy fraction | 3% |
Injection pressure | 0.5 MPa |
Injection moment | 70 °CA BTDC |
Injection pulse width | 3.5 °CA |
Number of nozzles | 3 |
Nozzle diameter | 1 mm |
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Geng, Q.; Wang, X.; Du, Y.; Yang, Z.; Wang, R.; He, G. Effect of the Hydrogen Injection Position on the Combustion Process of a Direct Injection X-Type Rotary Engine with a Hydrogen Blend. Energies 2022, 15, 7219. https://doi.org/10.3390/en15197219
Geng Q, Wang X, Du Y, Yang Z, Wang R, He G. Effect of the Hydrogen Injection Position on the Combustion Process of a Direct Injection X-Type Rotary Engine with a Hydrogen Blend. Energies. 2022; 15(19):7219. https://doi.org/10.3390/en15197219
Chicago/Turabian StyleGeng, Qi, Xuede Wang, Yang Du, Zhenghao Yang, Rui Wang, and Guangyu He. 2022. "Effect of the Hydrogen Injection Position on the Combustion Process of a Direct Injection X-Type Rotary Engine with a Hydrogen Blend" Energies 15, no. 19: 7219. https://doi.org/10.3390/en15197219
APA StyleGeng, Q., Wang, X., Du, Y., Yang, Z., Wang, R., & He, G. (2022). Effect of the Hydrogen Injection Position on the Combustion Process of a Direct Injection X-Type Rotary Engine with a Hydrogen Blend. Energies, 15(19), 7219. https://doi.org/10.3390/en15197219