Experimental Investigation of Combustion Characteristics on Opposed Piston Two-Stroke Gasoline Direct Injection Engine
Abstract
:1. Introduction
2. Principal Prototype Test Platform
2.1. OP2S-GDI Engine Prototype
2.2. OP2S-GDI Engine Experimental Test Bed
3. Analysis of OP2S-GDI Engine Performance
3.1. Analysis of Combustion Process Organization
3.2. Analysis of Energy and Exergy
4. Study on the Effect of Combustion Characteristics
4.1. Effect of Opposed Piston Phase Difference on Combustion Process
4.2. Effect of Scavenging Pressure on Combustion Process
4.3. Effect of Injection Timing on Combustion Process
4.4. Effect of Ignition Timing on Combustion Process
5. Study on Combustion Process of Dual Spark Plug Ignition
5.1. Contrast Experiments of Single and Dual Spark Plug
5.2. Rapid Combustion Characteristics of Dual Spark Plug
6. Conclusions
- (1)
- The heat release process of the OP2S-GDI engine is consistent with the traditional gasoline engine. The energy distribution of an OP2S-GDI engine is influenced by both load and speed. Exhaust energy is high under most operating conditions and about 1/3 of the total fuel energy is carried by the exhaust. The proportion of heat transferred to the cooling water is greater in the low load. The exhaust energy to fuel energy is more than 20%, which can be fully utilized to effectively improve fuel consumption.
- (2)
- When the phase difference of the opposed piston is 15 °CA, the scavenging process can be improved, the combustion process can be accelerated. With the increase of rotational speed, it is necessary to increase the scavenging pressure. When the scavenging pressure is 0.12 MPa, the scavenging process and combustion organization at medium and high speed can be taken into account.
- (3)
- With the increase of injection advance angle, the flame development period is shortened, and the rapid combustion period decreases first and then increases. The rapid combustion period is the minimum value when the injection advance angle is 100 °CA.
- (4)
- The OP2S gasoline engine can achieve rapid in-cylinder combustion by the opposed dual spark plug ignition. When the ignition advance angle is 20 °CA, the highest heat release rate and indicated thermal efficiency can be achieved, which is the minimum value for the rapid combustion period.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Acronyms
BDC | bottom dead center |
BMEP | Brake Mean Effective Pressure |
CA | crank angle |
CA10 | 10% of the cumulative heat release |
CA50 | 50% of the cumulative heat release |
CA90 | 90% of the cumulative heat release |
CFD | computational fluid dynamics |
CGP | cylinder gas pressure |
CR | common rail |
GDI | gasoline direct injection |
HCCI | homogeneous charge compression ignition |
HR | heat release |
IMEP | indicated mean effective pressure |
IDC | inner dead center |
LTC | low-temperature combustion |
ODC | outer dead center |
OP2S | opposed-piston two-stroke |
PCCI | premixed charge compression ignition |
ROHR | rate of heat release |
rpm | revolution per minute |
TDC | top dead center |
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Structure Parameters | Value |
---|---|
Bore (mm) | 56 |
Stroke (mm) | 49.5 (×2) |
Connecting rod (mm) | 82.5 |
Effective compression Ratio (-) | 10.5 |
Engine speed (rpm) | 5000 |
Number of intake ports (-) | 10 |
Number of exhaust ports (-) | 10 |
Intake port height stroke ratio (-) | 0.121 |
Exhaust port height stroke ratio (-) | 0.141 |
Intake port circumference ratio (-) | 0.75 |
Exhaust port circumference ratio (-) | 0.6 |
Opposed-piston phase difference (°CA) | 15 |
Intake port radial angle (°) | 15 |
Exhaust port radial angle (°) | 0 |
Power (kW) | 15 |
Fuel consumption rate (g/kW h) | 276 |
Name | Model | Specification |
---|---|---|
Control system | Ecotrons NA2T1C250 cc | Supporting platform |
Control software | Pro CAL software | Programmable controller |
Cylinder pressure sensor | 6056A | Kistler Instrumente AG, 0.25 °CA resolution |
Crankshaft position sensor | Kistler 2614B | 0.2 °CA sampling precision |
Fuel consumption instrument | Weighing type FCH-2210 | Measurement time range 1–200 s |
Engine dynamometer | CW25 | Test accuracy is ±0.2~0.3% FS and ±1 rpm |
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Ma, F.; Yang, W.; Xu, J.; Li, Y.; Zhao, Z.; Zhang, Z.; Wang, Y. Experimental Investigation of Combustion Characteristics on Opposed Piston Two-Stroke Gasoline Direct Injection Engine. Energies 2021, 14, 2105. https://doi.org/10.3390/en14082105
Ma F, Yang W, Xu J, Li Y, Zhao Z, Zhang Z, Wang Y. Experimental Investigation of Combustion Characteristics on Opposed Piston Two-Stroke Gasoline Direct Injection Engine. Energies. 2021; 14(8):2105. https://doi.org/10.3390/en14082105
Chicago/Turabian StyleMa, Fukang, Wei Yang, Junfeng Xu, Yufeng Li, Zhenfeng Zhao, Zhenyu Zhang, and Yifang Wang. 2021. "Experimental Investigation of Combustion Characteristics on Opposed Piston Two-Stroke Gasoline Direct Injection Engine" Energies 14, no. 8: 2105. https://doi.org/10.3390/en14082105
APA StyleMa, F., Yang, W., Xu, J., Li, Y., Zhao, Z., Zhang, Z., & Wang, Y. (2021). Experimental Investigation of Combustion Characteristics on Opposed Piston Two-Stroke Gasoline Direct Injection Engine. Energies, 14(8), 2105. https://doi.org/10.3390/en14082105