Analysis of the Scavenging Process of a Two-Stroke Free-Piston Engine Based on the Selection of Scavenging Ports or Valves
Abstract
:1. Introduction
2. Fundamental Analysis
2.1. FPEG Configuration
2.2. Comparison of FPEG with a Conventional Engine (CE)
2.3. Valve Opening Timing
2.4. Simulation Methodology
- (a)
- If an engine with scavenging ports is adopted for the FPEG prototype, information on the performance of the scavenging process, the difference compared to that of the CE with the same cylinder, and the methods to improve the system scavenging process are collected.
- (b)
- If an engine with valves is adopted for the FPEG prototype, information on how the valve timing will affect its scavenging process, the difference compared to that of the CE with the same cylinder, and the optimised valve timing are collected.
3. Results and Discussion
3.1. FPEG with Scavenging Ports
3.2. FPEG with Valves
4. Conclusions
- (1)
- Compared with a CE, the piston of the FPEG moves faster after combustion takes place, as it is not restricted by the crankshaft system, while becomes slower soon after this. The piston velocity of an FPEG will be lower when the piston is approaching its TDC during the compression process, and the peak velocity achieved is also lower than that of a CE.
- (2)
- For the CE and FEPG using scavenging ports with the EVC timing set to be 32 mm from the cylinder head, the peak cylinder pressure, engine power output, and scavenging efficiency of the FEPG are found to be lower than that of a CE with the same size and operation conditions. For an FPEG prototype of this kind, in order to improve its power output to the same level as that of a CE with the same size, the inlet gas pressure is suggested to be improved to above 1.4 bar for a better power output, which is approximately 0.2 bar higher than that used for a CE.
- (3)
- If a CE cylinder with exhaust valves is adopted or referred to during the development of an FPEG prototype, and the exhaust valve is set to close at 50° after BDC, the engine-indicated work of the FPEG are found to be lower than that of the CE as the compression stroke of the FPEG is reduced. For an FPEG prototype with valves, the exhaust valve is suggested to be closed earlier to improve its power output (but no earlier than 225°), and a higher intake pressure is also suggested if its output power is expected to be the same or higher than that of a CE. Meanwhile, the EVC timing is not considered useful to control power output for the FPEG as the improvement is very low, while boosting the intake pressure is overwhelmingly better than changing the EVC timing.
Acknowledgments
Author Contributions
Conflicts of Interest
References
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Parameters (Unit) | FPEG | CE |
---|---|---|
Piston diameter (mm) | 50.0 | 50.0 |
Stroke (mm) | 33.0 | 33.0 |
Compression ratio (-) | 10.5 | 10.5 |
Connecting rod length (mm) | - | 49.5 |
Crank radius (mm) | - | 16.5 |
Parameters (Unit) | Value |
---|---|
Engine speed (rpm) | 2143 |
Number of valves (-) | 2 |
Intake valve diameter (mm) | 18.0 |
Exhaust valve diameter (mm) | 18.0 |
Valve lift (mm) | 4.2 |
Fuel type (-) | Octane |
Fuel lower heating valve (J/kg) | 4.4 × 107 |
Air fuel ratio (-) | 14.7 |
Intake air pressure (bar) | 1.0–2.0 |
Intake air temperature (K) | 300.0 |
Ignition timing (°) | 15 bTDC |
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Jia, B.; Wang, Y.; Smallbone, A.; Roskilly, A.P. Analysis of the Scavenging Process of a Two-Stroke Free-Piston Engine Based on the Selection of Scavenging Ports or Valves. Energies 2018, 11, 324. https://doi.org/10.3390/en11020324
Jia B, Wang Y, Smallbone A, Roskilly AP. Analysis of the Scavenging Process of a Two-Stroke Free-Piston Engine Based on the Selection of Scavenging Ports or Valves. Energies. 2018; 11(2):324. https://doi.org/10.3390/en11020324
Chicago/Turabian StyleJia, Boru, Yaodong Wang, Andrew Smallbone, and Anthony Paul Roskilly. 2018. "Analysis of the Scavenging Process of a Two-Stroke Free-Piston Engine Based on the Selection of Scavenging Ports or Valves" Energies 11, no. 2: 324. https://doi.org/10.3390/en11020324
APA StyleJia, B., Wang, Y., Smallbone, A., & Roskilly, A. P. (2018). Analysis of the Scavenging Process of a Two-Stroke Free-Piston Engine Based on the Selection of Scavenging Ports or Valves. Energies, 11(2), 324. https://doi.org/10.3390/en11020324