1D Simulation and Experimental Analysis on the Effects of the Injection Parameters in Methane–Diesel Dual-Fuel Combustion
Abstract
:1. Introduction
2. Materials and Methods
2.1. Engine, Test Cell and Fuels Characteristics
2.2. 1-D Computational Modelling
2.3. Test Methodology
3. Results and Discussion
3.1. Pilot Injection Quantity
3.2. Premixed Ratio
3.3. Injection Pressure
3.4. Combustion Phasing
4. Conclusions
- At constant engine load, the first HR peak increases as the diesel pilot quantity increases, lowering the available energy for the subsequent HTHR stage. The conventional double pulse injection strategies produce richer equivalence ratio distributions. The gross indicated efficiency slightly increases passing from the no pilot to the double injection.
- The dual-fuel combustion mode shows higher first HR peak and lower second HR peak than the CDC mode, which results in a smoother combustion process. Regarding the Φ distributions, CDC produces richer Φ distribution compared to the dual-fuel combustion mode. For the points tested, the dual-fuel combustion has a higher heat release before the TDC, penalizing the thermodynamic efficiency. To solve this issue, a recalibration of the injection strategy is recommended.
- The rail pressure reduction improves the gross indicated efficiency as a consequence of the lower heat release before the TDC, which in turns reduces the heat transfer losses and improves the fuel conversion efficiency. The increase of the rail pressure promotes a richer Φ distribution and a more prominent premixed combustion phase, detectable by the RoHR traces.
- Delaying the combustion phasing towards the exhaust phase increases the exhaust temperatures at the expense of the cycle conversion efficiency. Then, advancing the combustion phasing promotes richer equivalence ratio distributions at SoC.
Author Contributions
Funding
Conflicts of Interest
References
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Parameter | Value |
---|---|
Displaced volume | 477.5 cm3 |
Stroke | 90 mm |
Bore | 82 mm |
Compression ratio | 16.5 |
Number of Valves | 4 |
Diesel Injection System | Common rail |
Diesel Injector | Solenoid 7 holes |
PFI Injector | Multihole |
Feature | EN590 Diesel | Methane |
---|---|---|
Density [kg/m3] STP | 840 | 0.788 |
Autoignition temperature [°C] | 300 | 595 |
Cetane Number | 53 | - |
Octane Number | - | >120 |
LHV [MJ/kg] | 42.95 | 49.5 |
AFRstoich [-] | 14.7 | 17.2 |
H/C [-] | ~1.86 | 4 |
Parameters | Engine Speed × IMEP [rpm] × [bar] | ||
---|---|---|---|
2000 × 4 | 1500 × 7 | 2000 × 7 | |
Qpil [mm3/stroke] | 0 - 1.0 - 1.5 | 1.5 | 1.5 |
rp [%] | 50 | 30 | 0 - 30 - 50 - 70 |
p-rail [bar] | 630 | 550 - 750 - 950 | 910 |
SoI [deg bTDC] | 5.0 - 7.5 – 10.0 | 7.3 - 5.3 - 4.3 | 4.0 – 4.0 – 3.0 – 0.0 |
SoC [deg aTDC] | 6.3 - 3.2 - 3.3 | 1.6 - 2.4 - 2.5 | 1-8 - 1.9 - 0.3 - -2.2 |
CA50 [deg aTDC] | 9.5 | 9.3 | 9.1 |
Global equivalence ratio [-] | 0.50 | 0.67 | 0.44 - 0.65 - 0.69 - 0.73 |
Methane equivalence ratio [-] | 0.15 | 0.23 | 0 - 0.25 - 0.38 - 0.55 |
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Monsalve-Serrano, J.; Belgiorno, G.; Di Blasio, G.; Guzmán-Mendoza, M. 1D Simulation and Experimental Analysis on the Effects of the Injection Parameters in Methane–Diesel Dual-Fuel Combustion. Energies 2020, 13, 3734. https://doi.org/10.3390/en13143734
Monsalve-Serrano J, Belgiorno G, Di Blasio G, Guzmán-Mendoza M. 1D Simulation and Experimental Analysis on the Effects of the Injection Parameters in Methane–Diesel Dual-Fuel Combustion. Energies. 2020; 13(14):3734. https://doi.org/10.3390/en13143734
Chicago/Turabian StyleMonsalve-Serrano, Javier, Giacomo Belgiorno, Gabriele Di Blasio, and María Guzmán-Mendoza. 2020. "1D Simulation and Experimental Analysis on the Effects of the Injection Parameters in Methane–Diesel Dual-Fuel Combustion" Energies 13, no. 14: 3734. https://doi.org/10.3390/en13143734
APA StyleMonsalve-Serrano, J., Belgiorno, G., Di Blasio, G., & Guzmán-Mendoza, M. (2020). 1D Simulation and Experimental Analysis on the Effects of the Injection Parameters in Methane–Diesel Dual-Fuel Combustion. Energies, 13(14), 3734. https://doi.org/10.3390/en13143734