Effect of Premixed Ethanol Ratio Based on the Same Heating Value on the Atomization of Diesel Fuel Injected in the Cylinder
Abstract
:1. Introduction
2. Experimental and Numerical Descriptions
2.1. Experimental Descriptions
2.2. Numerical Descriptions
3. Results
3.1. Validation of Numerical Models
3.2. The Effect of Ethanol Ratio on the Characteristics of Spray Evolution
3.3. The Effect of Ethanol Ratio on the Fuel Behavior Characteristics
3.4. The Effect of Ethanol Ratio on the Equivalence Ratio Distribution Characteristics
4. Conclusions
- In the case of D60/E40, it was observed that the spray tip penetration value was slightly decreased at the time after the start of the 4 deg of diesel injection because the diesel injection was completed due to the shorter diesel injection duration compared to the other diesel injection amount.
- When the premixed ethanol ratio based on the same total heating value in-cylinder increased, the SMD value was also more enormous, up to 32.58%, because of the low kinetic energy of the injected fuel by the short injection duration and the slow evaporation of the injected fuel by the low cylinder temperature.
- At tASOI = 5 deg, when the premixed ethanol ratio based on the same total heating value in-cylinder was increased, the overall value of the equivalence ratio was increased because the amount of premixed ethanol was increased. However, at tASOI = 10 deg, the overall value of the equivalence ratio was decreased because many unevaporated diesel droplets remained in the cylinder due to the slowly evaporating injected diesel fuel.
- At tASOI = 10 deg, it was observed that when the premixed ethanol ratio based on the same total heating value in-cylinder was increased, the amount of injected diesel fuel was decreased, and the amount of diesel fuel introduced into the squish volume was also decreased.
- It is expected that the combustion performance will be promoted by increasing the ethanol ratio based on the same total heating value of the introduced fuels into the cylinder because the amount of diesel fuel with a high heating value introduced into the squish volume was small.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Item | Specification | |
---|---|---|
Engine | Engine type | Single cylinder |
Bore/Stroke | 83 mm/92 mm | |
Displacement | 498 cc | |
Compression ratio | 17.7 | |
Injector | Nozzle | 5 hole mini-sac type |
Hole diameter | 0.168 mm | |
Inclined spray angle | 154 deg |
Item | Diesel | Ethanol |
---|---|---|
LHV: lower heating value [MJ/kg] | 42.5 | 26.8 |
Latent heat of evaporation [kJ/kg] | 250 | 846 |
Density @ 20 °C [kg/m3] | 838.2 | 789.4 |
Carbon content [% mass] | 86.7 | 52.14 |
Hydrogen content [% mass] | 12.71 | 13.13 |
Sulfur content [% mass] | 0.041 | - |
Oxygen content [% mass] | - | 34.73 |
Flash point [°C] | 67 | 13 |
Kinematic viscosity @ 40 °C [mm2/s] | 2.8271 | 1.056 |
Typical formula | C14.09H24.78 | C2H6O |
Cetane number | 42.6 | 8.5 |
Lubricity, HFRR @60 °C [m] | Max. 520 | Max. 605 |
Fuel Injection Ratio [Main/Premixed] | Fuel Amount [mg] | Heating Value [J] | O2 Mass Fraction [-] | N2 Mass Fraction [-] | Ethanol Mass Fraction [-] |
---|---|---|---|---|---|
D100/E0 | 14/0 | 595/0 | 0.23200 | 0.76800 | 0.00000 |
D90/E10 | 12.6/2.2 | 535.5/59.5 | 0.23081 | 0.76407 | 0.00512 |
D80/E20 | 11.2/4.4 | 476/119 | 0.22984 | 0.76084 | 0.00932 |
D70/E30 | 9.8/6.7 | 416.5/178.5 | 0.22876 | 0.75273 | 0.01396 |
D60/E40 | 8.4/8.9 | 357/238 | 0.22781 | 0.75413 | 0.01806 |
Contents | Numerical Analysis |
---|---|
RPM | 1800 |
Injection pressure [MPa] | Diesel: 100, ethanol: 10 |
Total heating value [J] | 595 |
Start of energizing timing [ATDC deg] | −12 |
Fuel injection ratio [main fuel/premixed fuel] | D100/E0, D90/E10, D80/E20,D70/E30, D60/E40 |
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Min, S.-H.; Suh, H.-K. Effect of Premixed Ethanol Ratio Based on the Same Heating Value on the Atomization of Diesel Fuel Injected in the Cylinder. Fire 2023, 6, 249. https://doi.org/10.3390/fire6070249
Min S-H, Suh H-K. Effect of Premixed Ethanol Ratio Based on the Same Heating Value on the Atomization of Diesel Fuel Injected in the Cylinder. Fire. 2023; 6(7):249. https://doi.org/10.3390/fire6070249
Chicago/Turabian StyleMin, Se-Hun, and Hyun-Kyu Suh. 2023. "Effect of Premixed Ethanol Ratio Based on the Same Heating Value on the Atomization of Diesel Fuel Injected in the Cylinder" Fire 6, no. 7: 249. https://doi.org/10.3390/fire6070249
APA StyleMin, S. -H., & Suh, H. -K. (2023). Effect of Premixed Ethanol Ratio Based on the Same Heating Value on the Atomization of Diesel Fuel Injected in the Cylinder. Fire, 6(7), 249. https://doi.org/10.3390/fire6070249