Performance, Emissions and Durability Studies on Diesel Engine Fuelled with a Preheated Raw Microalgal Oil †
Abstract
:1. Introduction
2. Materials and Methods
2.1. Microalgae Oil
2.2. Engine Setup and Test Procedure
2.3. Error Analysis
3. Results and Discussion
3.1. Brake Power (BP)
3.2. Brake-Specific Fuel Consumption (BSFC)
3.3. Brake Thermal Efficiency (BTE)
3.4. Exhaust Gas Temperature (EGT)
3.5. Nitrogen Oxides (NOx)
3.6. Carbon Monoxide (CO)
3.7. In-Cylinder Pressure (ICP)
3.8. Durability Test
4. Conclusions
- A reduction in brake power of up to 25% was observed, which is caused by the lower heating value, higher density and viscosity of the MAO.
- The lower heating value increased fuel consumption to produce constant output power, which led to an increase in the BSFC of 20%.
- No significant difference was found in BTE and in-cylinder pressure.
- The difference in combustion profile and heat loss from the engine when using MAO could account for the reduction in EGT.
- MAO NOx emissions were 42% lower than DO, primarily due to the shorter duration of premixed combustion.
- The MAO’s longer ignition delay at full load results in improved fuel oxidation and therefore reduced CO emission.
Funding
Acknowledgments
Conflicts of Interest
References
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Properties | Units | DO | MAO |
---|---|---|---|
Kinematic viscosity at 50 °C | cSt | 1.811 | 19.67 |
Density | kg/m3 | 762.5 | 930 |
Calorific value | MJ/kg | 42.8 | 36.84 |
Carbon | % | 86 | 75.9 |
Hydrogen | % | 14 | 10 |
Oxygen | % | 0 | 14 |
Flashpoint | °C | 52 | 180 |
Lombardini 15 LD 225 Marine Diesel Engine | |
---|---|
Number of cylinders | 1 |
Cycle | 4-stroke |
Power (kW) | 3.5 |
Bore (mm) | 69 |
Stroke (mm) | 60 |
Fuel consumption (gr/kWh) | 267 |
Compression ratio | 21:1 |
Injection system | Direct |
Parameter | Accuracy |
---|---|
Engine speed | 10 ± rpm |
Brake power | ±2.5% |
BSFC | ±3% |
BTE | ±3% |
EGT | ±1% |
ICP | ±2% |
CO | ±5% |
NOx | ±5% |
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Attar, H.M.; Wu, D.; Harvey, A.P. Performance, Emissions and Durability Studies on Diesel Engine Fuelled with a Preheated Raw Microalgal Oil. Proceedings 2020, 58, 4. https://doi.org/10.3390/WEF-06906
Attar HM, Wu D, Harvey AP. Performance, Emissions and Durability Studies on Diesel Engine Fuelled with a Preheated Raw Microalgal Oil. Proceedings. 2020; 58(1):4. https://doi.org/10.3390/WEF-06906
Chicago/Turabian StyleAttar, Hassan M, Dawei Wu, and Adam P Harvey. 2020. "Performance, Emissions and Durability Studies on Diesel Engine Fuelled with a Preheated Raw Microalgal Oil" Proceedings 58, no. 1: 4. https://doi.org/10.3390/WEF-06906
APA StyleAttar, H. M., Wu, D., & Harvey, A. P. (2020). Performance, Emissions and Durability Studies on Diesel Engine Fuelled with a Preheated Raw Microalgal Oil. Proceedings, 58(1), 4. https://doi.org/10.3390/WEF-06906