The Influence of Emulsified Water Fuel Containing Fresh Water Microalgae on Diesel Engine Performance, Combustion, Vibration and Emission
Abstract
:1. Introduction
2. Materials and Methods
2.1. Fuel Preparation
2.2. Engine Test
2.3. Engine Test Procedure
3. Results
3.1. In-Cylinder Pressure, Vibration and Heat Release Analysis
3.2. Engine Performance
3.2.1. Brake Power
3.2.2. Engine Brake Specific Fuel Consumption
3.2.3. Exhaust Gas Temperature
3.3. Exhaust Gas Emissions
3.3.1. Carbone Monoxide
3.3.2. Carbone Dioxide
3.3.3. Oxygen (O2) and Lambda
3.3.4. Nitrogen Oxides
4. Conclusions
- The in-cylinder pressure and the heat release for the emulsion fuels showed no ignition delay. The emulsion fuels indicated lower in-cylinder pressure than the 100% biodiesel, and this led to a lesser vibration maximum value.
- In general, CSB-E20 resulted in lower values than CSB-ME20, and both were lower than CS-B100 in brake power, CO2 and NOx. In contrast, CSB-E20 resulted in higher values than CSB-ME20, and both were higher than CS-B100 in BSFC and O2. The emulsion fuels gave higher and lower values than the base fuel in CO and the thermal efficiency depending on the engine load and speed.
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
Abbreviations
ATDC | After top dead centre |
BTDC | Before top dead centre |
BP | Brake power |
BSFC | Brake specific fuel consumption |
°C | degrees Celsius |
CO | Carbone monoxide |
CO2 | Carbone dioxide |
CS-B100 | Pure cottonseed biodiesel 100% |
CSB-E20 | Cottonseed biodiesel with emulsified water 20% |
CSB-ME20 | Cottonseed biodiesel with emulsified water 20% containing FWM-CV |
CV | Chlorella vulgaris |
FAME | Fatty acid methyl ester |
FWM-CV | Fresh water microalgae Chlorella vulgaris |
HC | Hydrocarbons |
LHV | Lower heating value |
MJ | Mega joule |
NOx | Nitrogen oxides |
O2 | Oxygen |
PD | Petroleum diesel |
rpm | Revolutions per minute |
T | Temperature (also torque) |
TDC | Top dead centre |
µm | Micrometre, micron |
θ | Crankshaft angular displacement from TDC |
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Fuel Type | Density (kg·L−1) (@20 °C) | Dynamic Viscosity (cP)(@25 °C) | Surface Tension (mN·m−1) | Heat of Combustion (MJ·kg−1) |
---|---|---|---|---|
CS-B100 | 0.898 ± 0.015 | 8.2 | 28.54 @28.8 °C | 39.3 |
CSB-E20 | 0.908 ± 0.015 | 205.1 | 32.11 @26.8 °C | 30.18 |
CSB-ME20 | 0.912 ± 0.015 | 210.3 | 31.68 @26.8 °C | 31.07 |
Engine Type | 4-Stroke, Vertical Cylinder Diesel Engine |
---|---|
Displacement | 0.219 (litres) |
Continuous Rating Output | 3.09 (kW) @ 3600 (rpm) |
Crankshaft offset | 28.5 (mm) |
Dry Engine Weight | 27 (kg) |
Length | 332 (mm) |
Width | 384 (mm) |
Height | 417 (mm) |
Injection Timing | 16.5 before TDC |
Measurement | Range | Accuracy | Accuracy | |
---|---|---|---|---|
n-Hexane | 0.00–2000 ppm | ±4 ppm abs. | ±3% | |
2001–15000 ppm | ±5% | |||
±8% | ||||
15000–30000 ppm | ||||
CO | 0.00–10% | ±0.02% abs. | ±3% | |
10.001–15.00% | ±5% | |||
CO2 | 0.00–16% | ±0.3% abs. | ±3% | |
16.01–20% | ±5% | |||
O2 | 0.00–25% | ±0.1% abs. | ±5% | |
NO | 0.00–4 ppm | ±20 ppm abs. | ±4% | |
4.001–5000 ppm | ±5% |
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Al-lwayzy, S.H.; Yusaf, T.; Saleh, K.; Yousif, B. The Influence of Emulsified Water Fuel Containing Fresh Water Microalgae on Diesel Engine Performance, Combustion, Vibration and Emission. Energies 2019, 12, 2546. https://doi.org/10.3390/en12132546
Al-lwayzy SH, Yusaf T, Saleh K, Yousif B. The Influence of Emulsified Water Fuel Containing Fresh Water Microalgae on Diesel Engine Performance, Combustion, Vibration and Emission. Energies. 2019; 12(13):2546. https://doi.org/10.3390/en12132546
Chicago/Turabian StyleAl-lwayzy, Saddam H., Talal Yusaf, Khalid Saleh, and Belal Yousif. 2019. "The Influence of Emulsified Water Fuel Containing Fresh Water Microalgae on Diesel Engine Performance, Combustion, Vibration and Emission" Energies 12, no. 13: 2546. https://doi.org/10.3390/en12132546
APA StyleAl-lwayzy, S. H., Yusaf, T., Saleh, K., & Yousif, B. (2019). The Influence of Emulsified Water Fuel Containing Fresh Water Microalgae on Diesel Engine Performance, Combustion, Vibration and Emission. Energies, 12(13), 2546. https://doi.org/10.3390/en12132546