Experimental Investigation of Single-Cylinder Engine Performance Using Biodiesel Made from Waste Swine Oil
Abstract
:1. Introduction
1.1. Background: Importance of Alternative Fuels
1.2. Objectives of the Current Study
- Investigate the properties of biodiesel derived from waste swine oil.
- Assess the performance characteristics of a single-cylinder engine when fueled with this biodiesel at a 75% load condition.
- Analyze the emissions profile and compare it to traditional biodiesel and diesel fuels under similar conditions.
- Provide insight and recommendations for the wider adoption of waste swine oil as a biodiesel feedstock.
2. Literature Review
2.1. Previous Studies on Biodiesel and Its Feedstocks
2.2. Impact of Engine Load on Performance and Emissions
3. Materials and Methods
3.1. Production of Biofuel and Its Blends
3.2. Engine Specifications and Setup
3.3. Test Procedures
3.4. Error Analysis and Uncertainty
4. Results and Discussion
4.1. Biodiesel Characterization
4.1.1. Fuel Properties
- B20: This blend contained 20% biofuel and 80% conventional diesel.
- B40: This blend consisted of 40% biofuel and 60% conventional diesel.
- B60: This blend included 60% biofuel and 40% conventional diesel.
- B80: This blend comprised 80% biofuel and 20% conventional diesel.
4.1.2. Comparison with Standard Diesel
4.2. Engine Performance at 75% Load
4.2.1. Brake-Specific Fuel Consumption (BSFC)
4.2.2. Brake Thermal Efficiency (BTE)
4.3. Emission Characteristics
4.3.1. Variation in Carbon Monoxide (CO) with Engine Speed
4.3.2. Variation in HC with Engine Speed
4.3.3. Variation of CO2 with Engine Speed
4.3.4. Variation in NOX with Engine Speed
4.3.5. Variation in Smoke Opacity with Engine Speed
4.4. Implications for Real-World Applications
4.5. Advantages and Challenges of Using Biodiesel from Waste Swine Oil
- Waste Utilization: Using waste swine oil for biodiesel production offers an excellent waste management solution [39].
- Reduced CO and HC Emissions: Lower carbon monoxide and hydrocarbon emissions make it environmentally advantageous in some aspects [40].
- Lower Smoke Emissions: The significant reduction in smoke opacity is both an environmental and public health benefit [41].
- Elevated NOx Emissions: The rise in NOx emissions is a critical drawback that could limit the use of biodiesel in certain applications [42].
- Increased BSFC: Higher fuel consumption for the same energy output makes it less efficient.
- CO2 Emissions: Contrary to the trends in other emissions, biodiesel produces higher CO2 levels, posing challenges for its overall environmental footprint [33].
5. Conclusions
- CO Emissions: Biodiesel blends showed reduced carbon monoxide emissions, which is an environmental benefit.
- HC Emissions: Hydrocarbon emissions were also generally lower for biodiesel blends at higher engine speeds.
- CO2 Emissions: An increase in CO2 emissions due to complete combustion of biodiesel in the engine was observed for biodiesel blends, calling attention to its environmental drawbacks.
- NOx Emissions: An increase in nitrogen oxides was noted for biodiesel, which aligns with the literature and is attributed to biodiesel’s higher combustion temperature.
- Smoke Opacity: Biodiesel blends resulted in significantly lower smoke emissions, offering both environmental and public health advantages.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
Nomenclature
PPM | Parts Per Million |
RPM | Revolutions Per Minute |
BP | Brake Power |
KOH | Potassium Hydroxide |
BSFC | Brake-Specific Fuel Consumption |
BTE | Brake Thermal Efficiency |
EGR | Exhaust Gas Recirculation |
CO | Carbon Monoxide |
CO2 | Carbon Dioxide |
HC | Hydrocarbon |
NOX | Nitrogen Oxide |
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Manufacturer | Daedong |
---|---|
Engine Type | Horizontal, 4-stroke |
Rated Power Output (kW) | 7.4 |
Engine Cooling | Water-cooled |
Number of Cylinders | 1 |
Stroke Length (mm) | 95 |
Bore (mm) | 95 |
Compression Ratio | 21 |
Displacement (cc) | 673 |
Injection Pressure (kg/cm−2) | 200 |
Exhaust Emission | Range | Resolution | Accuracy and Uncertainty |
---|---|---|---|
CO | 0.00–10.00 | % | ±0.01% |
HC | 0–10,000 | ppm | ±1 ppm |
CO2 | 0.0–20.0 | % | ±0.1% |
O2 | 0.00–25.00 | % | ±0.1% |
NOx | 0–5000 | ppm | ±1 ppm |
Smoke | 0–100 | % | ±0.05% |
Thermocouple (K-Type) | 0–1200 | ℃ | ±0.1 °C |
Property | ASTM Standard | Diesel | Lard Biofuel | B20 | B40 | B60 | B80 |
---|---|---|---|---|---|---|---|
Density (kg/m3) | 800–880 | 820 | 893 | 827 | 835 | 843 | 864 |
Viscosity at 40 °C (cSt) | 1.9–6 | 2.87 | 5.91 | 3.31 | 3.82 | 4.55 | 5.26 |
Flash Point (°C) | >130 | 58 | 114 | 85 | 89 | 95 | 103 |
Cetane Number | 48–65 | 48.7 | 65 | 52 | 56 | 59 | 63 |
Calorific Value (Mj/kg) | >35 | 45.51 | 40.21 | 44.18 | 43.95 | 41.76 | 40.35 |
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Khujamberdiev, R.; Cho, H.M.; Mahmud, M.I. Experimental Investigation of Single-Cylinder Engine Performance Using Biodiesel Made from Waste Swine Oil. Energies 2023, 16, 7891. https://doi.org/10.3390/en16237891
Khujamberdiev R, Cho HM, Mahmud MI. Experimental Investigation of Single-Cylinder Engine Performance Using Biodiesel Made from Waste Swine Oil. Energies. 2023; 16(23):7891. https://doi.org/10.3390/en16237891
Chicago/Turabian StyleKhujamberdiev, Ramozon, Haeng Muk Cho, and Md. Iqbal Mahmud. 2023. "Experimental Investigation of Single-Cylinder Engine Performance Using Biodiesel Made from Waste Swine Oil" Energies 16, no. 23: 7891. https://doi.org/10.3390/en16237891
APA StyleKhujamberdiev, R., Cho, H. M., & Mahmud, M. I. (2023). Experimental Investigation of Single-Cylinder Engine Performance Using Biodiesel Made from Waste Swine Oil. Energies, 16(23), 7891. https://doi.org/10.3390/en16237891