Research on Combustion and Emission Characteristics of a N-Butanol Combined Injection SI Engine
Abstract
:1. Introduction
2. Experimental Setup and Procedure
2.1. Engine and Instrument
2.2. Injection Modes and Definitions
2.3. Experimental Method
3. Results and Discussion
3.1. Combustion Characteristics
3.2. Gaseous Emissions Characteristics
3.3. Particle Emissions Number
4. Conclusions
- Compared with the single injection mode, The dual injection of butanol engines with a smaller NDIr can form a local fuel-rich region near the spark, which is conducive to ignition and creates a more stable flame core, thus improving the comprehensive performance of butanol engines.
- From the combustion performance index, Ttq, Pmax, Tmax, and dQmax all rise first and then drop, reaching the maximum value at NDIr = 20% and minimum value at NDIr = 100%. The AdQmax, θ0-90, and COV decrease first and then increase as NDIr increases. Thus, N20DI is considered to have an optimal combustion performance, followed by N40DI.
- The dual injection mode has little affected on CO emission except for λ = 0.9, but can significantly reduce HC emissions than those relative to NPI and NDI. When λ is more than 0.9, the NDIr of 40–60% reduces HC emission most significantly, while the NDIr of 20% at λ = 0.9. NOx emissions increase in the dual injection mode, especially at N20DI, but not by much at NDIr of 40–80%.
- NPN, APN, and TPN increase continuously as NDIr increases, the dual injection mode. The dual injection mode can effectively reduce particulate emissions relative to the in-cylinder direct injection mode, especially when λ = 0.9.
- To summarize, the dual injection mode with NDIr of 20% to 40% significantly reduces HC and particulate emissions and maintains good combustion characteristics. In addition, the dual injection mode with a proper excess air ratio can effectively inhibit the increase in NOx emission caused by dual injection. Therefore, the dual injection mode with the proper NDIr can effectively optimize butanol engines’ combustion and emission performance.
- The combination of combined injection technology and butanol can reflect the excellent characteristics of butanol fuel to a greater extent, but the change of combustion state under different working conditions needs the real-time adjustment of combined injection strategy to meet the effect of dynamic optimization under full operating conditions. Therefore, it is necessary to explore the combustion and emission characteristics of the combined injection butanol engine under more engine speed and load conditions and establish the global optimization control strategy in the next research stage.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Nomenclature
SI | spark ignition | Pmax | peak in-cylinder pressure |
NDIr | n-butanol direct injection ratio | Ttq | the engine torque |
PFI | the port fuel injection | dQmax | the maximum rate of heat release |
NDI | n-butanol direct injection | AdQmax | position of dQmax |
NPI | port n-butanol injection | Tmax | peak in-cylinder temperature |
MBT | maximum brake torque | θ0-90 | total combustion duration |
TDC | top dead center | COV | coefficient of variance |
BTDC | before top dead center | TPN | total particle number |
λ | excess air ratio | APN | accumulation mode particle number |
IMEP | indicated mean effective pressure | TPN | nucleation mode particle number |
HC | Hydrocarbon | CO | carbon monoxide |
NOx | nitrogen monoxide or nitric oxide |
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Fuel Properties | Methanol | Ethanol | N-butanol |
---|---|---|---|
Molecular formula | CH3OH | C2H5OH | C4H9OH |
Viscosity (Pa·s) at 20 °C | 0.61 | 0.789 | 0.808 |
Research octane number | 109–136 | 108–129 | 96–98 |
Laminar flame speed (cm/s) | 52 | 48 | 48 |
Latent heat of evaporation (kJ/kg) | 1103 | 840 | 582 |
Lower caloric value (MJ/kg) | 19.7 | 26.8 | 33.1 |
Flammability limits (% vol.) | 6.0–36.5 | 4.3–19 | 1.4–11.2 |
Stoichiometric air–fuel ratio | 6.49 | 9.02 | 11.21 |
Engine Parameter | Parameter Values |
---|---|
Engine Type | four cylinders; combined injection; naturally aspirated; water cooled; spark-ignition |
Compression ratio | 9.6 |
Bore/mm | 82.5 |
Stroke/mm | 92.8 |
Displaced volume/mL | 1984 |
Maximum power/kW | 132 (5000–6000 rpm) |
Maximum torque/N·m | 320 (1800–5000 rpm) |
Parameter | Manufacturer | Range | Precision | Production Type |
---|---|---|---|---|
Speed | Luoyang Nanfeng Electromechanic Equipment Manufacturing Co., Ltd. (Luoyang, China) | 0–6000 rpm | ≤±1 rpm | CW160 |
Crank angle | Kistler Instrument China Ltd. (China) | 0–720° | ≤±0.5° | Kistler-2614B4 |
Excess air ratio | ETAS Engineering TOOLS (Germany) | 0.700–32.767 | ≤±1.5% | LAMBDA LA4 |
Torque | Luoyang Nanfeng Electromechanic Equipment Manufacturing Co., Ltd. (Luoyang, China) | 0–600 N m | ≤±0.28 N·m | CW160 |
Cylinder pressure | DEWETRON GmbH. (Austria) | 0–20 MPa | ≤± 0.3% | AVL-GU13Z-24 |
n-butanol mass flow rate | Ono Sokki DF-2420 (Japan) | 0.2~82 kg/h | ≤± g/s | DF-2420 |
Carbon monoxide (CO) | AVL List GmbH (Austria) | 0–10% vol | ≤±0.01% vol | AVL DICOM 4000 |
Hydrocarbon (HC) | AVL List GmbH (Austria) | 0–20,000 ppm vol | ≤±1 ppm | AVL DICOM 4000 |
Nitrogen oxides (NOx) | AVL List GmbH (Austria) | 0–5000 ppm vol | ≤±1 ppm | AVL DICOM 4000 |
Particle number concentration | British combustion (England) | 0–1011 dN/dlogDp/cm3 | ≤±1.4 × 104 dN/dlogDp/cm3 | DMS500 |
The Naming of Different Injection Modes | NPI | N20DI | N40DI | N60DI | N80DI | NDI |
---|---|---|---|---|---|---|
N-butanol direct injection ratio (NDIr) | 0% | 20% | 40% | 60% | 80% | 100% |
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Shang, W.; Yu, X.; Miao, K.; Guo, Z.; Liu, H.; Xing, X. Research on Combustion and Emission Characteristics of a N-Butanol Combined Injection SI Engine. Sustainability 2023, 15, 9696. https://doi.org/10.3390/su15129696
Shang W, Yu X, Miao K, Guo Z, Liu H, Xing X. Research on Combustion and Emission Characteristics of a N-Butanol Combined Injection SI Engine. Sustainability. 2023; 15(12):9696. https://doi.org/10.3390/su15129696
Chicago/Turabian StyleShang, Weiwei, Xiumin Yu, Kehao Miao, Zezhou Guo, Huiying Liu, and Xiaoxue Xing. 2023. "Research on Combustion and Emission Characteristics of a N-Butanol Combined Injection SI Engine" Sustainability 15, no. 12: 9696. https://doi.org/10.3390/su15129696
APA StyleShang, W., Yu, X., Miao, K., Guo, Z., Liu, H., & Xing, X. (2023). Research on Combustion and Emission Characteristics of a N-Butanol Combined Injection SI Engine. Sustainability, 15(12), 9696. https://doi.org/10.3390/su15129696