Effect of Premixed n-Butanol Ratio on the Initial Stage of Combustion in a Light-Duty Butanol/Diesel Dual-Fuel Engine
Abstract
:1. Introduction
2. Description of Experiments
2.1. Tested Fuels
2.2. Experimental Methods
2.3. Parameters Definition
- (1)
- Crank angles at 10%, 30% and 50% cumulative heat release are defined as θCA10, θCA30 and θCA50, respectively.
- (2)
- In this study, the apparent heat release rate is calculated using Equation (1).
- (3)
- Based on the crank angle α (1.5 °CA, 2.4 °CA, 3.4 °CA) corresponding to the 10%, 30%, 50% of the total heat release in pure diesel combustion, the accumulated heat release rate starting from SOI to α is calculated by Equation (2). Furthermore, those three angles (1.5 °CA, 2.4 °CA, 3.4 °CA) divide the initial period of the heat release curve into three intervals, as shown in Figure 3.
3. Results and Discussion
3.1. Effect of Premixed n-Butanol on Heat Release Rate during the Three Time Intervals at the Combustion Initial Period
3.2. The Effect of the Premixed n-Butanol Mixture on the Heat Release Rate at the Initial Period of Dual-Fuel Combustion
3.3. The Pressure Rise Rate under Different Premixed n-Butanol Mixture Concentrations
4. Conclusions
- (1)
- The reactivity stratification caused by dual-fuel injection is formed in the combustion chamber, the suppression and stimulation effect of low reactivity zone on the heat releasing may exist simultaneously. During the period when θ∈ (0, 1.5) °CA, the suppression to the heat release plays a major role. During the period when θ∈ (1.5, 2.4) °CA, the suppression and stimulation effect of n-butanol premixed mixture on heat releasing are balanced. During the period when θ∈ (2.4, 3.4) °CA, the enhancement of premixed n-butanol on the heat release rate plays a major role.
- (2)
- When Mb ≤ 13 mg/cycle, the higher the premixed n-butanol concentration is, the more suppressed the heat release is. When Mb > 13 mg/cycle, the auto-ignition in the premixed n-butanol mixture is able to accelerate the heat release of the n-butanol/diesel dual-fuel combustion.
- (3)
- When the excess air coefficient of premixed n-butanol mixture reaches the flammability limit, auto-ignition phenomenon may happen in the premixed n-butanol mixture and spread faster, which results in a higher pressure rise rate.
- (4)
- There may be a balanced relationship between the amount of the fuel and the heat release rate. The more fuel is injected, the more time it will take for the n-butanol/diesel dual-fuel combustion to become faster.
Author Contributions
Funding
Conflicts of Interest
References
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Engine Type | 4 Valves, Water-Cooled |
---|---|
Bore × stroke | 93 × 102 mm |
Intake methods | Naturally aspirate |
Displacement | 2.77 L |
Compression ratio | 17.5:1 |
Direct-injection system | High pressure common-rail (120 MPa) |
Port-injection system | Low-pressure common rail (5 MPa) |
Injector Type | Bosch GDI |
---|---|
Fuel | High purity (99% +) n-butanol |
Numbers of holes | 6 |
Supply pressure | 5 MPa |
Nominal orifice diameter | 150µm |
Injector Type | DEFI1.4 |
---|---|
Fuel | 0#Diesel |
Numbers of holes | 6 |
Supply pressure | 120 MPa |
Nozzle flow | 600 mL/min |
Fuel | Diesel | n-Butanol |
---|---|---|
Formula | CH1.89 | C4H9OH |
Density ≅ 20 °C (kg/m3) | 846 | 810 |
Cetane number | 50~53 | ~25 |
Octane number | ~25 | ~87 |
Lower heating value (MJ/kg) | 42.5 | 36.1 |
Oxygen (% weight) | 0 | 21.6 |
Boiling temperature (°C) | 229~337 | 117.4 |
Flash point (°C) | 73.3 | 35 |
Auto-ignition temperature ≅ 1 bar abs (°C) | 254~285 | 355 |
Latent heat of evaporation (KJ/kg) | 250 | 585 |
Flammability limits (excess air coefficient) | 0.45~3.33 |
n-Butanol Injection Quantity (mg/cyc) | Combustion Efficiency (%) | IMEP (MPa) |
---|---|---|
0 | 97.2 | 0.36 |
6 | 89.8 | 0.46 |
8 | 96.7 | 0.54 |
13 | 96.9 | 0.65 |
17 | 91.2 | 0.70 |
Item | Parameters |
---|---|
Speed | 2000 rpm |
Intake pressure (Pintake) | 0.1 MPa |
Intake temperature (Tintake) | 30 ± 1 °C |
Diesel quantity per cycle (Md) mg/cycle | 13.2 |
Start of injection (SOI) | −8 °CA(crank angle) ATDC (after top dead center) |
n-butanol injection quantity per cycle (Mb) mg/cycle | 6, 8, 13, 17 |
Maximum pressure rise rate | <1.0 MPa/°CA |
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Tian, W.; Zhang, H.; Wang, L.; Han, Z.; Yu, W. Effect of Premixed n-Butanol Ratio on the Initial Stage of Combustion in a Light-Duty Butanol/Diesel Dual-Fuel Engine. Energies 2020, 13, 4295. https://doi.org/10.3390/en13174295
Tian W, Zhang H, Wang L, Han Z, Yu W. Effect of Premixed n-Butanol Ratio on the Initial Stage of Combustion in a Light-Duty Butanol/Diesel Dual-Fuel Engine. Energies. 2020; 13(17):4295. https://doi.org/10.3390/en13174295
Chicago/Turabian StyleTian, Wei, Hongchuan Zhang, Lenian Wang, Zhiqiang Han, and Wenbin Yu. 2020. "Effect of Premixed n-Butanol Ratio on the Initial Stage of Combustion in a Light-Duty Butanol/Diesel Dual-Fuel Engine" Energies 13, no. 17: 4295. https://doi.org/10.3390/en13174295
APA StyleTian, W., Zhang, H., Wang, L., Han, Z., & Yu, W. (2020). Effect of Premixed n-Butanol Ratio on the Initial Stage of Combustion in a Light-Duty Butanol/Diesel Dual-Fuel Engine. Energies, 13(17), 4295. https://doi.org/10.3390/en13174295