Effects of Methanol Addition on the Combustion Process of the Methanol/Diesel Dual-Fuel Based on an Optical Engine
Abstract
:1. Introduction
2. Experiment Setup
2.1. Engine
2.2. Fuel Properties and Hardware
2.3. Injection Setup
2.4. Method
3. Results and Discussions
3.1. Methanol Ratio
3.2. Pre-Injection Mass of Diesel
3.3. Total Mass of Diesel
4. Conclusions
- (1)
- The peak pressure and HRR decrease with the methanol ratio increase. CA10, CA50, and CA90 are correspondingly delayed as the methanol ratio increases because of the increased heat absorption by methanol vaporization. The number of pixels representing the KL factor of soot significantly decreases.
- (2)
- The diesel injected in the early stage increases, which indicates that the activity of the fuel in the early stage increases. The higher activity of the fuel has a positive effect on the main injection fuel, leading to a shortened ignition delay. The CA10 and CA50 advance, respectively. The KL increases slightly as the mass of pre-injected diesel increases.
- (3)
- The concentration of the mixture increases when the total mass of diesel increases, resulting in an increase in heat generation and an increase in cylinder pressure. CA10 and CA50 are advanced, respectively, and CA90 is postponed. The KL increases when the total mass of diesel increases.
- (4)
- The peak cylinder pressure for 50%MER, 60%MER, and 70%MER decreased by 2.53%, 6.04%, and 9.76%, respectively, compared with 40%MER. The peak cylinder pressure for PRE-30, PRE-40, and PRE-50 decreased by 2.54%, 2.37%, and 5.29%, respectively, compared with PRE-10. The peak cylinder pressure for M4.0, M7.7, and M8.8 decreased by 11.89%, 23.88%, and 31.43%, respectively, compared with M2.4.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Items | Specifications |
---|---|
Engine type | 1-cylinder |
Engine speed/rpm | 1000 |
Bore/mm | 95 |
Stroke/mm | 115 |
Connecting rod length/mm | 210 |
Compression ratio | 15 |
Nozzle diameter/mm | 0.15 |
Spray angle/(°) | 150 |
Swirl rate | 1.2 |
IVC | −133 |
EVO | 125 |
Intake temperature/(K) | 333 |
Fuel injection pressure/(MPa) | 60 |
Ambient temperature/(K) | 300 |
Ambient pressure/(MPa) | 0.101 |
Fuel temperature/(K) | 305 |
Instruments | Accuracy | Uncertainty (%) |
---|---|---|
Engine speed | ±10 rpm | ±0.1 |
Intake gas temperature | ±1 °C | ±0.1 |
Pressure pick up | ±0.1 bar | ±0.05 |
Crank angle encoder | ±10 | ±0.05 |
Property | Diesel | Methanol |
---|---|---|
Molecular formula | - | CH3OH |
Density at 20 °C (kg/m3) | 840 | 790 |
Low heating value (MJ/kg) | 42.5 | 19.7 |
Auto-ignition temperature (°C) | 250 | 450 |
Content of C (%) | 86 | 38 |
Content of H (%) | 13 | 12 |
Content of O (%) | - | 50 |
Cetane number | 51 | 3–5 |
Latent heat of evaporation (kJ/kg) | 250 | 1110 |
Parameters | Test 1 | Test 2 | Test 3 | |
---|---|---|---|---|
Engine speed (rpm) | 1000 | 1000 | 1000 | |
Diesel total mass (mg) | 5.6 | 5.6 | 2.4, 4, 7.2, 8.8 | |
MSR% | 40%, 50%, 60%, 70% | 30% | ||
Diesel pre-injection ratio % | 30% | 10%, 30%, 40%, 50% | 30% | |
Diesel injection time °CA | −30 | −30 | −30 | −30 |
−6 | −6 | −6 | −6 | |
Methanol injection time °CA | −300 | −300 | −300 | −300 |
PI fuel | Methanol | Methanol | Methanol | Methanol |
DI fuel | Diesel | Diesel | Diesel | Diesel |
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Liu, J.; Guo, G.; Wei, M. Effects of Methanol Addition on the Combustion Process of the Methanol/Diesel Dual-Fuel Based on an Optical Engine. Energies 2023, 16, 7946. https://doi.org/10.3390/en16247946
Liu J, Guo G, Wei M. Effects of Methanol Addition on the Combustion Process of the Methanol/Diesel Dual-Fuel Based on an Optical Engine. Energies. 2023; 16(24):7946. https://doi.org/10.3390/en16247946
Chicago/Turabian StyleLiu, Jinping, Guangzhao Guo, and Mingrui Wei. 2023. "Effects of Methanol Addition on the Combustion Process of the Methanol/Diesel Dual-Fuel Based on an Optical Engine" Energies 16, no. 24: 7946. https://doi.org/10.3390/en16247946
APA StyleLiu, J., Guo, G., & Wei, M. (2023). Effects of Methanol Addition on the Combustion Process of the Methanol/Diesel Dual-Fuel Based on an Optical Engine. Energies, 16(24), 7946. https://doi.org/10.3390/en16247946