Influence of Ethanol Blended Diesel Enriched with Hydroxy Gas in Dual-Fuel Mode on Common Rail Direct Injection Engine
Abstract
:1. Introduction
2. Materials and Methods
3. Experimental Procedure
Uncertainty Interpretation
4. Result and Discussion
4.1. Brake Thermal Efficiency
4.2. Brake-Specific Energy Consumption
4.3. Oxides of Nitrogen Emission (NOx)
4.4. Carbon Monoxide Emission (CO)
4.5. Hydrocarbon Emission (HC)
4.6. Smoke Emission
4.7. Exhaust Gas Temperature
4.8. Cylinder Pressure
4.9. Heat Release Rate (HRR)
5. Conclusions
- The SS316L plate-type dry cell electrolyser has been demonstrated as an effective device for producing HHO gas by on-board technique from a 20 g/L NaOH electrolytic catalyst solution.
- The incorporation of HHO gas led to noteworthy increases in both cylinder pressure and HRR values when compared to their respective counterparts. Under maximum BMEP conditions, the thermal brake efficiency experienced a notable enhancement of 2.74%. This was achieved using a 20% ethanol blend in conjunction with a consistent flow rate of 2 LPM of HHO gas, as compared to using only the 20% ethanol blend. Furthermore, there was a simultaneous decrease of 5.89% in Brake Specific Energy Consumption (BSEC), reducing it from 9245 to 8900 kJ/kW-h.
- At the peak BMEP condition, substantial reductions of 4.61%, 5.19%, and 3.1% were achieved in engine exhaust emissions, namely HC, CO, and smoke, through the utilization of E20 + 2 LPM HHO.
- The NOx emissions and EGT increased by 3.22% and 3.06% for E20 + 2 LPM compared to E20 at maximum BMEP condition.
- HHO gas induction demonstrated a successful way of enhancing performance and lowering diesel engine emissions. When combined with lower ethanol blends, this impact helped to reduce emission values further, and the experimental results indicate that adding 2 LPM of HHO gas to a 20% volume of ethanol-diesel blend improves engine performance, combustion, and emission characteristics.
- Future research will focus on optimizing electrolyser variables for efficient HHO gas production using plate-type dry cell electrolysers and optimizing engine process parameters for efficient dual-fuel operation with different combustion bowl geometries using machine learning techniques.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
Abbreviations
BMEP | Brake Mean Effective Pressure (bar) |
BSEC | Brake Specific Energy Consumption (kJ/kW-h) |
BTE | Brake Thermal Efficiency (%) |
CFM | Cubic Feet Per Minute |
CO2 | Carbon dioxide |
CO | Carbon monoxide (g/kW-h) |
CP | Cylinder Pressure (bar) |
CRDI | Common Rail Direct Injection |
CI | Compression-Ignition |
DC | Direct current |
EGT | Exhaust Gas Temperature (°C) |
E20 | Ethanol 20% with 80% of Neat Diesel |
HC | Hydrocarbons (g/kW-h) |
HHO | Hydroxy |
HRR | Heat Release Rate (J/deg) |
I.C. | Internal Combustion |
LPM | Litre per minute |
ND | Neat Diesel |
NOx | Nitrogen oxides (g/kW-h) |
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Parameters | Values |
---|---|
Plate sizes (mm) | 150 × 150 × 1 |
Plate counts | 19 |
Stack counts | 3 |
Neutral plate counts per stack | 5 |
Input voltage (volts) | 13.5 |
Input current (amps) | 30 to 35 |
Voltage across each water cell (volts) | 2 |
Amps across each stack (amps) | 30.21 |
Concentration of the electrolyte (g/L) | 20 |
Properties | Units | Diesel | Ethanol [21,22] | HHO Gas [23,24] |
---|---|---|---|---|
Formula | - | C12H24 | C2H5OH | HHO |
Self-ignition temperature | K | 531 | 643 | 845 |
Higher heating value | MJ/kg | 45.7 | 29.6 | 141.8 |
Flash point | °C | 69 | 29 | −232 |
Flammability limits | volume % in air | 0.6–4.5 | 3.2–18 | 5–72 |
Stoichiometric A/F ratio | mass basis | 14.6 | 9 | 34.5 |
Density at 16 °C and 1.01 bar | kg/m3 | 832–880 | 786 | 0.0835 |
Flame velocity | cm/s | 31 | 57 | 260–320 |
Diffusivity in air | cm2/s | --- | 0.195 | 0.62 |
Research octane number | --- | 29 | 105 | 131 |
Cetane number | --- | 40–55 | 7 | --- |
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Sekar, D.; Ilangovan, D.; Taipabu, M.I.; Viswanathan, K.; Wu, W. Influence of Ethanol Blended Diesel Enriched with Hydroxy Gas in Dual-Fuel Mode on Common Rail Direct Injection Engine. Energies 2023, 16, 6393. https://doi.org/10.3390/en16176393
Sekar D, Ilangovan D, Taipabu MI, Viswanathan K, Wu W. Influence of Ethanol Blended Diesel Enriched with Hydroxy Gas in Dual-Fuel Mode on Common Rail Direct Injection Engine. Energies. 2023; 16(17):6393. https://doi.org/10.3390/en16176393
Chicago/Turabian StyleSekar, Dhileepan, Devi Ilangovan, Muhammad Ikhsan Taipabu, Karthickeyan Viswanathan, and Wei Wu. 2023. "Influence of Ethanol Blended Diesel Enriched with Hydroxy Gas in Dual-Fuel Mode on Common Rail Direct Injection Engine" Energies 16, no. 17: 6393. https://doi.org/10.3390/en16176393
APA StyleSekar, D., Ilangovan, D., Taipabu, M. I., Viswanathan, K., & Wu, W. (2023). Influence of Ethanol Blended Diesel Enriched with Hydroxy Gas in Dual-Fuel Mode on Common Rail Direct Injection Engine. Energies, 16(17), 6393. https://doi.org/10.3390/en16176393