JOURNAL ARTICLE

Impact of engine control variables on low load combustion efficiency and exhaust emissions of a methane-diesel dual fuel engine

Nikhil Dilip KhedkarAsish Kumar SarangiSheshadri Sreedhara

Year: 2023 Journal:   Proceedings of the Institution of Mechanical Engineers Part D Journal of Automobile Engineering Vol: 238 (14)Pages: 4551-4568   Publisher: SAGE Publishing

Abstract

A conventional diesel engine when operated in the reactivity-controlled compression ignition (RCCI) combustion strategy faces challenges of high total hydrocarbon (THC) and carbon monoxide (CO) emissions leading to poor combustion efficiency at low engine loads. The oxides of nitrogen (NO x ) versus smoke trade-off, encountered in conventional diesel combustion, is replaced by the NO x -THC trade-off in the RCCI operation. This work focuses on addressing the NO x -THC trade-off issue by systematically investigating the effects of engine control variables, such as, fuel injection timing, exhaust gas recirculation (EGR) and intake throttling, on a light duty compression ignition engine running in a methane-diesel dual fuel mode. The engine is operated at a load of 3 bar gross indicated mean effective pressure and at a speed of 1500 rev/min. Based on relationships identified between engine control variables, combustion parameters, emissions and engine performance, a bottom-up approach is used to combine the control variables synergistically to improve the NO x -THC trade-off. A combination of advanced start of injection timing of diesel (−35 degree crank angle (°CA) after top dead centre), 50% premix ratio and 55% EGR levels along with the end of port fuel injection of methane in the middle of the intake stroke (−270°CA), has resulted in a ∼34 percentage points (from 56% to 90%) improvement in combustion efficiency and a ∼9.5 percentage points improvement in thermal efficiency compared to the baseline low load dual fuel operation while maintaining good combustion stability. THC emission is reduced from 105 to ∼25 g/kWh whilst maintaining low levels of NO x (<0.3 g/kWh).

Keywords:
Exhaust gas recirculation Diesel fuel Thermal efficiency Combustion Automotive engineering Diesel cycle Environmental science Diesel engine Methane Homogeneous charge compression ignition Internal combustion engine Engine efficiency Mean effective pressure Compression ratio Ignition system Diesel exhaust Carbureted compression ignition model engine Waste management Engineering Combustion chamber Chemistry

Metrics

11
Cited By
2.15
FWCI (Field Weighted Citation Impact)
35
Refs
0.84
Citation Normalized Percentile
Is in top 1%
Is in top 10%

Citation History

Topics

Advanced Combustion Engine Technologies
Physical Sciences →  Chemical Engineering →  Fluid Flow and Transfer Processes
Vehicle emissions and performance
Physical Sciences →  Engineering →  Automotive Engineering
Combustion and flame dynamics
Physical Sciences →  Engineering →  Computational Mechanics

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