A parametric investigation of diesel/methane dual-fuel combustion progression/stages in a heavy-duty optical engine. (1st October 2019)
- Record Type:
- Journal Article
- Title:
- A parametric investigation of diesel/methane dual-fuel combustion progression/stages in a heavy-duty optical engine. (1st October 2019)
- Main Title:
- A parametric investigation of diesel/methane dual-fuel combustion progression/stages in a heavy-duty optical engine
- Authors:
- Ahmad, Zeeshan
Kaario, Ossi
Qiang, Cheng
Vuorinen, Ville
Larmi, Martti - Abstract:
- Highlights: Compression ignited heavy-duty optical engine operated in dual-fuel mode. Second derivative analysis, a novel method to identify dual-fuel combustion stages. Increasing pilot ratio or methane equivalence ratio increases locally fuel-rich zones. Overlapping of all three combustion stages at high-load (rich) conditions. Transition of HRR curve from multi-peak (M-shaped) to quasi-single peak (bell-shaped). Abstract: A single-cylinder heavy-duty optical engine is used to characterize dual-fuel (DF) combustion. In experiments, methane is applied as the main fuel while directly injected pilot diesel ignites the premixed methane-air mixture close to the top-dead center (TDC). In the present study, diesel-methane DF combustion is analyzed as a function of (1) the methane equivalence ratio, (2) initial charge temperature, and (3) the quantity of pilot diesel. Experiments are conducted at 1400 rpm and a load of 9–10 bar IMEP, and DF combustion is visualized in the engine through Bowditch-designed optical access. Meanwhile, a high-speed camera records temporally resolved natural luminosity (NL) color images of the combustion event. The results of the study suggest that DF combustion based on the apparent heat release rate (HRR) data consists of three overlapping combustion stages, where the level of overlap depends on mixture fractions of both pilot-diesel and methane in the in-cylinder charge. The stages are identified by analyzing the second derivative of HRR data. TheHighlights: Compression ignited heavy-duty optical engine operated in dual-fuel mode. Second derivative analysis, a novel method to identify dual-fuel combustion stages. Increasing pilot ratio or methane equivalence ratio increases locally fuel-rich zones. Overlapping of all three combustion stages at high-load (rich) conditions. Transition of HRR curve from multi-peak (M-shaped) to quasi-single peak (bell-shaped). Abstract: A single-cylinder heavy-duty optical engine is used to characterize dual-fuel (DF) combustion. In experiments, methane is applied as the main fuel while directly injected pilot diesel ignites the premixed methane-air mixture close to the top-dead center (TDC). In the present study, diesel-methane DF combustion is analyzed as a function of (1) the methane equivalence ratio, (2) initial charge temperature, and (3) the quantity of pilot diesel. Experiments are conducted at 1400 rpm and a load of 9–10 bar IMEP, and DF combustion is visualized in the engine through Bowditch-designed optical access. Meanwhile, a high-speed camera records temporally resolved natural luminosity (NL) color images of the combustion event. The results of the study suggest that DF combustion based on the apparent heat release rate (HRR) data consists of three overlapping combustion stages, where the level of overlap depends on mixture fractions of both pilot-diesel and methane in the in-cylinder charge. The stages are identified by analyzing the second derivative of HRR data. The study revealed that during the first stage, most of the pilot diesel burns in the premixed mode, and that the ignition delay time (IDT) directly influences the burnt charge mixture fraction of pilot diesel and entrained premixed methane-air mixture. In addition, the first-stage combustion is visualized as initial flame kernels originating from pilot-diesel sprays. IDT is found to be especially sensitive to the methane equivalence ratio and initial charge temperature. Furthermore, the concentration of methane and the quantity of pilot diesel in the charge distinctively influence combustion duration trends. … (more)
- Is Part Of:
- Applied energy. Volume 251(2019)
- Journal:
- Applied energy
- Issue:
- Volume 251(2019)
- Issue Display:
- Volume 251, Issue 2019 (2019)
- Year:
- 2019
- Volume:
- 251
- Issue:
- 2019
- Issue Sort Value:
- 2019-0251-2019-0000
- Page Start:
- Page End:
- Publication Date:
- 2019-10-01
- Subjects:
- Dual-fuel -- Natural luminosity imaging -- Optical engine analysis -- Second derivative HRR analysis -- Combustion progression/stages
Power (Mechanics) -- Periodicals
Energy conservation -- Periodicals
Energy conversion -- Periodicals
621.042 - Journal URLs:
- http://www.sciencedirect.com/science/journal/03062619 ↗
http://www.elsevier.com/journals ↗ - DOI:
- 10.1016/j.apenergy.2019.04.187 ↗
- Languages:
- English
- ISSNs:
- 0306-2619
- Deposit Type:
- Legaldeposit
- View Content:
- Available online (eLD content is only available in our Reading Rooms) ↗
- Physical Locations:
- British Library DSC - 1572.300000
British Library DSC - BLDSS-3PM
British Library HMNTS - ELD Digital store - Ingest File:
- 11378.xml