Effects of injection strategies on low‐speed marine engines using the dual fuel of high‐pressure direct‐injection natural gas and diesel

Влияние стратегий впрыска на низкооборотные судовые двигатели, работающие на двухкомпонентном топливе: природном газе с непосредственным впрыском под высоким давлением и дизельном топливе
Haifeng Liu, Jingrui Li, Jietuo Wang, Chaohui Wu, Bo Liu, Jingjin Dong, Teng Liu, Ying Ye, Hu Wang, Mingfa Yao
2019-08-12

HPDI natural gas enginesdual-fuel combustionemissionsinjection timingmarine engines
Abstract Pilot‐ignited high‐pressure direct‐injection (HPDI) natural gas engines have drawn much attention since being proposed, as these engines can maintain high performance and lead to clean combustion compared with conventional diesel engines. This prospective concept is not only used in vehicle engines but also used in large‐scale marine engines. In this study, the effects of injection strategies of dual fuels on combustion characteristics and emissions were investigated using the computational fluid dynamics (CFD) code CONVERGE coupled with a reduced n‐heptane/methane mechanism. The results showed that the effects of absolute injection timing (AIT) on the combustion characteristics and emissions are similar to those of traditional diesel engines. As the AIT varies from advanced by 4°CA to retarded by 4°CA, the peak values of the in‐cylinder pressure and temperature decrease gradually. However, a conventional trade‐off between NOx and soot/CO/HC/ISFC emissions can also be observed as the AIT is retarded. In contrast, relative injection timing (RIT) has more complicated impacts on the combustion and emissions characteristics. The in‐cylinder temperature distribution and concentration stratification change as the gas jet initially interacts with the pilot flame. The effects of the gas injection timing on the combustion characteristics and indicated specific fuel consumption are also similar to those of the AIT, but the emissions are quite different. The pilot injection timing shows minimal influence on the main combustion process. Better performance can be obtained with partially premixed combustion with a slightly late injection timing compared with that of the original (ORG) base case.
1
A CFD study using CONVERGE and a reduced n-heptane/methane mechanism evaluated injection-strategy effects in HPDI natural-gas/diesel marine engines.
2
Advancing absolute injection timing by 4°CA increases peak in-cylinder pressure and temperature, while retarding it by 4°CA decreases both progressively.
3
Relative injection timing strongly alters temperature distributions and concentration stratification through interactions between the gas jet and pilot flame, producing more complex combustion effects.
4
Retarding absolute injection timing produces the conventional trade-off between reduced NOx and increased soot, CO, HC, and indicated specific fuel consumption.
5
Slightly late gas injection enables partially premixed combustion with better overall performance than the original base case, while pilot timing has minimal influence on main combustion.

low-speed marine engines using dual-fuel high-pressure direct-injection natural gas and diesel

the effects of absolute, relative, and pilot injection timing strategies on combustion characteristics, emissions, and indicated specific fuel consumption

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2019-08-12
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Haifeng Liu
Jingrui Li
Jietuo Wang
Chaohui Wu
Bo Liu
Jingjin Dong
Teng Liu
Ying Ye
Hu Wang
Mingfa Yao
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