Experimental study on cycle-to-cycle variations in natural gas/methanol bi-fueled engine under excess air/fuel ratio at 1.6

被引:24
作者
Chen, Zhanming [1 ]
He, Jingjing [1 ]
Chen, Hao [1 ]
Geng, Limin [1 ]
Zhang, Peng [1 ]
机构
[1] Changan Univ, Sch Automobile, Xian 710064, Peoples R China
基金
中国博士后科学基金; 中国国家自然科学基金;
关键词
Cycle-to-cycle variations; Lean burn condition; Bi-fueled; Natural gas; Methanol; SPARK-IGNITION ENGINE; GAS-HYDROGEN BLENDS; COMBUSTION CHARACTERISTICS; METHANOL ENGINE; EMISSIONS; INJECTION; PERFORMANCE; QUANTITY; ETHER;
D O I
10.1016/j.energy.2021.120233
中图分类号
O414.1 [热力学];
学科分类号
摘要
In this study, the cycle-to-cycle variations in natural gas/methanol bi-fueled engines under excess air/fuel ratio at 1.6 was analyzed. In order to examine the impact of the methanol substitution ratio (MSR) on cyclic variability, four values of MSRs (MSR 1/4 0%, 3.6%, 7.5%, and 11.5%) were selected under low load conditions. The results showed that the variations in the multicycle in-cylinder pressure traces decreased with the increase in MSR. In addition, the variations in peak in-cylinder pressure (P-max), peak of pressure rise rate (dp/d phi)(max), 50% mass fraction burned (CA(50)), peak of averaged gas temperature (T-max), and indicated mean effective pressure (IMEP) in 100 consecutive cycles decreased with the increase in MSR. Meanwhile, the higher was the MSR, the narrower was the range of frequency distribution of Pmax, (dp/df)(max), CA(50), T-max, and IMEP covered. In addition, the coefficient of variation in IMEP (COVIMEP) decreased with the increase in MSR for a specific spark timing. For instance, as MSR increased from 0% to 11.5%, the value of COVIMEP decreased from 2.25% to 1.28% when the spark timing was set to 46 degrees CA BTDC. This is because methanol addition to natural gas leads to faster combustion with less cyclic variability. (C) 2021 Elsevier Ltd. All rights reserved.
引用
收藏
页数:10
相关论文
共 62 条
[31]   A large-eddy simulation study on the influence of diesel pilot spray quantity on methane-air flame initiation [J].
Kahila, H. ;
Kaario, O. ;
Ahmad, Z. ;
Masouleh, M. Ghaderi ;
Tekgul, B. ;
Larmi, M. ;
Vuorinen, V. .
COMBUSTION AND FLAME, 2019, 206 :506-521
[32]  
Kalghatgi G.T., 1987, SAE TECHNICAL PAPER, DOI [DOI 10.4271/870163, 10.4271/870163.]
[33]  
Keck J.C., 1987, SAE TECHNICAL PAPER, DOI [10.4271/870164, DOI 10.4271/870164]
[34]   Experimental and numerical investigations of charge motion and combustion in lean-burn natural gas engines [J].
Korb, Benjamin ;
Kuppa, Kalyan ;
Hoang Dung Nguyen ;
Dinkelacker, Friedrich ;
Wachtmeister, Georg .
COMBUSTION AND FLAME, 2020, 212 :309-322
[35]   A comprehensive review of pilot ignited high pressure direct injection natural gas engines: Factors affecting combustion, emissions and performance [J].
Li, Menghan ;
Wu, Hanming ;
Zhang, Tiechen ;
Shen, Boxiong ;
Zhang, Qiang ;
Li, Zhenguo .
RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2020, 119
[36]   Methanol-gasoline Dual-fuel Spark Ignition (DFSI) combustion with dual-injection for engine particle number (PN) reduction and fuel economy improvement [J].
Liu, Hui ;
Wang, Zhi ;
Long, Yan ;
Xiang, Shouzhi ;
Wang, Jianxin ;
Wagnon, Scott W. .
ENERGY, 2015, 89 :1010-1017
[37]  
Mahendar S.K., 2018, SAE Technical Paper Series, DOI DOI 10.4271/2018-01-0907
[38]  
Matekunas FA., 1983, 830337 SAE
[39]   Flammability limits of hydrogen-enriched natural gas [J].
Miao, Haiyan ;
Lu, Lin ;
Huang, Zuohua .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2011, 36 (11) :6937-6947
[40]   Measurement of laminar burning velocities and Markstein lengths of diluted hydrogen-enriched natural gas [J].
Miao, Haiyan ;
Jiao, Qi ;
Huang, Zuohua ;
Jiang, Deming .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2009, 34 (01) :507-518