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Frontiers in Energy

ISSN 2095-1701

ISSN 2095-1698(Online)

CN 11-6017/TK

邮发代号 80-972

2019 Impact Factor: 2.657

Frontiers in Energy  2020, Vol. 14 Issue (4): 778-789   https://doi.org/10.1007/s11708-020-0698-8
  研究论文 本期目录
基于可变气门正时策略的双燃料均质压燃发动机研究
梁昕, 章建勇, 李忠照, 张家博, 黄震, 韩东()
上海交通大学动力机械与工程教育部重点实验室,中国上海200240
Effects of fuel combination and IVO timing on combustion and emissions of a dual-fuel HCCI combustion engine
Xin LIANG, Jianyong ZHANG, Zhongzhao LI, Jiabo ZHANG, Zhen HUANG, Dong HAN()
Key Laboratory for Power Machinery and Engineering of the Ministry of Education, Shanghai Jiao Tong University, Shanghai 200240, China
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摘要:

本文针对汽油/正庚烷双燃料均质压燃(HCCI)发动机开展了实验与仿真研究,分析了燃料混合比例及可变气门正时策略对发动机燃烧过程及排放水平的作用机制。通过改变汽油比例(GF)(GF=0.1~0.5),以及进气门开启时刻从(IVO=-15°CA ATDC~35°CA ATDC),研究了缸压、放热的变化规律以及对HC和CO排放的影响。结果表明,增加GF和推迟IVO均使燃烧推迟并延长燃烧持续时间,同时会降低放热率峰值及最高平均燃烧温度,其中IVO对燃烧的影响较GF更为明显。HC、CO的排放量随着GF的降低,IVO的提前以及运行负荷的增加而降低

Abstract

This paper experimentally and numerically studied the effects of fuel combination and intake valve opening (IVO) timing on combustion and emissions of an n-heptane and gasoline dual-fuel homogeneous charge compression ignition (HCCI) engine. By changing the gasoline fraction (GF) from 0.1 to 0.5 and the IVO timing from –15°CA ATDC to 35°CA ATDC, the in-cylinder pressure traces, heat release behaviors, and HC and CO emissions were investigated. The results showed that both the increased GF and the retarded IVO timing delay the combustion phasing, lengthen the combustion duration, and decrease the peak heat release rate and the maximum average combustion temperature, whereas the IVO timing has a more obvious influence on combustion than GF. HC and CO emissions are decreased with reduced GF, advanced IVO timing and increased operational load.

Key wordshomogeneous charge compression ignition    dual-fuel    n-heptane    gasoline    intake valve opening timing
收稿日期: 2020-01-06      出版日期: 2020-12-21
通讯作者: 韩东     E-mail: dong_han@sjtu.edu.cn
Corresponding Author(s): Dong HAN   
 引用本文:   
梁昕, 章建勇, 李忠照, 张家博, 黄震, 韩东. 基于可变气门正时策略的双燃料均质压燃发动机研究[J]. Frontiers in Energy, 2020, 14(4): 778-789.
Xin LIANG, Jianyong ZHANG, Zhongzhao LI, Jiabo ZHANG, Zhen HUANG, Dong HAN. Effects of fuel combination and IVO timing on combustion and emissions of a dual-fuel HCCI combustion engine. Front. Energy, 2020, 14(4): 778-789.
 链接本文:  
https://academic.hep.com.cn/fie/CN/10.1007/s11708-020-0698-8
https://academic.hep.com.cn/fie/CN/Y2020/V14/I4/778
Item Value/mode
Number of cylinders 4
Bore × Stroke/(mm×mm) 75 × 84.8
Displacement/L 1.498
Compression ratio 13
Fuel injection mode Multi-points injection
Tab.1  
Fig.1  
Item Value
Intake pressure/bar 0.975
Cooling temperature/°C 90
Oil temperature/°C 95
Intake temperature/°C 15
Engine speed/(r·min–1) 1600
Engine load/(N·m) 30–50
Gasoline fraction (GF) 0.1–0.5
Intake valve open/(°CA ATDC) –15–35
Intake valve close/(°CA ATDC) 211–261
Exhaust valve open/(°CA ATDC) 135
Exhaust valve close/(°CA ATDC) 371
Tab.2  
Item Computational model
Real gas equation of state R-K equation
Turbulence model RNG k-ε model [26]
Combustion model Multi-dimensional model [27]
Fuel chemistry PRF skeletal kinetic model [28]
Tab.3  
Fig.2  
Fig.3  
Fig.4  
Fig.5  
Fig.6  
Fig.7  
Fig.8  
Fig.9  
Fig.10  
Fig.11  
Fig.12  
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Fig.16  
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