天津大学内燃机燃烧学国家重点实验室,天津,300072
网络首发:2012-03-10,
纸质出版:2012
移动端阅览
赵伟 1, 舒歌群 1, 张韦 1, 等. 富氧燃烧对柴油机低温燃烧反应机理影响的数值分析[J]. 西安交通大学学报, 2012,46(3):69-74.
Numerical Analysis on Effects of Oxygen-Enriched Combustion on Low-Temperature Reaction Mechanism of Diesel Engine[J]. 2012, 46(3): 69-74.
从柴油机缸内燃烧反应的化学反应动力学机理出发
利用CHEMKIN软件对富氧燃烧时的低温反应进行了研究
运用计算流体动力学分析方法
通过耦合柴油机三维燃烧模型和正庚烷氧化反应动力学模型对低温反应机理中重要的脱氢反应和加氧反应过程进行了数值分析.对比空气助燃、富氧浓度对脱氢反应和加氧反应的影响发现:富氧燃烧能够促进脱氢反应
在压缩的上止点时刻
氧的体积分数分别为23%、25%和27%时的缸内脱氢产物C
7
H
15
的质量分数最大值分别是空气助燃时的1.95倍、4.77倍和291.58倍; 加氧反应的速率随富氧浓度的升高呈线性增长趋势; 富氧燃烧可以提高柴油机的热效率
使缸内生成更多的OH自由基
从而加快了后续的中温反应和高温反应速度.
From the chemical reaction kinetics of diesel engine combustion
the investigation into the low-temperature reaction of oxygen-enriched combustion was done by CHEMKIN. Two important low-temperature reactions
the dehydrogenation reaction and the oxygen-addition reaction
were numerically analyzed by the CFD three-dimensional combustion model coupled with the N-heptane oxidation kinetic model. The results show that oxygen-enriched combustion can promote the dehydrogenation reaction. At the compression TDC
the maximum mass fraction of C
7
H
15
produced by the dehydrogenation reaction in the oxygen-enriched combustion is 1.95 times
4.77 times and 291.58 times of in the ordinary combustion when the oxygen concentration is 23%
25% and 27%
respectively. The oxygen-addition reaction rate increase
s linearly with an increase in the oxygen concentration. In addition
oxygen-enriched combustion enhances the diesel engine thermal efficiency and generates more OH radicals
and accelerating the subsequent reactions at medium temperature and high temperature.
ARRÈGLE J, LÓPEZ J J, GARCÍÁ J M, et al. Development of a zero-dimensional diesel combustion model: part 1 Analysis of the quasi-steady diffusion combustion phase[J]. Appl Thermal Eng, 2003, 23(11): 1301-1317.
SONG K H, NAG P, LITZINGER T A, et al. Effects of oxygenated additives on aromatic species in fuel-rich, premixed ethane combustion: a modeling study[J] Combustion Flame, 2003, 135(3): 341-349.
MARR W W, SEKAR R R, COLE R L, et al. Oxygen-enriched diesel engine experiments with a low-grade fuel, SAE 932805 [R]. Washington DC, USA: SAE, 1993.
POOLA R B, SEKAR R. Reduction of NOx and particulate emissions by using oxygen-enriched combustion air in a locomotive diesel engine [J]. ASME Journal of Engineering for Gas Turbines and Power, 2003, 125(2): 524-533.
PEREZ P L, BOEHMAN A L. Performance of a single-cylinder diesel engine using oxygen-enriched intake air at simulated high-altitude conditions [J]. Aerospace Science and Technology, 2010, 14(2): 83-94.
UDAYAKUMAR R, MEHER A K. Use of oxygen enriched air in a direct injection diesel engine [J].Journal of the Institution of Engineers: India Mechanical Engineering Division, 2005, 86(10): 156-159.
苏万华, 赵华, 王建昕, 等.均质压燃低温燃烧技术发动机理论与技术[M].北京: 科学出版社, 2010:176.
黄豪中, 苏万华.一个新的用于HCCI发动机燃烧研究的正庚烷化学反应动力学简化模型 [J].内燃机学报, 2005, 23(1): 42-51.
HUANG Haozhong, SU Wanghua, A new reduced chemical kinematic model of n-heptane combustion for HCCI Engine Simulations [J].Transactions of CSICE,2005,23(1): 42-51.
CURRAN H J, GAFFURI P, PITZ W J, et al. A comprehensive modeling study of n-heptane oxidation[J].Combustion and Flame, 1998,114(1/2): 149-177.
VASU S S, DAVIDSON D F, HANSON R K. OH time-histories during oxidation of n-heptane and methylcyclohexane at high pressure and temperatures [J].Combustion and Flame, 2009, 156(4): 736-749.
0
浏览量
4
下载量
2
CSCD
关联资源
相关文章
相关作者
相关机构
京公网安备11010802024621