Use of a convenient thermodynamic model to study the effects of operating parameters on nitrogen oxides emissions for a liquefied methane fueled spark-ignition engine

IF 6.7 1区 工程技术 Q2 ENERGY & FUELS Fuel Pub Date : 2019-12-01 DOI:10.1016/j.fuel.2019.116001
Yongxiang Zhang , Jianqin Fu , Jun Shu , Mingke Xie , Jingping Liu , Yanshan Yin
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引用次数: 7

Abstract

With the increasingly restrictive emission regulations, the emission requirements for internal combustion (IC) engines become more stringent, especially the amount of nitrogen oxides (NOx) emissions. In this investigation, a convenient thermodynamic model was employed to study the effects of operating parameters on NOx emissions for a liquefied methane fueled spark-ignition engine. The selected GRI-MECH 3.0 mechanism was verified by the experimental data and the thermodynamic model was calibrated by the in-cylinder pressure and heat release rate (HRR). The validated model with detailed combustion chemistry mechanism was utilized to perform the numerical investigation. The results showed that equivalence ratio and engine load have the greatest impact on NOx emissions, followed by the intake gas temperature, and finally the engine speed and intake gas pressure have the least impact on NOx emissions. The intake gas temperature, engine speed and intake gas pressure have a limited influence on NOx emissions in ultra-lean mixtures (φ = 0.5 and 0.6). However, under stoichiometric conditions, a reduction appears in NOx emissions compared to the lean fuels of corresponding operating conditions. In addition, >90% NOx emissions are NO pollutants, with an occupation of 85% from thermal mechanism and a proportion of 12% from N2O-intermediate mechanism. More importantly, liquefied methane shows an advantage in terms of NOx emissions compared to multi-component natural gas. All these have provided research direction for the following 3-D CFD simulation work, and offered theoretical basis for selecting technology route to meet emission regulations of liquefied methane engine (LME).

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利用一种简便的热力学模型,研究了液化甲烷燃料火花点火发动机运行参数对氮氧化物排放的影响
随着排放法规的日益严格,对内燃机的排放要求也越来越严格,尤其是对氮氧化物(NOx)排放量的要求。本文采用一种简便的热力学模型,研究了液化甲烷燃料火花点火发动机运行参数对NOx排放的影响。通过实验数据验证了所选择的GRI-MECH 3.0机理,并通过缸内压力和热释放率(HRR)对热力学模型进行了标定。利用经过验证的燃烧化学机理模型进行了数值研究。结果表明,当量比和发动机负荷对NOx排放的影响最大,其次是进气温度,最后是发动机转速和进气压力对NOx排放的影响最小。进气温度、发动机转速和进气压力对超稀混合气NOx排放影响有限(φ = 0.5和0.6)。然而,在化学计量条件下,与相应操作条件下的精益燃料相比,NOx排放量有所减少。此外,90%的NOx排放为NO污染物,其中热机制占85%,n20 -中间机制占12%。更重要的是,与多组分天然气相比,液化甲烷在NOx排放方面具有优势。为后续的三维CFD模拟工作提供了研究方向,为满足液化甲烷发动机(LME)排放法规的技术路线选择提供了理论依据。
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来源期刊
Fuel
Fuel 工程技术-工程:化工
CiteScore
12.80
自引率
20.30%
发文量
3506
审稿时长
64 days
期刊介绍: The exploration of energy sources remains a critical matter of study. For the past nine decades, fuel has consistently held the forefront in primary research efforts within the field of energy science. This area of investigation encompasses a wide range of subjects, with a particular emphasis on emerging concerns like environmental factors and pollution.
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