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Investigation into ethanol effects on combustion and particle number emissions in a spark-ignition to compression-ignition (SICI) engine

机译:对压缩点火(SICI)发动机的火花点火中燃烧和颗粒数排放的乙醇影响研究

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摘要

Spark assistance along with oxygenated components addition is a promising method to achieve stable compression ignition, high thermal efficiency and low particle emission. To this end, ethanol blended with non-oxygenated gasoline was fueled to an engine working with spark-ignition to compression ignition (SICI) mode under air dilution and exhaust-diluted conditions. The effects of ethanol addition on engine performance including combustion characteristics, fuel economy, particle number (PN) emissions, were studied in two categories: changing research octane number (RON) by varying ethanol content and maintaining RON by changing fuel type. The results showed that ethanol addition by splash blending suppressed knock tendency, and the knock intensity could be lowered by up to 65-75% with increasing ethanol content. However, when maintaining the same RON, the ethanol-gasoline blend exhibited higher knock intensity than pure gasoline due to synergistic effects between ethanol and aromatics on auto-ignition. Compared to pure spark ignition with high-RON gasolines, using ethanol gasoline blends under SICI could reduce the minimum fuel consumption rate by up to 25 g/(kW$h). To characterize the high-efficiency cycles under SICI, two dimensionless parameters were proposed by considering the ratios of heat release amount and duration between the flame propagation stage and auto-ignition stage. The two parameters showed good exponential correlation. As for emissions, blending ethanol could basically reduce PN emissions under SICI mode except for the cases with significant increase in nucleation particles, such as those with high knock intensity under stoichiometric condition and poor combustion quality under heavily exhaust-diluted conditions. The total PN reduction by blending ethanol is mainly due to the decrease of accumulation mode particles, during the stage of flame propagation rather than auto-ignition. Blending ethanol into non-oxygenated gasoline will directly increase unburned hydrocarbons and nitrogen oxides due to the low auto-ignition propensity of ethanol under stoichiometric or moderately lean conditions according to the temperature-pressure trajectory. Therefore, a dedicated combustion system with higher compression ratio and lean-boosted mixture is required to enhance ethanol's reactivity and achieve better fuel economy along with low PN emission for diluted SICI combustion. (c) 2021 Elsevier Ltd. All rights reserved.
机译:Spark辅助以及含氧量的添加是实现稳定的压缩点火,高热效率和低颗粒发射的有希望的方法。为此,将乙醇与非含氧汽油混合到发动机上,在空气稀释和废气稀释条件下用火花点火加入压缩点火(SiCi)模式。乙醇添加对包括燃烧特性,燃料经济性,粒子数(PN)排放的发动机性能的影响:通过改变乙醇含量而改变研究辛烷值(RON),通过改变燃料型保持ron。结果表明,通过飞溅混合抑制爆震趋势的乙醇添加,爆震强度可降低65-75%,随着乙醇含量增加。然而,在保持相同的RON时,由于乙醇和芳烃对自动点火的协同效应,乙醇 - 汽油混合物表现出比纯汽油的更高爆震强度。与具有高RON汽油的纯火花点火相比,在SICI下使用乙醇汽油共混物可以将最小燃料消耗率降低到25克/(kW $ h)。为了表征SICI下的高效循环,通过考虑火焰传播阶段和自动点火阶段之间的热释放量和持续时间的比例来提出两种无量纲参数。这两个参数显示出良好的指数相关性。至于排放,混合乙醇可以基本上减少SICI模式下的PN排放,除了核心颗粒的显着增加,例如在化学计量条件下具有高爆震强度的情况和燃烧质量差的燃烧质量。通过混合乙醇的总Pn还原主要是由于累积模式颗粒的减少,在火焰传播的阶段而不是自动点火期间。将乙醇混合成非含氧汽油将直接增加未燃烧的烃和氮氧化物,由于温度 - 压力轨迹在化学计量或中度贫条件下的乙醇的低自动点火倾斜。因此,需要具有较高压缩比和瘦溶解的混合物的专用燃烧系统来增强乙醇的反应性并实现更好的燃料经济性以及稀释的SICI燃烧的低PN排放。 (c)2021 elestvier有限公司保留所有权利。

著录项

  • 来源
    《Energy》 |2021年第15期|121170.1-121170.20|共20页
  • 作者单位

    Tsinghua Univ State Key Lab Automot Safety & Energy Beijing 100084 Peoples R China;

    Tsinghua Univ State Key Lab Automot Safety & Energy Beijing 100084 Peoples R China;

    Tsinghua Univ State Key Lab Automot Safety & Energy Beijing 100084 Peoples R China|CALTECH Grad Aerosp Labs Pasadena CA 91125 USA;

    Tsinghua Univ State Key Lab Automot Safety & Energy Beijing 100084 Peoples R China;

    Tsinghua Univ State Key Lab Automot Safety & Energy Beijing 100084 Peoples R China;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Spark-ignition to compression-ignition; Ethanol blends; Fuel economy; Particle number emission; Fuel reactivity;

    机译:火花点火到压缩点火;乙醇混合;燃料经济性;粒子数发射;燃料反应性;
  • 入库时间 2022-08-19 03:03:40

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