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首页> 外文期刊>SAE International Journal of Engines >Effects of EGR Dilution and Fuels on Spark Plug Temperatures in Gasoline Engines
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Effects of EGR Dilution and Fuels on Spark Plug Temperatures in Gasoline Engines

机译:EGR稀释和燃料对汽油发动机火花塞温度的影响

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The addition of exhaust gas recirculation (EGR) has demonstrated the potential to significantly improve engine efficiency by allowing high CR operation due to a reduction in knock tendency, heat transfer, and pumping losses. In addition, EGR also reduces the engine-out emission of nitrogen oxides, particulates, and carbon monoxide while further improving efficiency at stoichiometric air/fuel ratios. However, improvements in efficiency through enhanced combustion phasing at high compression ratios can result in a significant increase in cylinder pressure. As cylinder pressure and temperature are both important parameters for estimating the durability requirements of the engine - in effect specifying the material and engineering required for the head and block - the impact of EGR on surface temperatures, when combined with the cylinder pressure data, will provide an important understanding of the design requirements for future cylinder heads. This paper examines the combustion chamber temperatures for several dilution and combustion regimes by using spark plug temperatures as a proxy. The investigation involved a 2.4 L MPI engine with a CR of 11.4 and high levels of cooled EGR. The engine was equipped with a modified ignition system which extended the EGR limit to more than 25% and used instrumented spark plugs for temperature measurements. EGR sweeps were conducted at knock limited and nonknock limited conditions. In addition, potential fuel factors were explored using an E85 ethanol blend. Finally, spark plugs with two different heat ranges were tested at selected load points. The results show combustion phasing is the primary factor effecting spark plug temperatures and, at knock limited conditions, the temperature change was not monotonic with the EGR rate. At constant combustion phasing, i.e. when the engine was not knock limited without EGR, the use of cooled EGR significantly reduced spark plug temperatures. At higher loads, however, spark plug temperatures slightly increased from better combustion phasing and the elimination of fuel enrichment.
机译:由于降低了爆震趋势,减少了传热和降低了泵送损失,增加了废气再循环(EGR)已显示出通过允许高CR运行而显着提高发动机效率的潜力。此外,EGR还减少了氮氧化物,微粒和一氧化碳的发动机排放,同时进一步提高了化学计量空燃比的效率。但是,通过在高压缩比下增强燃烧定相来提高效率会导致气缸压力显着增加。由于汽缸压力和温度都是估算发动机耐久性要求的重要参数-实际上指定了缸盖和缸体所需的材料和工程-结合汽缸压力数据,EGR对表面温度的影响将提供对未来气缸盖的设计要求有重要的了解。本文以火花塞温度为代表,检查了几种稀释和燃烧方式的燃烧室温度。研究涉及2.4升MPI发动机,其CR为11.4,并具有较高的冷却EGR。发动机配备了改进的点火系统,该系统将EGR限制提高到25%以上,并使用了仪表火花塞进行温度测量。在爆震受限和非爆震受限条件下进行EGR扫气。此外,使用E85乙醇混合物探索了潜在的燃料因素。最后,在选定的负载点测试了两种不同热量范围的火花塞。结果表明,燃烧定相是影响火花塞温度的主要因素,并且在爆震受限的条件下,温度变化与EGR率不是单调的。在恒定燃烧阶段,即当没有EGR的情况下发动机不受爆震限制时,使用冷却的EGR会显着降低火花塞温度。然而,在更高的负载下,火花塞温度由于更好的燃烧定相和消除了燃料富集而略有升高。

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