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Impact of Selected High-Performance Fuel Blends on Three-Way Catalyst Light Off under Synthetic Spark-Ignition Engine-Exhaust Conditions

机译:所选高效燃料混合在合成火花点火发动机排气条件下对三元催化剂灯的影响

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摘要

The U.S. Department of Energy funded Co-Optimization of Fuels and Engines initiative aims to simultaneously develop advanced engines along with high-performance fuels to reduce petroleum consumption. The engine exhaust of spark-ignited light-duty vehicles contains pollutants such as nitrogen oxides, carbon monoxide (CO), and non-methane organic gases. When operated above their "light-off" temperature, three-way catalysts (TWCs) efficiently control the emissions of these pollutants from the vehicle exhaust. However, below the catalyst light-off temperature, during cold start, the TWCs are not effective. Thus, the stringent environmental regulations necessitate cold-start compliance of advanced engines operating on novel fuels for commercialization. Exhaust composition strongly impacts the effectiveness of TWCs. Hence, ensuring that the high-performance fuels under consideration do not have detrimental effects on current emissions control technology is necessary. To mitigate cold-start emissions, a low light-off temperature of the fuel on the TWC is desirable. As real-world fuels are multicomponent blends, we conducted investigations into the light-off behavior of representative fuel mixtures on a three-mode redox-aged commercial TWC under synthetic engine-exhaust conditions. The high-performance fuels in this study included 10-30% volumetric levels of ethanol, isobutanol, diisobutylene, and an aromatic mixture. Each of these high-performance fuel components was mixed into a gasoline surrogate blendstock for oxygenate blending (BOB). Our results showed that aromatics and alkenes in the surrogate BOB inhibit low-temperature reactivity of alkanes, alcohols, and CO on the TWC and dominate the blend light-off behavior. All the high-performance fuel blends had a very similar light-off behavior to the surrogate gasoline BOB, indicating that blending up to 30% (by vol.) of high-performance blendstocks in a gasoline base fuel can potentially reduce greenhouse gas emissions through improved engine efficiency and petroleum displacement without jeopardizing the ability to meet emissions regulations. While some high-performance blendstocks demonstrated lower light-off temperatures than a surrogate gasoline blend, taking advantage of the higher catalytic reactivity of these blendstocks to reduce cold-start emissions would require reducing the aromatic content in petroleum-based market fuels.
机译:美国能源部资助燃料和发动机倡议的共同优化旨在同时开发先进的发动机以及高性能燃料,以减少石油消费。火花点燃的轻型型车辆的发动机排气含有污染物,例如氮氧化物,一氧化碳(CO)和非甲烷有机气体。当在其“熄灭”温度之上操作时,三元催化剂(TWCS)有效地控制这些污染物的排放从车辆排气。然而,低于催化剂光脱液温度,在冷启动期间,TWC无效。因此,严格的环境法规需要对新型燃料进行商业化操作的高级发动机的冷启动符合。排气组成强烈影响TWCS的有效性。因此,确保所考虑的高性能燃料对当前排放控制技术没有不利影响,是必要的。为了减轻冷启动排放,可以理想地获得燃料的低光脱机温度。由于现实世界燃料是多组分混合,我们在合成发动机排气条件下对三型氧化还原商业TWC进行了代表燃料混合物的脱脱行行为。本研究中的高性能燃料包括10-30%的乙醇,异丁醇,二异丁烯和芳族混合物。将这些高性能燃料组分中的每一个混合到用于氧化物混合(鲍勃)的汽油替代混合物中。我们的研究结果表明,替代鲍勃中的芳烃和烯烃在TWC上抑制了烷烃,醇和CO的低温反应性,并使混合物脱离行为主导。所有的高性能燃料混合物都有一个非常相似的脱肉行为到替代汽油鲍勃,表明汽油基础燃料中的高性能混纺件高达30%(通过Vol。)可能会降低温室气体排放改善发动机效率和石油位移,而不会危及满足排放法规的能力。虽然一些高性能的混纺件比替代汽油共混物的较低的亮度温度显示出低于替代汽油混合物,但利用这些混合锁的较高催化反应性以减少冷启动排放需要降低基于石油的市场燃料中的芳族含量。

著录项

  • 来源
    《Energy & fuels》 |2020年第10期|12900-12910|共11页
  • 作者单位

    Oak Ridge Natl Lab Energy & Transportat Sci Div Natl Transportat Res Ctr Knoxville TN 37932 USA;

    Oak Ridge Natl Lab Energy & Transportat Sci Div Natl Transportat Res Ctr Knoxville TN 37932 USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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