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Impacts of Biodiesel on Particulate Emissions Control (PPT)

机译:生物柴油对微粒排放控制的影响(PPT)

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With the expanding use of bio-derived diesel fuels, their effect on emissions controls has become an important issue. This is particularly true for diesel particulate filters (DPFs), which capture incompletely burned particulates from engine exhaust and oxidize those particulates to prevent excessive backpressure. We describe results from comparisons between diesel particulates generated with a modern light-duty engine fueled with conventional ultra-low sulfur diesel (ULSD) fuel and particulates generated with biodiesel blends at the 5%, 20% and 100% level (B5, B20, and B100, respectively). Several complementary experimental techniques, including temperature programmed desorption and oxidation, and pulsed isothermal oxidation, high-resolution transmission electron microscopy and surface area measurements by BET were employed to characterize the particulates. From these measurements we developed a kinetic oxidation model to account for differences in reactivity. Oxidation of the fixed carbon components of the each fuel's particulates was found to follow a consistent Arrhenius rate relationship with an activation energy of 113 ± 6 kJ/mol when normalized to the instantaneous BET surface area. An oxidation model for the combined effects of volatiles and fixed carbon was found to compare well with experimental data.
机译:随着生物衍生的柴油燃料的扩大使用,它们对排放控制的影响已成为一个重要问题。这对于柴油颗粒过滤器(DPF)尤其如此,该过滤器(DPF)捕获从发动机排气的未完全燃烧的颗粒,并氧化那些颗粒以防止过量的背压。我们描述了用与传统的超低硫柴油(ULSD)燃料(ULSD)燃料(ULSD)产生的现代轻型发动机产生的柴油颗粒之间的比较结果,并用生物柴油混合物在5%,20%和100%水平(B5,B20,和B100分别)。采用几种互补的实验技术,包括温度编程的解吸和氧化,以及脉冲等温氧化,高分辨率透射电子显微镜和表面面积测量以表征颗粒。从这些测量开始,我们开发了一种动力学氧化模型,以考虑反应性的差异。发现每种燃料颗粒的固定碳成分的氧化,当归一化到瞬时的BET表面积时,与113±6 kJ / mol的活化能的一致arrhenius速率关系遵循。发现挥发物和固定碳综合影响的氧化模型与实验数据相比。

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