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Enhanced Catalytic Combustion Using Sub-micrometer And Nano-size Platinum Particles

机译:亚微米级和纳米级铂颗粒增强的催化燃烧

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摘要

Sub-micrometer and nano-size catalytic particles are significantly more reactive than their bulk counterparts and can be used to enhance the performance of catalytic combustors. Their high specific surface areas (typically 1 -200 m~2/g) and unique morphologies contribute to their enhanced reactivity. Differences in adsorbed species and/or their distributions may also play an important role yet are not clear. The purpose of this study is to quantify the effects of particle size, catalyst loading, and flow residence time on the reactivity of methanol-air premixtures over dispersed platinum (Pt) nanoparticles. As such, experiments were conducted in an atmospheric flow tube reactor seeded with 2-5, 200, and 500 nm Pt particles distributed on a substrate made from deactivated fused silica wool. Temperature measurements and exhaust gas species analyses were obtained for the different size particles, catalyst loadings, and flow conditions. Materials characterization of the particles was also conducted, and scanning electron microscopy (SEM) images were compared before and after sustained reaction to assess changes in their morphology and distribution owed to sintering and/or coalescence of the catalytic particles. Methanol-air premixtures were extremely reactive for a broad range of parameters (light-off at room temperature), consistent with observations at Oak Ridge National Laboratory. Interestingly, the highest steady-state temperatures were measured with 200 and 2-5 nm Pt particles with a small mass loading and 2-5 nm particles with a high mass loading for a fixed flow residence time. The results suggest that the reactivity of methanol-air on Pt increases with a decreasing particle size. Preliminary experiments using ethanol-air vapor premixtures were also conducted and demonstrated enhanced reactivity using catalytic Pt particles.
机译:亚微米级和纳米级催化颗粒的反应性要比其体积大得多,可用于增强催化燃烧器的性能。它们的高比表面积(通常为1 -200 m〜2 / g)和独特的形貌有助于增强反应性。吸附物质和/或其分布的差异也可能起重要作用,但尚不清楚。这项研究的目的是量化颗粒大小,催化剂负载量和流动停留时间对分散的铂(Pt)纳米颗粒上甲醇-空气预混合物反应性的影响。这样,在大气流管反应器中进行实验,该反应器中接种了2-5、200和500 nm Pt粒子,这些粒子分布在由失活的熔融硅棉制成的基材上。针对不同尺寸的颗粒,催化剂负载和流动条件获得了温度测量结果和废气种类分析。还进行了颗粒的材料表征,并且在持续反应之前和之后比较了扫描电子显微镜(SEM)图像,以评估由于催化颗粒的烧结和/或聚结而引起的形态和分布变化。甲醇-空气预混物对各种参数(室温起燃)具有极强的反应性,与Oak Ridge国家实验室的观察结果一致。有趣的是,在固定的流动停留时间下,用质量负载较小的200和2-5 nm Pt颗粒和质量负载较高的2-5 nm Pt颗粒测量了最高稳态温度。结果表明,甲醇-空气在Pt上的反应性随粒径的减小而增加。还进行了使用乙醇-空气蒸气预混合物的初步实验,并证明了使用催化性Pt颗粒增强了反应性。

著录项

  • 来源
    《Energy & fuels》 |2008年第6期|p.3695-3700|共6页
  • 作者单位

    Mechanical Engineering and Mechanics, Drexel University, 3141 Chestnut Street, Philadelphia Pennsylvania 19104;

  • 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
  • 中图分类 TK-;
  • 关键词

  • 入库时间 2022-08-18 00:42:40

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