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Ab Initio Study of Key Branching Reactions in Biodiesel and Fischer-Tropsch Fuels

机译:从头算研究生物柴油和费-托燃料中的关键支化反应

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摘要

Many biologically and Fischer-Tropsch synthesized fuels contain branched alkanes which, during their combustion and atmospheric oxidation mechanism, produce methylalkyl radicals. As a result, an accurate description of the chemistry of these species is essential to integrating these fuels into our energy systems. Even though branched alkanes make up roughly one-third of the compounds in gasoline and diesel fuels, both experimental and theoretical data on methylalkyl radicals and their reactions are scarce, especially for larger chain systems and combustion conditions. The present work investigates all the hydrogen migration reactions available to the n-methylprop-1-yl through n-methylhept-1-yl radicals, for n = 2-6, using the CBS-Q, G2, and G4 composite computational methods, over a wide temperature range. The resulting thermodynamic and kinetic parameters are used to determine the effect that the presence of the methyl group has on these important unimolecular, chain branching reactions, for the reactions involving not only a tertiary abstraction site but also all the primary and secondary sites. The activation energies of hydrogen migration reactions with the methyl group, either within or immediately outside the ring, are found to be roughly 0.8-1.6 kcal mol lower in energy than expected on the basis of analogous reactions in n-alkyl radicals. An important implication of this result is that the current method of using rate parameters derived from n-alkyl radicals to predict the chain branching characteristics of methylated alkyl radicals significantly underpredicts the importance of these reactions in atmospheric and combustion processes. Discussion of a possible cause for this phenomenon and its effect on the overall combustion mechanism of branched hydrocarbons is presented. Of particular concern is that 2,2,4,4,6,8,8-heptamethylnonane, which is currently used to model branched alkanes in diesel fuel surrogates, is predicted to have a much lower activation energy, by as much as 3 kcal mol~(-1), for the dominant, 1,5 H-migration reactions than for the same reaction in many of the less branched alkanes that it is meant to represent. Also, counter to the currently accepted theory, the 3-methylalk-l-yl radical 1,4 and 1,5 H-migrations involving the movement of a secondary hydrogen are found to have higher rate coefficients than the corresponding reactions involving a tertiary hydrogen. The results presented here have significant implications for future experimental, computational, and combustion modeling studies.
机译:许多生物和费-托合成燃料包含支链烷烃,它们在燃烧和大气氧化机理过程中会产生甲基烷基自由基。结果,对这些物质的化学性质的准确描述对于将这些燃料整合到我们的能源系统中至关重要。尽管支链烷烃约占汽油和柴油燃料的三分之一,但有关甲基烷基自由基及其反应的实验和理论数据均很少,特别是对于较大的链系统和燃烧条件。本工作使用CBS-Q,G2和G4复合计算方法研究了n = 2-6时可通过n-甲基庚-1-基从n-甲基丙-1-基获得的所有氢迁移反应,在很宽的温度范围内。所得的热力学和动力学参数用于确定甲基的存在对这些重要的单分子链支化反应的影响,因为该反应不仅涉及叔抽象位点,而且还涉及所有伯和仲位点。发现在环内或环外与甲基的氢迁移反应的活化能比基于在正烷基中的类似反应所预期的能量低约0.8-1.6kcal mol。该结果的重要含义是,使用从正烷基衍生的速率参数来预测甲基化烷基自由基的支链特性的当前方法显着地预测了这些反应在大气和燃烧过程中的重要性。讨论了该现象的可能原因及其对支链烃整体燃烧机理的影响。特别令人关注的是,目前用于模拟柴油替代燃料中支链烷烃的2,2,4,4,6,8,8-七甲基壬烷预计具有更低的活化能,最高可达3 kcal。 mol〜(-1),对于占主导地位的1,5 H-迁移反应比对于它打算表示的许多支链较少的烷烃中的相同反应而言。而且,与当前公认的理论相反,发现涉及仲氢运动的3-甲基烷基-1-基H,1,4和1,5 H-迁移具有比涉及叔氢的相应反应更高的速率系数。 。本文介绍的结果对未来的实验,计算和燃烧建模研究具有重要意义。

著录项

  • 来源
    《Journal of the American Chemical Society》 |2011年第47期|p.19110-19124|共15页
  • 作者单位

    Department of Chemistry and Department of Earth and Atmospheric Science, Purdue University, West Lafayette, Indiana 47907-1393, United States;

    Department of Chemistry and Department of Earth and Atmospheric Science, Purdue University, West Lafayette, Indiana 47907-1393, United States;

  • 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);美国《化学文摘》(CA);
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  • 正文语种 eng
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