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首页> 外文期刊>The journal of physical chemistry, A. Molecules, spectroscopy, kinetics, environment, & general theory >High-pressure rate rules for alkyl + O _2 reactions. 2. the isomerization, cyclic ether formation, and β-scission reactions of hydroperoxy alkyl radicals
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High-pressure rate rules for alkyl + O _2 reactions. 2. the isomerization, cyclic ether formation, and β-scission reactions of hydroperoxy alkyl radicals

机译:烷基+ O _2反应的高压速率规则。 2.氢过氧烷基的异构化,环状醚的形成和β-断裂反应

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The unimolecular reactions of hydroperoxy alkyl radicals (QOOH) play a central role in the low-temperature oxidation of hydrocarbons as they compete with the addition of a second O _2 molecule, which is known to provide chain-branching. In this work we present high-pressure rate estimation rules for the most important unimolecular reactions of the β-, γ-, and δ-QOOH radicals: isomerization to RO _2, cyclic ether formation, and selected β-scission reactions. These rate rules are derived from high-pressure rate constants for a series of reactions of a given reaction class. The individual rate expressions are determined from CBS-QB3 electronic structure calculations combined with canonical transition state theory calculations. Next we use the rate rules, along with previously published rate estimation rules for the reactions of alkyl peroxy radicals (RO _2), to investigate the potential impact of falloff effects in combustion/ignition kinetic modeling. Pressure effects are examined for the reaction of n-butyl radical with O _2 by comparison of concentration versus time profiles that were obtained using two mechanisms at 10 atm: one that contains pressure-dependent rate constants that are obtained from a QRRK/MSC analysis and another that only contains high-pressure rate expressions. These simulations reveal that under most conditions relevant to combustion/ignition problems, the high-pressure rate rules can be used directly to describe the reactions of RO _2 and QOOH. For the same conditions, we also address whether the various isomers equilibrate during reaction. These results indicate that equilibrium is established between the alkyl, RO _2, and γ- and δ-QOOH radicals.
机译:氢过氧烷基自由基(QOOH)的单分子反应在烃的低温氧化中起着核心作用,因为它们与添加第二个O _2分子竞争,后者已知会提供链支化作用。在这项工作中,我们为β-,γ-和δ-QOOH基团最重要的单分子反应提供了高压速率估算规则:RO _2的异构化,环状醚的形成和选择的β断裂反应。这些速率规则是从给定反应类别的一系列反应的高压速率常数得出的。各个速率表达式由CBS-QB3电子结构计算与规范过渡态理论计算相结合确定。接下来,我们使用速率规则以及先前发布的烷基过氧自由基(RO _2)反应速率估算规则,以研究衰减效应在燃烧/点火动力学建模中的潜在影响。通过比较浓度与时间的关系曲线(其中包含两种在10 atm的机理)获得的浓度与时间曲线,检查了正丁基与O _2反应的压力效应:一种包含从压力依赖性速率常数(通过QRRK / MSC分析获得)和另一个仅包含高压速率表达式。这些模拟表明,在大多数与燃烧/点火问题相关的条件下,高压速率规则可直接用于描述RO _2和QOOH的反应。对于相同的条件,我们还讨论了反应过程中各种异构体是否平衡。这些结果表明在烷基,RO _2以及γ-和δ-QOOH自由基之间建立了平衡。

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