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首页> 外文期刊>Russian journal of physical chemistry, B. >Mechanisms of the oxidation and combustion of normal paraffin hydrocarbons: Transition from C_1-C_(10) to C_(11)-C_(16)
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Mechanisms of the oxidation and combustion of normal paraffin hydrocarbons: Transition from C_1-C_(10) to C_(11)-C_(16)

机译:正构烷烃的氧化和燃烧机理:从C_1-C_(10)到C_(11)-C_(16)的转变

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Recently, detailed kinetic mechanisms of the oxidation and combustion of higher hydrocarbons, composed of hundreds of components and thousands of elementary reactions, have been proposed. Despite the undoubtful advantages of such detailed mechanisms, their application to simulations of turbulent combustion and gas dynamic phenomena is difficult because of their complexity. At the same time, to some extent limited, they cannot be considered exhaustive. This work applies previously proposed algorithm for constructing an optimal mechanism of the high- and low-temperature oxidation and combustion of normal paraffin hydrocarbons, which takes into account the main processes determining the reaction rate and the formation of key intermediates and final products. The mechanism has the status of a nonempirical detailed mechanism, since all the constituent elementary reactions have a kinetic substantiation. The mechanism has two specific features: (1) it does not include reactions of so-called double oxygen addition (first to the peroxide radical, and then to its isomeric form), i.e., the first addition turns out to be sufficient; (2) it does not include isomeric compounds and their derivatives as intermediates, since this oxidation pathway is slower than the oxidation of molecules and radicals with normal structure. Application of the algorithm makes it possible to compile a compact mechanism, which is important for modeling chemical processes involving paraffin hydrocarbons C_n with large n. Previously, based on this algorithm, compact mechanisms of the oxidation and combustion of propane, n-butane, n-pentane, n-hexane, n-heptane, n-octane, n-nonane, and n-decane have been constructed. In this work, we constructed a nonempirical detailed mechanism of the oxidation and combustion of hydrocarbons from n-undecane to n-hexadecane. The most important feature of the new mechanism is its staged nature, which manifests itself through the emergence of cool and blue flames during low-temperature autoignition. The calculation results are compared with experimental data.
机译:近来,已经提出了由数百种组分和数千种基本反应组成的高级烃的氧化和燃烧的详细动力学机理。尽管此类详细机制具有无庸置疑的优点,但由于它们的复杂性,将其应用于湍流燃烧和气体动力学现象的模拟仍然很困难。同时,在一定程度上受限制的情况下,不能认为它们是详尽无遗的。这项工作应用先前提出的算法来构建正构烷烃的高温和低温氧化和燃烧的最佳机理,该算法考虑了确定反应速率以及关键中间体和最终产物形成的主要过程。该机制具有非经验详细机制的状态,因为所有构成的基本反应都具有动力学上的依据。该机理具有两个具体特征:(1)它不包括所谓的双氧加成反应(首先加成过氧化物自由基,然后成其异构形式),即第一次加成就足够了; (2)它不包括异构化合物及其衍生物作为中间体,因为这种氧化途径比具有正常结构的分子和自由基的氧化过程慢。该算法的应用使得有可能编译一个紧凑的机制,这对于模拟涉及具有大n的链烷烃C_n的化学过程非常重要。以前,基于该算法,已经构造了丙烷,正丁烷,正戊烷,正己烷,正庚烷,正辛烷,正壬烷和正癸烷的氧化和燃烧的紧凑机制。在这项工作中,我们构建了碳氢化合物从正十一烷到正十六烷的氧化和燃烧的非经验详细机理。新机制的最重要特征是它的分阶段特性,它通过在低温自动点火过程中出现冷蓝火焰来体现。将计算结果与实验数据进行比较。

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