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Thermal decomposition of methyl butanoate: Ab initio study of a biodiesel fuel surrogate

机译:丁酸甲酯的热分解:生物柴油燃料替代物的从头算研究

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[GRAPHICS] In this paper, we report a detailed analysis of the breakdown kinetic mechanism for methyl butanoate (MB) using theoretical approaches. Electronic structures and structure-related molecular properties of reactants, intermediates, products, and transition states were explored at the BH&HLYP/cc-pVTZ level of theory. Rate constants for the unimolecular and bimolecular reactions in the temperature range of 300-2500 K were calculated using Rice-Ramsperger-Kassel-Marcus and transition state theories, respectively. Thirteen pathways were identified leading to the formation of small compounds such as CH3, C2H3, CO, CO2, and H2CO. For the initial formation of MB radicals, H, CH3, and OH were considered as reactive radicals participating in hydrogen abstraction reactions. Kinetic simulation results for a high temperature pyrolysis environment show that MB radicals are mainly produced through hydrogen abstraction reactions by H atoms. In addition, the C(O)OCH3 = CO + CH3O reaction is found to be the main source of CO formation. The newly computed kinetic sub-model for MB breakdown is recommended as a core component to study the combustion of oxygenated species.
机译:[GRAPHICS]在本文中,我们报告了使用理论方法对丁酸甲酯(MB)的分解动力学机理进行的详细分析。在BH&HLYP / cc-pVTZ理论水平上探索了反应物,中间体,产物和过渡态的电子结构和与结构相关的分子性质。分别使用莱斯-拉姆斯伯格-卡塞尔-马库斯和过渡态理论计算了300-2500 K温度范围内单分子和双分子反应的速率常数。鉴定出十三种途径导致形成小化合物,例如CH3,C2H3,CO,CO2和H2CO。对于MB自由基的初始形成,H,CH3和OH被视为参与氢提取反应的反应性自由基。高温热解环境的动力学模拟结果表明,MB自由基主要是通过H原子的吸氢反应产生的。另外,发现C(O)OCH3 = CO + CH3O反应是CO形成的主要来源。建议使用新计算的MB分解动力学子模型作为研究含氧物质燃烧的核心组件。

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