降冰片二烯氧化:h原子抽离及相关自由基分解反应的理论研究

IF 5.4 2区 工程技术 Q1 ENGINEERING, AEROSPACE Propulsion and Power Research Pub Date : 2023-03-01 DOI:10.1016/j.jppr.2023.02.001
Jintao Chen , Mingxia Liu , Yuxiang Zhu , Kairu Jin , Zhenyu Tian , Lijun Yang , Chong-Wen Zhou
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引用次数: 1

摘要

采用高级从头算方法,研究了降冰片二烯(NBD)与5个自由基(H、O(3P)、OH、CH3和HO2)的氢原子(H原子)萃取反应以及NBD衍生的3个自由基的单分子反应动力学。在M06-2X/6-311++G(d,p)理论水平上对所有反应物、过渡态和产物进行了几何优化和振动频率计算。在QCISD(T)/cc-pVDZ, TZ理论水平上,用MP2/cc-pVDZ, TZ, QZ方法进行单点能量计算的基集修正,确定零点能量修正势能面(PESs)。用传统的过渡态理论(TST)计算了298.15 ~ 2000 K温度下H、O(3P)、OH、CH3、HO2五种自由基对H原子的吸附反应速率常数,用变分过渡态理论(VTST)计算了OH自由基对NBD α-位H原子的吸附反应速率常数。结果表明,低温下NBD α-碳原子与h原子的吸出反应是最关键的反应通道。在298.15 ~ 2000 K的温度范围内,OH自由基吸附h原子反应的总速率常数也是所有反应通道中最快的。采用Rice-Ramsperger-Kassel-Marcus/Master方程(RRKM/ME)计算了在温度300 ~ 2000 K、压力0.01 ~ 100 atm条件下,由h原子萃取反应生成的3个相关C7H7产物自由基的单分子反应速率常数。采用复合方法计算了NBD及其相关自由基的温度依赖性热化学性质。所有计算得到的动力学和热化学数据都可以用于NBD氧化模型的开发。
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Oxidation of norbornadiene: Theoretical investigation on H-atom abstraction and related radical decomposition reactions

The chemical kinetics of hydrogen atom (H-atom) abstraction reactions from norbornadiene (NBD) by five radicals (H, O(3P), OH, CH3, and HO2), and the unimolecular reactions of three NBD derived radicals, were studied through high-level ab-initio calculations. The geometries optimization and vibrational frequencies calculation for all the reactants, transition states, and products were obtained at the M06-2X/6-311++G(d,p) level of theory. The zero-point energy (ZPE) corrected potential energy surfaces (PESs) were determined at the QCISD(T)/cc-pVDZ, TZ level of theory with basis set corrections from MP2/cc-pVDZ, TZ, QZ methods for single point energy calculations. Conventional transition state theory (TST) was used for the rate constants calculations of H-atom abstraction reactions by five radicals (H, O(3P), OH, CH3, and HO2) at temperatures from 298.15 to 2000 K, while the α-site H-atom abstraction reaction rate constant of NBD by OH radical has been obtained through variational transition state theory (VTST). The results show that the H-atom abstraction reactions from the α-carbon atom of NBD are the most critical channels at low temperatures. Total rate constants for H-atom abstraction reactions by OH radical are also the fastest among all of the reaction channels investigated at the temperature range from 298.15 to 2000 K. Rice-Ramsperger-Kassel-Marcus/Master Equation (RRKM/ME) has been used to calculate the pressure- and temperature-dependent rate constants for the unimolecular reactions of three related C7H7 product radicals which generated from H-atom abstraction reaction within temperature ranges of 300–2000 K and pressures of 0.01–100 atm. A combination of composite methods has been used to calculate the temperature-dependent thermochemical properties of NBD and related radicals. All the calculated kinetics and thermochemistry data can be utilized in the model development for NBD oxidation.

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来源期刊
CiteScore
7.50
自引率
5.70%
发文量
30
期刊介绍: Propulsion and Power Research is a peer reviewed scientific journal in English established in 2012. The Journals publishes high quality original research articles and general reviews in fundamental research aspects of aeronautics/astronautics propulsion and power engineering, including, but not limited to, system, fluid mechanics, heat transfer, combustion, vibration and acoustics, solid mechanics and dynamics, control and so on. The journal serves as a platform for academic exchange by experts, scholars and researchers in these fields.
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