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Theoretical kinetics analysis for OH radical addition to 1,3-butadiene and application to model prediction

机译:OH激进加入1,3-丁二烯和模型预测应用的理论动力学分析

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The kinetics of the 1,3-butadiene + (O) over dotH reactions and its impact on combustion kinetic model predictions have been investigated in this work. Geometries and vibrational frequencies for all stationary points were determined at the BH&HLYP/6-311++G(d,p) level of theory, accounting explicitly for the degeneration of torsional motions into hindered rotors. Electronic energies for all stationary points on the related potential energy surface were calculated at the ROCCSD(T)/CBS and G4 levels of theory. Hydroxyl radical addition to the 1,3-butadiene terminal carbon forming allylic hydroxyl radical is the dominant addition entrance channel, while CH2=CHCHO-(C) over dotH and allyl radical + formaldehyde are the main bimolecular products. A three-membered ring intermediate (IT7) is found to be important in merging pathways originated from terminal and central addition reactions. Pressure and temperature dependent rate constants for OH radical addition to 1,3-butadiene are determined integrating the Master Equation on the investigated potential energy surface. Variational transition state theory was used to determine rate constants for the terminal and central addition entrance channels, finding a good agreement with previous experimental measurements. Hydrogen atom abstraction reactions by (O) over dotH radicals from 1,3-butadiene have also been investigated in this work. Rate constants of the important reactions and thermochemistry data for key species calculated in this work were incorporated into AramcoMech3.0 to investigate their influence on the prediction of the reactivity active during 1,3-butadiene oxidation. (C) 2020 The Combustion Institute. Published by Elsevier Inc. All rights reserved.
机译:在这项工作中,已经研究了1,3-丁二烯+(O)对DOTH反应的动力学及其对燃烧动力学模型预测的影响。所有静止点的几何和振动频率在BH&Hlyp / 6-311 ++ g(d,p)理论水平上确定,明确核算扭转运动的退变以阻碍转子。在ROCCSD(T)/ CBS和G4级理论上计算相关势能表面上所有固定点的电子能量。羟基自由基除了1,3-丁二烯末端碳形成烯丙基羟基自由基是主要的附加入口通道,而CH2 = CHCHO-(C)通过DOTH和烯丙基根醛+甲醛是主要的双分子产物。发现三元环中间体(IT7)在源自末端和中央加法反应的合并途径中是重要的。 OH基团加入至1,3-丁二烯的压力和温度依赖性速率常数在将主方程上与研究的潜在能量表面相结合。变分过渡状态理论用于确定终端和中央附加入口通道的速率常数,找到与先前的实验测量的良好一致性。在这项工作中还研究了(o)对1,3-丁二烯的氢原子抽象反应(o)over over doth自由基。本工作中计算的关键物种的重要反应和热化学数据的常数纳入Aramcomech3.0,以研究其对1,3-丁二烯氧化期间活性活性的预测的影响。 (c)2020燃烧研究所。由elsevier Inc.出版的所有权利保留。

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