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Modeling study on the neopentyl + oxygen reaction system, and, experimental and modeling study on MTBE pyrolysis and oxidation.

机译:新戊基+氧气反应系统的建模研究,以及MTBE热解和氧化的实验和建模研究。

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A modeling study on neopentyl radical + O{dollar}sb2{dollar} reaction system is conducted in this study. Thermodynamic parameters on all species and important transition states are calculated. A thermochemical kinetic analysis is performed.; Thermodynamic parameters are estimated using group additivity with HBI groups. Transition state energies are evaluated from experimental and theoretical data in the literature, combined with elementary reaction modeling to account for temperature effects. Transition state structures, vibration frequencies and entropies are determined from semi-empirical calculations, MOPAC PM3. Kinetics are analyzed with quantum RRK theory for k(E) coupled with modified strong collision analysis of Gilbert et al for fall-off. An elementary reaction mechanism is constructed to model experimental data in the literature focusing on this neopentyl + O{dollar}sb2{dollar} reaction system.; Experimental and modeling studies are conducted for methyl tert-butyl ether (MTBE) pyrolysis and oxidation. Experimental data are presented in argon diluent in a high pressure, flow reactor over a wide temperature range and at three pressures of 4, 7, 10 atm. Three equivalence ratios were selected for the study of oxidation of MTBE. On-line GC-FID was used to analyze reacted mixture from flow reactor. Iso-butene and methanol are observed as major products from both oxidation and pyrolysis of MTBE experiments. Acetone, formaldehyde, propene and methane are additional important products.; A detailed, pressure and temperature dependent, kinetic model is developed for the pyrolysis and oxidation of MTBE. The mechanism includes oxidation and thermal decomposition of the major products and other important intermediates. Thermodynamic parameters, transition states and kinetics are estimated, evaluated and analyzed as in the neopentyl modeling work.; Chebyshev polynomials (7 x 3) incorporate the pressure and temperature dependence into rate constant expressions. A modified Chemkin Interpreter is used to incorporate the combined pressure and temperature dependent rate expressions into the Chemkin integrators.; A specific reaction series: one of {dollar}beta{dollar}-scission of C.CR'COOH, hydroperoxy alkyl radical to form an olefin plus a hydroperoxy methyl radical RC.OOH. This RC.OOH rapidly decompose to lower energy products: RCHO + OH. Little or no evidence is observed for formation of the final products in the transition state of the first {dollar}beta{dollar}-scission step.
机译:本研究进行了新戊基自由基+ O {dollar} sb2 {dollar}反应系统的建模研究。计算所有物种的热力学参数和重要的过渡态。进行热化学动力学分析。热力学参数是通过与HBI基团的基团加和估算的。从文献中的实验和理论数据评估过渡态能量,并结合基本反应模型来考虑温度影响。过渡态结构,振动频率和熵是通过半经验计算MOPAC PM3确定的。使用量子RRK理论对k(E)进行动力学分析,并结合吉尔伯特(Gilbert)等人的改进的强碰撞分析法对脱落进行了分析。构建了基本的反应机理以对文献中的实验数据进行建模,重点是该新戊基+ O {dollar} sb2 {dollar}反应系统。针对甲基叔丁基醚(MTBE)的热解和氧化进行了实验和模型研究。实验数据显示在宽温度范围内且在4、7、10atm的三个压力下的高压流动反应器中的氩气稀释剂中。选择三个当量比用于MTBE的氧化研究。在线GC-FID用于分析来自流动反应器的反应混合物。异丁烯和甲醇是MTBE实验氧化和热解的主要产物。丙酮,甲醛,丙烯和甲烷是其他重要产品。建立了详细的,与压力和温度有关的动力学模型,用于MTBE的热解和氧化。该机理包括主要产物和其他重要中间体的氧化和热分解。与新戊基建模工作一样,对热力学参数,过渡态和动力学进行估算,评估和分析。 Chebyshev多项式(7 x 3)将压力和温度相关性合并到速率常数表达式中。修改后的Chemkin解释器用于将压力和温度相关的速率表达式组合到Chemkin积分器中。具体的反应系列:C.CR'COOH的{beta} {{dollar}}断裂,氢过氧烷基以形成烯烃以及氢过氧甲基RC.OOH之一。 RC.OOH迅速分解为低能产品:RCHO + OH。几乎没有或没有证据表明在第一{dollar} beta {dollar}分裂步骤的过渡状态下最终产物的形成。

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