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Experimental and theoretical study on thermal decomposition of methyl butanoate behind reflected shock waves

机译:反射冲击波后丁酸甲酯热分解的实验和理论研究

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Thermal decomposition of methyl butanoate (MB) diluted in argon was studied behind reflected shock waves in the temperature range of 1229-1427 K using a single pulse shock tube (SPST). The post shock mixtures were analyzed quantitatively using gas chromatography (GC) and qualitatively using Fourier-transform infrared (FTIR) spectroscopy. Methane (CH4), ethylene (C2H4), and acetylene (C2H2) were the major decomposition products. The minor products are ethane (C2H6), propylene (C3H6), 1,3-butadiene (C4H6) and methyl acrylate (C4H6O2). The obtained first order rate coefficient for the decomposition of MB is k(total) (1229-1427 K) = (3.08 +/- 1.11) x 10(12) exp(-(53.6 kcal mol(-1) +/- 4.7)/RT) s(-1), and for the formation of C2H4, the rate coefficient was found to be k(ethylene) (1229-1427 K) = (7.92 +/- 2.72) x 10(9) exp(-(47.6 kcal mol(-1) +/- 4.5)/RT) s(-1). Theoretical kinetic calculations were also performed for the unimolecular hydrogen transfer reactions using canonical variational transition state theory (CVT) with small-curvature tunneling (SCT) corrections. The temperature dependent rate coefficients for the overall reaction were computed in the temperature range of 500-2500 K, and were used to derive the Arrhenius expression: k(total)(theory) (500-2500 K) - (9.05 +/- 1.91) x 10(13) exp(-(70.7 kcal mol(-1) +/- 2.0)/RT) s(-1). A reaction scheme containing 39 species and 66 elementary reactions was proposed to simulate the reactant and product concentrations over the temperature range of 1229-1427 K. The agreement between the experimental results and the model prediction for all the species is observed to be good. The decomposition of MB happens mostly via intramolecular hydrogen transfer than C-C bond and C-O bond fission. The majority of these intramolecular hydrogen transfer reactions are lower energy barrier reactions than the homolytic bond fission reactions.
机译:使用单脉冲激波管(SPST)在1229-1427 K温度范围内的反射激波后面研究了稀释在氩气中的丁酸甲酯(MB)的热分解。震后混合物使用气相色谱(GC)进行定量分析,并使用傅立叶变换红外(FTIR)光谱进行定性分析。甲烷(CH4),乙烯(C2H4)和乙炔(C2H2)是主要的分解产物。次要产品为乙烷(C2H6),丙烯(C3H6),1,3-丁二烯(C4H6)和丙烯酸甲酯(C4H6O2)。获得的MB分解一级速率系数为k(total)(1229-1427 K)=(3.08 +/- 1.11)x 10(12)exp(-(53.6 kcal mol(-1)+/- 4.7 )/ RT)s(-1),并且对于形成C2H4,发现速率系数为k(乙烯)(1229-1427 K)=(7.92 +/- 2.72)x 10(9)exp(- (47.6 kcal mol(-1)+/- 4.5)/ RT)s(-1)。还使用具有小曲率隧穿(SCT)校正的规范变分过渡态理论(CVT)对单分子氢转移反应进行了理论动力学计算。在500-2500 K的温度范围内计算整个反应的温度依赖性速率系数,并用于推导Arrhenius表达式:k(total)(theory)(500-2500 K)-(9.05 +/- 1.91 )x 10(13)exp(-(70.7 kcal mol(-1)+/- 2.0)/ RT)s(-1)。提出了一个包含39个反应物种和66个基本反应的反应方案,以模拟1229-1427 K温度范围内的反应物和产物浓度。实验结果与所有物种的模型预测之间的一致性良好。 MB的分解主要通过分子内氢转移发生,而不是通过C-C键和C-O键裂变。这些分子内氢转移反应中的大多数是比均溶键裂变反应低的能垒反应。

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