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Experimental and kinetic modeling study on flow reactor pyrolysis of iso- pentanol: Understanding of iso-pentanol pyrolysis chemistry and fuel isomeric effects of pentanol

机译:异戊醇流动反应器热解的实验和动力学建模研究:了解异戊醇的热解化学和戊醇的燃料异构效应

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Flow reactor pyrolysis of iso-pentanol was conducted at 30 and 760 torr using synchrotron vacuum ultraviolet photoionization mass spectrometry (SVUV-PIMS). Pyrolysis products, especially radicals and enols, were identified and quantified. Olefins and oxygenated products (mainly aldehyde and enol) were found to be the two major product families in the pyrolysis of iso-pentanol. A kinetic model of iso-pentanol pyrolysis was developed and validated against the new experimental data. The rate of production (ROP) analysis and sensitivity analysis were conducted to understand the pyrolysis chemistry of iso-pentanol. The contribution of unimolecular decomposition reactions to the consumption of iso-pentanol is far less than that of H abstraction reactions at both pressures, which is similar to the situation in 2-methyl-1-butanol pyrolysis, but different from that in n-pentanol pyrolysis. Fuel isomeric effects on the pyrolysis chemistry of pentanol isomers were also investigated. Mole fraction profiles of fuels and major products were measured for other two typical pentanol isomers, i.e. n-pentanol and 2-methyl-1-butanol under the same pyrolysis conditions, while our previous models of n-pentanol and 2-methyl-1-butanol were used for the simulation. The initial decomposition temperatures of two branched pentanol isomers are slightly lower than that of n-pentanol at both pressures. The branched fuel structures strongly influence the molecular structures and formation pathways of fuel decomposition products such as C-4 and C-5 olefins, as well as the formation of benzene and fulvene.
机译:使用同步加速器真空紫外光电离质谱法(SVUV-PIMS)在30和760托下进行异戊醇的流式反应器热解。鉴定并定量了热解产物,特别是自由基和烯醇。发现烯烃和氧化产物(主要是醛和烯醇)是异戊醇热解中的两个主要产物家族。建立了异戊醇热解动力学模型,并针对新的实验数据进行了验证。进行了生产率(ROP)分析和敏感性分析,以了解异戊醇的热解化学。在两个压力下,单分子分解反应对异戊醇消耗的贡献远小于H提取反应的贡献,这与2-甲基-1-丁醇热解的情况相似,但与正戊醇的情况不同热解。还研究了燃料异构体对戊醇异构体热解化学的影响。在相同的热解条件下,对其他两种典型的戊醇异构体,即正戊醇和2-甲基-1-丁醇,测量了燃料和主要产品的摩尔分数分布,而我们以前的正戊醇和2-甲基-1-丁醇模型丁醇用于模拟。在两种压力下,两种支链戊醇异构体的初始分解温度均比正戊醇的分解温度略低。支链燃料结构强烈影响燃料分解产物(例如C-4和C-5烯烃)的分子结构和形成途径,以及苯和富勒烯的形成。

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