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典型雪茄烟叶热解/燃烧特性及动力学分析

Pyrolysis and combustion characteristics and kinetics of typical cigar tobacco leaves

  • 摘要: 为了解雪茄烟叶原料的热解燃烧特性及气相产物释放规律,利用热重分析仪结合傅里叶红外光谱仪(TG-FTIR)研究了在氮气和空气气氛下,雪茄烟叶的热失重过程和气态产物组成,并采用Flynn-Wall-Ozawa方法计算不同气氛下的反应活化能。结果表明:①雪茄烟叶的热解和燃烧分别表现为4个失重阶段:脱水、易挥发分和半纤维素的热解、纤维素的热解、木质素热解及炭化。雪茄烟叶在空气气氛下反应剧烈,综合燃烧特性指数为7.15×10-8 %2·min-2·K-3。②雪茄烟叶在氮气和空气气氛下的热分解气体产物成分相似,包括H2O、CO2、CO和CH4,以及醛类、酮类、酸类、醇类、酚类和芳香族化合物等有机物,气体释放规律与热失重曲线相符。③雪茄烟叶的热解燃烧过程较为复杂,氮气气氛下热解的活化能分布在207 ~ 301 kJ·mol-1之间,空气气氛下燃烧的活化能分布在200 ~ 595 kJ·mol-1之间,活化能随转化率的增加呈先增大后减小再增大的趋势。

     

    Abstract: In order to understand the pyrolysis and combustion properties and the release of volatile phase products from cigar tobacco leaves, the weight loss and evolved gaseous products of cigar tobacco leaves pyrolyzed in nitrogen and air atmospheres were studied by thermogravimetric analyzer combined with Fourier Infrared Spectrometer (TG-FTIR). The reaction activation energy in the different atmospheres was calculated with Flynn-Wall-Ozawa method. The results showed that: 1) The pyrolysis and combustion of cigar tobacco leaves had four weight loss stages: dehydration, pyrolysis of hemicellulose, pyrolysis of cellulose, pyrolysis and carbonization of lignin. Cigar tobacco leaves reacted violently in the air atmosphere with a comprehensive combustion characteristic index of 7.15×10-8 %2·min-2·K-3. 2) The main gaseous components of thermal decomposition of cigar tobacco leaves were similar in nitrogen and air atmospheres, including H2O, CO2, CO and CH4 as well as organic volatile substances, such as aldehydes, ketones, acids, alcohols, phenols and aromatic compounds; and the trend of gas/volatile releases was consistent with the thermogravimetric curve. 3) The pyrolysis process of cigar tobacco leaves was more complicated than flue-cured tobacco leaves for cigarettes. The activation energy of pyrolysis process ranged from 207 to 301 kJ·mol-1, and the activation energy of combustion process was from 200 to 595 kJ·mol-1. With the increase of conversion rate, the activation energy increased first, then decreased and increased again.

     

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