Hong Jiang, Hang Zhu, Zhenchen Tang, Jiuxuan Zhang, Zhengyan Qu, Weihong Xing, Rizhi Chen
{"title":"分布器式多通道陶瓷膜反应器中邻甲苯酚的强化液相氢化实验和动力学模型","authors":"Hong Jiang, Hang Zhu, Zhenchen Tang, Jiuxuan Zhang, Zhengyan Qu, Weihong Xing, Rizhi Chen","doi":"10.1021/acs.iecr.4c02947","DOIUrl":null,"url":null,"abstract":"The green production process of <i>o</i>-methylcyclohexanol is particularly important due to its widespread industrial applications. Addressing the issue of low mass transfer efficiency of hydrogen in traditional liquid-phase hydrogenation processes, multichannel ceramic membranes as hydrogen dispersion tools are introduced, successfully achieving uniform and efficient dispersion of hydrogen in the <i>o</i>-cresol cyclohexane solution, thereby promoting the efficient hydrogenation of <i>o</i>-cresol to <i>o</i>-methylcyclohexanol within a fixed-bed reactor. The results show that compared to conventional single-tube feeding methods, the introduction of ceramic membranes significantly enhances the <i>o</i>-cresol conversion and <i>o</i>-methylcyclohexanol selectivity. By optimizing the pore size (200 nm), channel number (19 channels) of the ceramic membranes, and operating conditions, <i>o</i>-cresol conversion and the <i>o</i>-methylcyclohexanol selectivity of no less than 99.5% are achieved under optimal operating conditions. Furthermore, a macro-kinetic model for the membrane-dispersion-enhanced liquid-phase hydrogenation of <i>o</i>-cresol is established, which incorporates an empirical equation for hydrogen solubility. Validation results show that the model-calculated reaction rates of <i>o</i>-cresol are highly consistent with experimental data, with errors controlled within 5%, providing theoretical support for the precise regulation of experimental operating conditions. The work offers a new strategy for the green production of <i>o</i>-methylcyclohexanol.","PeriodicalId":39,"journal":{"name":"Industrial & Engineering Chemistry Research","volume":"23 1","pages":""},"PeriodicalIF":3.9000,"publicationDate":"2024-09-25","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Experimental and Kinetic Model for Enhanced Liquid-Phase Hydrogenation of o-Cresol in a Distributor-Type Multichannel Ceramic Membrane Reactor\",\"authors\":\"Hong Jiang, Hang Zhu, Zhenchen Tang, Jiuxuan Zhang, Zhengyan Qu, Weihong Xing, Rizhi Chen\",\"doi\":\"10.1021/acs.iecr.4c02947\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"The green production process of <i>o</i>-methylcyclohexanol is particularly important due to its widespread industrial applications. Addressing the issue of low mass transfer efficiency of hydrogen in traditional liquid-phase hydrogenation processes, multichannel ceramic membranes as hydrogen dispersion tools are introduced, successfully achieving uniform and efficient dispersion of hydrogen in the <i>o</i>-cresol cyclohexane solution, thereby promoting the efficient hydrogenation of <i>o</i>-cresol to <i>o</i>-methylcyclohexanol within a fixed-bed reactor. The results show that compared to conventional single-tube feeding methods, the introduction of ceramic membranes significantly enhances the <i>o</i>-cresol conversion and <i>o</i>-methylcyclohexanol selectivity. By optimizing the pore size (200 nm), channel number (19 channels) of the ceramic membranes, and operating conditions, <i>o</i>-cresol conversion and the <i>o</i>-methylcyclohexanol selectivity of no less than 99.5% are achieved under optimal operating conditions. Furthermore, a macro-kinetic model for the membrane-dispersion-enhanced liquid-phase hydrogenation of <i>o</i>-cresol is established, which incorporates an empirical equation for hydrogen solubility. Validation results show that the model-calculated reaction rates of <i>o</i>-cresol are highly consistent with experimental data, with errors controlled within 5%, providing theoretical support for the precise regulation of experimental operating conditions. 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Experimental and Kinetic Model for Enhanced Liquid-Phase Hydrogenation of o-Cresol in a Distributor-Type Multichannel Ceramic Membrane Reactor
The green production process of o-methylcyclohexanol is particularly important due to its widespread industrial applications. Addressing the issue of low mass transfer efficiency of hydrogen in traditional liquid-phase hydrogenation processes, multichannel ceramic membranes as hydrogen dispersion tools are introduced, successfully achieving uniform and efficient dispersion of hydrogen in the o-cresol cyclohexane solution, thereby promoting the efficient hydrogenation of o-cresol to o-methylcyclohexanol within a fixed-bed reactor. The results show that compared to conventional single-tube feeding methods, the introduction of ceramic membranes significantly enhances the o-cresol conversion and o-methylcyclohexanol selectivity. By optimizing the pore size (200 nm), channel number (19 channels) of the ceramic membranes, and operating conditions, o-cresol conversion and the o-methylcyclohexanol selectivity of no less than 99.5% are achieved under optimal operating conditions. Furthermore, a macro-kinetic model for the membrane-dispersion-enhanced liquid-phase hydrogenation of o-cresol is established, which incorporates an empirical equation for hydrogen solubility. Validation results show that the model-calculated reaction rates of o-cresol are highly consistent with experimental data, with errors controlled within 5%, providing theoretical support for the precise regulation of experimental operating conditions. The work offers a new strategy for the green production of o-methylcyclohexanol.
期刊介绍:
ndustrial & Engineering Chemistry, with variations in title and format, has been published since 1909 by the American Chemical Society. Industrial & Engineering Chemistry Research is a weekly publication that reports industrial and academic research in the broad fields of applied chemistry and chemical engineering with special focus on fundamentals, processes, and products.