Direct carbonylation of nitrobenzene to phenylisocyanate using gas-liquid slug flow in microchannel

被引:35
|
作者
Takebayashi, Yoshihiro [1 ]
Sue, Kiwamu [1 ]
Yoda, Satoshi [1 ]
Furuya, Takeshi [1 ]
Mae, Kazuhiro [2 ]
机构
[1] Natl Inst Adv Ind Sci & Technol A1ST, Nanosyst Res Inst, Tsukuba, Ibaraki 3058565, Japan
[2] Kyoto Univ, Dept Chem Engn, Grad Sch Engn, Nishikyo Ku, Kyoto 6158510, Japan
关键词
Microreactor; Non-phosgene isocyanate synthesis; Carbon monoxide; Palladium catalyst; Mass transfer; Interfacial area-to-volume ratio; AROMATIC NITRO-COMPOUNDS; MICROSTRUCTURED REACTORS; ISOCYANATES; AMINOCARBONYLATION; TECHNOLOGY; PRINCIPLES; CHEMISTRY; CO;
D O I
10.1016/j.cej.2011.11.031
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
A microreaction system was developed for non-phosgene direct isocyanate synthesis from nitrobenzene and CO gas at pressure (9.5 bar) much lower than those in conventional ones (>100 bar). A gas-liquid slug flow of the reactant mixture was formed in the microchannel for efficient mass transfer across the gas-liquid interfaces. The isocyanate yield of the microflow reaction was shown to be three to six times higher than that of the batch reaction, depending on the inner diameter (id.) of the microtube. Higher isocyanate yield was obtained in a narrow-bore tube (0.5 mm id.) than in a wide-bore tube (1.0 mm id.). The results were interpreted in terms of the length of the liquid slug monitored through transparent PFA tubes. The liquid slug length in the narrow-bore tube (0.6 +/- 0.2 mm) was found to be shorter than that in the wide-bore tube (1.1 +/- 0.1 mm). This is consistent with the higher isocyanate yield obtained in the narrow-bore tube, because the shorter liquid slug has the larger gas-liquid interfacial area per unit volume. (C) 2011 Elsevier BM. All rights reserved.
引用
收藏
页码:250 / 254
页数:5
相关论文
共 50 条
  • [1] Enhanced production of ethyl pyruvate using gas-liquid slug flow in microchannel
    Yasukawa, Toshiya
    Ninomiya, Wataru
    Ooyachi, Ken
    Aoki, Nobuaki
    Mae, Kazuhiro
    CHEMICAL ENGINEERING JOURNAL, 2011, 167 (2-3) : 527 - 530
  • [2] Characteristics of Gas-Liquid Slug Flow in Honeycomb Microchannel Reactor
    Jiang, Youkai
    Zhang, Yaheng
    Zhang, Jie
    Tang, Zhiyong
    ENERGIES, 2022, 15 (04)
  • [3] The Effect of System Pressure on Gas-Liquid Slug Flow in a Microchannel
    Yao, Chaoqun
    Dong, Zhengya
    Zhao, Yuchao
    Chen, Guangwen
    AICHE JOURNAL, 2014, 60 (03) : 1132 - 1142
  • [4] Gas-liquid slug flow
    Fabre, J
    MODELLING AND EXPERIMENTATION IN TWO-PHASE FLOW, 2003, (450): : 117 - 156
  • [5] Characteristics of Gas-Liquid Slug Flow in Microchannel by Instantaneous Liquid Film Thickness Measurement
    SUN Yanhong
    CHEN Wenjie
    LU Jinli
    WANG Changlong
    JournalofThermalScience, 2022, 31 (04) : 1194 - 1205
  • [6] Characteristics of Gas-Liquid Slug Flow in Microchannel by Instantaneous Liquid Film Thickness Measurement
    Yanhong Sun
    Wenjie Chen
    Jinli Lu
    Changlong Wang
    Journal of Thermal Science, 2022, 31 : 1194 - 1205
  • [7] Characteristics of Gas-Liquid Slug Flow in Microchannel by Instantaneous Liquid Film Thickness Measurement
    Sun Yanhong
    Chen Wenjie
    Lu Jinli
    Wang Changlong
    JOURNAL OF THERMAL SCIENCE, 2022, 31 (04) : 1194 - 1205
  • [8] Fluid dynamics of gas-liquid slug flow under the expansion effect in a microchannel
    Yin, Yaran
    Tian, Xinyu
    Zhu, Xingxing
    Liu, Huican
    Zhang, Xianming
    Zhu, Chunying
    Fu, Taotao
    Ma, Youguang
    CHEMICAL ENGINEERING SCIENCE, 2025, 302
  • [9] The effect of liquid viscosity and modeling of mass transfer in gas-liquid slug flow in a rectangular microchannel
    Yao, Chaoqun
    Zhao, Yuchao
    Zheng, Jia
    Zhang, Qi
    Chen, Guangwen
    AICHE JOURNAL, 2020, 66 (05)
  • [10] SLUG FREQUENCY IN HORIZONTAL GAS-LIQUID SLUG FLOW
    GRESKOVICH, EJ
    SHRIER, AL
    INDUSTRIAL & ENGINEERING CHEMISTRY PROCESS DESIGN AND DEVELOPMENT, 1972, 11 (02): : 317 - +