Studying the Three-Phase Hydrogenation of Nitrobenzene to Aniline in the Presence of a Ruthenium Catalyst

被引:2
作者
Doluda, V. Yu [1 ]
Filatova, A. E. [1 ]
Sulman, E. M. [1 ]
Matveeva, V. G. [1 ,2 ]
Mikhailov, S. P. [2 ]
Sidorov, A., I [1 ]
Kosivtsov, Yu Yu [1 ]
机构
[1] Tver State Tech Univ, Tver 170026, Russia
[2] Tver State Univ, Tver 170100, Russia
基金
俄罗斯基础研究基金会;
关键词
nitrobenzene; three-phase hydrogenation; aniline; ruthenium; hypercrosslinked polystyrene; SUPERCRITICAL CARBON-DIOXIDE; SELECTIVE HYDROGENATION; REDUCTION; MILD; NANOPARTICLES; RU;
D O I
10.1134/S2070050419020041
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
The results are presented from studying the catalytic properties of ruthenium catalyst 3% Ru/MN270 based on hypercrosslinked polystyrene in the reaction of three-phase hydrogenation of nitrobenzene to aniline. The following parameters are varied in the study: the NB concentration in the range from 0.12 to 0.24 mol/L, the catalyst concentration in the range from 1.11 x 10(-4) to 11.12 x 10(-4) mol/L, the temperature in the range from 160 to 190 degrees C, and the partial hydrogen pressure in the range from 1.013 to 0.113 MPa. The optimum parameters of the process are determined, allowing 97% conversion of nitrobenzene and a selectivity of 98% towards aniline to be achieved.
引用
收藏
页码:147 / 153
页数:7
相关论文
共 50 条
  • [1] Studying the Three-Phase Hydrogenation of Nitrobenzene to Aniline in the Presence of a Ruthenium Catalyst
    V. Yu. Doluda
    A. E. Filatova
    E. M. Sulman
    V. G. Matveeva
    S. P. Mikhailov
    A. I. Sidorov
    Yu. Yu. Kosivtsov
    Catalysis in Industry, 2019, 11 : 147 - 153
  • [2] Studying the Three-Phase Hydrogenation of Nitrobenzene to Aniline in the Presense of a Ruthenium Catalyst
    Doluda V.Y.
    Filatova A.E.
    Sul’man E.M.
    Matveeva V.G.
    Mikhailov S.P.
    Sidorov A.I.
    Kosivtsov Y.Y.
    Catalysis in Industry, 2018, 10 (4) : 328 - 334
  • [3] Vapor Phase Hydrogenation of Nitrobenzene to Aniline Over Carbon Supported Ruthenium Catalysts
    Srikanth, Chakravartula S.
    Kumar, Vanama Pavan
    Viswanadham, Balaga
    Srikanth, Amirineni
    Chary, Komandur V. R.
    JOURNAL OF NANOSCIENCE AND NANOTECHNOLOGY, 2015, 15 (07) : 5403 - 5409
  • [4] Water-soluble palladium nanoparticles as an active catalyst for highly selective hydrogenation of nitrobenzene to aniline
    Huang, Changru
    Wang, Xiaoyan
    Yu, Fengli
    Yuan, Bing
    Xie, Congxia
    Yu, Shitao
    RESEARCH ON CHEMICAL INTERMEDIATES, 2018, 44 (01) : 13 - 26
  • [5] Hydrogen transfer hydrogenation of nitrobenzene to aniline with Ru(acac)3 as the catalyst
    Wang, Wei
    Zhang, Long
    RESEARCH ON CHEMICAL INTERMEDIATES, 2014, 40 (08) : 3109 - 3118
  • [6] Hydrogen transfer hydrogenation of nitrobenzene to aniline with Ru(acac)3 as the catalyst
    Wei Wang
    Long Zhang
    Research on Chemical Intermediates, 2014, 40 : 3109 - 3118
  • [7] HYDROGENATION OF NITROBENZENE TO FORM ANILINE IN LIQUID PHASE AT ATMOSPHERIC PRESSURE
    YIN Jingbo1 YANG Yana1 Zhubanov K. A2 Bizhanowa N. B2 1 Jilin Institute of Technology
    Chinese Journal of Reactive Polymers, 2001, (01) : 58 - 62
  • [8] In Situ Generation of Cu0 Supported on TiO2 Aerogel as a Catalyst for the Vapour Phase Hydrogenation of Nitrobenzene to Aniline
    Kainthla, Itika
    Gurram, Venkata Ramesh Babu
    Bhanushali, Jayesh T.
    Kamaraju, Seetha Rama Rao
    Keri, Rangappa S.
    Gosavi, Suresh W.
    Jadhav, Arvind H.
    Nagaraja, Bhari Mallanna
    CATALYSIS LETTERS, 2018, 148 (09) : 2891 - 2900
  • [9] Application of Response Surface Methodology for Catalytic Hydrogenation of Nitrobenzene to Aniline Using Ruthenium Supported Fullerene Nanocatalyst
    Keypour, Hassan
    Noroozi, Mohammad
    Rashidi, Alimorad
    Shariati Rad, Masoud
    IRANIAN JOURNAL OF CHEMISTRY & CHEMICAL ENGINEERING-INTERNATIONAL ENGLISH EDITION, 2015, 34 (01): : 21 - 32
  • [10] Preparation of Ni/bentonite catalyst and its applications in the catalytic hydrogenation of nitrobenzene to aniline
    Jiang, Yuexiu
    Li, Xiliang
    Qin, Zuzeng
    Ji, Hongbing
    CHINESE JOURNAL OF CHEMICAL ENGINEERING, 2016, 24 (09) : 1195 - 1200