Development and application of wustite-based ammonia synthesis catalysts

被引:20
|
作者
Liu, Huazhang [1 ]
Han, Wenfeng [1 ]
Huo, Chao [1 ]
Cen, Yaqing [1 ]
机构
[1] Zhejiang Univ Technol, Inst Ind Catalysis, Hangzhou 310014, Peoples R China
关键词
Ammonia synthesis; Wustite-based; Catalyst; Production; Application; Industrial technology; Optimization; PRECURSOR PHASE-COMPOSITION; IRON-OXIDE PRECURSOR; X-RAY-DIFFRACTION; DESORPTION PERFORMANCE; CARBON; NITROGEN; PROMOTERS; RUTHENIUM; MECHANISM; PROPERTY;
D O I
10.1016/j.cattod.2019.10.031
中图分类号
O69 [应用化学];
学科分类号
081704 ;
摘要
In the 1980s, Zhejiang University of Technology (ZJUT) started developing a new catalyst for ammonia synthesis which in final form comprises multi-promoters wustite-based catalysts with Fe1-xO as precursor. This became the first new iron catalyst for ammonia synthesis commercialized since Fritz Haber's promoted iron catalyst. The catalyst is commercialized in the existing or new low pressure process. In this paper, the basic theory, method, technology and practice of the wustite-based catalyst in industrial production and application are reviewed. The wustite-based catalysts are still iron-based, however, they are completely different from the magnetite-based catalyst in the preparation principle, chemical composition, crystal structure, and chemical-physical properties. Wustite does not exist in nature, and is a thermodynamically meta-stable phase. Therefore, the Fe1-xO must be firstly synthesized by a chemical method and avoid occurrence reactions of oxidation and disproportionation to obtain a commercial wustite-based catalyst with single phase and stability during the preparation of catalyst. We described the development of the catalyst, starting from the 1980s with studies to elucidate the inhibition mechanism of disproportionation reaction and the effects of temperature and promoters, and to ensure that a single wustite phase is obtained during preparation. This is a prerequisite for ensuring high activity of the catalyst. Scale up of catalyst production and testing were described briefly, as are some process considerations. Secondly, we described the industrial application of the catalyst with studies to elucidate including the industrial bypass testing, the foundation research on the industrial application technology such as industrial reduction technology due to too fast reduction rate, development of industrial technology taking out the excess reaction heat, optimization of reaction conditions using wustite-based catalyst, low-pressure ammonia process, and optimization of synthesis loop process and convertor for existing synthesis ammonia plant, etc. The wustite-based catalysts exhibit about 70 % higher catalytic activity, and 65.9 % higher the TOF. It is the most advanced commercial iron catalyst with the highest activity and low production cost in the world, and it is competitive with ruthenium-based ammonia synthesis catalysts. In industrial application, compared to the classic magnetite-based catalyst for ammonia synthesis, the higher activity allows lower operating temperatures and loop pressures. Existing loops can utilize it by running at minimum possible loop pressure for extended period of time. This allows to increase ammonia plant performance, efficiency and economy without the need of any revamping. New plants could be designed for lower pressure operation and with a smaller synthesis converter. This all together leads to lower capital expend tureen lower energy costs. The activation of this catalyst is fast and easy, which saves time and cost. Wustite-based catalyst is clearly a perfect low cost alternative to Ru/C catalyst.
引用
收藏
页码:110 / 127
页数:18
相关论文
共 50 条
  • [11] Wustite based iron-cobalt catalyst for ammonia synthesis
    Czekajlo, Lukasz
    Lendzion-Bielun, Zofia
    CATALYSIS TODAY, 2017, 286 : 114 - 117
  • [12] Promoted Ru/PrOx Catalysts for Mild Ammonia Synthesis
    Drummond, Samuel M.
    Naglic, Jennifer
    Onsree, Thossaporn
    Balijepalli, Santosh K.
    Allegro, Alexis
    Albino, Stephanie N. Orraca
    O'Connell, Katherine M.
    Lauterbach, Jochen
    CATALYSTS, 2024, 14 (09)
  • [13] Development of catalysts for ammonia synthesis based on metal phthalocyanine materials
    Morlanes, Natalia
    Almaksoud, Walid
    Rai, Rohit K.
    Ould-Chikh, Samy
    Ali, Mohammed M.
    Vidjayacoumar, Balamurugan
    Al-Sabban, Bedour E.
    Albahily, Khalid
    Basset, Jean-Marie
    CATALYSIS SCIENCE & TECHNOLOGY, 2020, 10 (03) : 844 - 852
  • [14] Progress in Green Ammonia Synthesis Technology: Catalytic Behavior of Ammonia Synthesis Catalysts
    Tian, Feiyang
    Zhou, Nan
    Chen, Wenqian
    Zhan, Jing
    Tang, Liang
    Wu, Minghong
    ADVANCED SUSTAINABLE SYSTEMS, 2024, 8 (08)
  • [15] Development of ruthenium-based catalysts for ammonia synthesis via polyol reduction method
    Anello, Gaetano
    De Luna, Giulia
    De Felice, Giulia
    Saker, Assia
    Di Felice, Luca
    Gallucci, Fausto
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2024, 86 : 922 - 930
  • [16] Process Intensification for Ammonia Synthesis in Multibed Reactors with Fe-Wustite and Ru/C Catalysts
    Tripodi, Antonio
    Conte, Francesco
    Rossetti, Ilenia
    INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2021, 60 (02) : 908 - 915
  • [17] Promoter effect on the reduction behavior of wuestite-based catalysts for ammonia synthesis
    Folke, Jan
    Dembele, Kassioge
    Girgsdies, Frank
    Song, Huiqing
    Eckert, Rene
    Reitmeier, Stephan
    Reitzmann, Andreas
    Schloegl, Robert
    Lunkenbein, Thomas
    Ruland, Holger
    CATALYSIS TODAY, 2022, 387 : 12 - 22
  • [18] Optimization of promoters for Fe1-xO-based ammonia synthesis catalysts
    Sun Z.
    Liu H.
    Ye P.
    Han W.
    Huagong Jinzhan/Chemical Industry and Engineering Progress, 2022, 41 (04): : 1886 - 1893
  • [19] Combinatorial supports for Ru-based ammonia synthesis catalysts
    Huang, GY
    Lin, JD
    Xu, ZX
    Liao, DW
    CHINESE CHEMICAL LETTERS, 2005, 16 (02) : 273 - 274
  • [20] Combinatorial Supports for Ru-based Ammonia Synthesis Catalysts
    Gui Yu HUANG1
    ChineseChemicalLetters, 2005, (02) : 273 - 274