Experiment and rate equation modeling of Fe oxidation kinetics in chemical looping combustion

被引:32
|
作者
Bao, Jinhua [1 ]
Li, Zhenshan [1 ]
Sun, Hongming [1 ]
Cai, Ningsheng [1 ]
机构
[1] Tsinghua Univ, Dept Thermal Engn, Beijing Municipal Key Lab Utilizat & Reduct CO2, Key Lab Thermal Sci & Power Engn,Minist Educ, Beijing 100084, Peoples R China
基金
中国国家自然科学基金;
关键词
Chemical looping; Nucleation; Growth; Solid product; Gas-solid reaction; OXYGEN CARRIER PARTICLES; IRON-OXIDE; CARBONATION REACTION; PRODUCT LAYER; CO2; REDUCTION; CAO; TEMPERATURE; REACTIVITY; SEPARATION;
D O I
10.1016/j.combustflame.2012.12.010
中图分类号
O414.1 [热力学];
学科分类号
摘要
Chemical looping combustion (CLC) is a promising technology with inherent CO2 separation, in which the oxygen required for fuel combustion is transferred by a so-called oxygen carrier through a redox cycle. The fundamental steps involved in CLC are gas-solid reactions, i.e., metal oxidation and oxide reduction. Gas-solid reaction kinetics is important for CLC and has been studied by many researchers. Most research focuses on macroscopic behavior, such as the effect of the solid product on the pore structure inside particles. However, the nucleation and growth of the solid product is a critical step for the gas-solid reaction, and the growth mechanism of the solid product is still not clear. In this work, the nucleation and growth process of the solid product (iron oxides) in different oxidation stages of the Fe in CLC was studied. The rate equation theory considering surface reaction and diffusion, the nucleation and growth of solid products, and Ostwald ripening was used to analyze the evolution of island density with time and its effect on the kinetics of Fe oxidation. The oxidation time, the reaction temperature, and the oxygen concentration were considered. It was found that the solid product appeared as dispersed, three-dimensional islands. At the beginning of the reaction, the islands were small and densely distributed on the reactant surface. As the oxidation time increased, the size of the islands became larger, while the density decreased at first, then increased. The temperature increase caused the islands to grow in size while the distribution of the islands grew sparser. The O-2 concentration only influenced the island density. The nucleation or growth of the islands changed the surface morphology of the solid product, and decreased the apparent reaction rate. The reaction kinetics was greatly influenced by the arrangement of the solid product. (C) 2012 The Combustion Institute. Published by Elsevier Inc. All rights reserved.
引用
收藏
页码:808 / 817
页数:10
相关论文
共 50 条
  • [1] Chemical-Looping Combustion Process: Kinetics and Mathematical Modeling
    Iliuta, Ion
    Tahoces, Raul
    Patience, Gregory S.
    Rifflart, Sebastien
    Luck, Francis
    [J]. AICHE JOURNAL, 2010, 56 (04) : 1063 - 1079
  • [2] Ilmenite oxidation kinetics for pressurized chemical looping combustion of natural gas
    Rana, Shazadi
    Sun, Zhenkun
    Mehrani, Poupak
    Hughes, Robin
    Macchi, Arturo
    [J]. APPLIED ENERGY, 2019, 238 : 747 - 759
  • [3] Reduction and Oxidation Kinetics of Fe-Mn-Based Minerals from Southwestern Colombia for Chemical Looping Combustion
    Velasco-Sarria, Francisco J.
    Forero, Carmen R.
    Arango, Eduardo
    Adanez, Juan
    [J]. ENERGY & FUELS, 2018, 32 (02) : 1923 - 1933
  • [4] Oxidation kinetics of adsorbent-decorated Fe-based oxygen carrier for chemical-looping combustion
    [J]. Zhao, Hai-Bo (klinsmannzhb@163.com), 1600, Science Press (44):
  • [5] Reduction and oxidation kinetics of Tierga iron ore for Chemical Looping Combustion with diverse fuels
    Mendiara, T.
    Abad, A.
    de Diego, L. F.
    Garcia-Labiano, F.
    Gayan, P.
    Adanez, J.
    [J]. CHEMICAL ENGINEERING JOURNAL, 2019, 359 : 37 - 46
  • [6] Reactor Design, Cold-Model Experiment and CFD Modeling for Chemical Looping Combustion
    Zhang, Shaohua
    Ma, Jinchen
    Hu, Xintao
    Zhao, Haibo
    Wang, Baowen
    Zheng, Chuguang
    [J]. CLEANER COMBUSTION AND SUSTAINABLE WORLD, 2012, : 790 - 794
  • [7] Kinetics of Magnetite (Fe3O4) Oxidation to Hematite (Fe2O3) in Air for Chemical Looping Combustion
    Monazam, Esmail R.
    Breault, Ronald W.
    Siriwardane, Ranjani
    [J]. INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2014, 53 (34) : 13320 - 13328
  • [8] Reduction and oxidation kinetics of nickel-based oxygen-carriers for chemical-looping combustion and chemical-looping reforming
    Dueso, Cristina
    Ortiz, Maria
    Abad, Alberto
    Garcia-Labiano, Francisco
    de Diego, Luis F.
    Gayan, Pilar
    Adanez, Juan
    [J]. CHEMICAL ENGINEERING JOURNAL, 2012, 188 : 142 - 154
  • [10] Kinetics schemes for chemical-looping combustion of methane
    Zhou, Zhiquan
    Bollas, George
    [J]. ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2012, 243