Quantification of the CO2 mineralization potential of ironmaking and steelmaking slags under direct gas-solid reactions in flue gas

被引:44
|
作者
Myers, Corey A. [1 ]
Nakagaki, Takao [1 ]
Akutsu, Kosei [1 ]
机构
[1] Waseda Univ, Shinjuku Ku, 3-4-1 Okubo, Tokyo 1698555, Japan
关键词
CCUS; CO2; sequestration; Mineral carbonation; CARBON-DIOXIDE; ENERGY EFFICIENCY; SIZE DISTRIBUTION; PARTICLE-SHAPE; STEEL SLAGS; SILICATES; KINETICS; WATER; DRY; 3D;
D O I
10.1016/j.ijggc.2019.05.021
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
The potential for slag to reduce CO2 emissions in the iron and steelmaking industry through CO2 mineralization has long been recognized. Direct, gas-solid CO2 mineralization has major benefits of simplicity, cost, and CO2 accounting but has been historically plagued by 'slow kinetics'. To determine the cause of the slow kinetics, 22 crystalline minerals and 13 amorphous compounds common to slag were synthesized and reacted with CO2 in an incubator held at 30 degrees C, a relative humidity of 90%, and a molar CO2 concentration of 5% and 20%. It was found that diffusivity through the product layer varies by (similar to)8 orders of magnitude between minerals, with several minerals displaying complete passivation after only a few nanometers of mineralization. Such unreactive materials can effectively occlude mineralization of more reactive minerals ('mineral locking'). Quantitative theories were developed to determine the influence of mineral locking and diffusivity variability on the bulk CO2 mineralization rate. By reducing the size ratio of slag particle to the internal mineral grains the effects of mineral locking can be removed. Such alteration can be achieved by grinding or by generating larger mineral grains via a slow solidification of molten slag. As grinding is ultimately a necessary activity of direct, gas-solid CO2 mineralization, the mineral-specific grinding energy for 39 common slag compounds was calculated and used to determine the CO2 emissions associated with grinding. These data, along with a modification to the Shrinking Core Model, were used to determine the rate of CO2 mineralization and the net CO2 mineralization of blast furnace, basic oxygen furnace, and electric arc furnace slag. Results indicate that direct, gas-solid CO2 mineralization can be achieved in 1 h at very high net CO2 mineralization efficiencies, especially when renewable energy is the power source and when slag has been slowly solidified. Globally, this method could provide gigatonnes of CO2 emissions reduction by the end of the century.
引用
收藏
页码:100 / 111
页数:12
相关论文
共 50 条
  • [21] Experimental study on the suppression of gas explosion using the gas-solid suppressant of CO2/ABC powder
    Luo, Zhenmin
    Wang, Tao
    Tian, Zhihui
    Cheng, Fangming
    Deng, Jun
    Zhang, Yutao
    JOURNAL OF LOSS PREVENTION IN THE PROCESS INDUSTRIES, 2014, 30 : 17 - 23
  • [22] Mineralization of flue gas CO2 with coproduction of valuable magnesium carbonate by means of magnesium chloride
    Xie, Heping
    Wang, Yufei
    Chu, Wei
    Ju, Yang
    CHINESE SCIENCE BULLETIN, 2014, 59 (23): : 2882 - 2889
  • [23] Direct flue gas CO2 mineralization using activated serpentine: Exploring the reaction kinetics by experiments and population balance modelling
    Werner, Mischa
    Verduyn, Marcel
    van Mossel, Gert
    Mazzotti, Marco
    10TH INTERNATIONAL CONFERENCE ON GREENHOUSE GAS CONTROL TECHNOLOGIES, 2011, 4 : 2043 - 2049
  • [24] Effect of a diffuser on gas-solid behavior in CFB riser for CO2 capture
    Yoo, Hoanju
    Moon, Hokyu
    Seo, Hwimin
    Park, Yong Ki
    Cho, Hyung Hee
    JOURNAL OF MECHANICAL SCIENCE AND TECHNOLOGY, 2016, 30 (08) : 3661 - 3666
  • [25] Artificial photosynthetic system for diluted CO2 reduction in gas-solid phase
    Ya Wang
    Jian-Xin Wei
    Hong-Liang Tang
    Lu-Hua Shao
    Long-Zhang Dong
    Xiao-Yu Chu
    Yan-Xia Jiang
    Gui-Ling Zhang
    Feng-Ming Zhang
    Ya-Qian Lan
    Nature Communications, 15 (1)
  • [26] Use of direct gas-solid carbonation process for fixation of CO2 as mineral carbonates in Turkish fly ashes
    Altiner, Mahmut
    INTERNATIONAL JOURNAL OF COAL PREPARATION AND UTILIZATION, 2021, 41 (09) : 661 - 677
  • [27] One more step to realistic CO2 reduction reactions——geometric structures evolutions at gas-solid interface
    Ya-Qiang Xie
    Xin Yu
    Ting Wang
    Rare Metals, 2024, 43 (02) : 849 - 852
  • [28] Effect of a diffuser on gas-solid behavior in CFB riser for CO2 capture
    Hoanju Yoo
    Hokyu Moon
    Hwimin Seo
    Yong Ki Park
    Hyung Hee Cho
    Journal of Mechanical Science and Technology, 2016, 30 : 3661 - 3666
  • [29] Lagrangian simulation of the deposition of CO2 gas-solid sudden expansion flow
    Huang, Dong-Ping
    Ding, Guo-Liang
    Quack, Hans
    Shanghai Jiaotong Daxue Xuebao/Journal of Shanghai Jiaotong University, 2007, 41 (03): : 419 - 423
  • [30] Lagrangian simulation of deposition of CO2 gas-solid sudden expansion flow
    Huang D.
    Ding G.
    Quack H.
    Frontiers of Energy and Power Engineering in China, 2008, 2 (2): : 216 - 221