Enhanced performance on simultaneous removal of NOx-SO2-CO2 using a high-gravity rotating packed bed and alkaline wastes towards green process intensification

被引:46
|
作者
Chen, Tse-Lun [1 ]
Chen, Yi-Hung [2 ]
Chiang, Pen-Chi [1 ,3 ]
机构
[1] Natl Taiwan Univ, Grad Inst Environm Engn, 71 Chou Shan Rd, Taipei 10673, Taiwan
[2] Natl Taipei Univ Technol, Dept Chem Engn & Biotechnol, 1,Sect 3,Zhongxiao E Rd, Taipei 10608, Taiwan
[3] Natl Taiwan Univ, Carbon Cycle Res Ctr, 71 Fan Lan Rd, Taipei 10672, Taiwan
关键词
High-gravity rotating packed bed; Green process intensification; Multiple air pollutants control; Mass transfer; Energy consumption; FIRED FLUE-GAS; OXYGEN FURNACE SLAG; PHASE MASS-TRANSFER; SIMULTANEOUS ABSORPTION; CARBONATION PROCESS; CO2; FIXATION; SO2; NOX; OXIDATION; PREOXIDATION;
D O I
10.1016/j.cej.2020.124678
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
In order to intensify the gas-liquid absorption processes in the field of energy and environment, high-gravity rotating packed bed (HiGee RPB) has been successfully applied in the multiple air pollutants abatement and CO2 capture by mineralization. Since the mass transfer and chemical reaction through gas-liquid absorption were found to be the key factors affecting acid gas removal, a mass transfer model based on the two-film theory for simultaneous removal of NOx-SO2-CO2 in an RPB was developed in this study. The mass transfer parameters including overall gas-phase mass transfer coefficient (K(G)a), height of a transfer unit (HTU), liquid mass transfer rate (k(L)) and enhancement factor (E) were theoretically determined from the experimental data. The effect of key dimensionless operating factors such as high gravity factor (beta), gas-to-liquid ratio (GLR), and liquid-to-solid ratio (LSR) on mass transfer parameters were evaluated. Based on the results obtained in this study, the enhancement of high gravity filed on mass transfer and removal efficiencies of NOx and CO2 were significantly higher than that of SO2. It was inferred that the carbonation reaction could compensate the removal efficiency of acid gaseous pollutants at the lower mass transfer rate. The relationship between mass transfer rate and energy consumption for the multiple air pollutant control via a HiGee process was established. The favorable operating factors for NOx-SO2-CO2 simultaneous removal in an RPB were suggested as beta of 233.8, GLR of 69.5 and LSR of 40.
引用
收藏
页数:12
相关论文
共 14 条
  • [1] Performance evaluation and process simulation for synergetic removal of NOx, CO2 and PM using green alkaline solution in a high-gravity rotating packed bed
    Chen, Tse-Lun
    Xiong, Yi-Xuan
    Chen, Yi-Hung
    Chiang, Pen-Chi
    Chen, Yen-Hau
    FUEL, 2020, 280
  • [2] Simultaneous removal efficiency of H2S and CO2 by high-gravity rotating packed bed: Experiments and simulation
    Lien Thi Tran
    Tuan Minh Le
    Tuan Minh Nguyen
    Quoc Toan Tran
    Xuan Duy Le
    Minh Quan Pham
    Van Tan Lam
    Manh Van Do
    OPEN CHEMISTRY, 2021, 19 (01): : 288 - 298
  • [3] Integrated leaching-carbonation kinetic model on CO2mineralization of alkaline solid wastes in a high-gravity rotating packed bed
    Chen, Tse-Lun
    Pei, Si-Lu
    Chiang, Pen-Chi
    REACTION CHEMISTRY & ENGINEERING, 2020, 5 (10): : 1929 - 1938
  • [4] Intensified ClO2 Generation/Utilization Mechanism for the High-Gravity SO2/NO x Removal Process within a Rotating Packed Bed
    Wu, Shao
    Lu, Zhicheng
    Duan, Xiaoxi
    Luo, Yong
    Chen, Yang
    Wang, Jiancheng
    Qian, Zhi
    INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2023, 62 (28) : 11236 - 11247
  • [5] Enhanced removal of ammonium from the aqueous solution using a high-gravity rotating packed bed loaded with clinoptilolite
    Wu, Yang
    Chan, Chia-Chi
    Guan, Chung-Yu
    Chang, Chao-Chin
    Li, Jiang-Wei
    Chang, Ching-Yuan
    Yu, Chang-Ping
    SEPARATION AND PURIFICATION TECHNOLOGY, 2019, 221 : 378 - 384
  • [6] Enhancing NOx removal in a high-gravity rotating packed bed with gaseous ClO2 oxidation-absorption: Kinetic, mass transfer, and cost analysis
    Chen, Tse-Lun
    Hong, Chen-Yao
    Chen, Yi-Hung
    Chiang, Pen-Chi
    CHEMICAL ENGINEERING JOURNAL, 2023, 469
  • [7] Stabilization-solidification-utilization of MSWI fly ash coupling CO2 mineralization using a high-gravity rotating packed bed
    Chen, Tse-Lun
    Chen, Yi-Hung
    Dai, Ming-Yen
    Chiang, Pen-Chi
    WASTE MANAGEMENT, 2021, 121 : 412 - 421
  • [8] Stabilization-solidification-utilization of MSWI fly ash coupling CO2 mineralization using a high-gravity rotating packed bed
    Chen, Tse-Lun
    Chen, Yi-Hung
    Dai, Ming-Yen
    Chiang, Pen-Chi
    Waste Management, 2021, 121 : 412 - 421
  • [9] A novel High-Gravity AOP process for enhanced NOx attenuation using alkaline H2O2 as a strong oxidizing reagent: Reaction mechanisms and kinetics
    Qian, Zhi
    Zhang, Jiahao
    Wang, Cuicui
    Chen, Hongyu
    Zheng, Jianzhong
    CHEMICAL ENGINEERING JOURNAL, 2021, 404
  • [10] Performance and mechanism of CO2 absorption during the simultaneous removal of SO2 and NOx by wet scrubbing process
    Lu, Peng
    Yan, Xianhui
    Ye, Lyumeng
    Chen, Dingsheng
    Chen, Dongyao
    Huang, Jianhang
    Cen, Chaoping
    JOURNAL OF ENVIRONMENTAL SCIENCES, 2024, 135 : 534 - 545