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Dynamic modeling of a dual fluidized-bed system with the circulation of dry sorbent for CO2 capture

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  • Ju, Youngsan
  • Lee, Chang-Ha

Abstract

In CO2 capture processes with the circulation of dry sorbents, the regeneration energy as well as the capture efficiency are the key factors determining the overall energy efficiency of the CO2 capture. In an aspect of repeated circulation and regeneration of a sorbent, a dynamic model for a dual fluidized-bed system was developed, which includes a fast fluidized-bed carbonator and a bubbling fluidized-bed regenerator. A potassium carbonate-based sorbent for CO2 capture was applied in the fluidized-bed system and rigorous kinetic models for the carbonation and regeneration reactions were adopted. The validity of the developed model was confirmed by accurately predicting the experimental results from the dual fluidized-bed system at various operating conditions. The CO2 removal performance was found to slightly deteriorate from 52.8 to 51.9% during continuous cyclic operation when the regeneration was carried out under a nitrogen atmosphere at 150 °C. However, when CO2 gas was used for the regeneration under the same conditions, the capture performance dropped to 18.6% owing to partial regeneration of the sorbent. A case study for the regeneration condition was conducted using a CO2-rich gas to find the effective regeneration condition. The regeneration conversion under CO2 atmosphere could be improved by increasing the regeneration gas velocity and regeneration temperature. At a regeneration temperature of 160 °C, the capture performance was found to be 73.2%, with the energy required to capture one mole of CO2 being 234.8 kJ/mol-CO2. To reduce the energy requirement to less than 200 kJ/mol-CO2 in the dual fluidized-bed system, a granulated sorbent, satisfying the physical and chemical stability for fluidized-bed operation, should be developed for the regeneration below 145 °C with the same working capacity (0.46 mol/kg-solid). Alternatively, the working capacity should be improved by 30% at the regeneration temperature of 160 °C. The developed model can be further used for improving capture performance and energy efficiency.

Suggested Citation

  • Ju, Youngsan & Lee, Chang-Ha, 2019. "Dynamic modeling of a dual fluidized-bed system with the circulation of dry sorbent for CO2 capture," Applied Energy, Elsevier, vol. 241(C), pages 640-651.
  • Handle: RePEc:eee:appene:v:241:y:2019:i:c:p:640-651
    DOI: 10.1016/j.apenergy.2019.03.070
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    1. Li, Huanan & Wei, Yi-Ming & Mi, Zhifu, 2015. "China’s carbon flow: 2008–2012," Energy Policy, Elsevier, vol. 80(C), pages 45-53.
    2. Lee, Woo-Sung & Lee, Jae-Cheol & Oh, Hyun-Taek & Baek, Seung-Won & Oh, Min & Lee, Chang-Ha, 2017. "Performance, economic and exergy analyses of carbon capture processes for a 300 MW class integrated gasification combined cycle power plant," Energy, Elsevier, vol. 134(C), pages 731-742.
    3. Qin, Changlei & Yin, Junjun & Ran, Jingyu & Zhang, Li & Feng, Bo, 2014. "Effect of support material on the performance of K2CO3-based pellets for cyclic CO2 capture," Applied Energy, Elsevier, vol. 136(C), pages 280-288.
    4. Thummakul, Theeranan & Gidaspow, Dimitri & Piumsomboon, Pornpote & Chalermsinsuwan, Benjapon, 2017. "CFD simulation of CO2 sorption on K2CO3 solid sorbent in novel high flux circulating-turbulent fluidized bed riser: Parametric statistical experimental design study," Applied Energy, Elsevier, vol. 190(C), pages 122-134.
    5. Jayakumar, Abhimanyu & Gomez, Arturo & Mahinpey, Nader, 2016. "Post-combustion CO2 capture using solid K2CO3: Discovering the carbonation reaction mechanism," Applied Energy, Elsevier, vol. 179(C), pages 531-543.
    6. Zhang, Wan & Li, Yingjie & He, Zirui & Ma, Xiaotong & Song, Haiping, 2017. "CO2 capture by carbide slag calcined under high-concentration steam and energy requirement in calcium looping conditions," Applied Energy, Elsevier, vol. 206(C), pages 869-878.
    7. Kraft, Stephan & Kirnbauer, Friedrich & Hofbauer, Hermann, 2017. "CPFD simulations of an industrial-sized dual fluidized bed steam gasification system of biomass with 8MW fuel input," Applied Energy, Elsevier, vol. 190(C), pages 408-420.
    8. Li, Yingjie & Zhao, Changsui & Chen, Huichao & Ren, Qiangqiang & Duan, Lunbo, 2011. "CO2 capture efficiency and energy requirement analysis of power plant using modified calcium-based sorbent looping cycle," Energy, Elsevier, vol. 36(3), pages 1590-1598.
    9. Nekrasenko Larysa An. & Prokopenko Olha V., 2015. "The Economic Valuation of Carbon Footprint," Baltic Journal of Real Estate Economics and Construction Management, Sciendo, vol. 3(1), pages 120-129, December.
    10. Qin, Qiaoyun & Liu, Hongyan & Zhang, Riguang & Ling, Lixia & Fan, Maohong & Wang, Baojun, 2018. "Application of density functional theory in studying CO2 capture with TiO2-supported K2CO3 being an example," Applied Energy, Elsevier, vol. 231(C), pages 167-178.
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    Cited by:

    1. Ji, Guozhao & Yang, Hang & Memon, Muhammad Zaki & Gao, Yuan & Qu, Boyu & Fu, Weng & Olguin, Gianni & Zhao, Ming & Li, Aimin, 2020. "Recent advances on kinetics of carbon dioxide capture using solid sorbents at elevated temperatures," Applied Energy, Elsevier, vol. 267(C).
    2. Lee, Woo-Sung & Kang, Jun-Ho & Lee, Jae-Cheol & Lee, Chang-Ha, 2020. "Enhancement of energy efficiency by exhaust gas recirculation with oxygen-rich combustion in a natural gas combined cycle with a carbon capture process," Energy, Elsevier, vol. 200(C).
    3. Vo, Nguyen Dat & Oh, Dong Hoon & Kang, Jun-Ho & Oh, Min & Lee, Chang-Ha, 2020. "Dynamic-model-based artificial neural network for H2 recovery and CO2 capture from hydrogen tail gas," Applied Energy, Elsevier, vol. 273(C).
    4. Evgenios Karasavvas & Athanasios Scaltsoyiannes & Andy Antzaras & Kyriakos Fotiadis & Kyriakos Panopoulos & Angeliki Lemonidou & Spyros Voutetakis & Simira Papadopoulou, 2020. "One-Dimensional Heterogeneous Reaction Model of a Drop-Tube Carbonator Reactor for Thermochemical Energy Storage Applications," Energies, MDPI, vol. 13(22), pages 1-24, November.
    5. Oh, Hyun-Taek & Ju, Youngsan & Chung, Kyounghee & Lee, Chang-Ha, 2020. "Techno-economic analysis of advanced stripper configurations for post-combustion CO2 capture amine processes," Energy, Elsevier, vol. 206(C).
    6. Won, Yooseob & Kim, Jae-Young & Park, Young Cheol & Yi, Chang-Keun & Nam, Hyungseok & Woo, Je-Min & Jin, Gyoung-Tae & Park, Jaehyeon & Lee, Seung-Yong & Jo, Sung-Ho, 2020. "Post-combustion CO2 capture process in a circulated fluidized bed reactor using 200 kg potassium-based sorbent: The optimization of regeneration condition," Energy, Elsevier, vol. 208(C).

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