A comprehensive modeling of the hybrid temperature electric swing adsorption process for CO2 capture

被引:46
|
作者
Lillia, S. [1 ]
Bonalumi, D. [1 ]
Grande, C. [2 ]
Manzolini, G. [1 ]
机构
[1] Politecn Milan, Dept Energy, Via Lamruschini 4, I-20156 Milan, Italy
[2] SINTEF Mat & Chem, POB 124 Blindern, N-0314 Oslo, Norway
关键词
Temperature Electric Swing Adsorption; Carbon capture; CO2; capture; NGCC; EGR; Zeolite Molecular Sieve 13X (MS13X); CARBON-FIBER CLOTH; ELECTROTHERMAL DESORPTION; GAS SEPARATION; FLUIDIZED-BED; ZEOLITE; 13X; DIOXIDE; PERFORMANCE; ABSORPTION; MEMBRANE; MONOLITH;
D O I
10.1016/j.ijggc.2018.04.012
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Adsorption technologies provide high selectivity and low energy consumption making this technique very attractive to be employed in post-combustion carbon capture. In this publication, a material made of activated carbon and zeolite 13X is considered for a hybrid process termed Temperature Electric Swing Adsorption (T/ESA). This hybrid T/ESA can work as a traditional Temperature Swing Adsorption (TSA) heated by hot gas, but can also increase the temperature of the adsorbent very fast by Joule effect as long as the activated carbon provides a continuous conductive matrix for electricity. This paper discusses a detailed modeling of the T/ESA process when applied to three cases. The first case is the simulation of the T/ESA process with exhaust with 12% of CO2 concentration, which has been chosen to validate the model against literature results. The second and third case studies consider the T/ESA application in a natural gas combined cycle (NGCC) traditional power plant, and in a NGCC plant with exhaust gas recycle (EGR). These cases were selected to investigate the adsorption technology at low CO2 concentration and quantify the benefit of the EGR for carbon capture applications. Starting from an NGCC overall electric efficiency of 58.3% LHV based, the efficiency of the NGCC with T/ESA technology reduces to 35.3% while with EGR is 38.9% against the 49.9% with the MEA absorption plant. The same results are confirmed by the SPECCA index 13.05 MJ(LHV)/kg(CO)(2) to 9.64 MJ(LHV)/kg(CO)(2) against the reference of 3.36 MJ(LHV)/kg(CO)(2). The energy penalty of the T/ESA is significant because of electric consumptions required for the heating and fast cooling of the adsorbent
引用
收藏
页码:155 / 173
页数:19
相关论文
共 50 条
  • [1] Challenges of Electric Swing Adsorption for CO2 Capture
    Grande, Carlos A.
    Ribeiro, Rui P. P. L.
    Rodrigues, Alirio E.
    [J]. CHEMSUSCHEM, 2010, 3 (08) : 892 - 898
  • [2] Electric swing adsorption as emerging CO2 capture technique
    Grande, Carlos A.
    Ribeiro, Rui P. P. L.
    Oliveira, Eduardo L. G.
    Rodrigues, Alirio E.
    [J]. GREENHOUSE GAS CONTROL TECHNOLOGIES 9, 2009, 1 (01): : 1219 - 1225
  • [3] Mechanism Modeling of Elevated Temperature Pressure Swing Adsorption Process for Pre-combustion CO2 Capture
    Zheng, Yam
    Shi, Yixiang
    Li, Shuang
    Cai, Ningsheng
    [J]. GHGT-11, 2013, 37 : 2307 - 2315
  • [4] Temperature swing adsorption process for CO2 capture using polyaniline solid sorbent
    Yang, Ming-Wei
    Chen, Nai-chi
    Huang, Chih-hsiang
    Shen, Yi-ting
    Yang, Hong-sung
    Chou, Cheng-tung
    [J]. 12TH INTERNATIONAL CONFERENCE ON GREENHOUSE GAS CONTROL TECHNOLOGIES, GHGT-12, 2014, 63 : 2351 - 2358
  • [5] Design of a Pressure Swing Adsorption Process for Postcombustion CO2 Capture
    Pirngruber, Gerhard D.
    Leinekugel-le-Cocq, Damien
    [J]. INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2013, 52 (17) : 5985 - 5996
  • [6] Low-concentration CO2 capture by temperature and electric swing adsorption with modified carbon xerogel
    Si W.-T.
    Fu L.
    Yang B.
    Zhu J.-K.
    Lei L.-C.
    [J]. Gao Xiao Hua Xue Gong Cheng Xue Bao/Journal of Chemical Engineering of Chinese Universities, 2020, 34 (02): : 536 - 543
  • [7] CO2 Capture by Temperature Swing Adsorption: Working Capacity As Affected by Temperature and CO2 Partial Pressure
    Raganati, Federica
    Chirone, Riccardo
    Ammendola, Paola
    [J]. INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2020, 59 (08) : 3593 - 3605
  • [8] Systematic evaluation of materials for post-combustion CO2 capture in a Temperature Swing Adsorption process
    Bahamon, Daniel
    Vega, Lourdes F.
    [J]. CHEMICAL ENGINEERING JOURNAL, 2016, 284 : 438 - 447
  • [9] Numerical analysis on CO2 capture process of temperature swing adsorption (TSA): Optimization of reactor geometry
    Lian, Yahui
    Deng, Shuai
    Li, Shuangjun
    Guo, Zhihao
    Zhao, Li
    Yuan, Xiangzhou
    [J]. INTERNATIONAL JOURNAL OF GREENHOUSE GAS CONTROL, 2019, 85 : 187 - 198
  • [10] Parametric Analysis of a Moving Bed Temperature Swing Adsorption (MBTSA) Process for Postcombustion CO2 Capture
    Morales-Ospino, Rafael
    Santos, Vitoria N.
    Lima Jr, Antonio R. A.
    Torres, A. Eurico B.
    Vilarrasa-Garcia, Enrique
    Bastos-Neto, Moises
    Cavalcante Jr, Celio L.
    Azevedo, Diana C. S.
    Marques, Carolina R. M.
    de Aquino, Thiago F.
    Vasconcelos, Lidia B.
    Knaebel, Kent S.
    [J]. INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2021, 60 (29) : 10736 - 10752