Direct air capture multiscale modelling: From capture material optimization to process simulations

被引:12
|
作者
Marinic, Dana [1 ,2 ]
Likozar, Blaz [1 ,2 ]
机构
[1] Natl Inst Chem, Dept Catalysis & Chem React Engn, Hajdrihova 19, Ljubljana 1000, Slovenia
[2] Univ Maribor, Fac Chem & Chem Engn, Smetanova Ulica 17, Maribor 2000, Slovenia
关键词
Direct air capture (DAC); Thermodynamic isotherm model; Multiscale modelling simulations; Density functional theory (DFT); Monte Carlo (MC); Computational fluid dynamics (CFD); CARBON-DIOXIDE CAPTURE; METAL-ORGANIC FRAMEWORKS; MOISTURE SWING SORBENT; CO2; ADSORPTION; MONTE-CARLO; AMINE RESIN; EQUILIBRIUM; PERFORMANCE; MECHANISM; KINETICS;
D O I
10.1016/j.jclepro.2023.137185
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
A potential to decarbonize atmosphere, while simultaneously providing a feedstock for functional industrial applications, induces a strong economic incentive for direct air capture (DAC). However, DAC systems, developed to date, are energy, resource, and cost prohibitive. Measurement-complementing multiscale modelling has proven to be of a large visible value for the sorbent rapid screening from a vast scientific collection of prospective selected candidates, machine learning (ML) integration, and for the process design engineering with a characteristic low penalty for CO2 regeneration and optimal uptake rates. The review provides an extensive evaluation of recent advances in multiscale modelling of DAC research. It introduces the theoretical physical descriptions of DAC, presents atom scale structuring, and brings together the state of the art of this, until now, poorly-researched analysis topic. Reviewed (CO2 mass) transfer works span from the ab initio density functional theory (DFT) calculation relationships to mesoscale Monte Carlo, molecular dynamics simulations and micro-kinetics, adsorption/desorption, and lastly, most commonly-investigated specific macroscale concept. The modelled DAC processes properties reported in the literature have been compared, which allowed us to identify the most effective sorbents. Amine functionalized metal-organic frameworks exhibit low energy requirements, the lowest reported was 1000 kWh tCO(2)(-1), while the lowest published cost was 60 $ tCO(2)(-1). Recently, there are progressively emerging promising new entrants into the DAC field, providing climate-neutral feedstock for commercial processes. The market demand for CO2 is expected to exponentially rise up to 6.1 Gt in 2050, while the cost of implementing DAC technologies is predicted to be reduced under 125 $ tCO(2)(-1) in the year 2030. Further modelling research activities in CO2 (sorption) bed form phenomena could not only break the barriers of current renewable technologies, but also couple the CO2 reactions with the sequestration, reactors, and neutralization of harmful environmental pollutants, monoxide, NOx, SOx, etc. DAC could be ultimately coupled with electrolysis (hydrogen), producing e-fuels.
引用
收藏
页数:18
相关论文
共 50 条
  • [1] Process optimization of a fixed bed reactor system for direct air capture
    Schellevis, H. M.
    van Schagen, T. N.
    Brilman, D. W. F.
    INTERNATIONAL JOURNAL OF GREENHOUSE GAS CONTROL, 2021, 110
  • [2] The analysis and evaluation of direct air capture adsorbents on the material characterization level
    Wu, Junye
    Zhu, Xuancan
    Chen, Yanlin
    Wang, Ruzhu
    Ge, Tianshu
    CHEMICAL ENGINEERING JOURNAL, 2022, 450
  • [3] Challenges and Opportunities: Metal-Organic Frameworks for Direct Air Capture
    Bose, Saptasree
    Sengupta, Debabrata
    Rayder, Thomas M.
    Wang, Xiaoliang
    Kirlikovali, Kent O.
    Sekizkardes, Ali K.
    Islamoglu, Timur
    Farha, Omar K.
    ADVANCED FUNCTIONAL MATERIALS, 2024, 34 (43)
  • [4] Technological Options for Direct Air Capture: A Comparative Process Engineering Review
    Wu, Xiaowei
    Krishnamoorti, Ramanan
    Bollini, Praveen
    ANNUAL REVIEW OF CHEMICAL AND BIOMOLECULAR ENGINEERING, 2022, 13 : 279 - 300
  • [5] Direct Capture of CO2 from Ambient Air
    Sanz-Perez, Eloy S.
    Murdock, Christopher R.
    Didas, Stephanie A.
    Jones, Christopher W.
    CHEMICAL REVIEWS, 2016, 116 (19) : 11840 - 11876
  • [6] Parametric simulations of hierarchical core-shell MOF materials for direct air capture
    Lieber, Austin R.
    Boone, Paul
    He, Yiwen
    Steckel, Janice A.
    Rosi, Nathaniel L.
    Wilmer, Christopher E.
    Hornbostel, Katherine M.
    SEPARATION AND PURIFICATION TECHNOLOGY, 2023, 322
  • [7] Tuning sorbent properties to reduce the cost of direct air capture
    Holmes, Hannah E.
    Banerjee, Sayan
    Vallace, Anthony
    Lively, Ryan P.
    Jones, Christopher W.
    Realff, Matthew J.
    ENERGY & ENVIRONMENTAL SCIENCE, 2024, 17 (13) : 4544 - 4559
  • [8] Modeling and planning optimization of carbon capture load based on direct air capture
    Wang, Qian
    Du, Caiyi
    Zhang, Xueguang
    ENERGY, 2024, 310
  • [9] From Lab to Fab: Development and Deployment of Direct Air Capture of CO2
    Barahimi, Vahid
    Ho, Monica
    Croiset, Eric
    ENERGIES, 2023, 16 (17)
  • [10] Direct air capture based on ionic liquids: From molecular design to process assessment
    Hospital-Benito, D.
    Moya, C.
    Gazzani, M.
    Palomar, J.
    CHEMICAL ENGINEERING JOURNAL, 2023, 468