2021 Annual Meeting
(159ac) Rapid Screening of Ionic Liquids and Deep Eutectic Solvents for CO2 Capture at Industrial Conditions– from Molecular-Level to Process Modeling.
Towards the proper assessment of the performance of these solvents at industrially representative conditions, a holistic examination of their relevant properties is essential. The integral element for such an examination is the development of paradigm that directly connects molecular level behavior of these solvents with their techno-economic feasibility at process level. In this contribution, we demonstrate the application of an integrated modeling approach, linking a robust molecular-based equation of state, namely, soft-SAFT EoS [1,2], with a detailed process modeling and economic analysis for ILs and DESs for CO2 capture.
The thermophysical and transport properties of ILs, and DESs, and their performance as solvents for CO2 capture were evaluated within the framework of the soft-SAFT EoS. This thermodynamic model is a coarse-grain approach, modeling fluids as chains of connected groups, characterized by a set of molecular parameters representing key structural and energetic features. The examined ILs were modeled as associating chainlike fluids [3], while DESs were as binary mixtures of their individual components, with each component being represented by separate set of molecular parameters [4,5]. CO2 was modeled as a chain-like molecule, explicitly accounting for its quadrupole moment. The soft-SAFT EoS was employed in its full potential to obtain all relevant thermodynamic properties essential for process modeling. This is done in a systematic manner through modeling properties of pure ILs and DESs such as solvent density, viscosity (using free volume theory), and interfacial tension (using density gradient theory), along with assessing their CO2 solubilities.
Once these solvents were fully characterized using available experimental data, the model was used in a predictive manner to assess the technical performance and economic feasibility of these solvents in a pressure-swing absorption (PSA) process. Particular attention was given to performance criteria such as absorption capacity, energy consumption, and economic indicators such as capital, operating costs, and total annualized costs. The solvent performance was evaluated taking into account a variety of operating conditions, and CO2 feed conditions representative of post-combustion, and pre-combustion capture processes.
The current procedure established its efficacy in rapidly screening a large number of ILs and DESs, not only in terms of technical criteria, but also economic indicators at representative industrial conditions. This success stems from the application of a robust and accurate molecular model combined with macroscopic thermodynamics
This work is funded by Khalifa University of Science and Technology (RC2-2019-007). Computational resources from the Research and Innovation Center on CO2 and H2 (RICH Center) are gratefully acknowledged.
References
[1] F.J. Blas, L.F. Vega, Thermodynamic behaviour of homonuclear and heteronuclear Lennard-Jones chains with association sites from simulation and theory, Mol. Phys. 92 (1997) 135â150. https://doi.org/10.1080/002689797170707.
[2] F.J. Blas, L.F. Vega, Prediction of Binary and Ternary Diagrams Using the Statistical Associating Fluid Theory (SAFT) Equation of State, Ind. Eng. Chem. Res. 37 (1998) 660â674. https://doi.org/10.1021/ie970449+
[3] L.F. Vega, O. Vilaseca, F. Llovell, J.S. Andreu, Modeling ionic liquids and the solubility of gases in them: Recent advances and perspectives, Fluid Phase Equilib. 294 (2010) 15â30. https://doi.org/10.1016/j.fluid.2010.02.006
[4] I.I.I. Alkhatib, D. Bahamon, F. Llovell, M.R.M. Abu-Zahra, L.F. Vega, Perspectives and guidelines on thermodynamic modeling of deep eutectic solvents, J. Mol. Liq. 298 (2020) 112183. https://doi.org/10.1016/j.molliq.2019.112183
[5] I.I.I. Alkhatib, M.L. Ferreira, C.G. Alba, D. Bahamon, F. Llovell, A.B. Pereiro, J.M.M. Araújo, M. R.M. Abu-Zahra, L. F. Vega, Screening of Ionic Liquids and Deep Eutectic Solvents for Physical CO2 Absorption by Soft-SAFT Using Key Performance Indicators, J. Chem. Eng. Data (2020) 65, 12, 5844â5861. https://doi.org/10.1021/acs.jced.0c00750