2021 Annual Meeting
(317b) Molecular Design Targets and Optimization of Low-Temperature Thermal Desalination Systems
Authors
We present a mathematical optimization framework to rapidly design desalination processes. Directional solvent extraction (DSE) uses a thermoresponsive solvent to facilitate treatment over a wide salinity range [9]. DSE does not require membranes, which often foul at high salinities, and can utilize low-grade heat, including waste or renewable (solar) sources. Prior work in DSE includes characterization of molecular phenomena, bench-scale demonstrations, and limited process analysis [9], [10]. The framework has two new capabilities [11]: first, we perform simultaneous process optimization and heat integration to rapidly screen directional solvent candidates in seconds. Second, we perform a sensitivity analysis to identify the necessary solvent properties to enable cost-effective DSE processes for treating high salinity water, which is difficult/impossible to desalinate with other technologies. We emphasize these advances in process-scale models can rapidly accelerate DSE development by reducing the need for expensive experiments and guiding (computational) molecular design.
Our framework allows for rapidly screening and identification of quantitative solvent thermophysical property targets. We find the Levelized Cost Of Water (LCOW) is most sensitive to three thermophysical properties: i) the change in water solubility for a fixed temperature change (thermoresponsiveness); ii) the solubility of water in the solvent; iii) the solubility of the directional solvent in freshwater. [11]. Technoeconomic optimization was performed for five candidate fatty directional solvents ranging, giving LCOW predictions between $1.3/m3 and $109/m3. Sensitivity analysis shows significant improvements in three solubility properties (thermoresponsiveness of solvent, the solubility of water in the solvent, and solubility of the solvent in freshwater) are needed for the hypothetical fatty acid-like DS to achieve less than $0.5/m3. In contrast, ILs show much greater promise as directional solvents. Using newly published data from [emim][Tf2N] and assuming a moderate solvent price of $100/kg, we predict a modest $2.65/m3 LCOW. Sensitivity analysis shows the required combination of thermophysical properties necessary to achieve LCOW to below $0.5/m3. These results emphasize the potential of IL directional solvents to desalinate high salinity water, which is currently challenging with existing technologies. As ongoing work, we are considering extensions to hypersaline conditions.
References
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