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dc.contributor.authorFoo, Zi Hao
dc.contributor.authorDeshmukh, Akshay
dc.contributor.authorWilson, Aaron D.
dc.contributor.authorLienhard, John H
dc.date.accessioned2024-06-13T20:46:15Z
dc.date.available2024-06-13T20:46:15Z
dc.date.issued2024-06
dc.identifier.issn1385-8947
dc.identifier.urihttps://hdl.handle.net/1721.1/155272
dc.description.abstractSolvent-driven separations may enable scalable concentration of hypersaline brines, supporting a circular resource economy from the extraction of lithium and rare earth elements from spent battery and magnet leachates. This work analyses a novel solvent-driven water extraction (SDWE) system employing dimethyl ether (DME) and ultra-low-grade heat for brine concentration and fractional crystallization. SDWE exploits DME’s unique properties: (1) a low dielectric constant that promotes water solubility over charged solutes by a factor of 10 , and (2) a high volatility that facilitate efficient DME reconcentration with ultra-low-grade heat. The techno-economic viability of SDWE is assessed with a computational framework that encompasses a liquid–liquid separator and a solvent concentrator. We integrate the extended universal quasichemical model with the virial equation of state to predict the compositions of the complex three-phase DME-water mixture at vapor–liquid and liquid–liquid equilibrium. Subsequently, we optimize the thermodynamic and economic performance of SDWE, by controlling the interstage flash pressure, heat source temperature, and the number of concentrating stages. DME-based SDWE concentrates an input saline feed to 5.5 M and regenerates over 99 % of the DME using ultra-low-grade heat below 50 °C, with a DME/water selectivity ratio of 125. Our calculations reveal that optimal performance is achieved at interstage flash pressures of 0.4 – 0.5 bar for heat source temperatures between 323–373 K, with improved exergetic efficiencies at lower temperatures. At a heat source temperature of 323 K and an interstage pressure of 0.489 bar, DME-driven SDWE achieves an optimal thermodynamic efficiency of 20.5 % and a projected specific cost of US$ 1.93 m−3. These specific costs suggest that SDWE is competitive with commercialized thermal distillation technologies, while mitigating the traditional risks associated with scaling in heat and mass exchangers with hypersaline brines.en_US
dc.language.isoen
dc.publisherElsevier BVen_US
dc.relation.isversionof10.1016/j.cej.2024.151159en_US
dc.rightsCreative Commons Attribution-Noncommercial-ShareAlikeen_US
dc.rights.urihttp://creativecommons.org/licenses/by-nc-sa/4.0/en_US
dc.sourceAuthoren_US
dc.titleHarnessing dimethyl ether with ultra-low-grade heat for scaling-resistant brine concentration and fractional crystallizationen_US
dc.typeArticleen_US
dc.identifier.citationFoo, Zi Hao, Deshmukh, Akshay, Wilson, Aaron D. and Lienhard, John H. 2024. "Harnessing dimethyl ether with ultra-low-grade heat for scaling-resistant brine concentration and fractional crystallization." Chemical Engineering Journal, 489.
dc.contributor.departmentMassachusetts Institute of Technology. Department of Mechanical Engineering
dc.contributor.departmentMassachusetts Institute of Technology. Center for Computational Science and Engineering
dc.relation.journalChemical Engineering Journalen_US
dc.eprint.versionAuthor's final manuscripten_US
dc.type.urihttp://purl.org/eprint/type/JournalArticleen_US
eprint.statushttp://purl.org/eprint/status/PeerRevieweden_US
dc.date.updated2024-06-13T20:36:07Z
dspace.orderedauthorsFoo, ZH; Deshmukh, A; Wilson, AD; Lienhard, JHen_US
dspace.date.submission2024-06-13T20:36:08Z
mit.journal.volume489en_US
mit.licenseOPEN_ACCESS_POLICY
mit.metadata.statusAuthority Work and Publication Information Neededen_US


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