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Effects of Resin Chemistries on the Selective Removal of Industrially Relevant Metal Ions Using Wafer-Enhanced Electrodeionization

机译:树脂化学对使用晶片增强的电消除化的工业上相关金属离子选择性去除的影响

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摘要

Wafer-enhanced electrodeionization (WE-EDI) is an electrically driven separations technology that occurs under the influence of an applied electric field and heavily depends on ion exchange resin chemistry. Unlike filtration processes, WE-EDI can be used to selectively remove ions even from high concentration systems. Because every excess ion transported increases the operating costs, the selective separation offered by WE-EDI can provide a more energy-efficient and cost-effective process, especially for highly concentrated salt solutions. This work reports the performance comparison of four commonly used cation exchange resins (Amberlite IR120 Na+, Amberlite IRP 69, Dowex MAC 3 H+, and Amberlite CG 50) and their influence on the current efficiency and selectivity for the removal of cations from a highly concentrated salt stream. The current efficiencies were high for all the resin types studied. Results also revealed that weak cation exchange resins favor the transport of the monovalent ion (Na+) while strong cation exchange resins either had no strong preference or preferred to transport the divalent ions (Ca2+ and Mg2+). Moreover, the strong cation exchange resins in powder form generally performed better in wafers than those in the bead form for the selective removal of divalent ions (selectivity > 1). To further understand the impact of particle size, resins in the bead form were ground into a powder. After grinding the strong cation resins displayed similar behavior (more consistent current efficiency and preference for transporting divalent ions) to the strong cation resins in powder form. This indicates the importance of resin size in the performance of wafers.
机译:晶片增强的电流过渡(We-EDI)是一种电驱动的分离技术,其在施加的电场的影响下发生,并且大量取决于离子交换树脂化学。与过滤过程不同,即使来自高浓度系统,我们也可用于选择性地去除离子。由于每种多余的离子运输都会增加运营成本,我们-EDI提供的选择性分离可以提供更节能且经济高效的过程,特别是对于高度浓缩的盐溶液。这项工作报告了四种常用阳离子交换树脂(Amberlite Ir120 Na +,Amberlite IRP 69,Dowex Mac 3 H +和Amberlite CG 50)的性能比较及其对当前效率和选择性的影响,从高度浓缩的情况下盐流。对于研究的所有树脂类型,目前的效率很高。结果还揭示了弱阳离子交换树脂最有利于单价离子(Na +)的运输,而强阳离子交换树脂的含量无强偏好或优选转运二价离子(Ca2 +和Mg2 +)。此外,粉末形式的强阳离子交换树脂通常在晶片中比珠子形式更好地进行,用于选择性除去二价离子(选择性> 1)。为了进一步了解粒径的影响,将珠形式的树脂研磨成粉末。研磨后,强阳离子树脂显示出类似的行为(更一致的电流效率和将二价离子的偏好)以粉末形式的强阳离子树脂。这表明树脂尺寸在晶片的性能中的重要性。

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