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恒化学势循环用于电容去离子。

Constant chemical potential cycles for capacitive deionization.

机构信息

Georgia Institute of Technology, 771 Ferst Drive NW, Love Bldg - Room 316, Atlanta, GA 30332, USA.

出版信息

Phys Chem Chem Phys. 2019 Nov 28;21(44):24512-24517. doi: 10.1039/c9cp05032a. Epub 2019 Oct 30.

Abstract

The primary energy consuming operations which occur within a Capacitive Deionization (CDI) cell, are the ion removal (electrosorption), ion concentrating (electrodesorption), and solution switching processes. In theory the maximum system performance for a CDI system arises when solution switching occurs while maintaining a fixed number of ions (N), and when electrosorption/desorption occurs while maintaining a fixed chemical potential (μ). These fixed state variable based operations are analogous to the Carnot cycle, where heat transfer occurs at constant temperature and compression and expansion occur while maintaining constant entropy. In reality, maintaining a constant number of ions during switching is not practically feasible, thus here we investigate two alternative cycles where switching instead occurs while maintaining constant charge or voltage. Unlike constant number of ions, maintaining charge and voltage constant is feasible using a potentiostat. These theoretical cycles were chosen as they are analogues or ideal-like (Stirling and Ericsson) cycles, which are also practically feasible. The thermodynamic analysis reveals that these alternative cycles provide an avenue to approach the theoretical limit with low saline feed water; however, they are not capable of approximating ideal operations at elevated feed-water concentrations.

摘要

在电容去离子 (CDI) 单元中,主要的能耗操作是离子去除(电吸附)、离子浓缩(电极脱附)和溶液切换过程。从理论上讲,当溶液切换发生时,同时保持固定数量的离子 (N),并且当电吸附/脱附发生时,同时保持固定的化学势 (μ),CDI 系统的最大系统性能就会出现。这些基于固定状态变量的操作类似于卡诺循环,其中热传递发生在恒定温度下,压缩和膨胀发生在保持恒定熵的情况下。在实际中,在切换过程中保持固定数量的离子是不可行的,因此我们在这里研究了两种替代循环,其中切换发生时保持恒定的电荷或电压。与固定数量的离子不同,使用恒电位仪可以实现恒定电荷和电压的保持。选择这些理论循环是因为它们类似于或理想(斯特林和埃里克森)循环,这些循环也是可行的。热力学分析表明,这些替代循环为使用低盐水进料接近理论极限提供了途径;然而,它们无法在升高的进料浓度下近似理想操作。

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