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On the challenge of developing wastewater treatment processes: capacitive deionization

机译:发展废水处理工艺面临的挑战:电容去离子

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Due to the increasing worldwide water scarcity associated with the climate change there is the need to increase the injection of wastewater into the overall water cycle. As a consequence wastewater treatment is within the largest energy use sector in many developed countries. In recent years, capacitive deionization (CDI), which is based on the principle of electrosorption of ions on charged high surface area electrodes, the same as charging and discharging an electrochemical double-layer capacitor, has been reported to be a promising technology which is an alternative to other classical water treatment methods such as reverse osmosis (RO) and evaporation processes. We see that this technology is gaining increased scientific interest since 2006. However, not too many publications indicate the feasibility of the kWh/m(3) consumption in CDI systems for brackish water treatment (500-30,000ppm). The common assumption proposes that the main problem may be the ions adsorption capability of the electrode material during discharging. However, in energy efficiency terms, desorption processes may be even more difficult since experience diffusional complications mainly when high currents are used. This presentation will provide an overview of current strategies for operating these systems aiming to improve energy recovery and lead this process to the point of making these systems an option for use in water treatment plants.
机译:由于与气候变化有关的全球水资源短缺问题日益严重,因此有必要增加废水注入整个水循环的过程。因此,废水处理是许多发达国家中最大的能源使用部门。近年来,已经报道了基于带电高表面积电极上离子电吸附原理的电容去离子(CDI),与对电化学双层电容器进行充电和放电相同,这是一种很有前途的技术。其他经典水处理方法(例如反渗透(RO)和蒸发过程)的替代方法。我们看到,自2006年以来,这项技术越来越受到科学界的关注。但是,没有太多的出版物表明CDI系统中用于微咸水处理(500-30,000ppm)的kWh / m(3)的可行性。通常的假设提出,主要问题可能是放电过程中电极材料对离子的吸附能力。但是,就能源效率而言,解吸过程可能会更加困难,因为主要在使用大电流时会经历扩散复杂性。本演讲将概述用于操作这些系统的当前策略,这些策略旨在提高能量回收率,并使该过程达到使这些系统成为水处理厂使用选项的目的。

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