流动电极电容去离子法回收不锈钢酸洗废水中的硝酸盐和氟化物

IF 6.6 Q1 ENGINEERING, ENVIRONMENTAL
Niklas Köller , Dustin Roedder , Christian J. Linnartz , Mark Enders , Florian Morell , Patrick Altmeier , Matthias Wessling
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引用次数: 0

摘要

流动电极电容去离子(FCDI)是一种创新的实际脱盐和回收应用方法。在这里,我们报道FCDI有助于从不锈钢酸洗线废水处理过程中产生的盐水中回收硝酸盐和氟化物盐。采用实验室规模的合成废水实验来评估(a)膜厚度、(b)进料流量和(c)施加电压对出口浓度和平均盐转移速率的影响。在连续的单道次实验中,稀释和浓缩的流量对FCDI过程的出口浓度影响最大,因为它们直接影响停留时间。可以改变FCDI工艺的工作电压,以提高氟化物与硝酸盐的比率,以便回收利用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Recovery of nitrate and fluoride salts from stainless steel pickling wastewater with flow-electrode capacitive deionization
Flow-electrode Capacitive Deionization (FCDI) is an innovative method for practical salt removal and recycling applications. Here, we report that FCDI facilitates the recovery of nitrate and fluoride salts from brines produced during the wastewater treatment process in a stainless steel pickling line. Laboratory-scale experiments with synthetic wastewaters were used to evaluate the influence of (a) the membrane thickness, (b) feed flow rates, and (c) applied voltage on the outlet concentrations and the average salt transfer rate. In continuous single-pass experiments, the flow rates of diluate and concentrate have the greatest influence on the resulting outlet concentrations in the FCDI process as they directly influence the residence time. The operating voltage of the FCDI process can be varied to increase the ratio of fluoride over nitrate for recycling.
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来源期刊
Journal of hazardous materials letters
Journal of hazardous materials letters Pollution, Health, Toxicology and Mutagenesis, Environmental Chemistry, Waste Management and Disposal, Environmental Engineering
CiteScore
10.30
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20 days
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