电混凝处理高负荷中水的性能研究:动力学建模及响应面法参数优化

IF 5.7 3区 环境科学与生态学 Q1 WATER RESOURCES
Khalid Bani-Melhem, Mohammad Alnaief, Zakaria Al-Qodah, Mohammad Al-Shannag, Haitham Elnakar, Nawzat AlJbour, Muhammad Alu’datt, Mohammad Alrosan, Ezelden Ezelden
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引用次数: 0

摘要

本研究探讨了电凝(EC)处理高负荷灰水(HLGW)的方法,目的是优化电流密度(Cd)和EC时间等操作参数。此外,该研究还考察了从HLGW中去除COD,颜色和浊度的动力学。在90分钟的EC时间内,以不同的电流密度处理各种HLGW样品。动力学分析表明,COD去除遵循二级模型,而浊度和颜色去除遵循伪一级模型,参数依赖于Cd。研究结果表明,EC处理时间越长,Cd值越高,污染物去除效果越好。在较低的Cd水平下,即使使用90分钟的EC处理,COD和颜色的去除效率也相对较低。然而,在较高的Cd (20 mA/cm2)下,去除效率大幅提高,在相同的持续时间内,COD和颜色的去除率均达到85%。经过45分钟的EC处理,当Cd设置为10 mA/cm2时,浑浊度被完全去除。这些结果表明,从高低温废液中实现高污染物去除需要高能耗。因此,将EC与其他工艺相结合,作为预处理或后处理步骤,可以解决独立EC系统面临的挑战。利用响应面法(RSM)确定了最佳操作条件,COD去除率为76.4%,色度去除率为80.5%,浊度去除率为98.5%,EC时间为44 min,最小能耗为5.07 kWh/m3, Cd为15.5 mA/cm2。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
On the performance of electrocoagulation treatment of high-loaded gray water: kinetic modeling and parameters optimization via response surface methodology

This study explores the electrocoagulation (EC) treatment of high-loaded gray water (HLGW), with the goal of optimizing operating parameters such as current densities (Cd) and EC time. Moreover, the research examines the kinetics involved in the removal of COD, color, and turbidity from HLGW. Various HLGW samples were treated at different current densities over a 90-min EC period. Kinetic analysis shows that COD removal follows a second-order model, while turbidity and color removal adhere to a pseudo-first-order model, with parameters dependent on Cd. The findings indicate that pollutant removal improves with longer EC treatment times and higher Cd values. At lower Cd levels, removal efficiencies for COD and color are relatively low, even with a 90-min EC treatment. However, at a higher Cd (20 mA/cm2), there is a substantial increase in removal efficiency, with 85% removal for both COD and color within the same duration. Turbidity is completely removed when the Cd is set to 10 mA/cm2 after 45 min of EC treatment. These results highlight that achieving high pollutant removal from HLGW requires high energy consumption. As a result, combining EC with other processes, either as a pre-treatment or post-treatment step, may address the challenges faced by standalone EC systems. Using response surface methodology (RSM), optimal operating conditions were determined, achieving pollutant removals of 76.4% for COD, 80.5% for color, and 98.5% for turbidity, with a minimum energy consumption of 5.07 kWh/m3 at an EC time of 44 min and a Cd of 15.5 mA/cm2.

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来源期刊
Applied Water Science
Applied Water Science WATER RESOURCES-
CiteScore
9.90
自引率
3.60%
发文量
268
审稿时长
13 weeks
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