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首页> 外文期刊>The Canadian Journal of Chemical Engineering >COMBINING LC-OCD ANALYSIS WITH DESIGN-OF-EXPERIMENTS METHODS TO OPTIMIZE AN ADVANCED OXIDATION PROCESS FOR THE TREATMENT OF INDUSTRIAL WASTEWATER
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COMBINING LC-OCD ANALYSIS WITH DESIGN-OF-EXPERIMENTS METHODS TO OPTIMIZE AN ADVANCED OXIDATION PROCESS FOR THE TREATMENT OF INDUSTRIAL WASTEWATER

机译:结合LC-OCD分析与实验设计方法,以优化用于治疗工业废水的先进氧化过程

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摘要

Advanced oxidation (AO) is widely used as a pre-treatment and/or polishing step for the treatment of wastewater from industrial processes and the destruction of particular contaminants in water sources. It has a high treatment efficacy for many different compounds and thus is ideally suited as a treatment technology for specialized facilities that receive shipments of wastewater from networks of industrial, manufacturing, and commercial facilities. The primary challenge is how to optimize the process because bulk measurements of organic content (e.g. TOC) give no information about the specific composition and specialized advanced analytical techniques (e.g. LC-MS) are unsuitable due to the complex composition. In this study, a novel combination of design-of-experiments (DOE) methods and LC-OCD analysis was used with actual wastewater samples in order to optimize the AO treatment conditions in terms of chemical reagent concentrations, develop statistical models of the process, and identify potential mechanisms of COD removal. A significant variation in organic content removal was obtained over the range of conditions tested in the DOE method. For example, the percent removal of organic contaminants in the one wastewater sample varied from a low of 36% to a high of 82%. Most importantly, it was found that the treatment performance differed quite significantly for wastewater samples of different composition. The results presented in our study prove the need to dynamically optimize the AO treatment conditions for wastewater sources of different origins. Furthermore, by the application of the LC-OCD analysis a step-by-step mechanism of COD removal was postulated.
机译:先进的氧化(AO)被广泛用作治疗来自工业过程的废水和水源中特定污染物的废水的预处理和/或抛光步骤。它对许多不同的化合物具有很高的治疗效果,因此理想地适合作为从工业,制造和商业设施网络接收废水的出货量的专业设施的处理技术。主要挑战是如何优化该过程,因为有机含量的批量测量(例如,TOC)不提供有关复杂组合物的特定组合物和专业的先进分析技术(例如LC-MS)的信息。在本研究中,使用实验设计(DOE)方法和LC-OCD分析的新组合与实际废水样品一起使用,以便在化学试剂浓度方面优化AO治疗条件,开发该过程的统计模型,并识别COD去除的潜在机制。在DOE方法中测试的条件范围内获得有机含量去除的显着变化。例如,一种废水样品中的有机污染物的除去百分比从低于36%至高度的82%变化。最重要的是,发现不同组成的废水样本的治疗性能很大。我们研究中提出的结果证明需要动态优化不同起源的废水来源的AO治疗条件。此外,通过施加LC-OCD分析,假设COD去除的逐步逐步机制。

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