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Solution phase and membrane immobilized iron-based free radical reactions: Fundamentals and applications for water treatment .

机译:固溶相和膜固定的铁基自由基反应:水处理的基本原理和应用。

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摘要

Membrane-based separation processes have been used extensively for drinking water purification, wastewater treatment, and numerous other applications. Reactive membranes synthesized through functionalization of the membrane pores offer enhanced reactivity due to increased surface area at the polymer-solution interface and low diffusion limitations. Oxidative techniques utilizing free radicals have proven effective for both the destruction of toxic organics and non-environmental applications. Most previous work focuses on reactions in the homogeneous phase; however, the immobilization of reactants in membrane pores offers several advantages. The use of polyanions immobilized in a membrane or chelates in solution prevents ferric hydroxide precipitation at near-neutral pH, a common limitation of iron(Fe(II/III))-catalyzed hydrogen peroxide (H 2O2) decomposition. The objectives of this research are to develop a membrane-based platform for the generation of free radicals, degrade toxic organic compounds using this and similar solution-based reactions, degrade toxic organic compounds in droplet form, quantify hydroxyl radical production in these reactions, and develop kinetic models for both processes.;In this study, a functionalized membrane containing poly(acrylic acid) (PAA) was used to immobilize iron ions and conduct free radical reactions by permeating H2O2 through the membrane. The membrane's responsive behavior to pH and divalent cations was investigated and modeled. The conversion of Fe(II) to Fe(III) in the membrane and its effect on the decomposition of hydrogen peroxide were monitored and used to develop kinetic models for predicting H2O2 decomposition in these systems. The rate of hydroxyl radical production, and hence contaminant degradation can be varied by changing the residence time, H2O2 concentration, and/or iron loading. Using these membrane-immobilized systems, successful removal of toxic organic compounds, such as pentachlorophenol (PCP), from water was demonstrated.;Another toxic organic compound of interest for water treatment applications is trichloroethylene (TCE). Due to its limited solubility in water, a majority of the TCE is often present in the form of droplets. In this study, effective TCE droplet degradation using chelate-modified, iron-catalyzed free radical reactions at near-neutral pH was demonstrated. In order to predict the degradation of aqueous and non-aqueous phase TCE for these reactions, a mathematical model was constructed through the use of droplet mass transfer correlations and free radical reaction kinetics.;KEYWORDS: Functionalized membrane, free radical, hydrogen peroxide, chelate-modified, membrane reactor
机译:基于膜的分离工艺已广泛用于饮用水净化,废水处理和许多其他应用。由于膜孔功能化而合成的反应性膜由于聚合物-溶液界面处的表面积增加和低扩散限制而提供了增强的反应性。利用自由基的氧化技术已被证明对破坏有毒有机物和非环境应用均有效。以前的大多数工作都集中在均相阶段。然而,将反应物固定在膜孔中具有几个优点。使用固定在膜上或溶液中的螯合物固定的聚阴离子可防止氢氧化铁在接近中性的pH沉淀,这是铁(Fe(II / III))催化的过氧化氢(H 2O2)分解的常见限制。这项研究的目的是开发一种用于生成自由基的基于膜的平台,使用该溶液和类似的基于溶液的反应降解有毒的有机化合物,以液滴形式降解有毒的有机化合物,量化这些反应中产生的羟基自由基,以及建立这两个过程的动力学模型。在这项研究中,含有聚丙烯酸(PAA)的功能化膜用于固定铁离子并通过将H2O2渗透穿过膜进行自由基反应。膜的pH和二价阳离子的响应行为进行了调查和建模。监测膜中Fe(II)到Fe(III)的转化及其对过氧化氢分解的影响,并将其用于开发动力学模型以预测这些系统中H2O2的分解。可以通过改变停留时间,H2O2浓度和/或铁含量来改变羟基自由基产生的速率,从而改变污染物的降解速率。使用这些固定化膜的系统,成功地从水中去除了有毒的有机化合物,如五氯苯酚(PCP)。证明了另一种在水处理应用中关注的有毒有机化合物是三氯乙烯(TCE)。由于其在水中的溶解度有限,大多数TCE通常以液滴形式存在。在这项研究中,证明了在近中性pH值下使用螯合剂修饰的铁催化的自由基反应可有效降解TCE液滴。为了预测这些反应中水相和非水相三氯乙烯的降解,通过使用液滴传质相关性和自由基反应动力学建立了数学模型。关键词:功能化膜,自由基,过氧化氢,螯合物改性的膜反应器

著录项

  • 作者

    Lewis, Scott Romak.;

  • 作者单位

    University of Kentucky.;

  • 授予单位 University of Kentucky.;
  • 学科 Engineering Chemical.;Engineering Environmental.;Engineering Materials Science.
  • 学位 Ph.D.
  • 年度 2011
  • 页码 184 p.
  • 总页数 184
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:45:15

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