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Advances in ozonation and biodegradation processes to enhance chlorophenol abatement in multisubstrate wastewaters: a review

机译:臭氧化和生物降解工艺在多基质废水中增强氯酚减排的研究进展:综述

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Chlorophenolic pollutants are considered a serious environmental threat when disposed of without proper treatment. Moreover, increasingly stringent regulations towards effluent quality result in a growing interest in upgrading conventional wastewater treatment to reduce pollutant concentrations to acceptable levels. Among the wide range of treatment options, biological and ozone-based oxidation processes are already well defined for the degradation of chlorophenolic compounds. The main objective of this review is to highlight relevant knowledge gaps and research needs on chlorophenol degradation by applying biological and/or ozone-based oxidation techniques. The main research trends towards chlorophenol biodegradation are the use of specific cultures adapted to the pollutant and co-metabolic biodegradation. More recently, novel biological processes such as biomass immobilization and granular activated sludge were reported. These techniques possess the ability to protect the microorganisms from higher toxic pollutant concentrations. Only a few authors reported the use of mixed cultures and the effects of acclimated biomass to enhance the biodegradation process. However, conventional biological processes do not always achieve satisfactory results, opening the possibility for ozone-based oxidation technologies to degrade the refractory compounds into more biodegradable intermediates. The research objectives in many studies on chlorophenol ozonation consider the degradation of single pollutants and/or the enhancement of the oxidative potential using catalysts or UV light. Only a few attempts were reported investigating chlorophenol degradation in multiple substrate solutions. Also, the need for an additional toxicity and/or biodegradability assessment using microorganisms representative for activated sludge is clear; all the more when assessment of effects on a totally different microbial community is desired.
机译:氯酚污染物未经适当处理就被视为严重的环境威胁。此外,对废水质量的日益严格的法规导致人们对升级常规废水处理以将污染物浓度降低到可接受水平的兴趣日益浓厚。在各种各样的处理方法中,已经为降解氯酚类化合物确定了生物和基于臭氧的氧化方法。这篇综述的主要目的是通过应用生物和/或基于臭氧的氧化技术,突出有关氯酚降解的相关知识差距和研究需求。氯酚生物降解的主要研究趋势是使用适合污染物和共代谢生物降解的特定培养物。最近,报道了诸如生物量固定化和颗粒状活性污泥的新型生物过程。这些技术具有保护微生物免受更高毒性污染物浓度的能力。只有少数作者报告了混合培养的使用以及驯化的生物质对增强生物降解过程的影响。然而,常规的生物方法并不总是能获得令人满意的结果,这为基于臭氧的氧化技术将难降解化合物降解为可生物降解的中间体提供了可能性。许多有关氯酚臭氧化研究的研究目标都考虑了使用催化剂或紫外光降解单一污染物和/或增强氧化电位的问题。据报道,只有少数尝试研究了多种底物溶液中氯酚的降解。同样,显然需要使用代表活性污泥的微生物进行额外的毒性和/或生物降解性评估;当需要评估对完全不同的微生物群落的影响时,尤其如此。

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    Katholieke Univ Leuven, Dept Chem Engn, Proc & Environm Technol Lab, Jan Pieter De Nayerlaan 5, B-2860 Sint Kaijne Waver, Belgium;

    Katholieke Univ Leuven, Dept Chem Engn, Proc & Environm Technol Lab, Jan Pieter De Nayerlaan 5, B-2860 Sint Kaijne Waver, Belgium;

    Katholieke Univ Leuven, Dept Chem Engn, Proc & Environm Technol Lab, Jan Pieter De Nayerlaan 5, B-2860 Sint Kaijne Waver, Belgium;

    Katholieke Univ Leuven, Dept Chem Engn Bio & Chem Syst Technol, Reactor Engn & Safety Sect, Celestijnenlaan 200f, B-3001 Leuven, Belgium;

    Katholieke Univ Leuven, Dept Chem Engn, Proc & Environm Technol Lab, Jan Pieter De Nayerlaan 5, B-2860 Sint Kaijne Waver, Belgium;

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