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Combined Physical-Chemical and Biological Treatment of Poorly Biodegradable Industrial Effluents

机译:难生物降解工业废水的物理化学和生物处理相结合

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Effluents from small and medium sized chemical plants may contain significant amounts of poorly biodegradable aromatic compounds, which could negatively affect water quality and public health. This is a key environmental issue, particularly in areas where effluents are discharged into drinking water sources. Unfortunately, conventional biological treatment may not be able to meet discharge standards, and combined systems should be implemented. In this context, this paper presents experimental results on the application of a combined sequential ozonation-activated carbon-biological system to treat effluents containing chlorinated aromatic contaminants from chlorine based pulp bleaching. The experimental system consisted of an ozone bubble column reactor (0.3dm~3), an activated carbon fixed bed reactor (0.2 dm~3), and an aerobic bioreactor (20 dm~3). Ozone was produced from pure O_2 using a generator rated at 2 mmol O_3h~(-1). The bleaching effluent was pretreated and fed into the aerated sequencing batch bioreactor containing preconditioned biological sludge (3-4 g VSS dm~(-3)), and cultured for 24 h. Samples of raw and treated effluents were assayed for biochemical oxygen demand (BOD_5), chemical oxygen demand (COD), total organic carbon (TOC), total phenols, and adsorbable organic halogens (AOX), using standard techniques. The presence of potential genotoxic activity in untreated and treated samples was assessed using the Ames tests. Results show that biological treatment of raw samples could not remove mutagenic activity on its own. On the other hand, ozonation followed by activated carbon treatment and biological treatment successfully removed genotoxicity in all cases. Reductions in BOD, COD, TOC, AOX. and phenols by biological treatment increased when samples were pretreated with ozone/activated carbon.
机译:中小型化工厂的废水中可能含有大量难降解的芳香族化合物,可能会对水质和公共健康产生负面影响。这是一个关键的环境问题,尤其是在废水排放到饮用水源的地区。不幸的是,常规的生物处理可能无法满足排放标准,因此应实施组合系统。在这种情况下,本文介绍了组合顺序臭氧活化碳生物系统在处理氯基纸浆漂白中含有氯化芳族污染物的废水中的应用的实验结果。实验系统由臭氧鼓泡塔反应器(0.3dm〜3),活性炭固定床反应器(0.2dm〜3)和好氧生物反应器(20dm〜3)组成。使用额定值为2 mmol O_3h〜(-1)的发生器由纯O_2产生臭氧。对漂白废水进行预处理,然后将其加入装有预处理过的生物污泥(3-4 g VSS dm〜(-3))的充气测序分批生物反应器中,并培养24小时。使用标准技术对生和处理过的废水样品进行生化需氧量(BOD_5),化学需氧量(COD),总有机碳(TOC),总酚和可吸附有机卤素(AOX)的分析。使用Ames试验评估未处理和已处理样品中潜在的遗传毒性活性。结果表明,对原始样品进行生物处理无法单独消除诱变活性。另一方面,在所有情况下,臭氧化,活性炭处理和生物处理均成功消除了遗传毒性。减少BOD,COD,TOC,AOX。当样品用臭氧/活性炭预处理时,通过生物处理得到的苯酚和苯酚会增加。

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