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首页> 外文期刊>Biodegradation >Impact of ozonation pre-treatment of oil sands process-affected water on the operational performance of a GAC-fluidized bed biofilm reactor
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Impact of ozonation pre-treatment of oil sands process-affected water on the operational performance of a GAC-fluidized bed biofilm reactor

机译:臭氧化预处理油砂工艺受影响的水对GAC流化床生物膜反应器运行性能的影响

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Treatment of oil sands process-affected water (OSPW) using biodegradation has the potential to be an environmentally sound approach for tailings water reclamation. This process is both economical and efficient, however, the recalcitrance of some OSPW constituents, such as naphthenic acids (NAs), require the pre-treatment of raw OSPW to improve its biodegradability. This study evaluated the treatment of OSPW using ozonation followed by fluidized bed biofilm reactor (FBBR) using granular activated carbon (GAC). Different organic and hydraulic loading rates were applied to investigate the performance of the bioreactor over 120 days. It was shown that ozonation improved the adsorption capacity of GAC for OSPW and improved biodegradation by reducing NAs cyclicity. Bioreactor treatment efficiencies were dependent on the organic loading rate (OLR), and to a lesser degree, the hydraulic loading rate (HLR). The combined ozonation, GAC adsorption, and biodegradation process removed 62 % of chemical oxygen demand (COD), 88 % of acid-extractable fraction (AEF) and 99.9 % of NAs under optimized operational conditions. Compared with a planktonic bacterial community in raw and ozonated OSPW, more diverse microbial communities were found in biofilms colonized on the surface of GAC after 120 days, with various carbon degraders found in the bioreactor including Burkholderia multivorans, Polaromonas jejuensis and Roseomonas sp
机译:使用生物降解处理油砂过程影响的水(OSPW)有可能成为尾矿水回收的一种对环境无害的方法。此过程既经济又有效,但是,某些OSPW成分(如环烷酸(NAs))的顽固性要求对未加工的OSPW进行预处理,以提高其生物降解性。这项研究评估了臭氧处理的臭氧化处理,随后是使用颗粒活性炭(GAC)的流化床生物膜反应器(FBBR)的处理。应用了不同的有机负荷和水力负荷率来研究生物反应器在120天内的性能。结果表明,臭氧化可通过降低NAs的循环性来提高GAC对OSPW的吸附能力,并改善生物降解性。生物反应器的处理效率取决于有机负荷率(OLR),在较小程度上取决于水力负荷率(HLR)。在优化的操作条件下,结合的臭氧氧化,GAC吸附和生物降解过程可去除62%的化学需氧量(COD),88%的酸可提取馏分(AEF)和99.9%的NAs。与原始和臭氧化的OSPW中的浮游细菌群落相比,在120天后,在GAC表面定殖的生物膜中发现了更多种的微生物群落,在生物反应器中发现了多种碳降解物,包括伯克霍尔德氏菌,济州北极单胞菌和玫瑰茄

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