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使用聚乙烯醇凝胶珠增强厌氧氨氧化菌对低温操作条件的耐受性。

Enhancing anammox resistance to low operating temperatures with the use of PVA gel beads.

机构信息

Department of Environmental Engineering, Xi'an Jiaotong University, Xi'an, Shanxi 710049, China; Department of Energy, Environmental and Chemical Engineering, Washington University in St. Louis, St. Louis, MO 63130, USA.

Department of Environmental Engineering, Xi'an Jiaotong University, Xi'an, Shanxi 710049, China.

出版信息

Sci Total Environ. 2021 Jun 20;774:144826. doi: 10.1016/j.scitotenv.2020.144826. Epub 2021 Feb 3.

Abstract

Low temperatures, or a sudden decrease in operating temperature, can seriously inhibit anammox activity, it is, therefore, important to maintain anammox activities at a low temperature. In this study, the use of gel beads to enhance the resistance of anammox biomass to a low temperature was investigated. The performance of three reactors: R1 without gel beads; R2 with polyvinyl alcohol/chitosan (PVA/CS); R3 with PVA/CS/Fe, was studied and compared in a temperature transition from 35 to 8 °C. When the operating temperature was ≥25 °C, there was little difference in nitrogen removal among the three reactors. Decreasing the temperature to < 25 °C created obvious difference between R1 and R2/R3. R1 had a nitrogen removal efficiency (NRE) of 33.1 ± 25.3% at 10 °C, significantly lower than that of R2 (90.5 ± 2.5%) or R3 (87.7 ± 11.1%). Unclassified Candidatus Brocadiaceae was the dominant genus at 10 °C, with an abundance of 44.4, 56.5 and 58.7% in R1, R2 and R3, respectively. These differences were attributed to the use of gel beads, which promoted the granulation of both the non-immobilized sludge and the immobilized biomass, resulting in higher anammox activities in R2/R3. The non-immobilized sludge of R1 was dominated by small particles (<300 μm) at 10 °C, while in R2 and R3 large particles (1000-2000 μm) were the main components. Furthermore, the immobilized biomass on gel beads exhibited much higher anammox activity and maintained a relatively high level of nitrate reductase and nitrite reductase in response to the temperature decrease. The Fe/Fe in the PVA/CS/Fe gel beads further promoted microbial aggregation and led to an improved performance in R3 compared to R2. The results of this study demonstrate an effective approach to increase anammox resistance at low operating temperatures.

摘要

低温或操作温度的突然下降会严重抑制厌氧氨氧化活性,因此,保持厌氧氨氧化活性在低温下是很重要的。在这项研究中,使用凝胶珠来增强厌氧氨氧化生物量对低温的抗性。研究并比较了三个反应器的性能:R1 无凝胶珠;R2 用聚乙烯醇/壳聚糖(PVA/CS);R3 用 PVA/CS/Fe。在从 35 到 8°C 的温度过渡中,三个反应器的性能得到了研究和比较。当操作温度≥25°C 时,三个反应器的氮去除率没有什么差异。当温度降至<25°C 时,R1 和 R2/R3 之间出现明显差异。R1 在 10°C 时的氮去除效率(NRE)为 33.1±25.3%,明显低于 R2(90.5±2.5%)或 R3(87.7±11.1%)。未分类的布鲁卡氏菌属是 10°C 时的优势属,在 R1、R2 和 R3 中的丰度分别为 44.4%、56.5%和 58.7%。这些差异归因于凝胶珠的使用,它促进了非固定化污泥和固定化生物量的颗粒化,从而导致 R2/R3 中的厌氧氨氧化活性更高。在 10°C 时,R1 的非固定化污泥主要由<300μm 的小颗粒组成,而在 R2 和 R3 中,大颗粒(1000-2000μm)是主要成分。此外,凝胶珠上的固定化生物量对温度下降表现出更高的厌氧氨氧化活性,并保持相对较高水平的硝酸盐还原酶和亚硝酸盐还原酶。PVA/CS/Fe 凝胶珠中的 Fe/Fe 进一步促进了微生物的聚集,从而使 R3 的性能优于 R2。这项研究的结果表明,一种有效的方法可以提高厌氧氨氧化在低温下的抗性。

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