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Graphene-Modulated Removal Performance of Nitrogen and Phosphorus Pollutants in a Sequencing Batch Chlorella Reactor

机译:顺序分批小球藻反应器中石墨烯调节的氮和磷污染物的去除性能

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摘要

In this work, the influence of graphene on nitrogen and phosphorus in a batch Chlorella reactor was studied. The impact of graphene on the removal performance of Chlorella was investigated in a home-built sewage treatment system with seven identical sequencing batch Chlorella reactors with graphene contents of 0 mg/L (T1), 0.05 mg/L (T2), 0.1 mg/L (T3), 0.2 mg/L (T4), 0.4 mg/L (T5), 0.8 mg/L (T6) and 10 mg/L (T7). The influence of graphene concentration and reaction time on the pollutant removal performance was studied. The malondialdehyde (MDA) and total superoxide dismutase (SOD) concentrations in each reactor were measured, and optical microscopy and scanning electron microscopy (SEM) characterizations were performed to determine the related mechanism. The results show that after 168 h, the total nitrogen (TN), ammonia nitrogen (AN) and total phosphorus (TP) removal rates of reactors T1–T7 become stable, and the TN, AN and TP removal rates were gradually reduced with increasing graphene concentration. At 96 h, the concentrations of both MDA and SOD in T1–T7 gradually increased as the graphene concentration increased. In optical microscopy and SEM measurements, it was found that graphene was adsorbed on the surface of Chlorella, and entered Chlorella cells, deforming and reducing Chlorella. Through the blood plate count method, we estimated an average Chlorella reduction of 16%. According to the water quality and microscopic experiments, it can be concluded that the addition of graphene causes oxidative damage to microalgae and destruction of the Chlorella cell wall and cell membrane, inhibiting the nitrogen and phosphorus removal in Chlorella reactors. This study provides theoretical and practical support for the safe use of graphene.
机译:在这项工作中,研究了分批的小球藻反应器中石墨烯对氮和磷的影响。在一个带有七个相同顺序批处理小球藻反应器的自制污水处理系统中,研究了石墨烯对小球藻去除性能的影响,这些反应器的石墨烯含量分别为0 mg / L(T1),0.05 mg / L(T2),0.1 mg / L(T3),0.2 mg / L(T4),0.4 mg / L(T5),0.8 mg / L(T6)和10 mg / L(T7)。研究了石墨烯浓度和反应时间对污染物去除性能的影响。测量每个反应器中的丙二醛(MDA)和总超氧化物歧化酶(SOD)浓度,并进行光学显微镜和扫描电子显微镜(SEM)表征,以确定相关的机理。结果表明,经过168 h,T1-T7反应器的总氮(TN),氨氮(AN)和总磷(TP)去除率趋于稳定,并且TN,AN和TP去除率随着增加而逐渐降低。石墨烯浓度。在96小时时,随着石墨烯浓度的增加,T1-T7中MDA和SOD的浓度逐渐增加。在光学显微镜和SEM测量中,发现石墨烯吸附在小球藻的表面上,并进入小球藻细胞,使小球藻变形和还原。通过血板计数法,我们估计小球藻平均减少了16%。根据水质和微观实验,可以得出结论,石墨烯的添加会导致微藻的氧化损伤以及小球藻细胞壁和细胞膜的破坏,从而抑制小球藻反应器中氮和磷的去除。该研究为石墨烯的安全使用提供了理论和实践支持。

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