Suppr超能文献

使用具有可转换水疗效率的生物絮团生物过滤器的循环水养殖系统的性能。

Performance of a recirculating aquaculture system using biofloc biofilters with convertible water-treatment efficiencies.

机构信息

Shanghai Engineering Research Center of Aquaculture, Shanghai Ocean University, Shanghai Science and Technology Committee, Shanghai 201306, China; Shanghai Aquatic Products Processing and Storage Engineering Technology Research Center, Shanghai Ocean University, Shanghai Science and Technology Committee, Shanghai 201306, China.

Shanghai Engineering Research Center of Aquaculture, Shanghai Ocean University, Shanghai Science and Technology Committee, Shanghai 201306, China; Shanghai Collaborative Innovation for Aquatic Animal Genetics and Breeding, (Shanghai Ocean University), Shanghai 201306, China.

出版信息

Sci Total Environ. 2021 Feb 1;754:141918. doi: 10.1016/j.scitotenv.2020.141918. Epub 2020 Sep 2.

Abstract

To achieve high water-treatment efficiencies and simplify the setup of recirculating aquaculture systems (RAS), this study examined the use of suspended growth reactors (R1 and R2) based on biofloc technology (BFT) as water-treatment biofilters. Moreover, the conversion of the heterotrophic R1 biofilter to a nitrifying role was investigated. During RAS operation using heterotrophic BFT biofilters, R1 and R2 simultaneously controlled total ammonium nitrogen, nitrite (NO-N), nitrate (NO-N), soluble reactive phosphate (SRP), and alkalinity, with relevant functional microbes including denitrifying bacteria (DNB), phosphorus accumulating organisms (PAOs), denitrifying PAOs (DNPAOs), glycogen accumulating organisms, ammonia oxidizing bacteria, and nitrite oxidizing bacteria. To achieve low concentrations of nitrogen, phosphorus, and save carbon sources, we were able to quickly convert R1 into a nitrifying BFT biofilter by stopping carbohydrate addition. Although there were dominant relative abundances of DNB, PAOs, and DNPAOs in the converted R1, the lack of carbon sources resulted in continuous rise of NO-N in the effluent, stable NO-N removal efficiency, and absence of SRP removal after 40 h. However, R2 retained the previous NO-N and SRP removal efficiencies with carbohydrate addition. This indicated that this novel RAS using BFT biofilters achieved simultaneous nitrogen and phosphate removal, and that the convertible water-treatment efficiencies of BFT biofilters could be controlled by carbohydrate addition. This approach could simplify the RAS setup and meet real-time water quality demands.

摘要

为了实现高效的水处理和简化循环水养殖系统(RAS)的设置,本研究考察了悬浮生长反应器(R1 和 R2)在基于生物絮体技术(BFT)的水处理生物滤池中作为水过滤器的应用。此外,还研究了将异养型 R1 生物滤器转化为硝化作用的可能性。在使用异养型 BFT 生物滤池的 RAS 运行过程中,R1 和 R2 同时控制总铵氮、亚硝酸盐(NO-N)、硝酸盐(NO-N)、可溶性反应磷(SRP)和碱度,相关功能微生物包括反硝化细菌(DNB)、聚磷菌(PAOs)、反硝化聚磷菌(DNPAOs)、糖原积累菌、氨氧化菌和亚硝酸盐氧化菌。为了实现低浓度的氮、磷和节约碳源,我们能够通过停止添加碳水化合物快速将 R1 转化为硝化型 BFT 生物滤池。尽管在转化后的 R1 中存在相对丰度较高的 DNB、PAOs 和 DNPAOs,但由于缺乏碳源,导致出水中的 NO-N 持续升高,NO-N 去除效率稳定,40 小时后不再去除 SRP。然而,在添加碳水化合物的情况下,R2 仍保持了之前的 NO-N 和 SRP 去除效率。这表明,这种新型的使用 BFT 生物滤池的 RAS 实现了同时去除氮和磷,并且 BFT 生物滤池的可转换水处理效率可以通过添加碳水化合物来控制。这种方法可以简化 RAS 的设置,满足实时水质需求。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验