State Key Laboratory of Pollution Control and Resources Reuse, College of Environmental Science and Engineering , Tongji University , Siping Road , Shanghai 200092 , P. R. China.
Environ Sci Technol. 2019 Nov 19;53(22):13158-13167. doi: 10.1021/acs.est.9b04314. Epub 2019 Oct 16.
A novel anammox self-forming dynamic membrane bioreactor (SFDMBR) was proposed to achieve an efficient anammox process with high biomass retention and cost-effective operation. The cake layer formed on nylon mesh (pore size, 20-25 μm) was referred to as a dynamic membrane (DM). The high permeability of the DM layer contributed to low transmembrane pressure (TMP), which kept below 10 kPa for 50 days in one filtration cycle of 82 days. Compared to the high TMP (mainly > 20 kPa) in the MBR using polyvinylidene fluoride (PVDF) microfiltration membrane, energy can be significantly conserved in the SFDMBR. Besides, the mature DM layer achieved efficient biomass retention comparable to that of PVDF membrane, which favored anammox bacteria enrichment. Concomitantly, an appropriate microenvironment for autotrophic anammox bacterial growth with well-controlled extracellular polymeric substances (EPS) concentration (33.22 mg·g VSS) was achieved in SFDMBR. According to specific filtration resistance (SFR) analysis, reducing the EPS concentration in the bulk sludge improves sludge filterability and alleviate fouling, which was achieved in the SFDMBR system with a low SFR of 1.47 × 10 m·kg. Our results show that the cost-effective operations and technical merits make anammox SFDMBRs promising for practical applications.
一种新型的厌氧氨氧化自形成动态膜生物反应器(SFDMBR)被提出,以实现高效的厌氧氨氧化过程,具有高生物量保留和具有成本效益的操作。在尼龙网(孔径 20-25μm)上形成的滤饼层被称为动态膜(DM)。DM 层的高渗透性有助于降低跨膜压力(TMP),在 82 天的一个过滤周期中,TMP 保持在 10kPa 以下达 50 天。与使用聚偏二氟乙烯(PVDF)微滤膜的 MBR 中高 TMP(主要>20kPa)相比,SFDMBR 可显著节省能源。此外,成熟的 DM 层实现了与 PVDF 膜相当的高效生物量保留,有利于厌氧氨氧化菌的富集。同时,在 SFDMBR 中,通过控制好胞外聚合物物质(EPS)浓度(33.22mg·g VSS),为自养厌氧氨氧化细菌的生长提供了适当的微环境。根据特定过滤阻力(SFR)分析,降低絮体污泥中的 EPS 浓度可提高污泥的过滤性能,减轻堵塞,在 SFR 为 1.47×10m·kg 的 SFDMBR 系统中可以实现这一点。我们的结果表明,具有成本效益的操作和技术优势使厌氧氨氧化 SFDMBR 有望在实际应用中得到应用。