首页> 外文期刊>Water >Performance of a Novel Fertilizer-Drawn Forward Osmosis Aerobic Membrane Bioreactor (FDFO-MBR): Mitigating Salinity Build-Up by Integrating Microfiltration
【24h】

Performance of a Novel Fertilizer-Drawn Forward Osmosis Aerobic Membrane Bioreactor (FDFO-MBR): Mitigating Salinity Build-Up by Integrating Microfiltration

机译:新型肥料前向渗透性好氧膜生物反应器(FDFO-MBR)的性能:通过集成微滤减轻盐分的积累

获取原文

摘要

In this paper, three different fertilizer draw solutions were tested in a novel forward osmosis-microfiltration aerobic membrane bioreactor (MF-FDFO-MBR) hybrid system and their performance were evaluated in terms of water flux and reverse salt diffusion. Results were also compared with a standard solution. Results showed that ammonium sulfate is the most suitable fertilizer for this hybrid system since it has a relatively high water flux (6.85 LMH) with a comparatively low reverse salt flux (3.02 gMH). The performance of the process was also studied by investigating different process parameters: draw solution concentration, FO draw solution flow rate and MF imposed flux. It was found that the optimal conditions for this hybrid system were: draw solution concentration of 1 M, FO draw solution flow rate of 200 mL/min and MF imposed flux of 10 LMH. The salt accumulation increased from 834 to 5400 μS/cm during the first four weeks but after integrating MF, the salinity dropped significantly from 5400 to 1100 μS/cm suggesting that MF is efficient in mitigating the salinity build up inside the reactor. This study demonstrated that the integration of the MF membrane could effectively control the salinity and enhance the stable FO flux in the OMBR.
机译:在本文中,在新型正向渗透微滤好氧膜生物反应器(MF-FDFO-MBR)混合系统中测试了三种不同的肥料汲取溶液,并根据水通量和反盐扩散对其性能进行了评估。还将结果与标准溶液进行了比较。结果表明,硫酸铵是该混合系统最合适的肥料,因为它具有较高的水通量(6.85 LMH)和相对较低的反盐通量(3.02 gMH)。还通过研究不同的工艺参数来研究该工艺的性能:吸液浓度,FO吸液流速和MF施加的通量。发现该混合系统的最佳条件为:汲取溶液浓度为1 M,FO汲取溶液流速为200 mL / min,MF施加的通量为10 LMH。在最初的四周内,盐累积量从834增加到5400μS/ cm,但是在加入MF之后,盐度从5400显着下降到1100μS/ cm,这表明MF可有效缓解反应器内部的盐分积累。这项研究表明,MF膜的集成可以有效地控制盐度并增强OMBR中的稳定FO通量。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号