首页> 外文学位 >A comprehensive assessment of a hybrid ultrafiltration-osmotic membrane bioreactor for potable water reuse and nutrient removal from municipal wastewater.
【24h】

A comprehensive assessment of a hybrid ultrafiltration-osmotic membrane bioreactor for potable water reuse and nutrient removal from municipal wastewater.

机译:混合超滤-渗透膜生物反应器用于饮用水回用和从城市废水中去除营养物的综合评估。

获取原文
获取原文并翻译 | 示例

摘要

Existing water supplies and mineral reserves could be augmented using municipal wastewater through water reclamation and reuse and through nutrient recovery. Potable water reuse is increasingly being considered as an option to supplement diminishing fresh water reserves in water scarce regions. The technologies developed for potable reuse have to employ multiple treatment barriers (e.g., chemical, biological, and physical) to protect the health of the public and the environmental from contaminants, including pathogenic microorganism, nutrients, and trace organic compounds (TOrCs). Similar to water reuse, there has been increasing interest in nutrient (phosphorus and nitrogen) and mineral (calcium, magnesium, and potassium) recovery from wastewater for use as fertilizers and other marketable commodities.;A pilot-scale hybrid ultrafiltration-osmotic membrane bioreactor (UFO-MBR) treatment system was developed and investigated for water reuse and nutrient removal. The UFO-MBR couples biological treatment with semi-permeable forward osmosis (FO) membranes and low-pressure ultrafiltration (UF) membranes in one integrated process. The FO membrane provides nearly complete separation of suspended and dissolved solids between a low-salinity activated sludge feed stream and a high salinity draw solution (DS). The DS is used to provide the driving force for water production in this osmotically driven process. During operation, the DS is diluted by water diffusing from the feed and it must be reconcentrated using a dewatering/ reconcentration system. In this study, a reverse osmosis (RO) system was used to produce high quality product water and to reconcentrate the DS.;As a result of using FO membranes for separation of suspended and dissolved solids in a bioreactor, salts, minerals, and nutrients accumulate in the activated sludge, resulting in reduced driving force (difference in salinity between the feed and DS) and inhibition of microbial activity in the activated sludge. Salt accumulation is mitigated in the UFO-MBR using a UF membrane system to extract dissolved constituents from the activated sludge with the UF permeate while retaining the biosolids in the reactor. It has been demonstrated in this study that increased flux, reduced fouling, and improved nutrient removal is achieved using the hybrid UFO-MBR system compared to an osmotic membrane bioreactor (OMBR) incorporating FO and RO only. Furthermore, the UF permeate stream has been shown to be rich with potentially valuable and recoverable nitrogen, phosphorus, and minerals. Thus, the objective of this dissertation was to assess the feasibility, viability, and sustainability of the UFO-MBR as an integrated water reuse and nutrient recovery technology through pilot-scale testing, system modeling, and life-cycle assessment.
机译:市政废水可以通过开垦和再利用以及通过养分回收来增加现有的供水和矿产储量。越来越多地考虑将饮用水回用作为补充在缺水地区减少淡水储备的一种选择。为饮用再利用而开发的技术必须采用多种处理屏障(例如化学,生物和物理方法)来保护公众健康和环境免受污染物的污染,包括病原微生物,营养素和痕量有机化合物(TOrC)。与中水回用类似,人们对从废水中回收营养物(磷和氮)和矿物质(钙,镁和钾)以用作肥料和其他可销售商品的兴趣日益浓厚;中试规模的混合型超滤-渗透膜生物反应器(UFO-MBR)处理系统已开发并进行了水回用和营养去除的研究。 UFO-MBR在一个集成过程中将生物处理与半渗透性正渗透(FO)膜和低压超滤(UF)膜结合在一起。 FO膜可在低盐度活性污泥进料流和高盐度汲取溶液(DS)之间几乎完全分离悬浮和溶解的固体。在该渗透驱动过程中,DS用于为水的生产提供动力。在操作过程中,DS会通过从进料中扩散出来的水进行稀释,因此必须使用脱水/浓缩系统对其进行浓缩。在这项研究中,使用反渗透(RO)系统生产高质量的产品水并浓缩了DS .;由于使用FO膜分离了生物反应器中的悬浮和溶解固体,盐,矿物质和养分积聚在活性污泥中,导致驱动力降低(进料和DS之间的盐度差异)并抑制了活性污泥中的微生物活性。使用UF膜系统可减轻UFO-MBR中的盐积累,从而从含有Uf渗透物的活性污泥中提取溶解的成分,同时将生物固体保留在反应器中。在这项研究中已证明,与仅掺入FO和RO的渗透膜生物反应器(OMBR)相比,使用混合UFO-MBR系统可提高通量,减少结垢并改善营养去除率。此外,超滤渗透物流已显示富含潜在有价值和可回收的氮,磷和矿物质。因此,本论文的目的是通过中试规模的测试,系统建模和生命周期评估来评估UFO-MBR作为一种综合的水回用和养分回收技术的可行性,可行性和可持续性。

著录项

  • 作者

    Holloway, Ryan Walter.;

  • 作者单位

    Colorado School of Mines.;

  • 授予单位 Colorado School of Mines.;
  • 学科 Environmental engineering.;Civil engineering.
  • 学位 Ph.D.
  • 年度 2015
  • 页码 292 p.
  • 总页数 292
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:52:43

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