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首页> 外文期刊>Science of the total environment >Novel housing designs for nanofiltration and ultrafiltration gravity-driven recycled membrane-based systems
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Novel housing designs for nanofiltration and ultrafiltration gravity-driven recycled membrane-based systems

机译:纳米滤波和超滤重力驱动再生膜的新型外壳设计

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摘要

Ultra-low pressure gravity-driven membrane (GDM) systems have the potential to be significantly less costly and complex than conventional membranes for water treatment applications. To build upon this inherent advantage, this study assesses the reuse of recycled membranes in GDM systems for producing drinking water. Two reverse osmosis spiral-wound modules were recycled into nanofiltration (NF)-like and ultrafiltration (UF)-like membranes via controlled exposure to free chlorine. To operate the recycled membranes, two housing devices, based on a simple fitting and an advanced end-caps design, were developed. The recycled membrane systems were tested undera range of conditions (submerged vs. external system configuration and continuous vs. intermittent filtration mode). Synthetic river water feed solutions were used in the tests where performance, fouling, and clogging were measured. NF-like recycled membranes resulted in poor salt rejection and low permeability (~1.7 Lm~(-2) h~(-1) bar~(-1)), but also in high rejection (>81%) of dissolved organic carbon. UF-like recycled membranes maintained their capacity to reject biopolymers (BP) (>74%) and featured up to 18-fold higher permeate rate than NF-like recycled membranes. The optimized operating conditions were found when the recycled membranes were housed in the end-caps device and operated intermittently (relaxation time plus forward flushing). Flushing reduced the fouling accumulation inside the membrane (only 12% and 40% of BP accumulation was observed in the NF-like and UF-like, respectively). However, the end-caps-based device was estimated to be more expensive during the economic analysis. To address this techno-economic trade-off, a decision-making tree was developed to select the appropriate configuration based upon the implementation context. Overall, this study concludes that these designs can serve as robust, low-cost (water production cost <1 USD ct. yr. L~(-1)), and light-weight GDM alternatives. This study is beneficial for developing compact GDM systems based on recycled spiral-wound membranes for both rural areas and emergency response.
机译:超低压力驱动的膜(GDM)系统具有比用于水处理应用的常规膜的昂贵和复杂的昂贵和复杂。为了建立这种固有的优势,该研究评估了GDM系统中的再生膜的再利用,用于生产饮用水。通过受控暴露于游离氯,将两种反渗透螺旋卷绕模块再循环到纳米滤膜(NF) - 样和超滤(UF)状膜中。为了操作再生膜,开发了两个基于简单配件和先进的端盖设计的储物装置。在条件范围内进行测试的再生膜系统(浸没对外系统配置和连续的与间歇过滤模式)进行测试。在测量性能,结垢和堵塞的测试中使用合成河水进料溶液。 Nf样再生膜导致耐盐不良和低渗透率(〜1.7升〜(-2)H〜(-1)棒〜(-1)),但也在高抑制(> 81%)的溶解有机碳中。类似UF的再循环膜保持它们的拒绝生物聚合物(BP)(> 74%)的能力,并比诸如类似NF样再生膜的渗透率高达18倍。当再循环膜被容纳在端盖装置中并间歇地操作时(弛豫时间加正向冲洗)时,发现了优化的操作条件。冲洗减少了膜内的污垢积累(分别在Nf样和UF样中观察到膜中仅12%和40%的BP积累)。然而,在经济分析期间,估计基于盖子的装置估计更昂贵。为了解决这一技术经济折衷,开发了一个决策树,以基​​于实现上下文选择适当的配置。总体而言,这项研究得出结论,这些设计可以作为稳健,低成本(水生产成本<1 USD CT。YR。L〜(-1))和轻量级GDM替代品。本研究有利于基于循环螺旋缠绕的紧凑型GDM系统进行农村地区和应急响应。

著录项

  • 来源
    《Science of the total environment 》 |2021年第1期| 144181.1-144181.14| 共14页
  • 作者单位

    LEQUIA Institute of the Environment University of Girona Campus Montilivi carver Maria Aurelia Capmany 69 E-17003 Girona Catalonia Spain UNESCO Centre for Membrane Science and Technology School of Chemical Engineering The University of New South Wales (UNSW) Kensington New South Wales 2052 Australia IMDEA Water Institute Avenida Punto Com. n°2.28805 Alcala de Henares Madrid Spain;

    UNESCO Centre for Membrane Science and Technology School of Chemical Engineering The University of New South Wales (UNSW) Kensington New South Wales 2052 Australia School of Mechanical and Manufacturing Engineering The University of New South Wales (UNSW) Kensington New South Wales 2052 Australia;

    LEQUIA Institute of the Environment University of Girona Campus Montilivi carver Maria Aurelia Capmany 69 E-17003 Girona Catalonia Spain Catalan Institute for Water Research (ICRA) 17003 Girona Spain;

    School of Mechanical and Manufacturing Engineering The University of New South Wales (UNSW) Kensington New South Wales 2052 Australia;

    UNESCO Centre for Membrane Science and Technology School of Chemical Engineering The University of New South Wales (UNSW) Kensington New South Wales 2052 Australia;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Nanofiltration; Ultrafiltration; Recycled membranes; Membrane relaxation; Flushing; Gravity-driven membrane system; Household water treatment; Spiral-wound;

    机译:纳滤;超滤;再生膜;膜松弛;冲洗;重力驱动膜系统;家庭水处理;螺旋伤口;

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