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Hydrophilic fraction of natural organic matter causing irreversible fouling of microfiltration and ultrafiltration membranes

机译:天然有机物的亲水性部分导致微滤和超滤膜的不可逆结垢

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摘要

Although membrane filtration is a promising technology in the field of drinking water treatment, persistent membrane fouling remains a major disadvantage. For more efficient operation, causative agents of membrane fouling need to be identified. Membrane fouling can be classified into physically reversible and irreversible fouling on basis of the removability of the foulants by physical cleaning. Four types of natural organic matter (NOM) in river water used as a source of drinking water were fractionated into hydro-phobic and hydrophilic fractions, and their potential to develop irreversible membrane fouling was evaluated by a bench-scale filtration experiment together with spectroscopic and chromatographic analyses. In this study, only dissolved NOM was investigated without consideration of interactions of NOM fractions with particulate matter. Results demonstrated that despite identical total organic carbon (TOC), fouling development trends were significantly different between hydrophilic and hydrophobic fractions. The hydrophobic fractions did not increase membrane resistance, while the hydrophilic fractions caused severe loss of membrane permeability. These results were identical with the case when the calcium was added to hydrophobic and hydrophilic fractions. The largest difference in NOM characteristics between hydrophobic and hydrophilic fractions was the presence or absence of macromolecules; the primary constituent causing irreversible fouling was inferred to be "biopolymers", including carbohydrates and proteins. In addition, the results demonstrated that the extent of irreversible fouling was considerably different depending on the combination of membrane materials and NOM characteristics. Despite identical nominal pore size (0.1 μm), a polyvinylidene fluoride (PVDF) membrane was found to be more rapidly fouled than a PE membrane. This is probably explained by the generation of strong hydrogen bonding between hydroxyl groups of biopolymers and fluorine of the PVDF membrane. On the basis of these findings, it was suggested that the higher fouling potential of the hydrophilic fraction of the dissolved NOMs from various natural water sources are mainly attributed to macromolecules, or biopolymers.
机译:尽管膜过滤是饮用水处理领域中的一项有前途的技术,但持续的膜污染仍然是主要的缺点。为了更有效地操作,需要确定膜污染的病因。基于污垢通过物理清洁的可去除性,膜污垢可分为物理可逆污垢和不可逆污垢。将用作饮用水源的河水中的四种类型的天然有机物(NOM)分为疏水性和亲水性馏分,并通过台式规模的过滤实验以及分光光度法和质谱法评估了它们产生不可逆膜污染的潜力。色谱分析。在这项研究中,只研究了溶解的NOM,而没有考虑NOM馏分与颗粒物的相互作用。结果表明,尽管总有机碳(TOC)相同,但亲水性部分和疏水性部分之间的结垢发展趋势却显着不同。疏水级分并没有增加膜的抵抗力,而亲水级分却导致膜渗透性的严重损失。这些结果与将钙添加到疏水和亲水级分中的情况相同。疏水级分和亲水级分之间NOM特性的最大差异是存在或不存在大分子。导致不可逆结垢的主要成分被推断为“生物聚合物”,包括碳水化合物和蛋白质。另外,结果表明,不可逆结垢的程度根据膜材料和NOM特性的组合而有很大差异。尽管具有相同的标称孔径(0.1μm),但发现聚偏二氟乙烯(PVDF)膜比PE膜更容易结垢。这可能是由于在生物聚合物的羟基和PVDF膜的氟之间产生了强大的氢键。根据这些发现,有人提出,来自各种天然水源的溶解NOMs的亲水部分的较高的结垢潜力主要归因于大分子或生物聚合物。

著录项

  • 来源
    《Water Research》 |2014年第1期|123-136|共14页
  • 作者单位

    Department of Integrated Science and Engineering for Sustainable Society, Chuo University, 1-13-27 Kasuga,Bunkyo-ku, Tokyo 112-8551, Japan;

    Division of Built Environment, Graduate School of Engineering, Hokkaido University, N13W8, Sapporo 060-8628,Japan;

    Division of Built Environment, Graduate School of Engineering, Hokkaido University, N13W8, Sapporo 060-8628,Japan;

    Research and Development Initiative, Chuo University, 1-13-27 Kasuga, Bunkyo-ku, Tokyo 112-8551, Japan;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Natural organic matter; Hydrophilic organic matter; Microfiltration; Ultranltration; Membrane fouling;

    机译:天然有机物;亲水性有机物;微滤;超滤膜污染;

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