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Permeability is the Critical Factor Governing the Life Cycle Environmental Performance of Drinking Water Treatment Using Living Filtration Membranes

机译:渗透性是使用活过滤膜的饮用水处理生命周期环境性能的关键因素

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摘要

Living Filtration Membranes (LFMs) are a water filtration technology that was recently developed in the lab (Technology Readiness Level 4). LFMs have shown filtration performance comparable with that of ultrafiltration, far better fouling resistance than conventional polymer membranes, and good healing capabilities. These properties give LFMs promise to address two significant issues in conventional membrane filtration: fouling and membrane damage. To integrate environmental considerations into future technology development (i.e., Ecode- sign), this study assesses the life cycle environmental performance of drinking water treatment using LFMs under likely design and operation conditions. It also quantitatively ranks the engineering design and operation factors governing the further optimization of LFM environmental performance using a global sensitivity analysis. The results suggest that LFMs' superior fouling resistance will reduce the life cycle environmental impacts of ultrafiltration by 25% compared to those of a conventional polymer membrane in most impact categories (e.g., acidification, global warming potential, and carcinogenics). The only exception is the eutrophication impact, where the need for growth medium and membrane regeneration offsets the benefits of LFMs' fouling resistance. Permeability is the most important factor that should be prioritized in future R&D to further improve the life cycle environmental performance of LFMs. A 1% improvement in the permeability will lead to a ~0.7% improvement in LFMs' environmental performance in all the impact categories, whereas the same change in the other parameters investigated (e.g., LFM lifespan and regeneration frequency) typically only leads to a <0.2% improvement.
机译:活过滤膜(LFM)是最近在实验室开发的水过滤技术(技术准备水平4)。 LFMS显示出与超滤相当的过滤性能,比常规聚合物膜更好的污垢阻力,以及良好的愈合能力。这些性质使LFMS承诺解决常规膜过滤中的两个重要问题:污垢和膜损伤。将环境考虑集成为未来的技术开发(即Ecode-Sign),本研究评估了使用LFMS在可能的设计和操作条件下使用LFM的饮用水处理的生命周期环境性能。它还使用全局敏感性分析来定量地对有关LFM环境绩效进行进一步优化的工程设计和操作因素。结果表明,与大多数冲击类别(例如酸化,全球变暖潜力和致癌学)相比,LFMS的卓越污垢阻力将使超滤的终止循环抵抗力降低25%的寿命周期对25%的环境影响。唯一的例外是富营养化的影响,需要生长培养基和膜再生的需要抵消了LFMS污垢抗性的益处。渗透性是最重要的因素,应在未来的研发中优先考虑,以进一步提高LFMS的生命周期环境性能。渗透性的1%改善将导致所有影响类别的LFMS环境性能的提高〜0.7%,而研究的其他参数的变化相同(例如,LFM寿命和再生频率)通常只会导致A <改善0.2%。

著录项

  • 来源
    《Environmental Science & Technology》 |2020年第12期|7651-7658|共8页
  • 作者单位

    Environmental Engineering Department Montana Technological University Butte Montana 59701 United States;

    WaterNova Group Lakewood Colorado 80227 United States;

    Environmental Engineering Department Montana Technological University Butte Montana 59701 United States;

    Environmental Engineering Department Montana Technological University Butte Montana 59701 United States;

    Department of Civil and Environmental Engineering Imperial College London London SW7 2AZ U.K.;

    Department of Mathematical Sciences Montana State University Bozeman Montana 5971 7 United States;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
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