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Chemical cleaning of potable microfiltration and ultrafiltration membranes

机译:便携式微滤和超滤膜的化学清洗

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摘要

Concerns over possible waterborne disease forced drinking water supply companies in England and Wales to adopt microfiltration and ultrafiltration technologies rapidly. MF and UF membrane plants are designed to produce water of a consistent quality regardless of throughput and fluctuations in the feedwater quality. To operate well they need to maintain flux and balance the rate of fouling, and chemical cleaning performance is critical to this. Giant steps have been taken into characterizing the foulants scientifically in the last few years while cleaning is reactive and ad hoc. This thesis explores the basis for a corresponding cleaning science for the technology to develop quantitively.Cleaning performance was defined in terms of a response to combinations of explanatory variables in a materials limited cleaning envelope. The study focused on applying variations of cleanant concentration, applied temperature and soak times to a variety of membranes fouled with different waters and regimes. An experimental design was developed and applied consistently to a number of different sampled sites; allowing an optimised recovery from the polynomial expressions for each treatment, through factorial analysis of the data.The size and variety of the data set analysed allowed comparison and quantification of the different deviations from optimal cleaning response. This effect was seen to vary temporally and with operating regime and the methods usefulness as a practical tool in the membrane plant lifecycle was considered.Cost evaluation of the variation in cleaning response showed that sub-optimal cleaning costs and energy use may be significant and the thesis also illustrated how module geometry affects initial cake deposition and thus cleanability. By demonstrating the potential for cleaning factor analysis, the potential for a combined heuristic and predictive cleaning control science is possible, but will need new strategies to manage technology change.
机译:对可能的水传播疾病的担忧迫使英格兰和威尔士的饮用水供应公司迅速采用微滤和超滤技术。 MF和UF膜设备的设计目的是生产出质量稳定的水,而不受产量和给水质量波动的影响。为了良好运行,他们需要保持助熔剂并平衡结垢率,而化学清洁性能对此至关重要。在过去的几年中,在清洁是反应性的和临时性的过程中,已经采取了巨大的步骤来科学地表征污垢。本论文探索了该技术得以定量发展的相应清洁科学的基础。清洁性能是根据对材料有限的清洁包络中的解释变量组合的响应来定义的。该研究的重点是将清洁剂浓度,施加的温度和浸泡时间的变化应用于被不同水和环境污染的各种膜。开发了实验设计并将其一致地应用于许多不同的采样点。通过对数据进行析因分析,可以优化每次处理多项式表达式的恢复效果。所分析数据集的大小和种类允许对最佳清洗响应的不同偏差进行比较和量化。观察到该效果随时间和操作方式而变化,并考虑了该方法在膜工厂生命周期中作为实用工具的实用性。清洁响应变化的成本评估表明,次优清洁成本和能源消耗可能很重要,并且论文还说明了模块几何形状如何影响初始滤饼沉积以及清洁度。通过展示清洁因子分析的潜力,启发式和预测性清洁控制科学相结合的潜力是可能的,但将需要新的策略来管理技术变更。

著录项

  • 作者

    Porcelli Nicandro;

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  • 年度 2009
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  • 原文格式 PDF
  • 正文语种 {"code":"en","name":"English","id":9}
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