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流型对膜系统压降增加、生物量积累和形态的影响。

Impact of flow regime on pressure drop increase and biomass accumulation and morphology in membrane systems.

机构信息

Wetsus, Centre of Excellence for Sustainable Water Technology, P.O. Box 1113, 8900 CC Leeuwarden, The Netherlands.

出版信息

Water Res. 2010 Feb;44(3):689-702. doi: 10.1016/j.watres.2009.09.054. Epub 2009 Sep 25.

Abstract

Biomass accumulation and pressure drop development have been studied in membrane fouling simulators at different flow regimes. At linear flow velocities as applied in practice in spiral wound nanofiltration (NF) and reverse osmosis (RO) membranes, voluminous and filamentous biofilm structures developed in the feed spacer channel, causing a significant increase in feed channel pressure drop. Elevated shear by both single phase flow (water) and two phase flow (water with air sparging: bubble flow) caused biofilm filaments and a pressure drop increase. The amount of accumulated biomass was independent of the applied shear, depending on the substrate loading rate (product of substrate concentration and linear flow velocity) only. The biofilm streamers oscillated in the passing water. Bubble flow resulted in a more compact and less filamentous biofilm structure than single phase flow, causing a much lower pressure drop increase. The biofilm grown under low shear conditions was more easy to remove during water flushing compared to a biofilm grown under high shear. To control biofouling, biofilm structure may be adjusted using biofilm morphology engineering combined with biomass removal from membrane elements by periodic reverse flushing using modified feed spacers. Potential long and short term consequences of flow regimes on biofilm development are discussed. Flow regimes manipulate biofilm morphology affecting membrane performance, enabling new approaches to control biofouling.

摘要

在不同流态下的膜污染模拟装置中研究了生物量积累和压降发展。在线性流速下,如在螺旋缠绕纳滤(NF)和反渗透(RO)膜中实际应用的流速,大量丝状生物膜结构在进料间隔通道中发展,导致进料通道压降显著增加。单相流(水)和两相流(带空气喷射的水:气泡流)的升高剪切力导致生物膜丝状结构和压降增加。积累的生物量数量与施加的剪切力无关,仅取决于基质负载速率(基质浓度和线性流速的乘积)。生物膜射流在通过的水中振荡。与单相流相比,气泡流导致更紧凑和丝状结构更少的生物膜,从而导致压降增加低得多。与在高剪切力下生长的生物膜相比,在低剪切力条件下生长的生物膜在水冲洗时更容易去除。为了控制生物污垢,可以使用生物膜形态工程来调整生物膜结构,并通过周期性地使用改良的进料间隔件进行反向冲洗来从膜元件中去除生物量。讨论了流态对生物膜发展的潜在长期和短期影响。流态控制生物膜形态,影响膜性能,为控制生物污垢提供了新方法。

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