Membrane defouling using microbubbles generated by fluidic oscillation

M. Harun, W. Zimmerman
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引用次数: 13

Abstract

Impurities and colloidal substances are two of many fouling conditions that reduce the membrane filtration performance used in wastewater treatment. This study investigates the potential of fluidic oscillation generated microbubbles (MBs) to defoul the filtration membrane. Cartridge filters of microfiltration (MF) of 1 μm pore size were fouled using surface seawater collected from the Hull coastal area. The seawater was circulated at 5.8 L/min to actuate colloidal substance deposition on the membrane surface. The recorded feed channel pressure drop (Δ P ) across the membrane filters shown rapid fouling occurred in the first 8 hrs of the circulation. Fluctuations of Δ P during the next 8 hrs were observed showing the colloids filling the pores of the membrane, remaining steady for two hours showing membrane was completely fouled. The filtration membrane was cleaned and defouled using fluidic oscillator generated MBs. The fouled membranes were sparged with 1 L/min of air scouring for ∼1 to ∼2 hrs to remove the deposited colloids and impurities on the surface of the membrane. The membrane, analysed under Scanning Electron Microscopy (SEM), UV 254 and EC meter, shows the extent of MBs mediated removal of the deposited colloidal particle from the membrane surfaces. This study found that the highest defouling rate occurs with MBs generated by fluidic oscillator (closed vent), followed by MBs generated by fluidic oscillator (opened vent) and MBs generated without fluidic oscillator are9.53, 6.22, and 3.41 mbar/min, respectively.
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利用流体振荡产生的微泡进行膜除污
杂质和胶体物质是降低废水处理中膜过滤性能的许多污染条件中的两种。本文研究了流体振荡产生的微泡(mb)对过滤膜的净化作用。采用从赫尔沿海地区收集的表层海水对孔径为1 μm的微滤滤筒进行污染。以5.8 L/min的速度循环海水,促使胶体物质在膜表面沉积。通过膜过滤器记录的进料通道压降(Δ P)表明,在循环的前8小时内发生了快速污染。在接下来的8小时内,观察到Δ P的波动,表明胶体填充了膜的孔隙,保持稳定2小时,表明膜完全被污染。使用流体振荡器产生的MBs对过滤膜进行清洗和去污。用1 L/min的空气冲洗1 ~ 2小时,以去除膜表面沉积的胶体和杂质。在扫描电子显微镜(SEM)、UV - 254和EC仪下对膜进行分析,显示了mb介导的从膜表面沉积的胶体颗粒去除的程度。本研究发现,射流振荡器(关闭通风口)产生的消雾速率最高,其次是射流振荡器(打开通风口)产生的消雾速率,分别为9.53、6.22和3.41 mbar/min。
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