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The formation and characterisation of an asymmetric nanofiltration membrane for ammonia-nitrogen removal: Effect of shear rate

机译:用于氨氮去除的不对称纳滤膜的形成和表征:剪切速率的影响

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摘要

The focus of this research is to Study the potential of nanofiltration membrane technology in removing ammonia-nitrogen from the aquaculture system. One of the major fabrication parameters that directly affect the separation performance is shear rate or casting rate during membrane fabrication. In this study, asymmetric polyethersulfone (PES) nanofiltration membranes were prepared at five different shear rates within the range of 67-400 s(-1). Membrane productivity and separation performance were assessed via pure water, salt and ammonia-nitrogen permeation experiments, and their structural properties were determined by employing the combination of the irreversible thermodynamic (IT) model, solution diffusion model, steric hindrance pore (SHP) model and Teorell-Meyers (TMS) model. The study reveals that the alteration of shear rate enormously affects the membrane morphology and structural parameters, hence subsequently significantly influencing the membrane performance. It was found that, membrane produced at the shear rate 200 s-1 or equivalent to 10 s of casting speed during membrane fabrications managed to remove about 68% of ammonia-nitrogen, in which its separation performance is the most favourable by means of highest flux and rejection ability towards unwanted solutes. Besides, from the research findings, nano-membrane technology is a potential candidate for the treatment of aquaculture wastewater.
机译:这项研究的重点是研究纳滤膜技术在水产养殖系统中去除氨氮的潜力。直接影响分离性能的主要制造参数之一是膜制造过程中的剪切速率或流延速率。在这项研究中,在67-400 s(-1)范围内的五种不同剪切速率下制备了不对称聚醚砜(PES)纳滤膜。通过纯水,盐和氨氮渗透实验评估了膜的生产率和分离性能,并结合了不可逆热力学模型,溶液扩散模型,位阻孔模型和Teorell-Meyers(TMS)模型。研究表明,剪切速率的改变极大地影响了膜的形态和结构参数,因此对膜的性能产生了很大的影响。结果发现,在膜制造过程中以200 s-1的剪切速率或相当于10 s的浇铸速度生产的膜设法去除了约68%的氨氮,其中分离性能最有利于最高对有害溶质的通量和排斥能力。此外,从研究结果来看,纳米膜技术是处理水产养殖废水的潜在选择。

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