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首页> 外文期刊>Chemical engineering journal >Magnetophoretic removal of microalgae from fishpond water: Feasibility of high gradient and low gradient magnetic separation
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Magnetophoretic removal of microalgae from fishpond water: Feasibility of high gradient and low gradient magnetic separation

机译:磁浮法从鱼塘水中去除微藻:高梯度和低梯度磁分离的可行性

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Microalgae blooms in commercial fish production ponds resulting in a deficit in the overall oxygen budget have posed serious challenges to aquaculture industry. In this study, we demonstrate the feasibility of rapid microalgae separation in real-time from fishpond water by magnetophoresis. By relying on the magneto-shape anisotropy of rod-liked iron oxide magnetic nanoparticle (IONPs), overall separation efficiency of microalgae cells up to 90% can be achieved in less than 3 min. The IONPs employed, with a saturation magnetization at 113.8 emu/g, are surface functionalized with cationic polyelectrolyte that promotes the attachment of these particles onto microalgae cells via electrostatic interaction. Kinetic of magnetophoretic separation process was monitored by suspension opacity measurements based upon a custom built light dependent resistor (LDR setup) sensor. Whereas, the overall separation efficiency of microalgae cells is determined spectrophotometrically at 685 nm wavelength. Performance of both high gradient magnetic separation (HGIVIS) with VB > 1000 T/m and low gradient magnetic separation (LGMS) with VB < 80 T/m were tested with varying particle concentration (50-500 mg/1) and the results obtained were interpreted in term of cooperative magnetophoresis theory. Cost analysis was conducted to verify the feasibility for large scale implementation of LGMS system with the cost involved at $0.13 for every one meter cube of treated fishpond water.
机译:商业鱼类生产池塘中的微藻大量繁殖,导致总体氧气预算不足,给水产养殖业带来了严峻挑战。在这项研究中,我们证明了通过磁泳技术从鱼塘水中实时快速分离微藻的可行性。通过依靠棒状氧化铁磁性纳米粒子(IONPs)的磁形状各向异性,可以在不到3分钟的时间内实现高达90%的微藻细胞整体分离效率。所用的IONP的饱和磁化强度为113.8 emu / g,并通过阳离子聚电解质进行表面功能化,该阳离子聚电解质通过静电相互作用促进这些颗粒附着在微藻细胞上。磁悬浮分离过程的动力学通过基于定制的光敏电阻器(LDR setup)传感器的悬浮液不透明度测量进行监控。而微藻细胞的总体分离效率是在685 nm波长处用分光光度法测定的。 VB> 1000 T / m的高梯度磁选(HGIVIS)和VB <80 T / m的低梯度磁选(LGMS)的性能均以不同的颗粒浓度(50-500 mg / 1)进行了测试,并获得了结果用协同磁泳理论来解释。进行了成本分析,以验证大规模实施LGMS系统的可行性,所涉及的成本为每1立方米处理过的鱼塘水0.13美元。

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