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A comparison study of cleanup techniques for oil spill treatment using magnetic nanomaterials

机译:使用磁性纳米材料进行漏油处理清除技术的比较研究

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Magnetic nanoparticles have been successfully used to recovery oil from oil spilled on water. Two different methods, floating and vortex, were employed to promote the interaction of four oil samples with different API (e.g., 10, 20, 28 and 45) spilled on seawater and deionized water with three magnetic materials, namely: magnetite nanoparticles (N); magnetic nanocomposites of yeast biomass provided by ethanol industry (Y); and magnetic nanocomposites of cork powder (C). The magnetic nanomaterials exposed to oil on water were taking out by a neodymium magnet, and the oil recoveries were determined by gravimetric analysis before and after lyophilization. The lyophilization was determinant to guarantee the accuracy of the experiments, and without this step, the masses of oil recovered would be overestimated due to the drag of water during the oil and magnetic material removal process. Three main factors, API, contact method and magnetic material, and two interactions (i.e., API x contact method, and contact method x magnetic material) presented a statistically significant effect on oil recovery. It was observed that oil recovery increases as API decreases, and it was possible to establish a model to predict the amount of recovered oil according to this effect. Higher oil recoveries were also obtained by magnetic nanocomposites of yeast biomass (Y), regardless of the contact method and type of water, recoveries of 23% and 100% for 45 and 10 API, respectively, employing around 20 mg of Y on 300 mg of spilled oil. These percentages correspond to 0.29 +/- 0.01 kg/kg and 15.98 kg/kg of recovering oil by the magnetic procedure. The increase of mass of magnetic material improved the recovery of oils with higher APIs. The reusability of the spent materials presents potential for its application in oil spill cleaning technologies.
机译:磁性纳米颗粒已成功用于从水上溢出的油回收油。采用两种不同的方法,浮动和涡旋,促进四种油样的相互作用,其用不同的API(例如,10,20,28和45),溢出在海水和去离子水上,包括三种磁性材料,即:磁铁矿纳米颗粒(n) ;乙醇工业提供的酵母生物量磁性纳米复合材料(Y);软木粉(c)的磁性纳米复合材料。暴露于水的磁性纳米材料通过钕磁铁取出,通过冻干前后重量分析测定油回收。冻干是决定簇,以保证实验的准确性,而没有这一步,由于在油和磁性材料去除过程中拖动水,所回收的油质量将被升高。三个主要因素,API,接触方法和磁性材料,以及两个相互作用(即,API X接触法,接触方法X磁性材料)对油回收呈现了统计学显着的影响。观察到,随着API的降低,溢油增加增加,并且可以建立一种模型以根据此效果预测回收油的量。通过酵母生物量(Y)的磁性纳米复合物也可以获得更高的油回收率,无论接触方法和水的类型,分别为23%和100%的回收率,分别为33%和10 API,在300毫克约20mg y左右溢油。这些百分比对应于0.29 +/- 0.01kg / kg和15.98kg / kg通过磁性程序回收油。磁性材料质量的增加改善了具有更高的API的油的回收率。花费材料的可重用性为其在漏油清洁技术中的应用提供了潜力。

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