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通过实验-统计相结合的方法对超滤陶瓷膜超声强化清洗进行研究与优化。

Study and optimization of the ultrasound-enhanced cleaning of an ultrafiltration ceramic membrane through a combined experimental-statistical approach.

作者信息

Alventosa-deLara E, Barredo-Damas S, Alcaina-Miranda M I, Iborra-Clar M I

机构信息

Departamento de Ingeniería Química y Nuclear, Universitat Politècnica de València, Camino de Vera s/n, 46022 Valencia, Spain.

Departamento de Ingeniería Química y Nuclear, Universitat Politècnica de València, Camino de Vera s/n, 46022 Valencia, Spain.

出版信息

Ultrason Sonochem. 2014 May;21(3):1222-34. doi: 10.1016/j.ultsonch.2013.10.022. Epub 2013 Nov 4.

Abstract

Membrane fouling is one of the main drawbacks of ultrafiltration technology during the treatment of dye-containing effluents. Therefore, the optimization of the membrane cleaning procedure is essential to improve the overall efficiency. In this work, a study of the factors affecting the ultrasound-assisted cleaning of an ultrafiltration ceramic membrane fouled by dye particles was carried out. The effect of transmembrane pressure (0.5, 1.5, 2.5 bar), cross-flow velocity (1, 2, 3 ms(-1)), ultrasound power level (40%, 70%, 100%) and ultrasound frequency mode (37, 80 kHz and mixed wave) on the cleaning efficiency was evaluated. The lowest frequency showed better results, although the best cleaning performance was obtained using the mixed wave mode. A Box-Behnken Design was used to find the optimal conditions for the cleaning procedure through a response surface study. The optimal operating conditions leading to the maximum cleaning efficiency predicted (32.19%) were found to be 1.1 bar, 3 ms(-1) and 100% of power level. Finally, the optimized response was compared to the efficiency of a chemical cleaning with NaOH solution, with and without the use of ultrasound. By using NaOH, cleaning efficiency nearly triples, and it improves up to 25% by adding ultrasound.

摘要

膜污染是超滤技术处理含染料废水过程中的主要缺点之一。因此,优化膜清洗程序对于提高整体效率至关重要。在这项工作中,对影响超声辅助清洗被染料颗粒污染的超滤陶瓷膜的因素进行了研究。评估了跨膜压力(0.5、1.5、2.5巴)、错流速度(1、2、3米/秒)、超声功率水平(40%、70%、100%)和超声频率模式(37、80千赫和混合波)对清洗效率的影响。最低频率显示出较好的结果,尽管使用混合波模式获得了最佳清洗性能。通过响应面研究,采用Box-Behnken设计来寻找清洗程序的最佳条件。预测导致最大清洗效率(32.19%)的最佳操作条件为1.1巴、3米/秒和100%的功率水平。最后,将优化后的响应与使用和不使用超声的NaOH溶液化学清洗效率进行了比较。使用NaOH时,清洗效率几乎提高了两倍,通过添加超声可提高至25%。

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