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Evaluation for the Distribution of Fouling Deposition on the Microfiltration Membrane Using High Frequency Ultrasound

机译:使用高频超声评估微滤膜结垢沉积分布

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Distribution of fouling may largely affect flux of the microfiltration membrane, in which its formation is related to several factors such as operating pressure, flow rate, concentration/composition of feed solution, and membrane material. It therefore is essential to evaluate fouling distribution on microfiltration membranes before they will be further applied. In this study, an attempt was explored to develop methods and techniques for measuring the fouling distribution using a 35 MHz high frequency ultrasound system. The experiments were carried out from a waste water treatment system that is composed of polyvinylidene fluoride (PVDF) membrane with nominal pore size of 0.22 (mu)m and feed solutions with the humic acid solution of 4 ppm. The operating pressure and flow rate were respectively maintained at 1 bar and 0.22 L/min. Areas of those filtration membranes after 5, 15, 30, 60, and 100 minutes filtration durations were raster scanned by the high frequency ultrasound system. The peak-to-peak voltage (V_(pp)) of ultrasonic signals reflected from the surface of membrane was calculated for the reconstruction of C-scan images. The average V_(pp) and flux of filtrate were found to decrease exponentially with the increase of filtration duration. In accordance with the flux of filtrate approached to saturate, the variation of average V_(pp) tended to be nearly minimum. It can be readily observed for the changes of average V_(pp) that decreased from 3.02+-0.05 V at the beginning of filtration to 1.73+-0.25 V at 100 min duration after filtration with the humic acid solution of 4 ppm. Moreover, the fouling of the humic acid on the membrane was not homogeneously distributed. The acoustic impedance mismatch between the fouling of humic acid and PVDF membrane led the amplitude of ultrasonic signals reflected from the membrane surface to decrease with the increase of fouling deposition. C-scan results indicated that fouling deposition is a both temporal- and spatial-dependent process and that may be feasible to be sensitively and rapidly evaluated by high frequency ultrasound image incorporated with the analysis method.
机译:结垢的分布可能很大程度上影响微滤膜的通量,其中其形成与若干因子有关,例如运行压力,流速,饲料溶液的流量,流速,浓缩/组成和膜材料。因此,在进一步应用之前,必须评估微滤膜上的污垢分布。在这项研究中,探索了尝试使用35 MHz高频超声系统制定用于测量污垢分布的方法和技术。该实验由废水处理系统中进行,该系统由具有0.22(mU)M的标称孔径为0.22(mU)M的富含偏二氟乙烯(PVDF)膜,并具有4ppm的腐殖液溶液的进料溶液。操作压力和流速分别保持在1巴和0.22L / min。在5,15,30,60和100分钟后的过滤膜的区域是通过高频超声系统扫描的光栅扫描。计算从膜表面反射的超声波信号的峰峰值电压(V_(PP))用于C扫描图像的重建。发现滤液的平均V_(PP)和通量随着过滤持续时间的增加而指数逐渐减少。根据接近饱和的滤液的助焊剂,平均V_(PP)的变化趋于几乎最小。对于在过滤开始的平均V_(PP)的变化下,可以容易地观察到在过滤开始的3.02±0.05V的平均V_(PP)下,在过滤后100分钟持续到4ppm的腐殖液溶液。此外,膜上腐殖酸的污染不是均匀分布的。腐蚀性酸和PVDF膜的污垢之间的声阻抗不匹配LED从膜表面反射的超声波信号的幅度随着污垢沉积的增加而降低。 C扫描结果表明,污垢沉积是临时和空间依赖性过程,并且可以通过结合分析方法的高频超声图像敏感和快速评估可行性和快速评估。

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