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10°C和50°C下超滤脱脂牛奶浓缩过程中跨膜压力控制对能量效率的影响

Effect of transmembrane pressure control on energy efficiency during skim milk concentration by ultrafiltration at 10 and 50°C.

作者信息

Méthot-Hains S, Benoit S, Bouchard C, Doyen A, Bazinet L, Pouliot Y

机构信息

STELA Dairy Research Center, Institute of Nutrition and Functional Foods, Department of Food Science, Université Laval, Québec, Canada, G1V 0A6.

Department of Civil Engineering and Water Engineering, Université Laval, Québec, Canada, G1V 0A6.

出版信息

J Dairy Sci. 2016 Nov;99(11):8655-8664. doi: 10.3168/jds.2016-11504. Epub 2016 Sep 13.

Abstract

The efficiency of the ultrafiltration process during skim milk concentration was studied using both dynamic and constant (465 or 672kPa) transmembrane pressure experiments at refrigerated temperature (10°C) and high temperature (50°C). The pilot-scale module was equipped with a 10-kDa polyethersulfone spiral-wound membrane element with a surface area of 2.04m. Permeation flux, resistance-in-series model, mineral and protein rejection, and energy consumption were studied as a function of temperature and transmembrane pressure applied. Higher permeation flux values were systematically obtained at 50°C. Also, a significant temperature effect was found for calcium rejection, which was lower at 10°C compared with 50°C. Total hydraulic resistance and reversible fouling resistance were higher at 50°C than at 10°C. No change in protein rejection was observed, depending on the operating mode studied. Permeation flux, which was higher at 50°C, had lower pumping energy consumption compared with ultrafiltration at the colder temperature. Also, the low ultrafiltration temperature required a higher total energy consumption to reach the 3.6× retentate compared with ultrafiltration at 50°C. Overall, our study shows that the operating parameters and temperature can be optimized using an energy efficiency ratio.

摘要

在冷藏温度(10°C)和高温(50°C)下,通过动态和恒定(465或672kPa)跨膜压力实验,研究了脱脂乳浓缩过程中超滤过程的效率。中试规模的模块配备了一个表面积为2.04平方米的10 kDa聚醚砜螺旋卷式膜元件。研究了渗透通量、串联阻力模型、矿物质和蛋白质截留率以及能量消耗与温度和施加的跨膜压力的关系。在50°C时系统地获得了更高的渗透通量值。此外,发现钙截留率存在显著的温度效应,10°C时的钙截留率低于50°C时。50°C时的总水力阻力和可逆污染阻力高于10°C时。根据所研究的操作模式,未观察到蛋白质截留率的变化。50°C时较高的渗透通量与较低温度下的超滤相比,泵送能量消耗更低。此外,与50°C时的超滤相比,低温超滤需要更高的总能量消耗才能达到3.6倍的截留物浓度。总体而言,我们的研究表明,可以使用能量效率比来优化操作参数和温度。

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