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螺旋缠绕微滤膜空间效应研究的技术概念

Technical Concepts for the Investigation of Spatial Effects in Spiral-Wound Microfiltration Membranes.

作者信息

Hartinger Martin, Heidebrecht Hans-Jürgen, Schiffer Simon, Dumpler Joseph, Kulozik Ulrich

机构信息

Chair of Food and Bioprocess Engineering, Technical University of Munich, 85354 Freising, Germany.

Department of Food Science, Cornell University, Ithaca, NY 14853-5701, USA.

出版信息

Membranes (Basel). 2019 Jul 4;9(7):80. doi: 10.3390/membranes9070080.

Abstract

Existing works on the influence of spatial effects on flux and permeation of proteins in microfiltration (MF) have focused on ceramic membranes. There is little information on spiral-wound membranes (SWMs). Since the inner core of a SWM is practically inaccessible by non-destructive techniques, three different prototypes were constructed in this study to optimize suitability for the investigation of spatial effects on filtration performance. To measure the pressure drop, shortened SWMs 0.25, 0.50, and 0.75 times the length of a standard industrial SWM (0.96 m) were designed. Second, a sectioned membrane (0.96 m) with separated compartments on the permeate side was constructed to analyze spatial effects on flux and protein permeation along the flow path of a SWM. Three different features characterized this sectioned module: sectioned permeate pockets, a sectioned permeate collection tube, and sectioned permeate drain and measurement systems. Crossflow filtration experiments showed that these modifications did not alter the filtration performance compared to an unmodified control SWM. Thus, it can be applied to assess spatially-resolved filtration performance in SWMs. The third prototype designed was a test cell with accessible flat sheet membranes and spacer material, as in SWMs. The flow path in this test cell was designed to match the characteristics of the channels between the membrane sheets in a standard SWM as closely as possible. The flow path length and the combination of membrane material and spacer architecture were the same as in the control SWM. This test cell was designed to assess the effects of length and processing conditions on the formation of a deposit layer. The combined results of these test modules can yield new insights into the spatial distribution of flux, permeation of target components, and deposit formation.

摘要

现有关于空间效应在微滤(MF)中对蛋白质通量和渗透影响的研究主要集中在陶瓷膜上。关于螺旋缠绕膜(SWM)的信息很少。由于非破坏性技术实际上无法触及SWM的内芯,本研究构建了三种不同的原型,以优化其对研究空间效应与过滤性能关系的适用性。为了测量压降,设计了长度分别为标准工业SWM(0.96米)的0.25倍、0.50倍和0.75倍的缩短型SWM。其次,构建了一个在渗透侧具有分隔隔室的分段膜(0.96米),以分析空间效应沿SWM流动路径对通量和蛋白质渗透的影响。这个分段模块有三个不同的特征:分段渗透袋、分段渗透收集管以及分段渗透排水和测量系统。错流过滤实验表明,与未改性的对照SWM相比,这些改性并未改变过滤性能。因此,它可用于评估SWM中空间分辨的过滤性能。设计的第三个原型是一个测试单元,其中有可触及的平板膜和间隔材料,如同在SWM中一样。该测试单元中的流动路径设计成尽可能紧密地匹配标准SWM中膜片之间通道的特性。流动路径长度以及膜材料和间隔结构的组合与对照SWM相同。该测试单元旨在评估长度和加工条件对沉积层形成的影响。这些测试模块的综合结果可以为通量的空间分布、目标成分的渗透以及沉积物形成提供新的见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/72b3/6680769/e0571548c3a3/membranes-09-00080-g001.jpg

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