首页> 外文期刊>Bioresource Technology: Biomass, Bioenergy, Biowastes, Conversion Technologies, Biotransformations, Production Technologies >Fouling characterization and control for harvesting microalgae Arthrospira (Spirulina) maxima using a submerged, disc-type ultrafiltration membrane
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Fouling characterization and control for harvesting microalgae Arthrospira (Spirulina) maxima using a submerged, disc-type ultrafiltration membrane

机译:使用浸没盘式超滤膜收集微藻最大螺旋藻(Spirulina)的结垢特性和控制

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This study characterized the fouling of a novel circular-disc ultrafiltration membrane in a submerged bioreactor system to harvest Arthrospira maxima cells. Flux-stepping study showed that the value of critical flux was below the smallest flux tested at 28.8 l m(-2) h(-1), and that the membrane was to operate above the critical flux to sustain the necessary rate of cell concentration. The membrane with similar pore size but greater pore density experienced not only lesser degree of total resistance, but also possessed smaller fraction of irreversible resistance. Membrane fouling was mainly attributed to fragmented cells rather than to soluble or extracellular polymeric substances. Furthermore, flux recovery studies demonstrated that membrane relaxation and surface cleaning could partially recover fluxes for both low (6 g l(-1)) and high (40 g l(-1)) cell densities, whereas backwashing could fully recover fluxes. Calculation of energy consumption and cell harvesting productivity also favoured membrane filtration with backwashing. (C) 2016 Elsevier Ltd. All rights reserved.
机译:这项研究的特点是在淹没式生物反应器系统中新型圆盘超滤膜的结垢,以收获最大的节肢螺旋藻细胞。通量步进研究表明,临界通量的值低于在28.8 l m(-2)h(-1)下测试的最小通量,并且膜要在临界通量之上运行以维持必要的细胞浓度速率。孔径相似但孔密度较大的膜不仅具有较小的总电阻,而且具有较小的不可逆电阻。膜污染主要归因于破碎的细胞,而不是可溶性或细胞外聚合物。此外,助焊剂回收研究表明,对于低密度(6 g l(-1))和高密度(40 g l(-1))的细胞密度,膜松弛和表面清洁可以部分回收通量,而反洗可以完全回收通量。能量消耗和细胞收获生产率的计算也有利于通过反冲洗进行膜过滤。 (C)2016 Elsevier Ltd.保留所有权利。

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