Elcik Harun, Cakmakci Mehmet
a Department of Environmental Engineering , Yildiz Technical University , Istanbul , Turkey.
Environ Technol. 2017 Jun;38(12):1585-1596. doi: 10.1080/09593330.2016.1237560. Epub 2016 Sep 29.
The purpose of this study was to investigate the efficient harvesting of microalgal biomass through crossflow membrane filtration. The microalgal biomass harvesting experiments were performed using one microfiltration membrane (pore size: 0.2 µm, made from polyvinylidene fluoride) and three ultrafiltration membranes (molecular weight cut-off: 150, 50, and 30 kDa, made from polyethersulfone, hydrophilic polyethersulfone, and regenerated cellulose, respectively). Initially, to minimize membrane fouling caused by microalgal cells, experiments with the objective of determining the critical flux were performed. Based on the critical flux calculations, the best performing membrane was confirmed to be the UH050 membrane, produced from hydrophilic polyethersulfone material. Furthermore, we also evaluated the effect of transmembrane pressure (TMP) and crossflow velocity (CFV) on filtration flux. It was observed that membrane fouling was affected not only by the membrane characteristics, but also by the TMP and CFV. In all the membranes, it was observed that increasing CFV was associated with increasing filtration flux, independent of the TMP.
本研究的目的是通过错流膜过滤研究微藻生物质的高效收获。使用一种微滤膜(孔径:0.2 µm,由聚偏二氟乙烯制成)和三种超滤膜(截留分子量:150、50和30 kDa,分别由聚醚砜、亲水性聚醚砜和再生纤维素制成)进行微藻生物质收获实验。最初,为了使微藻细胞引起的膜污染最小化,进行了以确定临界通量为目标的实验。基于临界通量计算,性能最佳的膜被确认为由亲水性聚醚砜材料制成的UH050膜。此外,我们还评估了跨膜压力(TMP)和错流速度(CFV)对过滤通量的影响。观察到膜污染不仅受膜特性影响,还受TMP和CFV影响。在所有膜中,观察到增加CFV与增加过滤通量相关,与TMP无关。