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用于微藻收获中污垢控制的倾斜板式过滤系统中的改进型尼龙6,6纳米纤维膜

Improved Nylon 6,6 Nanofiber Membrane in A Tilted Panel Filtration System for Fouling Control in Microalgae Harvesting.

作者信息

Mat Nawi Normi Izati, Abd Halim Nur Syakinah, Lee Leong Chew, Wirzal Mohd Dzul Hakim, Bilad Muhammad Roil, Nordin Nik Abdul Hadi, Putra Zulfan Adi

机构信息

Chemical Engineering Department, Universiti Teknologi PETRONAS, Seri Iskandar, Perak 32610, Malaysia.

出版信息

Polymers (Basel). 2020 Jan 21;12(2):252. doi: 10.3390/polym12020252.

Abstract

The competitiveness of algae as biofuel feedstock leads to the growth of membrane filtration as one of promising technologies for algae harvesting. Nanofiber membrane (NFM) was found to be efficient for microalgae harvesting via membrane filtration, but it is highly limited by its weak mechanical strength. The main objective of this study is to enhance the applicability of nylon 6,6 NFM for microalgae filtration by optimizing the operational parameters and applying solvent vapor treatment to improve its mechanical strength. The relaxation period and filtration cycle could be optimized to improve the hydraulic performance. For a cycle of 5 min., relaxation period of ≤2 min shows the highest steady-state permeability of 365 ± 14.14 L m h bar, while for 10 min cycle, 3 min. of relaxation period was found optimum that yields permeability of 402 ± 34.47 L m h bar. The treated nylon 6,6 NFM was also used to study the effect of aeration rate. It is confirmed that the aeration rate enhances the steady-state performance for both intermittent and continuous mode of aeration. Remarkably, intermittent aeration shows 7% better permeability than the full aeration for all tested condition, which is beneficial for reducing the total energy consumption.

摘要

藻类作为生物燃料原料的竞争力促使膜过滤成为藻类收获的一种有前景的技术。纳米纤维膜(NFM)被发现通过膜过滤对微藻收获有效,但它受到其薄弱机械强度的高度限制。本研究的主要目的是通过优化操作参数并应用溶剂蒸汽处理来提高其机械强度,从而增强尼龙6,6 NFM在微藻过滤中的适用性。可以优化松弛期和过滤周期以改善水力性能。对于5分钟的周期,≤2分钟的松弛期显示出最高的稳态渗透率,为365±14.14 L m h bar,而对于10分钟的周期,发现3分钟的松弛期是最佳的,其渗透率为402±34.47 L m h bar。处理过的尼龙6,6 NFM也用于研究曝气速率的影响。证实曝气速率提高了间歇曝气和连续曝气模式的稳态性能。值得注意的是,在所有测试条件下,间歇曝气的渗透率比全曝气高7%,这有利于降低总能耗。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e2bb/7077208/b4fd2ecc9c28/polymers-12-00252-g005.jpg

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