Guo Yan-Fen, Sun Pi-Chao, Wei Jun-Fu
a School of Material Science and Engineering , Tianjin Polytechnic University , Tianjin , People's Republic of China.
b School of Environmental and Chemical Engineering , Tianjin Polytechnic University , Tianjin , People's Republic of China.
Environ Technol. 2018 Dec;39(24):3159-3168. doi: 10.1080/09593330.2017.1375023. Epub 2017 Sep 26.
To investigate the effect of hydrophobic and hydrophilic polypropylene hollow fiber membranes (PPHFMs) applied in membrane bioreactors (MBR), the fouling behaviors of membrane surfaces and pores have been tested. The structural and morphological features on the membrane surface were characterized using attenuated total reflection-Fourier transform infrared spectroscopy, field emission scanning electron microscopy, atomic force microscope, energy dispersive X-ray spectroscopy and laser granularity distribution analysis. The results showed that significantly more polysaccharide, protein and inorganic ingredients were accumulated in the original membrane compared to the hydrophilic membrane. Furthermore, it was found that the pore size influenced the particle distribution and accumulation, such that smaller pore size membranes tended to contain fewer pollutants and a narrow size distribution. Under a constant flux of 11.5 L/m h, the transmembrane pressure (TMP) varied narrowly between 38 and 53 KPa. Alongside this, a relatively hydrophilic membrane (PP-g-AA) showed the characteristics of lower TMP in comparison to hydrophobic membranes (PP). Indeed, the flux recovery was 30% higher than those of the original PPHFM. This investigation broadens our understanding of membrane modifying and fouling behavior in integrated MBRs.
为了研究疏水性和亲水性聚丙烯中空纤维膜(PPHFMs)应用于膜生物反应器(MBR)的效果,对膜表面和膜孔的污染行为进行了测试。使用衰减全反射傅里叶变换红外光谱、场发射扫描电子显微镜、原子力显微镜、能量色散X射线光谱和激光粒度分布分析对膜表面的结构和形态特征进行了表征。结果表明,与亲水性膜相比,原始膜中积累的多糖、蛋白质和无机成分明显更多。此外,发现孔径影响颗粒分布和积累,使得孔径较小的膜往往含有较少的污染物且粒径分布较窄。在11.5 L/m h的恒定通量下,跨膜压力(TMP)在38至53 KPa之间变化较小。与此同时,与疏水性膜(PP)相比,相对亲水性的膜(PP-g-AA)表现出较低的TMP特性。事实上,通量恢复率比原始PPHFMs高30%。这项研究拓宽了我们对集成膜生物反应器中膜改性和污染行为的理解。