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解决薄膜复合聚酰胺纳滤膜中的水力阻力

Resolving Hydraulic Resistances in Thin-Film Composite Polyamide Nanofiltration Membranes.

作者信息

Shao Senlin, Xing Juntao, Wan Hongting, Lu Jiajia, Long Li, Zhang Ruijun, Guo Hao, Tang Chuyang

机构信息

School of Civil Engineering, Wuhan University, Wuhan 430072, P. R. China.

Department of Civil Engineering, The University of Hong Kong, Hong Kong 999077, P. R. China.

出版信息

Environ Sci Technol. 2025 Aug 19;59(32):17372-17380. doi: 10.1021/acs.est.5c08645. Epub 2025 Aug 6.

Abstract

Thin-film composite (TFC) nanofiltration (NF) membranes are widely used in water treatment and resource recovery. Researchers generally take for granted that the dense polyamide rejection film dictates the overall hydraulic resistance of these membranes, neglecting the contributions of the substrate and the transverse transport of water to reach substrate pores. To address this critical gap, we developed a resistance-in-series model to quantify the resistances from the polyamide film, substrate, and transverse transport. Calibration with multiple experimental data sets revealed that the polyamide film resistance varied over a wide range of 2.90 × 10 to 40.15 × 10 m, strongly correlating to film thicknesses (correlation coefficients >0.95), with a thickness-normalized resistance of (0.44 ± 0.12) × 10 m nm. Contrarily, the intrinsic water permeability of polyamide material showed less variation (0.53 × 10 to 1.56 × 10 LMH bar nm). Contrary to common belief, both the substrate and transverse transport contributed significant resistances of (2.4 ± 1.3) × 10 and 5 × 10 m, respectively. These two resistances became particularly non-negligible for membranes with thinner polyamide films. Our study provides the first detailed quantitative analysis of key contributors to hydraulic resistance and provides valuable insights for high-permeable NF membranes.

摘要

薄膜复合(TFC)纳滤(NF)膜广泛应用于水处理和资源回收领域。研究人员通常认为致密的聚酰胺截留膜决定了这些膜的整体水力阻力,而忽略了支撑层的作用以及水横向传输到达支撑层孔隙所产生的影响。为填补这一关键空白,我们开发了一种串联阻力模型,以量化聚酰胺膜、支撑层及横向传输所产生的阻力。通过多个实验数据集进行校准后发现,聚酰胺膜阻力在2.90×10至40.15×10米的广泛范围内变化,与膜厚度密切相关(相关系数>0.95),厚度归一化阻力为(0.44±0.12)×10米纳米。相反,聚酰胺材料的固有水渗透率变化较小(0.53×10至1.56×10升/小时·巴·纳米)。与普遍看法相反,支撑层和横向传输分别产生了显著的阻力,分别为(2.4±1.3)×10和5×10米。对于聚酰胺膜较薄的膜,这两种阻力变得尤为不可忽视。我们的研究首次对水力阻力的关键影响因素进行了详细的定量分析,并为高渗透性纳滤膜提供了有价值的见解。

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