School of Earth Sciences and Environmental Engineering, Gwangju Institute of Science and Technology (GIST), 123 Cheomdangwagi-ro, Buk-gu, Gwangju 61005, South Korea.
Department of Civil Engineering, the University of Hong Kong, Pokfulam, Hong Kong.
Environ Sci Technol. 2020 May 19;54(10):6385-6395. doi: 10.1021/acs.est.9b06921. Epub 2020 May 6.
Membrane deformation is a significant problem in osmotically driven membrane processes, as it restricts practical operating conditions and reduces overall process performance due to unfavorable alteration of membrane permeation characteristics. In this respect, a spacer plays a crucial role, as it dictates the form and extent of membrane deformation in association with concentration polarization (CP), which is also influenced by spacer-induced hydrodynamic behavior near the membrane surface. These two roles of spacers on membrane permeation characteristics are inherently inseparable with the coexistence of hydraulic and osmotic pressures. Here, we suggest a novel analytical method to differentially quantify the proportions of effective osmotic pressure drop caused by membrane deformation and CP. Furthermore, we tested two different FO membranes with three different spacer configurations to define and discuss different forms of membrane deformation and their effects on membrane permeation characteristics. The differential analysis revealed the effect of spacer configuration on effective osmotic pressure drop in membrane deformation (up to ∼201% of variation) is much greater than that in CP (up to ∼20.1% of variation). In addition, a combined configuration of a feed spacer and tricot spacer demonstrated its ability of mitigating membrane deformation with lower selectivity loss and channel pressure drop under pressurization.
膜变形是渗透驱动膜过程中的一个重大问题,因为它限制了实际操作条件,并由于膜渗透特性的不利变化而降低了整体过程性能。在这方面,间隔物起着至关重要的作用,因为它与浓差极化 (CP) 一起决定了膜变形的形式和程度,而 CP 又受到膜表面附近间隔物诱导的流体动力学行为的影响。间隔物对膜渗透特性的这两个作用与液压和渗透压的共存是内在不可分割的。在这里,我们提出了一种新颖的分析方法,可以区分由膜变形和 CP 引起的有效渗透压降的比例。此外,我们测试了两种不同的 FO 膜,采用三种不同的间隔物构型,以定义和讨论不同形式的膜变形及其对膜渗透特性的影响。差异分析表明,间隔物构型对膜变形中有效渗透压降的影响(最大可达约 201%的变化)远大于 CP 中的影响(最大可达约 20.1%的变化)。此外,进料间隔物和提花间隔物的组合构型表现出在加压下减轻膜变形的能力,同时具有较低的选择性损失和通道压降。