反渗透
磁导率
水力阻力
图层(电子)
材料科学
渗透
导水率
岩土工程
复合材料
石油工程
环境科学
作者
Sima Zeinali Danalou,Hongchen Wang,Niher R. Sarker,Nan Zhang,Jordan Fidelino,J ZHU,Fiona Chang,Gawtham Senthilvelan,Patrick Lee,Jason Hattrick‐Simpers,Jay R. Werber
标识
DOI:10.1021/acs.est.6c02708
摘要
(61% reduction). Selective removal of the polyamide active layer enabled direct measurement of compacted support permeability. Despite a substantial drop (90% reduction) in support permeability, a resistance-in-series analysis suggested that bulk support densification accounted for only 32% of the total TFC permeability decline. Incorporating the effects of 20-30% elastic deformation, measured through uniaxial compression testing, increased the estimated support-layer contribution but still could not fully explain the observed permeability decline, suggesting a persistent resistance beyond bulk deformation. Support surface characterization revealed a 41% decrease in mean surface pore diameter. A resistance analysis suggests that residual permeability loss (∼57% at 100 bar) may stem from polyamide nodules becoming disconnected from underlying open pores (i.e., increased interfacial resistance between the selective and support layers), though direct experimental confirmation of this mechanism remains a direction for future work. These findings suggest that permeability loss under HPRO compaction is governed by both support hydraulic resistance and an interlayer transport limitation, requiring membrane designs that preserve bulk integrity and surface pore accessibility under high pressure.
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