Green Intelligence Environmental School, Yangtze Normal University, No. 16 Juxian Road, Fuling, Chongqing, 408100, PR China.
College of Environmental Science and Engineering, Nankai University, No.38 Tongyan Road, Jinnan District, Tianjin, 300350, PR China.
Chemosphere. 2024 Mar;352:141427. doi: 10.1016/j.chemosphere.2024.141427. Epub 2024 Feb 16.
Silica scaling on membranes represents one of the most important issues in industrial water systems because of its complex composition and difficulty in removal. However, there is a lack of understanding of the mechanisms for cleaning silica scales from reverse osmosis (RO) membranes. To address this research gap, this study investigated the scaling and cleaning behavior of silica on RO membrane processes, with a specific focus on the silica scale cleaning mechanism using gallic acid (GA). The membrane flux continuously decreased with operation time, even at the lowest initial silicic acid concentration, owing to silica scale blockage. The GA solution exhibited a strong efficacy in cleaning silica-scaling RO membranes. The membrane flux returned to 89.7% of the initial value by removing 81.87% of the silica scale within the first 30 min of the study period. The cleaning mechanism of GA involved its adsorption onto the surface of silica scale particles to form a surface complex and subsequently transition into a water-soluble 1:3 complex within the solution. This complex interaction facilitated the gradual decomposition of the silica scales that adhered to the membrane surface. This study has valuable implications for the development of efficient and effective silica scale cleaning solutions, providing insights into the complex interplay between GA and silica scaling mechanisms.
膜上的硅垢是工业水系统中最重要的问题之一,因为其组成复杂且难以去除。然而,对于反渗透(RO)膜上硅垢的清洗机制,人们的理解还很有限。为了解决这一研究空白,本研究考察了 RO 膜过程中硅垢的结垢和清洗行为,特别关注使用没食子酸(GA)的硅垢清洗机制。由于硅垢堵塞,膜通量随着运行时间的延长而持续下降,即使在初始硅酸浓度最低的情况下也是如此。GA 溶液在清洗硅结垢 RO 膜方面表现出很强的功效。在研究期间的前 30 分钟内,通过去除 81.87%的硅垢,膜通量恢复到初始值的 89.7%。GA 的清洗机制涉及到它吸附在硅垢颗粒表面上形成表面络合物,随后在溶液中转化为可溶性 1:3 络合物。这种复杂的相互作用促进了附着在膜表面上的硅垢的逐渐分解。本研究对于开发高效、有效的硅垢清洗溶液具有重要意义,深入了解了 GA 和硅垢形成机制之间的复杂相互作用。