静电组装核壳粒子及其反应烧结SiC膜的油水分离和热再生效率提高

IF 9.5
Junyou Li , Qilin Gu , Huiqin Zhang , Zhaoxiang Zhong , Yiqun Fan , Weihong Xing
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引用次数: 0

摘要

将添加剂与表面氧化生成的二氧化硅反应烧结制备多孔碳化硅膜,在油水分离领域受到越来越多的关注。以往的研究主要集中在物理混合过程中加入添加剂的种类和含量,而添加剂的分布对SiC膜的微观结构和分离性能的影响较少。本文提出通过静电相互作用将AlOOH溶胶均匀涂覆在SiC颗粒上,并通过后续反应烧结得到SiC@alumina核壳颗粒,制备SiC膜。结果表明,表面涂层使添加剂均匀分散在SiC粉末基体中,有利于反应烧结过程的进行,显著降低了SiC膜中残余SiO2的含量,使孔结构均匀化。同时,碳化硅的氧化途径发生了改变,大大延缓了氧化程度。令人印象深刻的是,与传统的机械混合法制备的SiC膜相比,制备的SiC膜的耐碱性能提高了20%,分离油水乳液的效率也提高了。此外,利用新兴的焦耳加热技术可以更有效地再生由核壳单元制备的污染SiC膜。本研究为合理设计核壳颗粒反应烧结制备高性能SiC膜提供了一条简便有效的途径。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Electrostatically assembled core-shell particles and their reaction sintering for SiC membranes with improved oil/water separation and thermal regeneration efficiency

Electrostatically assembled core-shell particles and their reaction sintering for SiC membranes with improved oil/water separation and thermal regeneration efficiency
Porous SiC membranes prepared through the reaction sintering between the additive and surface oxidation generated silica have gained increasing attention in the fields of oil-water separation. Previous efforts mainly focused on the types and contents of additives incorporated by physically mixing process, while their distribution on the microstructure and separation performance of SiC membranes has been rarely involved. This work proposed to prepare SiC membranes by uniformly coating AlOOH sol on SiC particles via the electrostatic interaction and the subsequent reaction sintering of the derived SiC@alumina core-shell particles. It is found that the surface coating enabled the homogeneous dispersion of the additives in SiC powder matrix, which not only facilitated the reactive sintering process and notably reduced the amount of residual SiO2 in SiC membranes, but also homogenized the pore structure. Also, the oxidation pathway of SiC had been altered, which substantially retarded the oxidation degree. Impressively, the as-prepared SiC membranes exhibited 20 ​% improvement in alkali resistance, and enhanced oil-in-water emulsion separation efficiency when compared with those prepared by the conventional mechanical mixing method. Besides, the fouled SiC membranes prepared from the core-shell units can be more efficiently regenerated by using the emerging Joule heating technique. The present work provides a facile and effective pathway to the preparation of high-performance SiC membranes through the reaction sintering of rationally designed core-shell particles for high-efficient separation.
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