水和废水处理用臭氧膜接触器:材料选择、传质和工艺设计的关键综述

ty10086 提交于 周三, 08/25/2021 - 16:41
文章英文标题
Ozone membrane contactors for water and wastewater treatment: A critical review on materials selection, mass transfer and process design
正文
气液膜接触器被频繁地提出,作为传统臭氧注入方法在水处理中很有前景的替代品。然而,关于成功实现的大规模应用程序的信息很少。本综述以材料稳定性、传质性能和工艺设计为重点,讨论了臭氧膜接触器在水和废水应用中的研究现状。其目的在于找出有利的操作条件、与传统注入方式相比的好处以及结垢的关键方面。对报道的中空纤维和单管接触器实验臭氧传质系数( K )进行了相关影响参数的分析,并与Lévêque溶液和Kreulen修正的计算结果进行了比较。体积传质系数( Kas )用于与其他臭氧输送方法的比较。传质系数的实验值和计算值之间的差异随着传质速率和液体流速的降低而增大,这可能是由于膜电阻的增大和臭氧的衰减所致。疏水聚偏氟乙烯( PVDF )和聚四氟乙烯( PTFE )膜的传质系数最高,而聚二甲基硅氧烷( PDMS )、亲水性PVDF和无机膜的传质效率较低。尽管在水处理过程中,快速臭氧耗尽在液体本体和边界层中的传质强化作用可以显著,但对于同行评议的文献中考察的臭氧膜接触器,这种设计因子大多被忽略。PVDF和PTFE中空纤维模块的体积传质系数高于传统的注入方法,包括鼓泡柱和文丘里注入器,但缺乏全面和经济的研究来评估这种新型臭氧注入方法的潜在效益。此外,对于大多数材料,长期的材料稳定性是不确定的。总体而言,本研究提供了气液接触器的综合比较,提示了今后的研究领域。
文章内容(英文)
Gas-liquid membrane contactors are frequently proposed as promising alternative for traditional ozone injection methods in water treatment. However, information on successfully implemented large-scale applications is scarce. This review discusses the state of research of ozone membrane contactors for water and wastewater applications with a focus on material stability, mass transfer performance and process design. It aims to identify favorable operating conditions, the benefits compared to traditional injection methods and critical aspects for upscaling. Reported experimental ozone mass transfer coefficients (K) in hollow fiber and single tube contactors were analyzed for relevant influential parameters and compared to calculations using the Lévêque solution and the Kreulen modification. Volumetric mass transfer coefficients (Ka\u003csub\u003es\u003c/sub\u003e) were used for comparison with other ozone delivery methods. Differences between experimental and calculated mass transfer coefficients increased towards lower mass transfer and liquid velocity, potentially due to enhanced membrane resistances and ozone decay. The highest mass transfer coefficients were found for hydrophobic polyvinylidene fluoride (PVDF) and polytetrafluoroethylene (PTFE) membranes, while polydimethylsiloxane (PDMS), hydrophilic PVDF, and inorganic membranes showed lower transfer efficiencies. Although mass transfer enhancement by fast ozone depletion in the liquid bulk and in the boundary layer can be significant during water treatment, this design-factor is mostly neglected for ozone membrane contactors examined in the peer-reviewed literature. PVDF and PTFE hollow fiber modules exhibit higher volumetric mass transfer coefficients compared to traditional injection methods including bubble columns and venturi injectors, but full-scale and economic studies are missing to assess potential benefits of this new ozone injection method. In addition, long-term material stability is uncertain for most materials. Overall, this study provides a comprehensive comparison of gas–liquid contactors, suggesting future areas of research.
来源出处
Journal|[J]Chemical Engineering Journal2020. PP 127393-
DOI
https://doi.org/10.1016/j.cej.2020.127393

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