4.6 Article

Reduction and Elimination of Humic Acid Fouling in Air Sparged Membrane Distillation Using Nanocarbon Immobilized Membrane

期刊

MOLECULES
卷 27, 期 9, 页码 -

出版社

MDPI
DOI: 10.3390/molecules27092896

关键词

air sparging; membrane fouling; carbon nanotubes; hydrophobic membrane and evaporation efficiency

资金

  1. Chemical, Bioengineering, Environmental, and Transport Systems Division, National Science Foundation [CBET-1603314]

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This paper presents a method for treating humic acid solution using carbon nanotube immobilized membrane (CNIM) distillation assisted by air sparging (AS). The modified MD system with air sparging showed improved rejection of humic acid and increased evaporation efficiency. The introduction of air sparging changed the colloidal behavior of deposits and reduced deposition weight. The water vapor flux increased with temperature and decreased with higher volumetric concentrating factor (VCF). The highest mass transfer coefficient was found for the AS-CNIM integrated membrane distillation.
In this paper, we present the treatment of humic acid solution via carbon nanotube immobilized membrane (CNIM) distillation assisted by air sparging (AS). Carbon nanotubes offer excellent hydrophobicity to the modified membrane surface and actively transport water vapor molecules through the membrane to generate higher vapor flux and better rejection of humic acid. The introduction of air sparging in the membrane distillation (MD) system has changed the humic substance fouling by changing the colloidal behavior of the deposits. This modified MD system can sustain a higher run time of separation and has enhanced the evaporation efficiency by 20% more than the regular membrane distillation. The air sparging has reduced the deposition by 30% in weight and offered lesser fouling of membrane surface even after a longer operating cycle. The water vapor flux increased with temperature and decreased as the volumetric concentrating factor (VCF) increased. The mass transfer coefficient was found to be the highest for the air sparged-carbon nanotube immobilized membrane (AS-CNIM) integrated membrane distillation. While the highest change in mass transfer coefficient (MTC) was found for polytetrafluoroethylene (PTFE) membrane with air sparging at 70 degrees C.

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