3D-printing enables geometry-optimized ceramic membranes with minimizing mass transfer resistance for environmental applicationOA
Membrane separation technology,with its features of high efficiency and environmental sustainability,is playing an increasingly important role in the field of energy conservation and emission reduction.Membrane structure design has shown high advantages in reducing mass transfer resistance and enhancing separation efficiency.In this study,3D printing technology was employed to fabricate a direct-channel structured alumina-mullite ceramic membrane to enhance membrane separation efficiency.A ceramic slurry was used as raw material to precisely manufacture the ceramic membrane according to the digital model,achieving a curing depth of 200μm and a curing width of 50μm.Moreover,in-situ mullite reaction was employed to form sintering necks among ceramic particles to enhance the bending strength.The effects of solid content and sintering temperature on the membrane properties were systematically investigated.When the solid content was 75 wt%and sintering temperature was 1400℃,the ceramic membrane with conventional structure exhibited a pore size of 1.1μm and pure water flux of 1698 L/(m^(2)·h·bar).In contrast,the direct-channel structured ceramic membrane exhibited a high pure water flux of 4700 L/(m^(2)·h·bar),which was~3 times higher than that of the conventional ones.This improvement of permeability could be attributed to the optimized mass transfer process that was confirmed via computational fluid dynamics(CFD)simulation.To demonstrate the potential application of this ceramic membrane in environmental sustainability,oil/water emulsion separation was taken as an example.The membrane demonstrated high separation efficiency of above 99%and a stable water permeance of 130 L/(m^(2)·h·bar)during oil/water emulsion filtration.This work provides a fundamental basis to advance the development of structurally designed ceramic membranes for environmental sustainability.
Yuanhui Gao;Dong Zou;Ze-xian Nicholas Low;Zhaoxiang Zhong;Weihong Xing
National Engineering Research Center for Special Separation Membrane,College of Chemical Engineering,Nanjing Tech University,Nanjing,211816,ChinaSchool of Environmental Science and Engineering,Nanjing Tech University,Nanjing,211816,China NJTECH University Suzhou Future Membrane Technology Innovation Center,Suzhou,215333,ChinaNational Engineering Research Center for Special Separation Membrane,College of Chemical Engineering,Nanjing Tech University,Nanjing,211816,ChinaNational Engineering Research Center for Special Separation Membrane,College of Chemical Engineering,Nanjing Tech University,Nanjing,211816,China School of Environmental Science and Engineering,Nanjing Tech University,Nanjing,211816,China NJTECH University Suzhou Future Membrane Technology Innovation Center,Suzhou,215333,ChinaNational Engineering Research Center for Special Separation Membrane,College of Chemical Engineering,Nanjing Tech University,Nanjing,211816,China NJTECH University Suzhou Future Membrane Technology Innovation Center,Suzhou,215333,China
化学化工
Porous ceramic membrane3D printingStructure designEnvironmental sustainability
《Green Energy & Environment》 2026 (4)
P.1049-1063,15
supported by the National Natural Science Foundation of China(22325804,22578197 and 22208145)Natural Science Foundation of Jiangsu Higher Education Institutions of China(No.25KJA530003)Jiangsu Future Membrane Technology Innovation Center(No.BM2021804)The Key R&D Program of Jiangsu Province(BE2023030).
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