Simulation of Drying for Multilayer Membranes
DOI:
https://doi.org/10.11113/jt.v69.3407Keywords:
Multilayer, hygroscopic, non hygroscopic, convective dryingAbstract
In ceramic membrane preparation, drying variables and its phenomena are very important to ensure no defects and failures in membrane layers. Generally, ceramic membrane consists of several layer with the top structure or layers possesses a very hygroscopic zone that acting as a separator while next two layers are non hygroscopic zone. Combination of these two different multilayer systems that exhibit different properties always associated to the failure of ceramic consolidation structure during the drying and sintering process. Therefore,controlling of drying behavior is very important to ensure a consistent shrinkage exist between these two layers system. Thus in this present work, the drying process of multilayer materials was studied and observed via simulation technique. A two dimensional mathematical model that coupled mass, heat and gas transfer was employed. Finite element method was used to solve the model and numerically compute using Skyline solver to capture highly nonlinear and transient process. The results showed that drying of multilayer material for membrane structure is obviously different from drying of single layer system. Separation zone that acting as hygroscopic zone does play its roles towards effecting higher pore water pressure and gas pressure. Thus, different drying factors can be seen in the layering system. Hence, understanding those drying factors that may cause inhomogeneous shrinkage due to the existence of different porous network in membrane layers is essential to avoid ceramic membrane failure.
References
K. Li. 2007. Ceramic Membranes for Separation and Reaction. Chichester: John Wiley & Sons Ltd. 59: 1–93.
A. S. Mujumdar, Ed. 2006. Handbook of Industrial Drying. Boca Raton, USA: Taylor & Francis Group. 3.
P. Perré, R. Remond, I. Turner. (M. A. Tsotsas, Evangelos, Ed.). 2007. Modern Drying Technology. Weinheim. Wiley VCH Verlag GmbH & Co. KGaA. 1–12.
P. Rattanadecho, W. Pakdee, J. Stakulcharoen. 2007. Drying Technology. 26: 39–53.
Z. Harun, N. M. Nawi, M. F. Batcha, D. T. Gethin. 2012. Applied Mechanics and Materials. 232: 548–552.
N. F. Ismail, Z. Harun, N. A. Badarulzaman. 2012. International Journal of Integrated Engineering. 4–1: 16–21.
Z. Harun, D. T. Gethin. 2008. 2nd Asia International Conference on Modelling and Simulation(AMS 2008). 794–799.
Z. Harun, D. T. Gethin, R. W. Lewis. 2008. The International Journal of Multiphysics. 2: 1–19.
T. A. Ring. 1996. Fundamentals of Ceramic Powder Processing and Synthesis. San Diego: Academic Press. 683–728.
Z. Zhang, S. Yang, D. Liu. 1999. Heat Transfer, Asian Research. 28(5): 337–351.
T. Defraeye, B. Blocken, D. Derome. 2012. Chemical Engineering Science. 32: 49–58.
Y. R. Mayhew, G. F. C. Rogers. 1976. Thermodynamic and Transport Properties of Fluids. Oxford: Blackwell.
M. V. Genuchten. 1980. Soil Science Society of America Journal. 8: 892–898.
V. Baroghel-Bouny, M. Mainguy, T. Lassabatere, O. Coussy. 1999. Cement and Concrete Research. 29(8): 1225–1238.
S. Witharana, C. Hodges, D. Xu, X. Lai, Y. Ding. 2012. Journal of Nanoparticle Research. 14(5): 851.
A. V. Schmitz, Y. S. Mutlu, E. Glatt, S. Klein, B. Nestler. 2012. Biomedizinische Technik. Biomedical Engineering. 57 Suppl 1: 277–280.
W. D. Callister, D. G. Rethwisch. 2011. Materials Science and Engineering. John Wiley & Sons, Inc. 8: 781–799.
C. Hall, W. D. Hoff. 2012. Water Transport in Brick, Stone and Concrete. London: Spon Press. 2: 64–82.
Z. Przesmycki, C. Strumillo. 1985. Drying ’85. 126–134.
M. A. Stanish, G. S. Schajer, F. Kayihan. 1986. AIChE Journal. 32(8): 1301–1311.
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