Membrane Distillation Process Modeling: Dynamical Approach
Commenced in January 2007
Frequency: Monthly
Edition: International
Paper Count: 32799
Membrane Distillation Process Modeling: Dynamical Approach

Authors: Fadi Eleiwi, Taous Meriem Laleg-Kirati

Abstract:

This paper presents a complete dynamic modeling of a membrane distillation process. The model contains two consistent dynamic models. A 2D advection-diffusion equation for modeling the whole process and a modified heat equation for modeling the membrane itself. The complete model describes the temperature diffusion phenomenon across the feed, membrane, permeate containers and boundary layers of the membrane. It gives an online and complete temperature profile for each point in the domain. It explains heat conduction and convection mechanisms that take place inside the process in terms of mathematical parameters, and justify process behavior during transient and steady state phases. The process is monitored for any sudden change in the performance at any instance of time. In addition, it assists maintaining production rates as desired, and gives recommendations during membrane fabrication stages. System performance and parameters can be optimized and controlled using this complete dynamic model. Evolution of membrane boundary temperature with time, vapor mass transfer along the process, and temperature difference between membrane boundary layers are depicted and included. Simulations were performed over the complete model with real membrane specifications. The plots show consistency between 2D advection-diffusion model and the expected behavior of the systems as well as literature. Evolution of heat inside the membrane starting from transient response till reaching steady state response for fixed and varying times is illustrated.

Keywords: Membrane distillation, Dynamical modeling, Advection-diffusion equation, Thermal equilibrium, Heat equation.

Digital Object Identifier (DOI): doi.org/10.5281/zenodo.1093114

Procedia APA BibTeX Chicago EndNote Harvard JSON MLA RIS XML ISO 690 PDF Downloads 2806

References:


[1] S. Kalogirou, "Seawater desalination using renewable energy sources,” Progress in Energy and Combustion Science, vol. 31, no. 3, pp. 242–281, 2005.
[2] M. Gryta, "Water Desalination by Membrane Distillation,” Desalination, Trends and Technologies, no. Md, 2011.
[3] E. Close and E. Sorensen, "Modelling of direct contact membrane distillation for desalination,” Computer Aided Chemical Engineering, 2010.
[4] F. A.-J. H. EL-DESSOUKY, H. ETTOUNEY and H. AL-FULAIJ, "Analysis of multistage flash desalination flashing chambers,” Chemical Engineering Research and Design, 2004.
[5] I. Alatiqi, H. Ettouney, and H. El-Dessouky, "Process control in water desalination industry: an overview,” Desalination, vol. 126, no. 1-3, pp. 15–32, Nov. 1999.
[6] A. Chaaben and R. Andoulsi, "MIMO Modeling Approach for a Small Photovoltaic Reverse Osmosis Desalination System,” Journal of Applied Fluid, vol. 4, no. 1, pp. 35–41, 2011.
[7] T. Sherwood and P. Brian, "Salt concentration at phase boundaries in desalination by reverse osmosis,” Industrial & . . . , vol. 4, no. 2, pp. 113–118, 1965.
[8] F. Eleiwi and T. M. Laleg-Kirati, "Dynamic modeling and optimization in membrane distillation system,” submitted, 2013.
[9] M. Martinez-Diez, L Vazquez-Gonzalez, "Temperature and concentration polarization in membrane distillation of aqueous salt solutions,” Journal of membrane science, vol. 156, 1999.
[10] V. Bui, L. Vu, and M. Nguyen, "Simulation and optimisation of direct contact membrane distillation for energy efficiency,” Desalination, vol. 259, no. 1-3, pp. 29–37, Sep. 2010.
[11] J. Zhang, "Theoretical and experimental investigation of membrane distillation,” 2011.
[12] V. V. Ugrozov and L. I. Kataeva, "Mathematical modeling of membrane distiller with liquid gap,” Desalination, vol. 168, pp. 347–353, Aug. 2004.
[13] S. Cheah, "Seperation processes,” Desalination, 2000.
[14] A. Alklaibi and N. Lior, "Membrane-distillation desalination: Status and potential,” Desalination, vol. 171, no. 2, pp. 111–131, Jan. 2005.
[15] M. Gryta, "Effectiveness of Water Desalination by Membrane Distillation Process,” Membranes, vol. 2, no. 4, pp. 415–429, Jul. 2012.
[16] M. Gryta and M. Tomaszewska, "Heat transport in the membrane distillation process,” Journal of membrane science, vol. 144, no. February, 1998.
[17] A. Abdel-Rahman, "Modeling Temperature and Salt Concentration Distribution in Direct Contact Membrane Distillation,” faculty.ksu.edu.sa, 2008.
[18] R. Schofield, a.G. Fane, and C. Fell, "Heat and mass transfer in membrane distillation,” Journal of Membrane Science, vol. 33, no. 3, pp. 299–313, Oct. 1987.
[19] H. J. Hwang, K. He, S. Gray, J. Zhang, and I. S. Moon, "Direct contact membrane distillation (DCMD): Experimental study on the commercial PTFE membrane and modeling,” Journal of Membrane Science, vol. 371, no. 1-2, pp. 90–98, Apr. 2011.
[20] M. Kaviany, Principles of Heat Transfer in Porous Media. Springer, 1995.