References
- M. Safavi, T. Mohammadi, High-salinity water desalination
using VMD, Chem. Eng. J., 149 (2009) 191–195.
- J.-P. Mericq, S. Laorie, C. Cabassud, Vacuum membrane
distillation of seawater reverse osmosis brines, Water Res., 44
(2010) 5260–5273.
- M. Findley, Vaporization through porous membranes, I&EC
Process Design Develop., 6(2) (1967) 226–230.
- M.S. Khayet, T. Matsuura, Membrane Distillation: Principles
and Applications, Elsevier, Amsterdam, 2011.
- K. Nikolaus, Trink- und Reinstwassergewinnung mittels
Membrandestillation, Volume 10 of Fortschritt-Berichte,
Techn. Univ. Kaiserslautern, 2013.
- K.W. Lawson, D.R. Lloyd, Review membrane distillation, J.
Membr. Sci., 124 (1997) 1–25.
- E.K. Summers, J.H. Lienhard, Cycle Performance of multistage
vacuum membrane distillation (MS-VMD) systems, The
International Desalination Association World Congress on
Desalination and Water Reuse, Tianjin, China, 2013.
- H.W. Chung, J. Swaminathan, D.M. Warsinger, J.H. Lienhard,
Multistage vacuum vembrane distillation (MSVMD) systems
for high salinity applications, J. Membr. Sci., 497 (2016) 128–141.
- Memsys clearwater Pte. Ltd., “memDist 4-6.4 - Technical
description of process, modules and applications,” 2015.
Available under: http://www.memsys.eu/dateien/products/memsys\_datasheet\_4\_6\_4.pdf. [Accessed 03.06.2015].
- K. Zhao, W. Heinzl, M. Wenzel, S. Büttner, F. Bollen, G. Lange,
S. Heinzl, N. Sarda, Experimental study of the memsys
vacuum-multi-effect-membrane-distillation (V-MEMD)
module, Desalination, 323 (2013) 150–160.
- J.I. Mengual, M. Khayet, M. Godino, Heat and mass transfer
in vacuum membrane distillation, Int. J. Heat Mass Trans., 47
(2004) 865–875.
- J.-P. Mericq, S. Laorie, C. Cabassud, Vacuum membrane
distillation for an integrated seawater desalination process,
Desal. Water Treat., 9 (2009) 287–296.
- E. Jang, S.-H. Nam, T.-M. Hwang, S. Lee, Y. Choi, Effect of
operating parameters on temperature and concentration
polarization in vacuum membrane distillation process, Desal.
Water Treat., 54 (2015) 871–880.
- F.H. Choo, M. KumJa, K. Zhao, A. Chakraborty, E.T.M.
Dass, M. Prabu, B. Li, S. Dubey, Experimental study on the
performance of membrane based multi- effect dehumidifier
regenerator powered by solar energy, Energy Procedia, 48
(2014) 535–542.
- A.S. Rattner, A.K. Nagavarapu, S. Garimella, T.F. Fuller,
Modeling of a flat plate membrane-distillation system for
liquid desiccant regeneration in air-conditioning applications,
Int. J. Heat Mass Transfer, 54 (2011) 3650–3660.
- P.W. Atkins, Atkins’ Physical Chemistry, 10th ed., Oxford
University Press, Oxford, 2014.
- D.L. Parkhurst, C.A.J. Appelo, Description of Input and
Examples for PHREEQC Version 3 - A Computer Program
for Speciation, Batch-Reaction, One-Dimensional Transport
and Inverse Geochemical Calculations, in U.S. Geological
Survey Techniques and Methods, U.S. Department of the
Interior, U.S. Geological Survey, Denver, Colorado 2013, book
6, chap. A43.
- M.R. Conde, Aqueous solutions of lithium and calcium
chlorides: property formulations for use in air conditioning
equipment design, Int. J. Thermal Sci., 43 (2004) 367–382.
- W. Kessling, Luftentfeuchtung und Energiespeicherung mit
Salzlösungen in offenen Systemen, Fortschritt-Berichte VDI, 3
ed., vol. 509, Verfahrenstechnik VDI, Düsseldorf, 2009.
- General Electric Company, Aspire (TM) Microfiltration
Membranes - data sheet, Product QL833, 2007.
- P. Stephan, K. Schaber, K. Stephan, F. Mayinger,
Thermodynamik, Grundlagen und technische Anwendungen,
Band 2: Mehrstoffsysteme und chemische Reaktionen,
Springer, Heidelberg, 2010.
- M. Khayet, T. Matsuura, Pervaporation and vacuum membrane
distillation process: modeling and experiments, AIChE J.,
50(8) (2004) 1697–1712.
- K. Lawson, D. Lloyd, Membrane distillation. I. Module
design and performance evaluation using vacuum membrane
distillation, J. Membr. Sci., 120 (1996) 111–121.