References

  1. UN Water, Sustainable Development Goal 6 Synthesis Report on Water and Sanitation, 2018.
  2. E. Jones, M. Qadir, M.T.H. van Vliet, V. Smakhtin, S. mu Kang, The state of desalination and brine production: a global outlook, Sci. Total Environ., 657 (2019) 1343–1356.
  3. N. Ghaffour, T.M. Missimer, G.L. Amy, Technical review and evaluation of the economics of water desalination: current and future challenges for better water supply sustainability, Desalination, 309 (2013) 197–207.
  4. C. Skuse, A. Gallego-Schmid, A. Azapagic, P. Gorgojo, Can emerging membrane-based desalination technologies replace reverse osmosis?, Desalination, 500 (2021) 114844, doi: 10.1016/j. desal.2020.114844.
  5. N. Voutchkov, Energy use for membrane seawater desalination – current status and trends, Desalination, 431 (2018) 2–14.
  6. S. Al-Obaidani, E. Curcio, F. Macedonio, G. Di Profio, H. Al-Hinai, E. Drioli, Potential of membrane distillation in seawater desalination: thermal efficiency, sensitivity study and cost estimation, J. Membr. Sci., 323 (2008) 85–98.
  7. M. Khayet, Solar desalination by membrane distillation: dispersion in energy consumption analysis and water production costs (a review), Desalination, 308 (2013) 89–101.
  8. D. Winter, J. Koschikowski, F. Gross, D. Maucher, D. Düver, M. Jositz, T. Mann, A. Hagedorn, Comparative analysis of full-scale membrane distillation contactors – methods and modules, J. Membr. Sci., 524 (2017) 758–771.
  9. M. Jafari, M. Vanoppen, J.M.C. van Agtmaal, E.R. Cornelissen, J.S. Vrouwenvelder, A. Verliefde,
    M.C.M. van Loosdrecht, C. Picioreanu, Cost of fouling in full-scale reverse osmosis and nanofiltration installations in the Netherlands, Desalination, 500 (2021) 114865, doi: 10.1016/j.desal.2020.114865.
  10. D. González, J. Amigo, F. Suárez, Membrane distillation: perspectives for sustainable and improved desalination, Renewable Sustainable Energy Rev., 80 (2017) 238–259.
  11. M. Laqbaqbi, M.C. García-Payo, M. Khayet, J. El Kharraz, M. Chaouch, Application of direct contact membrane distillation for textile wastewater treatment and fouling study, Sep. Purif. Technol., 209 (2019) 815–825.
  12. M.O. Mavukkandy, C.M. Chabib, I. Mustafa, A. Al Ghaferi, F. AlMarzooqi, Brine management in desalination industry: from waste to resources generation, Desalination, 472 (2019) 114187, doi: 10.1016/j.desal.2019.114187.
  13. R.B. Lakeh, C. Salerno, E.P. Herlim, J. Kiriakos, S. Delagah, Repurposing reverse osmosis concentrate as a low-cost thermal energy storage medium, J. Clean Energy Technol., 8 (2020) 31–40.
  14. A.M. Alwatban, A.M. Alshwairekh, U.F. Alqsair, A.A. Alghafis, A. Oztekin, Effect of membrane properties and operational parameters on systems for seawater desalination using computational fluid dynamics simulations, Desal. Water Treat., 161 (2019) 92–107.
  15. M. Qtaishat, T. Matsuura, B. Kruczek, M. Khayet, Heat and mass transfer analysis in direct contact membrane distillation, Desalination, 219 (2008) 272–292.
  16. B. Li, K.K. Sirkar, Novel membrane and device for direct contact membrane distillation-based desalination process, Ind. Eng. Chem. Res., 43 (2004) 5300–5309
  17. L. Eykens, T. Reyns, K. De Sitter, C. Dotremont, L. Pinoy, B. Van der Bruggen, How to select a membrane distillation configuration? Process conditions and membrane influence unraveled, Desalination, 399 (2016) 105–115.
  18. U.F. Alqsair, A. Alshwairekh, A.M. Alwatban, A. Oztekin, Computational study of sweeping gas membrane distillation process – flux performance and polarization characteristics, Desalination, 485 (2020) 114444, doi: 10.1016/j.desal.2020.114444.
  19. M. Khayet, P. Godino, J.I. Mengual, Nature of flow on sweeping gas membrane distillation, J. Membr. Sci., 170 (2000) 243–255.
  20. M. Khayet, T. Matsuura, Pervaporation and vacuum membrane distillation processes: modeling and experiments, AlChE J., 50 (2004) 1697–1712.
  21. J.G. Lee, W.S. Kim, Numerical modeling of the vacuum membrane distillation process, Desalination, 331 (2013) 46–55.
  22. M. Usta, Computational Study of Desalination by Membranes, Lehigh University, 2018. Available at: https://preserve.lehigh. edu/etd/4328%0AThis
  23. G. Rácz, S. Kerker, Z. Kovács, G. Vatai, M. Ebrahimi, P. Czermak, Theoretical and experimental approaches of liquid entry pressure determination in membrane distillation processes, Period. Polytech., Chem. Eng., 58 (2014) 81–91.
  24. M.R. Choudhury, N. Anwar, D. Jassby, M.S. Rahaman, Fouling and wetting in the membrane distillation driven wastewater reclamation process – a review, Adv. Colloid Interface Sci., 269 (2019) 370–399.
  25. D.M. Warsinger, J. Swaminathan, E. Guillén-Burrieza, H.A. Arafat, J.H. Lienhard V, Scaling and fouling in membrane distillation for desalination applications: a review, Desalination, 356 (2015) 294–313.
  26. Y. Zhang, Y. Peng, S. Ji, S. Wang, Numerical simulation of 3D hollow-fiber vacuum membrane distillation by computational fluid dynamics, Chem. Eng. Sci., 152 (2016) 172–185.
  27. Q. Li, B. Lian, W. Zhong, A. Omar, A. Razmjou, P. Dai, J. Guan, G. Leslie, R.A. Taylor, Improving the performance of vacuum membrane distillation using a 3D-printed helical baffle and a superhydrophobic nanocomposite membrane, Sep. Purif. Technol., 248 (2020) 117072, doi: 10.1016/j.seppur.2020.117072.
  28. N. Thomas, N. Sreedhar, O. Al-Ketan, R. Rowshan, R.K. Abu Al-Rub, H.A. Arafat, 3D printed triply periodic minimal surfaces as spacers for enhanced heat and mass transfer in membrane distillation, Desalination, 443 (2018) 256–271.
  29. R.W. Schofield, A.G. Fane, C.J.D. Fell, R. Macoun, Factors affecting flux in membrane distillation, Desalination, 77 (1990) 279–294.
  30. B. Li, K.K. Sirkar, Novel membrane and device for vacuum membrane distillation-based desalination process, J. Membr. Sci., 257 (2005) 60–75.
  31. A.S. Kim, H.S. Lee, D.S. Moon, H.J. Kim, Self-adjusting, combined diffusion in direct contact and vacuum membrane distillation, J. Membr. Sci., 543 (2017) 255–268.
  32. V. Soni, J. Abildskov, G. Jonsson, R. Gani, Modeling and analysis of vacuum membrane distillation for the recovery of volatile aroma compounds from black currant juice, J. Membr. Sci., 320 (2008) 442–455.
  33. H. Ji, M.Y. Choi, H.S. Lee, A.S. Kim, H.J. Kim, Vacuum membrane distillation for deep seawater: experiments and theory, Desal. Water Treat., 58 (2017) 344–350.
  34. Y. Zhang, Y. Peng, S. Ji, Z. Li, P. Chen, Review of thermal efficiency and heat recycling in membrane distillation processes, Desalination, 367 (2015) 223–239.
  35. Y. Wang, Z. Xu, N. Lior, H. Zeng, An experimental study of solar thermal vacuum membrane distillation desalination, Desal. Water Treat., 53 (2015) 887–897.
  36. G. Zaragoza, J.A. Andrés-Mañas, A. Ruiz-Aguirre, Commercial scale membrane distillation for solar desalination, npj Clean Water, 1 (2018) 20, doi: 10.1038/s41545-018-0020-z.
  37. F. Kiefer, M. Spinnler, T. Sattelmayer, Multi-effect vacuum membrane distillation systems: model derivation and calibration, Desalination, 438 (2018) 97–111.
  38. E.S. Mohamed, P. Boutikos, E. Mathioulakis, V. Belessiotis, Experimental evaluation of the performance and energy efficiency of a vacuum multi-effect membrane distillation system, Desalination, 408 (2017) 70–80.
  39. A. Luo, N. Lior, Critical review of membrane distillation performance criteria, Desal. Water Treat., 57 (2016) 20093–20140.
  40. M.F. Gruber, U. Aslak, C. Hélix-Nielsen, Open-source CFD model for optimization of forward osmosis and reverse osmosis membrane modules, Sep. Purif. Technol., 158 (2016) 183–192.
  41. M.F. Gruber, C.J. Johnson, C. Tang, M.H. Jensen, L. Yde, C. Helix-Nielsen, Validation and analysis of forward osmosis CFD model in complex 3D geometries, Membranes (Basel), 2 (2012) 764–782.
  42. A.M. Alwatban, A.M. Alshwairekh, U.F. Alqsair, A.A. Alghafis, A. Oztekin, Performance improvements by embedded spacer in direct contact membrane distillation – computational study, Desalination, 470 (2019) 114103, doi: 10.1016/j.desal.2019.114103.
  43. A.E. Anqi, M. Usta, R. Krysko, J.-G. Lee, N. Ghaffour, A. Oztekin, Numerical study of desalination by vacuum membrane distillation – transient three-dimensional analysis, J. Membr. Sci., 596 (2020) 117609, doi: 10.1016/j.memsci.2019.117609.
  44. J. Amigo, R. Urtubia, F. Suárez, Exploring the interactions between hydrodynamics and fouling in membrane distillation systems – a multiscale approach using CFD, Desalination, 444 (2018) 63–74.
  45. Z. Zhou, B. Ling, I. Battiato, S.M. Husson, D. Ladner, Concentration polarization over reverse osmosis membranes with engineered surface features, J. Membr. Sci., 617 (2021) 118199, doi: 10.1016/j.memsci.2020.118199.
  46. M. Usta, A. Anqi, A. Oztekin, Reverse osmosis desalination modules containing corrugated membranes – computational study, Desalination, 416 (2017) 129–139.
  47. X. Yang, H. Yu, R. Wang, A.G. Fane, Optimization of microstructured hollow fiber design for membrane distillation applications using CFD modeling, J. Membr. Sci., 421–422 (2012) 258–270.
  48. M.A. Abdulhamid, S.-H. Park, Z. Zhou, D. Ladner, G. Szekely, Surface engineering of intrinsically microporous poly(ether-ether-ketone) membranes: from flat to honeycomb structures, J. Membr. Sci., 621 (2021) 118997, doi: 10.1016/j.memsci.2020.118997.
  49. M. Gryta, The application of submerged modules for membrane distillation, Membranes (Basel), 10 (2020) 7–10.
  50. J.P. Mericq, S. Laborie, C. Cabassud, Vacuum membrane distillation for an integrated seawater desalination process, Desal. Water Treat., 9 (2009) 287–296.
  51. P. Tiwari, S.P. Antal, A. Burgoyne, G. Belfort, M.Z. Podowski, Multifield computational fluid dynamics model of particulate flow in curved circular tubes, Theor. Comput. Fluid Dyn., 18 (2004) 205–220.
  52. S. Acharya, S.K. Dash, Natural convection heat transfer from a short or long, solid or hollow horizontal cylinder suspended in air or placed on ground, J. Heat Transfer, 139 (2017), doi: 10.1115/1.4035919.
  53. E. Salcedo, J.C. Cajas, C. Treviño, L. Martínez-Suástegui, Numerical investigation of mixed convection heat transfer from two isothermal circular cylinders in tandem arrangement: buoyancy, spacing ratio, and confinement effects, Theor. Comput. Fluid Dyn., 31 (2017) 159–187.
  54. R. Zhang, Y. Liu, M. He, Y. Su, X. Zhao, M. Elimelech, Z. Jiang, Antifouling membranes for sustainable water purification: strategies and mechanisms, Chem. Soc. Rev., 45 (2016) 5888–5924.
  55. M. Khayet, J.I. Mengual, T. Matsuura, Porous hydrophobic/hydrophilic composite membranes: application in desalination using direct contact membrane distillation, J. Membr. Sci., 252 (2005) 101–113.
  56. K.J. Lu, D. Zhao, Y. Chen, J. Chang, T.-S. Chung, Rheologically controlled design of nature-inspired superhydrophobic and self-cleaning membranes for clean water production, npj Clean Water, 3 (2020) 30, doi: 10.1038/s41545-020-0078-2.
  57. P. Xie, L.C. Murdoch, D. Ladner, Mitigating membrane fouling with sinusoidal spacers, Desal. Water Treat., 168 (2019) 56–64.
  58. B. Ling, P. Xie, D. Ladner, I. Battiato, Dynamic modeling of fouling in reverse osmosis membranes, Membranes (Basel), 11 (2021) 349, doi: 10.3390/membranes11050349.
  59. D. Winter, J. Koschikowski, M. Wieghaus, Desalination using membrane distillation: experimental studies on full scale spiral wound modules, J. Membr. Sci., 375 (2011) 104–112.
  60. A. Hagedorn, G. Fieg, D. Winter, J. Koschikowski, T. Mann, Methodical design and operation of membrane distillation plants for desalination, Chem. Eng. Res. Des., 125 (2017) 265–281.
  61. E. Guillén-Burrieza, J. Blanco, G. Zaragoza, D.C. Alarcón, P. Palenzuela, M. Ibarra, W. Gernjak, Experimental analysis of an air gap membrane distillation solar desalination pilot system, J. Membr. Sci., 379 (2011) 386–396.
  62. H.S. Son, M.W. Shahzad, N. Ghaffour, K.C. Ng, Pilot studies on synergetic impacts of energy utilization in hybrid desalination system: multi-effect distillation and adsorption cycle (MED-AD), Desalination, 477 (2020) 114266, doi: 10.1016/j.desal.2019.114266.
  63. S. Gabsi, N. Frikha, B. Chaouachi, Performance of a solar vacuum membrane distillation pilot plant, for seawater desalination in Mahares, Tunisia, Int. J. Water Resour. Arid Environ., 2 (2013) 213–217.
  64. S. Ben Abdallah, N. Frikha, S. Gabsi, Design of an autonomous solar desalination plant using vacuum membrane distillation, the MEDINA project, Chem. Eng. Res. Des., 91 (2013) 2782–2788.
  65. H.C. Duong, A.R. Chivas, B. Nelemans, M. Duke, S. Gray, T.Y. Cath, L.D. Nghiem, Treatment of RO brine from CSG produced water by spiral-wound air gap membrane distillation — a pilot study, Desalination, 366 (2015) 121–129.
  66. R.W. Schofield, Membrane Distillation, The University of New South Wales, 1989.
  67. B.E. Poling, J.M. Prausnitz, J.P. O’Connell, Properties of Gases and Liquids, 5th ed., McGraw-Hill Education, New York, Chicago, San Francisco, Athens, London, Madrid, Mexico City, Milan, New Delhi, Singapore, Sydney, Toronto, 2001.
  68. K.W. Lawson, D.R. Lloyd, Review membrane distillation, J. Membr. Sci., 124 (1997) 1–25.
  69. R.D. Present, Kinetic Theory of Gases, McGraw-Hill, New York, 1958.
  70. T. Matsuura, Synthetic Membranes and Membrane Separation Processes, CRC Press, Boca Raton, 1994. doi: 10.1201/9781003068037.
  71. M. Khayet, Membranes and theoretical modeling of membrane distillation: a review, Adv. Colloid Interface Sci., 164 (2011) 56–88.
  72. L. Martínez, F.J. Florido-Díaz, A. Hernández, P. Prádanos, Characterisation of three hydrophobic porous membranes used in membrane distillation: modelling and evaluation of their water vapour permeabilities, J. Membr. Sci., 203 (2002) 15–27.
  73. M. La Cerva, M. Ciofalo, L. Gurreri, A. Tamburini, A. Cipollina, G. Micale, On some issues in the computational modelling of spacer-filled channels for membrane distillation, Desalination, 411 (2017) 101–111.
  74. M. Usta, R.M. Krysko, A. Anqi, A. Alshwairekh, A. Oztekin, The Effect of PTFE Membrane Properties on Vacuum Membrane Distillation Module Performance, Conference: 2018 International Mechanical Engineering Congress and Exposition, Pittsburgh, PA, 2018. Available at https:// doi.org/10.1115/imece2018-86327
  75. M. Shakaib, S.M.F. Hasani, I. Ahmed, R.M. Yunus, A CFD study on the effect of spacer orientation on temperature polarization in membrane distillation modules, Desalination, 284 (2012) 332–340.
  76. D.M. Davenport, A. Deshmukh, J.R. Werber, M. Elimelech, High-pressure reverse osmosis for energy-efficient hypersaline brine desalination: current status, design considerations, and research needs, Environ. Sci. Technol. Lett., 5 (2018) 467–475.
  77. P. Xie, L.C. Murdoch, D. Ladner, Hydrodynamics of sinusoidal spacers for improved reverse osmosis performance, J. Membr. Sci., 453 (2014) 92–99.
  78. A. Luo, N. Lior, Study of advancement to higher temperature membrane distillation, Desalination, 419 (2017) 88–100.