References

  1. B. Seifert, A. Kroiss, M. Spinnler, T. Sattelmayer, About the history of humidification-dehumidification desalination systems, The International Desalination Association World Congress on Desalination and Water Reuse, Tianjin, China, 2013, pp. 1–12.
  2. A. Giwa, N. Akther, A. AlHousani, S. Haris, Sh.W. Hasan, Recent advances in humidification dehumidification (HDH) desalination processes: Improved designs and productivity, Renew. Sustain. Ener. Rev., 57 (2016) 929–944.
  3. A.E. Kabeel, M.H. Hamed, Z.M. Omara, S.W. Sharshir, Water desalination using a humidification-dehumidification technique - a detailed review, Natur. Resorc., 4 (2013) 286–305.
  4. W. Abdelmoez, M.S. Mahmoud, T.E. Farrag, Water desalination using humidification/dehumidification (HDH) technique powered by solar energy: a detailed review, Desal. Water Treat., (2013) 1–19.
  5. G.P. Narayan, M.H. Sharqawy, E.K. Summers, J.H.L.V, S.M. Zubair, M.A. Antar, The potential of solar-driven humidification–dehumidification desalination for small-scale decentralized water production, Renew. Sustain. Ener. Rev., 14 (2010) 1187–1201.
  6. C. Yamale, I. Solmus, A solar desalination system using humidification-dehumidification process: experimental study and comparison with the theoretical results, Desalination, 220 (2008) 538–551.
  7. M. Mehrgoo, M. Amidpour, Constructal design and optimization of a direct contact humidification–dehumidification desalination unit, Desalination, 293 (2012) 69–77.
  8. A.H. El-Shazly, A.A. Al-Zahrani, Y.A. Alhamed, S.A. Nosier, Productivity intensification of humidification–dehumidification desalination unit by using pulsed water flow regime, Desalination, 293 (2012) 53–60.
  9. M. Al-Sahali, H.M. Ettouney, Humidification dehumidification desalination process: Design and performance evaluation, Chem. Eng. J., 143 (2008) 257–264.
  10. G. Yuan, Z. Wang, H. Li, X. Li, Experimental study of a solar desalination system based on humidification–dehumidification process, Desalination, 277 (2011) 92–98.
  11. X. Li, Z. Wang, G. Yuan, H. Li, L. Lu, Z. Xu, Experimental study of a humidification and dehumidification desalination system of solar air collector with evacuated tubes, Proc. ISES Solar World Congress, (2009) 245–253.
  12. S.W. Sharshir, G. Peng, N. Yang, M.O.A. El-Samadony, A.E. Kabeel, A continuous desalination system using humidification–dehumidification and a solar still with an evacuated solar water heater, Appl. Therm. Eng., 104 (2016) 734–742.
  13. K. Zhani, H.B. Bacha, Experimental investigation of a new solar desalination prototype using the humidification dehumidification principle, Renew. Ener., 35 (2010) 2610–2617.
  14. C. Muthusamy, M. Gowtham, S. Manickam, M. Manjunathan, K. Srithar, Enhancement of productivity of humidification–dehumidification desalination using modified air heater, Desal. Water Treat., (2014) 1–11.
  15. P. Gao, L. Zhang, H. Zhang, Performance analysis of a new type desalination unit of heat pump with humidification and dehumidification, Desalination, 220 (2008) 531–537.
  16. A.H. EL-Shazly, M.M. El-Gohary, M.E. Ossman, Performance characteristics of a solar humidification dehumidification unit using packed bed of screens as the humidifier, Desal. Water Treat., 16 (2009) 17–28.
  17. C. Chiranjeevi, T. Srinivas, Experimental and simulation studies on two stage humidification–dehumidification desalination and cooling plant, Desalination, 376 (2015) 9–16.
  18. A.H. El-Shazly, A.A. Al-Zahrani, Y.A. Al-Hamed, S.A. Nosier, Effect of fixed bed characteristics on the performance of pulsed water flow humidification-dehumidification solar desalination unit, Desal. Water Treat., 51 (2012) 863–871.
  19. T. Rajaseenivasan, K. Srithar, Potential of a dual purpose solar collector on humidification dehumidification desalination system, Desalination, 404 (2016) 35–40.
  20. G.P. Thiel, J.A. Miller, S.M. Zubair, J.H. Lienhard, Effect of mass extractions and injections on the performance of a fixed-size humidification–dehumidification desalination system, Desalination, 314 (2013) 50–58.
  21. K.M. Chehayeb, F.K. Cheaib, J.H. Lienhard, A numerical solution algorithm for a heat and mass transfer model of a desalination system based on packed-bed humidification and bubble column dehumidification, Proc. 15th International Heat Transfer Conference, Kyoto, Japan, 2014, pp. 1–15.
  22. M.H. Sharqawy, M.A. Antar, S.M. Zubair, A.M. Elbashir, Optimum thermal design of humidification dehumidification desalination systems, Desalination, 349 (2014) 10–21.
  23. M.I. Zubaira, F.A. Al-Sulaiman, M.A. Antar, S.A. Al-Dini, N.I. Ibrahim, Performance and cost assessment of solar driven humidification dehumidification desalination system, Energy Convers. Manage., 132 (2016) 28–37.
  24. M.B. Amara, I. Houcine, A. Guizani, M. Mfialej, Experimental study of a multiple-effect humidification solar desalination technique, Desalination, 170 (2004) 209–221.
  25. G. Franchini, L.E. Padovan, A. Perdichizzi, Design and construction of a desalination prototype based on HD (humidification-dehumidification) process, Ener. Proc., 81 (2015) 472–481.
  26. A. Ghazy, H.E.S. Fath, Solar desalination system of combined solar still and humidification–dehumidification unit, Heat Mass Trans., 52 (2016) 2497–2506.
  27. S.W. Sharshir, G. Peng, N. Yang, M.A. Eltawil, M.K.A. Ali, A.E. Kabeel, A hybrid desalination system using humidification-dehumidification and solar stills integrated with evacuated solar water heater, Desalination, 124 (2016) 287–296.
  28. S.A.EL. Agouz, Desalination based on humidification–dehumidification by air bubbles passing through brackish water, Chem. Eng. J., 165 (2010) 413–419.
  29. L. Zhang, G. Cheng, S. Gao, Experimental study on air bubbling humidification, Desal. Water Treat., 29 (2011) 258–263.
  30. L. Zhang, S. Gao, H. Zhang, Experimental researches of factors affecting bubbling humidification, AISC, 106 (2011) 359–364.
  31. M.T. Ghazal, U. Atikol, F. Egelioglu, An experimental study of a solar humidifier for HDD systems, Energy Convers. Manage., 82 (2014) 250–258.
  32. E. Camarasa, C. Vial, S. Poncin, G. Wild, N. Midoux, J. Bouillard, Influence of coalescence behaviour of the liquid and of gas sparging on hydrodynamics and bubble characteristics in a bubble column, Chem. Eng. Process, 38 (1999) 329–344.
  33. R. Pohorecki, W. Moniuk, A. Zdrojkowski, P. Bielski, Hydrodynamics of a pilot plant bubble column under elevated temperature and pressure, Chem. Eng. Sci., 56 (2001) 1167–1174.
  34. H.M. Abd-ur-Rehman, F.A. Al-Sulaiman, Mathematical modeling of bubbler humidifier for humidification dehumidification (HDH) water desalination system, Rec. Adv. Mechan. Mech. Eng., (2015) 147–156.
  35. A. Khalil, S.A. El-Agouz, Y.A.F. El-Samadony, A. Abdo, Solar water desalination using an air bubble column humidifier, Desalination, 372 (2015) 7–16.
  36. N. Niroomanda, M. Zamen, M. Amidpour, Theoretical investigation of using a direct contact dehumidifier in humidification–dehumidification desalination unit based on an open air cycle, Desal. Water Treat., (2014) 1–11.
  37. E.W. Tow, J.H.L.V, Analytical Modelling of A bubble Column Dehumidifier, Proceedings of the ASME 2013 Heat Transfer Summer Conference, Minneapolis, MN, USA, (2013) 1–9.
  38. E.W. Tow, J.H.L.V, Heat flux and effectiveness in bubble column dehumidifier for HDH desalination, International Desalination Association World Congress on Desalination and Water Reuse, Tianjin, China, 2013, pp. 1–14.
  39. K.M. Chehayeb, J.H.L.V, Effect of feed salinity on the performance of humidification dehumidification desalination, International Desalination Association World Congress on Desalination and Water Reuse, USA, (2015) 1–16.
  40. E.W. Tow, J.H.L.V, Experiments and modeling of bubble column dehumidifier performance, Int. J. Therm. Sci., 80 (2014) 65–75.
  41. M. Sievers, J.H.L.V, Design of flat-plate dehumidifiers for humidification–dehumidification desalination systems, Heat Trans. Eng., 7(34) (2013) 543–561.
  42. M. Sievers, J.H.L.V, Design of plate-fin tube dehumidifiers for humidification-dehumidification desalination systems, Heat Trans. Eng., (2014) 1–75.
  43. I. Dincer, T.A.H. Ratlamwala, Importance of exergy for analysis, improvement, design, and assessment, WIREs Ener. Envir., 2 (2013) 335–349.
  44. I. Dincer, Y.A. Cengel, Energy, entropy and exergy concepts and their roles in thermal engineering, Entr., 3 (2001) 116–149.
  45. M.H. Sharqawy, J.H.L.V, S.M. Zubair, On exergy calculations of seawater with applications in desalination systems, Int. J. Therm. Sci., 50 (2011) 187–196.
  46. M.A. Elhaj, J.S. Yassin, Exergy analysis of a solar humidification dehumidification desalination unit, Int. J. Mech. Aero. Indus. Mechatr. Manufacturing Eng., 7 (2013) 622–626.
  47. X. Feng, X.X. Zhu, Combining pinch and exergy analysis for process modifications, Appl. Ther. Eng., 17 (1997) 249–261.
  48. Y. Cerci, Exergy analysis of a reverse osmosis desalination plant in California, Desalination, 142 (2002) 257–266.
  49. V.R. Ternero, L.G. Rodriguez, C.G. Camacho, Exergy analysis of a seawater reverse osmosis plant, Desalination, 172 (2005) 197–207.
  50. I.H. Aljundi, Second-law analysis of a reverse osmosis plant in Jordan, Desalination, 239 (2009) 207–215.
  51. N.M. Eshoul,B. Agnew, M.A. Al-Weshahi, M.S. Atab, Exergy analysis of a two-pass reverse osmosis (RO) desalination unit with and without an energy recovery turbine (ERT) and pressure exchanger (PX), Ener., 8 (2015) 6910–6925.
  52. C. Toro, E. Sciubba, S. Esposto, Process simulation and exergy analysis of a reverse osmosis desalination plant powered by photovoltaic panels in Basra (Iraq), Proc. ASME 2010 10th Biennial Conference on Engineering Systems Design and Analysis, Istanbul, Turkey, 2010.
  53. S. Sadri, R.H. Khoshkhoo, M. Ameri, Multi objective optimization of reverse osmosis desalination plant with exergy approach, Int. J. Therm. Sci., 30 (2016) 4807–4814.
  54. V.G. Gude, N. Nirmalakhandan, S. Deng, A. Maganti, Desalination at low temperatures: an exergy analysis, Desal. Water Treat., 40 (2011) 272–281.
  55. V.G. Gude, Exergy destruction and entropy generation in desalination systems, The 3rd International Electronic and Flipped Conference on Entropy and Its Applications, 3 (2016) 1–6.
  56. N. Kahraman, Y.A. Cengel, Exergy analysis of a MSF distillation plant, Energy Convers. Manage., 46 (2005) 2625–2636.
  57. S. Hou, D. Zeng, S. Ye, H. Zhang, Exergy analysis of the solar multi-effect humidification–dehumidification desalination process, Desalination, 203 (2007) 403–409.
  58. F.A. Al-Sulaiman, G.P. Narayan, J.H.L.V, Exergy analysis of a high-temperature-steam-driven, varied-pressure, humidification–dehumidification system coupled with reverse osmosis, Appl. Ener., 103 (2013) 552–561.
  59. C. Muthusamy, K. Srithar, Energy and exergy analysis for a humidification–dehumidification desalination system integrated with multiple inserts, Desalination, 367 (2015) 49–59.
  60. E. Deniz, S. Cinar, Energy, exergy, economic and environmental (4E) analysis of a solar desalination system with humidification-dehumidification, Energy Convers. Manage., 129 (2016) 12–19.
  61. C. Chiranjeevi, T. Srinivas, Exergy analysis of dehumidifier in a combined two stage desalination and cooling plant, J. Chem. Pharm. Scien., (2016) 86–90.
  62. S.A. Ashrafizadeh, M. Amidpour, Exergy analysis of humidification–dehumidification desalination systems using driving forces concept, Desalination, 285 (2012) 108–116.
  63. C. Muthusamy, K. Srithar, Energy saving potential in humidification-dehumidification desalination system, Ener., (2016) 1–13.
  64. K.H. Mistry, J.H. Lienhard, S.M. Zubair, Effect of entropy generation on the performance of humidication-dehumidication desalination cycles, Int. J. Therm. Sci., (2010) 1–47.
  65. M.M. Alhazmy, Minimum work requirement for water production in humidification–dehumidification desalination cycle, Desalination, 214 (2007) 102–111.
  66. K.H. Mistry, R.K. McGovern, G.P. Thiel, E.K. Summers, S.M. Zubair, J.H.L.V, Entropy generation analysis of desalination technologies, Entr., 113 (2011) 1829–1864.
  67. K.H. Mistry, A. Mitsos, J.H.L.V, Optimal operating conditions and configurations for humidification-dehumidification desalination cycles, Int. J. Therm. Sci., 50 (2011) 779–789.
  68. F. Nematollahi, A. Rahimi, T.T. Gheinani, Experimental and theoretical energy and exergy analysis for a solar desalination system, Desalination, 317 (2013) 23–31.
  69. K. Srithar, C. Muthusamy, Efficiency investigation of an enhanced air heater used in a humidification-dehumidification desalination system, Austr. J. Bas. Appl. Sci., (2014) 209–216.