302
Views
1
CrossRef citations to date
0
Altmetric
Research Article

Membrane desalination of ballast water using thermoelectric energy from waste heat

ORCID Icon
Pages 249-256 | Received 10 Jun 2019, Accepted 21 Jun 2020, Published online: 06 Oct 2020

References

  • Akhatov JS, Chang C, Juraev TD. 2020. Temperature mode optimization for solar reverse-osmosis water desalination. Appl Solar Energy. 56:47–53.
  • Balaji R, Yaakob O. 2012. An analysis of shipboard waste heat availability for ballast water treatment. J Mar Eng Technol. 11(2):15–29.
  • Biswas S, Roynaskar A, Hirwani CK, Panda SK. 2018. Design and fabrication of thermoelectric waste heat reutilization system— possible industrial application. Int J Energy Res. 42(12):3977–3986.
  • Cardona E, Piacentino A, Marchese F. 2005. Energy saving in two-stage reverse osmosis systems coupled with ultrafiltration processes. Desalination. 184(1-3):125–137.
  • Champier D. 2017. Thermoelectric generators: a review of applications. Energ Convers Manage. 140:167–181.
  • Geneidy RE, Otto K, Ahtila P, Kujala P, Sillanpää K, Mäki-Jouppila T. 2018. Increasing energy efficiency in passenger ships by novel energy conservation measures. J Mar Eng Technol. 17(2):85–98.
  • Gude VG. 2011. Energy consumption and recovery in reverse osmosis. Desalin Water Treat. 36(1-3):239–260.
  • Gude VG. 2015. Energy storage for desalination processes powered by renewable energy and waste heat sources. Appl Energ. 137:877–898.
  • Gude VG. 2016. Desalination and sustainability–an appraisal and current perspective. Water Res. 89:87–106.
  • Gude VG. 2019. Thermal desalination of ballast water using onboard waste heat in marine industry. Int J Energy Res. 43(11):6026–6037.
  • Gude VG, Fthenakis V. 2020. Energy efficiency and renewable energy utilization in desalination systems. Progress in Energy. doi:10.1088/2516-1083/ab7bf6.
  • Gude VG, Nirmalakhandan N. 2008a. Desalination using low-grade heat sources. J Energ Eng. 134(3):95–101.
  • Gude VG, Nirmalakhandan N. 2008b. Combined desalination and solar-assisted air-conditioning system. Energ Convers Manage. 49(11):3326–3330.
  • Gude VG, Nirmalakhandan N, Deng S. 2010a. Renewable and sustainable approaches for desalination. Renew Sust Energ Rev. 14(9):2641–2654.
  • Gude VG, Nirmalakhandan N, Deng S. 2010b. Low temperature process to recover impaired waters. Desalin Water Treat. 20(1-3):281–290.
  • Gude VG, Nirmalakhandan N, Deng S. 2011a. Sustainable low temperature desalination: a case for renewable energy. J Renew Sustain Ener. 3(4):043108.
  • Gude VG, Nirmalakhandan N, Deng S. 2011b. Integrated PV-thermal system for desalination and power production. Desalin Water Treat. 36(1-3):129–140.
  • Koutsou CP, Kritikos E, Karabelas AJ, Kostoglou M. 2020. Analysis of temperature effects on the specific energy consumption in reverse osmosis desalination processes. Desalination. 476:114213.
  • Kristiansen NR, Nielsen HK. 2010. Potential for usage of thermoelectric generators on ships. J Electron Mater. 39(9):1746–1749.
  • Kristiansen NR, Snyder GJ, Nielsen HK, Rosendahl L. 2012. Waste heat recovery from a marine waste incinerator using a thermoelectric generator. J Electron Mater. 41(6):1024–1029.
  • Kumar RS, Mani A, Kumaraswamy S. 2005. Analysis of a jet-pump-assisted vacuum desalination system using power plant waste heat. Desalination. 179(1-3):345–354.
  • Nguyen P. 2017. Modelling, estimation and control of waste heat recovery and desalination processes in maritime applications. Aalto University publication series, Doctoral Dissertations 115/2017, Helsinki, Finland.
  • Pavić D, Kralj P, Lenac D. 2017. Legionella Pneumophilia on board ship’s freshwater systems and technological and organizational measures of prevention and suppression. Pomorstvo. 31(1):74–76.
  • Petsagkourakis I, Tybrandt K, Crispin X, Ohkubo I, Satoh N, Mori T. 2018. Thermoelectric materials and applications for energy harvesting power generation. Sci Technol Adv Mater. 19(1):836–862.
  • Selvan KV, Hasan MN, Mohamed Ali MS. 2019. Methodological reviews and analyses on the emerging research trends and progresses of thermoelectric generators. Int J Energy Res. 43(1):113–140.
  • Singh DV, Pedersen E. 2016. A review of waste heat recovery technologies for maritime applications. Energy Convers Manage. 111:315–328.
  • Suárez de la Fuente S, Greig AR. 2015. Making shipping greener: comparative study between organic fluids and water for Rankine cycle waste heat recovery. J Marine Eng Technol. 14(2):70–84.
  • Tay JH, Low SC, Jeyaseelan S. 1996. Vacuum desalination for water purification using waste heat. Desalination. 106(1-3):131–135.
  • Wang X, Ng KC. 2005. Experimental investigation of an adsorption desalination plant using low-temperature waste heat. Appl Therm Eng. 25(17):2780–2789.
  • Zhang X, Zhao LD. 2015. Thermoelectric materials: energy conversion between heat and electricity. J Materiomics. 1(2):92–105.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.