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Analysis of variable reverse osmosis operation powered by solar energy

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  • Zein, Adnan
  • Karaki, Sami
  • Al-Hindi, Mahmoud

Abstract

The use of solar photovoltaic (PV) to power reverse osmosis (RO) plants and produce water will enhance the sustainability of water supplies in several dry remote coastal areas. Varying the operating power level of the RO plant has been proposed in the literature as a solution to accommodate intermittent PV power sources. Such variable operation is intended to match the RO load to the available PV power. Nevertheless, such operation has not been used outside research laboratories and small pilot plants. In this work, we used different case studies to evaluate the benefit of using variable operation and its effects on system design, system operation and levelized cost of water (LCOW). A simulation model for the optimal operation of the system is developed using three-dimensional dynamic programming (DP) to determine the power levels of the battery, diesel generator, and RO plant while optimal sizing of these plants and associated water tanks and PV generators was solved using an ordinal optimization (OO) approach. The use of OO permitted the examination of a large design search space quickly but exhaustively using a simple model. We then ranked the different designs in increasing cost order and assessed a reduced number of these using an accurate model to simulate the system on an hourly basis for all the days of a year. This approach relies on the fundamental tenet of OO: “order is robust to the noise introduced by the simple model”. Different power modulation strategies are investigated, and their implications on the hydraulic operating parameters are presented. In this respect, we investigate the operation of the RO system at varying power levels and different sizes of backup systems (battery and diesel generator). This ability to vary the RO operating level helped in a better matching of the system load to the available, yet variable, PV power, even when the backup and storage systems were at a minimum. Operating an RO plant with PV and backup systems is found to be far more cost effective than operation without backup systems, reducing costs by 37–55% for the case studies considered.

Suggested Citation

  • Zein, Adnan & Karaki, Sami & Al-Hindi, Mahmoud, 2023. "Analysis of variable reverse osmosis operation powered by solar energy," Renewable Energy, Elsevier, vol. 208(C), pages 385-398.
  • Handle: RePEc:eee:renene:v:208:y:2023:i:c:p:385-398
    DOI: 10.1016/j.renene.2023.03.001
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    References listed on IDEAS

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    1. Weitzel, Timm & Schneider, Maximilian & Glock, C. H. & Löber, Florian & Rinderknecht, Stephan, 2018. "Operating a Storage-Augmented Hybrid Microgrid Considering Battery Aging Costs," Publications of Darmstadt Technical University, Institute for Business Studies (BWL) 96062, Darmstadt Technical University, Department of Business Administration, Economics and Law, Institute for Business Studies (BWL).
    2. Sadegh Modarresi, M. & Abada, Bilal & Sivaranjani, S. & Xie, Le & Chellam, Shankararaman, 2020. "Planning of survivable nano-grids through jointly optimized water and electricity: The case of Colonias at the Texas-Mexico border," Applied Energy, Elsevier, vol. 278(C).
    3. Mehrjerdi, Hasan, 2020. "Modeling and optimization of an island water-energy nexus powered by a hybrid solar-wind renewable system," Energy, Elsevier, vol. 197(C).
    4. Weitzel, Timm & Schneider, Maximilian & Glock, Christoph H. & Löber, Florian & Rinderknecht, Stephan, 2018. "Operating a Storage-Augmented Hybrid Microgrid Considering Battery Aging Costs," Publications of Darmstadt Technical University, Institute for Business Studies (BWL) 96461, Darmstadt Technical University, Department of Business Administration, Economics and Law, Institute for Business Studies (BWL).
    5. Carta, José A. & Cabrera, Pedro, 2021. "Optimal sizing of stand-alone wind-powered seawater reverse osmosis plants without use of massive energy storage," Applied Energy, Elsevier, vol. 304(C).
    6. Freire-Gormaly, M. & Bilton, A.M., 2019. "Design of photovoltaic powered reverse osmosis desalination systems considering membrane fouling caused by intermittent operation," Renewable Energy, Elsevier, vol. 135(C), pages 108-121.
    7. Hasan Masrur & Harun Or Rashid Howlader & Mohammed Elsayed Lotfy & Kaisar R. Khan & Josep M. Guerrero & Tomonobu Senjyu, 2020. "Analysis of Techno-Economic-Environmental Suitability of an Isolated Microgrid System Located in a Remote Island of Bangladesh," Sustainability, MDPI, vol. 12(7), pages 1-27, April.
    8. Michael Castro & Myron Alcanzare & Eugene Esparcia & Joey Ocon, 2020. "A Comparative Techno-Economic Analysis of Different Desalination Technologies in Off-Grid Islands," Energies, MDPI, vol. 13(9), pages 1-25, May.
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