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February 28, 2026Sustainability0 citationsOpen Access

Assessing Water Demand and Desalination System Responses to COVID-19 in the State of Kuwait

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AAAbdulrahman AlmutairiHAHamad M. AlhajeriAAAbdulrahman Alenezi

Key Points

  • To analyze how COVID-19 curfews affected water demand and desalination production in Kuwait during spring 2020.
  • Analyzed full and partial curfews' effects on water demand and production
  • Considered various desalination technologies: MSF, MED-TVC, RO
  • Utilized historical data and predictive models with a statistical genetic algorithm
  • Conducted quantitative evaluation of environmental and economic implications
  • Simulated water demand and production using mathematical models from government data
  • Water consumption surged, with maximum daily consumption increasing by 3.6%
  • Average daily consumption rose by 5.2% compared to 2019
  • Emission levels of CO, CO2, and NOx increased due to higher fuel consumption during lockdowns
  • Water demand and production were significantly different from normal operating conditions

Abstract

This paper presents an analysis of the impact of full and partial curfews on water demand and production, as imposed in Kuwait during the meteorological spring (March, April, and May) of 2020, in response to the COVID-19 pandemic. We consider all desalination technologies used in Kuwait: Multi-Stage Flash (MSF), Multi-Effect Thermal Vapor Compression (MED-TVC), and Reverse Osmosis (RO). Historical data and predictive models are combined and analyzed via a statistical genetic algorithm. The environmental and economic implications of the lockdown measures were assessed through quantitative evaluation, comparing actual 2020 water demand and production data with values predicted under normal operating conditions. During the 2020 COVID-19 pandemic, water consumption surged, with maximum daily consumption climbing by 3.6%, and average daily consumption by 5.2%. These values were significant increases relative to 2019, for which the corresponding figures were 2.1% and 1.6%. The study assesses the economic and environmental consequences quantitatively, specifically the increase in CO, CO2, and NOx emissions, due to the increase in fuel consumption at desalination and power plants. Water demand and production across the national water network were simulated using mathematical models specifically designed for this purpose, developed from data provided by the Meteorological Department of Civil Aviation and the Ministry of Electricity, Water, and Renewable Energy.

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Cite This Study

Almutairi et al. (2026) studied this question.

synapsesocial.com/papers/69a287460a974eb0d3c02e48https://doi.org/10.3390/su18052253
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