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Is Desalination a Solution to Freshwater Scarcity in Developing Countries?

Rapid population growth and urbanization are two main drivers for the over-abstraction of conventional freshwater resources in various parts of the world, which leads to the situation of water scarcity (per capita availability <1000 m(3)/year). Predictions based on the World Bank projected popula...

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Autores principales: Dhakal, Nirajan, Salinas-Rodriguez, Sergio G., Hamdani, Jamal, Abushaban, Almotasembellah, Sawalha, Hassan, Schippers, Jan C., Kennedy, Maria D.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9029386/
https://www.ncbi.nlm.nih.gov/pubmed/35448351
http://dx.doi.org/10.3390/membranes12040381
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author Dhakal, Nirajan
Salinas-Rodriguez, Sergio G.
Hamdani, Jamal
Abushaban, Almotasembellah
Sawalha, Hassan
Schippers, Jan C.
Kennedy, Maria D.
author_facet Dhakal, Nirajan
Salinas-Rodriguez, Sergio G.
Hamdani, Jamal
Abushaban, Almotasembellah
Sawalha, Hassan
Schippers, Jan C.
Kennedy, Maria D.
author_sort Dhakal, Nirajan
collection PubMed
description Rapid population growth and urbanization are two main drivers for the over-abstraction of conventional freshwater resources in various parts of the world, which leads to the situation of water scarcity (per capita availability <1000 m(3)/year). Predictions based on the World Bank projected population data and the FAO AQUASTAT database for freshwater availability show that by 2050, 2 billion people living in 44 countries will likely suffer from water scarcity, of which 95% may live in developing countries. Among these, the countries that will likely be most strongly hit by water scarcity by 2050 are Uganda, Burundi, Nigeria, Somalia, Malawi, Eritrea, Ethiopia, Haiti, Tanzania, Niger, Zimbabwe, Afghanistan, Sudan, and Pakistan. Currently, these countries have not yet established desalination to meet their freshwater demand. However, the current global trend shows that membrane-based desalination technology is finding new outlets for supplying water to meet growing water demand in most of the water-scarce countries. These 14 water-scarce countries will demand an additional desalination capacity of 54 Mm(3)/day by 2050 in order to meet the standard of current municipal water demand and to compensate for the withdrawal of renewable resources. Case studies from India, China, and South Africa have highlighted that other countries may apply the strategy of using desalinated water for industrial users. Moreover, challenges to the widespread adoption of desalination exist such as expense, significant energy use, the need for specialized staff training, the large carbon footprint of facilities, environmental issues such as greenhouse gas emission (GHGs), chemical discharge, and operational problems such as membrane fouling.
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spelling pubmed-90293862022-04-23 Is Desalination a Solution to Freshwater Scarcity in Developing Countries? Dhakal, Nirajan Salinas-Rodriguez, Sergio G. Hamdani, Jamal Abushaban, Almotasembellah Sawalha, Hassan Schippers, Jan C. Kennedy, Maria D. Membranes (Basel) Review Rapid population growth and urbanization are two main drivers for the over-abstraction of conventional freshwater resources in various parts of the world, which leads to the situation of water scarcity (per capita availability <1000 m(3)/year). Predictions based on the World Bank projected population data and the FAO AQUASTAT database for freshwater availability show that by 2050, 2 billion people living in 44 countries will likely suffer from water scarcity, of which 95% may live in developing countries. Among these, the countries that will likely be most strongly hit by water scarcity by 2050 are Uganda, Burundi, Nigeria, Somalia, Malawi, Eritrea, Ethiopia, Haiti, Tanzania, Niger, Zimbabwe, Afghanistan, Sudan, and Pakistan. Currently, these countries have not yet established desalination to meet their freshwater demand. However, the current global trend shows that membrane-based desalination technology is finding new outlets for supplying water to meet growing water demand in most of the water-scarce countries. These 14 water-scarce countries will demand an additional desalination capacity of 54 Mm(3)/day by 2050 in order to meet the standard of current municipal water demand and to compensate for the withdrawal of renewable resources. Case studies from India, China, and South Africa have highlighted that other countries may apply the strategy of using desalinated water for industrial users. Moreover, challenges to the widespread adoption of desalination exist such as expense, significant energy use, the need for specialized staff training, the large carbon footprint of facilities, environmental issues such as greenhouse gas emission (GHGs), chemical discharge, and operational problems such as membrane fouling. MDPI 2022-03-31 /pmc/articles/PMC9029386/ /pubmed/35448351 http://dx.doi.org/10.3390/membranes12040381 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Review
Dhakal, Nirajan
Salinas-Rodriguez, Sergio G.
Hamdani, Jamal
Abushaban, Almotasembellah
Sawalha, Hassan
Schippers, Jan C.
Kennedy, Maria D.
Is Desalination a Solution to Freshwater Scarcity in Developing Countries?
title Is Desalination a Solution to Freshwater Scarcity in Developing Countries?
title_full Is Desalination a Solution to Freshwater Scarcity in Developing Countries?
title_fullStr Is Desalination a Solution to Freshwater Scarcity in Developing Countries?
title_full_unstemmed Is Desalination a Solution to Freshwater Scarcity in Developing Countries?
title_short Is Desalination a Solution to Freshwater Scarcity in Developing Countries?
title_sort is desalination a solution to freshwater scarcity in developing countries?
topic Review
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9029386/
https://www.ncbi.nlm.nih.gov/pubmed/35448351
http://dx.doi.org/10.3390/membranes12040381
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