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Urban Water Security: Definition and Assessment Framework

Author

Listed:
  • Hassan Tolba Aboelnga

    (Department of Sanitary and Environmental Engineering (DESEE), University of Kassel, Kurt-Wolters-Str. 3, 34125 Kassel, Germany
    ITT, Cologne University of Applied Sciences, Betzdorfer Str. 2, 50679 Cologne, Germany)

  • Lars Ribbe

    (ITT, Cologne University of Applied Sciences, Betzdorfer Str. 2, 50679 Cologne, Germany)

  • Franz-Bernd Frechen

    (Department of Sanitary and Environmental Engineering (DESEE), University of Kassel, Kurt-Wolters-Str. 3, 34125 Kassel, Germany)

  • Jamal Saghir

    (Institute for the Study of International Development, Peterson Hall, McGill University, 3460 McTavish Street, Montreal, QC H3A 0E6, Canada)

Abstract

Achieving urban water security is a major challenge for many countries. While several studies have assessed water security at a regional level, many studies have also emphasized the lack of assessment of water security and application of measures to achieve it at the urban level. Recent studies that have focused on measuring urban water security are not holistic, and there is still no agreed-upon understanding of how to operationalize and identify an assessment framework to measure the current state and dynamics of water security. At present, there is also no clearly defined and widely endorsed definition of urban water security. To address this challenge, this study provides a systematic approach to better understand urban water security, with a working definition and an assessment framework to be applied in peri-urban and urban areas. The proposed working definition of urban water security is based on the United Nations (UN) sustainable development goal on water and sanitation and the human rights on water and sanitation. It captures issues of urban-level technical, environmental, and socio-economic indicators that emphasize credibility, legitimacy, and salience. The assessment framework depends on four main dimensions to achieve urban water security: Drinking water and human beings, ecosystem, climate change and water-related hazards, and socio-economic factors (DECS). The framework further enables the analysis of relationships and trade-off between urbanization and water security, as well as between DECS indicators. Applying this framework will help governments, policy-makers, and water stakeholders to target scant resources more effectively and sustainably. The study reveals that achieving urban water security requires a holistic and integrated approach with collaborative stakeholders to provide a meaningful way to improve understanding and managing urban water security.

Suggested Citation

  • Hassan Tolba Aboelnga & Lars Ribbe & Franz-Bernd Frechen & Jamal Saghir, 2019. "Urban Water Security: Definition and Assessment Framework," Resources, MDPI, vol. 8(4), pages 1-19, November.
  • Handle: RePEc:gam:jresou:v:8:y:2019:i:4:p:178-:d:290625
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    References listed on IDEAS

    as
    1. Malin Falkenmark & Jan Lundqvist & Carl Widstrand, 1989. "Macro‐scale water scarcity requires micro‐scale approaches," Natural Resources Forum, Blackwell Publishing, vol. 13(4), pages 258-267, November.
    2. C. J. Vörösmarty & P. B. McIntyre & M. O. Gessner & D. Dudgeon & A. Prusevich & P. Green & S. Glidden & S. E. Bunn & C. A. Sullivan & C. Reidy Liermann & P. M. Davies, 2010. "Erratum: Global threats to human water security and river biodiversity," Nature, Nature, vol. 468(7321), pages 334-334, November.
    3. Claudia Pahl-Wostl, 2007. "Transitions towards adaptive management of water facing climate and global change," Water Resources Management: An International Journal, Published for the European Water Resources Association (EWRA), Springer;European Water Resources Association (EWRA), vol. 21(1), pages 49-62, January.
    4. Peter Lawrence & Jeremy Meigh & Caroline Sullivan, 2002. "The Water Poverty Index:an International Comparison," Keele Economics Research Papers KERP 2002/19, Centre for Economic Research, Keele University, revised Mar 2003.
    5. Berg, Sanford, 2000. "Developments in Best-Practice Regulation: Principles, Processes, and Performance," The Electricity Journal, Elsevier, vol. 13(6), pages 11-18, July.
    6. Steven Koop & Cornelis Leeuwen, 2015. "Application of the Improved City Blueprint Framework in 45 Municipalities and Regions," Water Resources Management: An International Journal, Published for the European Water Resources Association (EWRA), Springer;European Water Resources Association (EWRA), vol. 29(13), pages 4629-4647, October.
    7. Mark Giordano & Tushaar Shah, 2014. "From IWRM back to integrated water resources management," International Journal of Water Resources Development, Taylor & Francis Journals, vol. 30(3), pages 364-376, September.
    8. Sara Nazif & Mohammad Karamouz & Mohsen Yousefi & Zahra Zahmatkesh, 2013. "Increasing Water Security: An Algorithm to Improve Water Distribution Performance," Water Resources Management: An International Journal, Published for the European Water Resources Association (EWRA), Springer;European Water Resources Association (EWRA), vol. 27(8), pages 2903-2921, June.
    9. C. J. Vörösmarty & P. B. McIntyre & M. O. Gessner & D. Dudgeon & A. Prusevich & P. Green & S. Glidden & S. E. Bunn & C. A. Sullivan & C. Reidy Liermann & P. M. Davies, 2010. "Global threats to human water security and river biodiversity," Nature, Nature, vol. 467(7315), pages 555-561, September.
    10. Hussam Hussein, 2019. "An analysis of the framings of water scarcity in the Jordanian national water strategy," Water International, Taylor & Francis Journals, vol. 44(1), pages 6-13, January.
    11. Wakeel, Muhammad & Chen, Bin & Hayat, Tasawar & Alsaedi, Ahmed & Ahmad, Bashir, 2016. "Energy consumption for water use cycles in different countries: A review," Applied Energy, Elsevier, vol. 178(C), pages 868-885.
    12. Alexander Danilenko & Caroline van den Berg & Berta Macheve & L. Joe Moffitt, 2014. "The IBNET Water Supply and Sanitation Blue Book 2014 : The International Benchmarking Network for Water and Sanitation Utilities Databook," World Bank Publications - Books, The World Bank Group, number 19811.
    13. Sullivan, Caroline, 2002. "Calculating a Water Poverty Index," World Development, Elsevier, vol. 30(7), pages 1195-1210, July.
    14. C. Leeuwen, 2013. "City Blueprints: Baseline Assessments of Sustainable Water Management in 11 Cities of the Future," Water Resources Management: An International Journal, Published for the European Water Resources Association (EWRA), Springer;European Water Resources Association (EWRA), vol. 27(15), pages 5191-5206, December.
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