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    Global and regional potential of wastewater as a water, nutrient and energy source

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    Authors
    Qadir, Manzoor
    Drechsel, Pay
    Cisneros, B.J.
    Kim, Y.
    Pramanik, A.
    Mehta, P.
    Olaniyan, O.
    Date Issued
    2020-02
    Date Online
    2020-01
    Language
    en
    Type
    Journal Article
    ISI journal
    Accessibility
    Open Access
    Usage rights
    Copyrighted; all rights reserved
    Metadata
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    Citation
    Qadir, M.; Drechsel, Pay; Cisneros, B. J.; Kim, Y.; Pramanik, A.; Mehta, P.; Olaniyan, O. 2020. Global and regional potential of wastewater as a water, nutrient and energy source. Natural Resources Forum, 44(1):40-51. doi: 10.1111/1477-8947.12187
    Permanent link to cite or share this item: https://hdl.handle.net/10568/107014
    DOI: https://doi.org/10.1111/1477-8947.12187
    Abstract/Description
    There is a proactive interest in recovering water, nutrients and energy from waste streams with the increase in municipal wastewater volumes and innovations in resource recovery. Based on the synthesis of wastewater data, this study provides insights into the global and regional “potential” of wastewater as water, nutrient and energy sources while acknowledging the limitations of current resource recovery opportunities and promoting efforts to fast-track highefficiency returns. The study estimates suggest that, currently, 380 billion m3 (m3 = 1,000 L) of wastewater are produced annually across the world which is a volume fivefold the volume of water passing through Niagara Falls annually. Wastewater production globally is expected to increase by 24% by 2030 and 51% by 2050 over the current level. Among major nutrients, 16.6 Tg (Tg = million metric ton) of nitrogen are embedded in wastewater produced worldwide annually; phosphorus stands at 3.0 Tg and potassium at 6.3 Tg. The full nutrient recovery from wastewater would offset 13.4% of the global demand for these nutrients in agriculture. Beyond nutrient recovery and economic gains, there are critical environmental benefits, such as minimizing eutrophication. At the energy front, the energy embedded in wastewater would be enough to provide electricity to 158 million households. These estimates and projections are based on the maximum theoretical amounts of water, nutrients and energy that exist in the reported municipal wastewater produced worldwide annually. Supporting resource recovery from wastewater will need a step-wise approach to address a range of constraints to deliver a high rate of return in direct support of Sustainable Development Goals (SDG) 6, 7 and 12, but also other Goals, including adaptation to climate change and efforts in advancing “netzero” energy processes towards a green economy.
    CGIAR Author ORCID iDs
    Pay Drechselhttps://orcid.org/0000-0002-2592-8812
    Other CGIAR Affiliations
    Water, Land and Ecosystems
    AGROVOC Keywords
    wastewater treatment; recycling; resource recovery; reuse; nutrients; energy sources; nitrogen; phosphorus; potassium; fertilizers; wastewater irrigation; energy generation; energy recovery; forecasting; municipal wastewater; sustainable development goals; urban population; water stress
    Regions
    Sub-Saharan Africa; Asia; Caribbean; Europe; Latin America; Middle East; Northern Africa; Northern America
    Organizations Affiliated to the Authors
    International Water Management Institute
    Collections
    • Circular Economy and Water Pollution (CEWP) [56]
    • IWMI Journal Articles [2546]
    • Rural-Urban Linkages [179]
    • WLE Journal Articles [922]

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