Global phosphorus recovery from wastewater for agricultural reuse
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Published:2018-11-12
Issue:11
Volume:22
Page:5781-5799
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ISSN:1607-7938
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Container-title:Hydrology and Earth System Sciences
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language:en
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Short-container-title:Hydrol. Earth Syst. Sci.
Author:
Kok Dirk-Jan D., Pande Saket, van Lier Jules B., Ortigara Angela R. C., Savenije HubertORCID, Uhlenbrook Stefan
Abstract
Abstract. Phosphorus is a nutrient necessary for the development of crops and is thus
commonly applied as fertilizer to sustain agricultural production. It occurs
naturally, in indefinite quantities of uncertain quality in phosphate rock
formations, but also accumulates in urban and livestock wastewater wherefrom
it is often lost as a pollutant. Recovering phosphorus from wastewater,
however, is feasible through struvite crystallization technologies and has
the potential to reduce phosphorus pollution of the environment as well as
lower the agricultural demand for artificial P fertilizers. In this study, we
developed a model to assess the global potential of P fertilizer recovery
from wastewater and to visualize its trade at sub-national resolution.
Results show that humans discharge a maximum of 3.7 Mt P into wastewater,
thereby potentially satisfying 20 % of the global fertilizer demand.
Provided 2015 market dynamics, however, the model determines that only
4 % of this discharge is technologically and economically recoverable in
a market that offers cheap rock phosphate products also. The results of this
study demonstrate that in the current economic context, phosphorus recovery
from wastewater offers only a small contribution to resolving global
phosphorus issues. Nevertheless, this recovery offers many wastewater
treatment facilities the opportunity to contribute to creating sustainable
communities and protecting the environment locally, while reducing their own
operational costs.
Publisher
Copernicus GmbH
Subject
General Earth and Planetary Sciences,General Engineering,General Environmental Science
Reference54 articles.
1. Arrow, K. J. and Debreu, G.: Existence of an Equilibrium for a Competitive
Economy, Econometrica, 22, 265–290, https://doi.org/10.2307/1907353, 1954. 2. Bouwman, A. F., Beusen, A. H. W., and Billen, G.: Human alteration of the
global nitrogen and phosphorus soil balances for the period 1970–2050,
Global Biogeochem. Cy., 23, GB0A04, https://doi.org/10.1029/2009GB003576, 2009. 3. Bouwman, L., Goldewijk, K. K., Van, K. W., Hoek, D., Beusen, A. H. W., Van
Vuuren, D. P., Willems, J., Rufino, M. C. and Stehfest, E.: Exploring global
changes in nitrogen and phosphorus cycles in agriculture induced by
livestock production over the 1900–2050 period, P. Natl. Acad. Sci. USA,
110, 20882–20887, https://doi.org/10.1073/pnas.1206191109, 2011. 4. Bouwman, L., Goldewijk, K. K., Van Der Hoek, K. W., Beusen, A. H. W., Van
Vuuren, D. P., Willems, J., Rufino, M. C., and Stehfest, E.: Exploring global
changes in nitrogen and phosphorus cycles in agriculture induced by
livestock production over the 1900–2050 period, P. Natl. Acad. Sci. USA,
110, 20882–20887, https://doi.org/10.1073/pnas.1012878108, 2013. 5. Center for International Earth Science Information Network – CIESIN –
Columbia University: Gridded Population of the World, Version 4 (GPWv4):
Population Density. Palisades, NY: NASA Socioeconomic Data and Applications
Center (SEDAC), https://doi.org/10.7927/H4NP22DQ, 2016.
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