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State of the art of urine treatment technologies: A critical review.

Over the last 15 years, urine treatment technologies have developed from lab studies of a few pioneers to an interesting innovation, attracting attention from a growing number of process engineers. In this broad review, we present literature from more than a decade on biological, physical-chemical a...

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Autores principales: Larsen, Tove A., Riechmann, Michel E., Udert, Kai M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8517923/
https://www.ncbi.nlm.nih.gov/pubmed/34693239
http://dx.doi.org/10.1016/j.wroa.2021.100114
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author Larsen, Tove A.
Riechmann, Michel E.
Udert, Kai M.
author_facet Larsen, Tove A.
Riechmann, Michel E.
Udert, Kai M.
author_sort Larsen, Tove A.
collection PubMed
description Over the last 15 years, urine treatment technologies have developed from lab studies of a few pioneers to an interesting innovation, attracting attention from a growing number of process engineers. In this broad review, we present literature from more than a decade on biological, physical-chemical and electrochemical urine treatment processes. Like in the first review on urine treatment from 2006, we categorize the technologies according to the following objectives: stabilization, volume reduction, targeted N-recovery, targeted P-recovery, nutrient removal, sanitization, and handling of organic micropollutants. We add energy recovery as a new objective, because extensive work has been done on electrochemical energy harvesting, especially with bio-electrochemical systems. Our review reveals that biological processes are a good choice for urine stabilization. They have the advantage of little demand for chemicals and energy. Due to instabilities, however, they are not suited for bathroom applications and they cannot provide the desired volume reduction on their own. A number of physical-chemical treatment technologies are applicable at bathroom scale and can provide the necessary volume reduction, but only with a steady supply of chemicals and often with high demand for energy and maintenance. Electrochemical processes is a recent, but rapidly growing field, which could give rise to exciting technologies at bathroom scale, although energy production might only be interesting for niche applications. The review includes a qualitative assessment of all unit processes. A quantitative comparison of treatment performance was not the goal of the study and could anyway only be done for complete treatment trains. An important next step in urine technology research and development will be the combination of unit processes to set up and test robust treatment trains. We hope that the present review will help guide these efforts to accelerate the development towards a mature technology with pilot scale and eventually full-scale implementations.
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spelling pubmed-85179232021-10-21 State of the art of urine treatment technologies: A critical review. Larsen, Tove A. Riechmann, Michel E. Udert, Kai M. Water Res X Review Over the last 15 years, urine treatment technologies have developed from lab studies of a few pioneers to an interesting innovation, attracting attention from a growing number of process engineers. In this broad review, we present literature from more than a decade on biological, physical-chemical and electrochemical urine treatment processes. Like in the first review on urine treatment from 2006, we categorize the technologies according to the following objectives: stabilization, volume reduction, targeted N-recovery, targeted P-recovery, nutrient removal, sanitization, and handling of organic micropollutants. We add energy recovery as a new objective, because extensive work has been done on electrochemical energy harvesting, especially with bio-electrochemical systems. Our review reveals that biological processes are a good choice for urine stabilization. They have the advantage of little demand for chemicals and energy. Due to instabilities, however, they are not suited for bathroom applications and they cannot provide the desired volume reduction on their own. A number of physical-chemical treatment technologies are applicable at bathroom scale and can provide the necessary volume reduction, but only with a steady supply of chemicals and often with high demand for energy and maintenance. Electrochemical processes is a recent, but rapidly growing field, which could give rise to exciting technologies at bathroom scale, although energy production might only be interesting for niche applications. The review includes a qualitative assessment of all unit processes. A quantitative comparison of treatment performance was not the goal of the study and could anyway only be done for complete treatment trains. An important next step in urine technology research and development will be the combination of unit processes to set up and test robust treatment trains. We hope that the present review will help guide these efforts to accelerate the development towards a mature technology with pilot scale and eventually full-scale implementations. Elsevier 2021-08-19 /pmc/articles/PMC8517923/ /pubmed/34693239 http://dx.doi.org/10.1016/j.wroa.2021.100114 Text en © 2021 The Authors https://creativecommons.org/licenses/by/4.0/This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Review
Larsen, Tove A.
Riechmann, Michel E.
Udert, Kai M.
State of the art of urine treatment technologies: A critical review.
title State of the art of urine treatment technologies: A critical review.
title_full State of the art of urine treatment technologies: A critical review.
title_fullStr State of the art of urine treatment technologies: A critical review.
title_full_unstemmed State of the art of urine treatment technologies: A critical review.
title_short State of the art of urine treatment technologies: A critical review.
title_sort state of the art of urine treatment technologies: a critical review.
topic Review
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8517923/
https://www.ncbi.nlm.nih.gov/pubmed/34693239
http://dx.doi.org/10.1016/j.wroa.2021.100114
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