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Minimal Bipolar Membrane Cell Configuration for Scaling Up Ammonium Recovery

[Image: see text] Electrochemical systems for total ammonium nitrogen (TAN) recovery are a promising alternative compared with conventional nitrogen-removal technologies. To make them competitive, we propose a new minimal stackable configuration using cell pairs with only bipolar membranes and catio...

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Autores principales: Rodrigues, Mariana, de Mattos, Thiago T., Sleutels, Tom, ter Heijne, Annemiek, Hamelers, Hubertus V.M., Buisman, Cees J.N., Kuntke, Philipp
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2020
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7709195/
https://www.ncbi.nlm.nih.gov/pubmed/33282569
http://dx.doi.org/10.1021/acssuschemeng.0c05043
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author Rodrigues, Mariana
de Mattos, Thiago T.
Sleutels, Tom
ter Heijne, Annemiek
Hamelers, Hubertus V.M.
Buisman, Cees J.N.
Kuntke, Philipp
author_facet Rodrigues, Mariana
de Mattos, Thiago T.
Sleutels, Tom
ter Heijne, Annemiek
Hamelers, Hubertus V.M.
Buisman, Cees J.N.
Kuntke, Philipp
author_sort Rodrigues, Mariana
collection PubMed
description [Image: see text] Electrochemical systems for total ammonium nitrogen (TAN) recovery are a promising alternative compared with conventional nitrogen-removal technologies. To make them competitive, we propose a new minimal stackable configuration using cell pairs with only bipolar membranes and cation-exchange membranes. The tested bipolar electrodialysis (BP-ED) stack included six cell pairs of feed and concentrate compartments. Critical operational parameters, such as current density and the ratio between applied current to nitrogen loading (load ratio), were varied to investigate the performance of the system using synthetic wastewater with a high nitrogen content as an influent (NH(4)(+) ≈ 1.75 g L(–1)). High TAN removal (>70%) was achieved for a load ratio higher than 1. At current densities of 150 A m(–2) and a load ratio of 1.2, a TAN transport rate of 1145.1±14.1 g(N) m(–2) d(–1) and a TAN-removal efficiency of 80% were observed. As the TAN removal was almost constant at different current densities, the BP-ED stack performed at a high TAN transport rate (819.1 g(N) m(–2) d(–1)) while consuming the lowest energy (18.3 kJ g(N)(–1)) at a load ratio of 1.2 and 100 A m(–2). The TAN transport rate, TAN removal, and energy input achieved by the minimal BP-ED stack demonstrated a promising new cell configuration for upscaling.
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spelling pubmed-77091952020-12-02 Minimal Bipolar Membrane Cell Configuration for Scaling Up Ammonium Recovery Rodrigues, Mariana de Mattos, Thiago T. Sleutels, Tom ter Heijne, Annemiek Hamelers, Hubertus V.M. Buisman, Cees J.N. Kuntke, Philipp ACS Sustain Chem Eng [Image: see text] Electrochemical systems for total ammonium nitrogen (TAN) recovery are a promising alternative compared with conventional nitrogen-removal technologies. To make them competitive, we propose a new minimal stackable configuration using cell pairs with only bipolar membranes and cation-exchange membranes. The tested bipolar electrodialysis (BP-ED) stack included six cell pairs of feed and concentrate compartments. Critical operational parameters, such as current density and the ratio between applied current to nitrogen loading (load ratio), were varied to investigate the performance of the system using synthetic wastewater with a high nitrogen content as an influent (NH(4)(+) ≈ 1.75 g L(–1)). High TAN removal (>70%) was achieved for a load ratio higher than 1. At current densities of 150 A m(–2) and a load ratio of 1.2, a TAN transport rate of 1145.1±14.1 g(N) m(–2) d(–1) and a TAN-removal efficiency of 80% were observed. As the TAN removal was almost constant at different current densities, the BP-ED stack performed at a high TAN transport rate (819.1 g(N) m(–2) d(–1)) while consuming the lowest energy (18.3 kJ g(N)(–1)) at a load ratio of 1.2 and 100 A m(–2). The TAN transport rate, TAN removal, and energy input achieved by the minimal BP-ED stack demonstrated a promising new cell configuration for upscaling. American Chemical Society 2020-11-18 2020-11-30 /pmc/articles/PMC7709195/ /pubmed/33282569 http://dx.doi.org/10.1021/acssuschemeng.0c05043 Text en © 2020 American Chemical Society This is an open access article published under a Creative Commons Non-Commercial No Derivative Works (CC-BY-NC-ND) Attribution License (http://pubs.acs.org/page/policy/authorchoice_ccbyncnd_termsofuse.html) , which permits copying and redistribution of the article, and creation of adaptations, all for non-commercial purposes.
spellingShingle Rodrigues, Mariana
de Mattos, Thiago T.
Sleutels, Tom
ter Heijne, Annemiek
Hamelers, Hubertus V.M.
Buisman, Cees J.N.
Kuntke, Philipp
Minimal Bipolar Membrane Cell Configuration for Scaling Up Ammonium Recovery
title Minimal Bipolar Membrane Cell Configuration for Scaling Up Ammonium Recovery
title_full Minimal Bipolar Membrane Cell Configuration for Scaling Up Ammonium Recovery
title_fullStr Minimal Bipolar Membrane Cell Configuration for Scaling Up Ammonium Recovery
title_full_unstemmed Minimal Bipolar Membrane Cell Configuration for Scaling Up Ammonium Recovery
title_short Minimal Bipolar Membrane Cell Configuration for Scaling Up Ammonium Recovery
title_sort minimal bipolar membrane cell configuration for scaling up ammonium recovery
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7709195/
https://www.ncbi.nlm.nih.gov/pubmed/33282569
http://dx.doi.org/10.1021/acssuschemeng.0c05043
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