Cargando…

Accelerated start-up, long-term performance and microbial community shifts within a novel upflow porous-plated anaerobic reactor treating nitrogen-rich wastewater via ANAMMOX process

The anaerobic ammonium oxidation (anammox) process has gained much popularity in recent years following its success in nitrogen removal. However, not much has been reported on techniques to promote anammox bacteria immobilization and associated microbial community evolution. In this study, a novel u...

Descripción completa

Detalles Bibliográficos
Autores principales: Zhang, Dachao, Xu, Shi, Antwi, Philip, Xiao, Longwen, Luo, Wuhui, Liu, Zuwen, Li, Jianzheng, Su, Hao, Lai, Cheng, Ayivi, Frederick
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9070342/
https://www.ncbi.nlm.nih.gov/pubmed/35530984
http://dx.doi.org/10.1039/c9ra04225c
_version_ 1784700618653302784
author Zhang, Dachao
Xu, Shi
Antwi, Philip
Xiao, Longwen
Luo, Wuhui
Liu, Zuwen
Li, Jianzheng
Su, Hao
Lai, Cheng
Ayivi, Frederick
author_facet Zhang, Dachao
Xu, Shi
Antwi, Philip
Xiao, Longwen
Luo, Wuhui
Liu, Zuwen
Li, Jianzheng
Su, Hao
Lai, Cheng
Ayivi, Frederick
author_sort Zhang, Dachao
collection PubMed
description The anaerobic ammonium oxidation (anammox) process has gained much popularity in recent years following its success in nitrogen removal. However, not much has been reported on techniques to promote anammox bacteria immobilization and associated microbial community evolution. In this study, a novel upflow porous-plate anaerobic reactor (UPPAR) was developed and explored to promote biomass (anammox) retention and growth. To comprehend the performance of the UPPAR, its nitrogen removal efficiencies, as well as the microbial community dynamics involved in the nitrogen removal process, was evaluated and reported. When NLR ranging 0.98–1.08 kg m(−3) d(−1) was introduced at various stages of the UPPAR operation, a rapid start-up was achieved in 63 d, and the overall nitrogen removal rate could reach 90–95%. By the end of the start-up period, it was revealed that Proteobacteria abundance had reduced by 43.92% as opposed Planctomycetes which increased from 2.95% to 43.52%. Conversely, after the UPPAR had been operated for 124 d, thus at steady-state, the most pronounced phylum observed was Planctomycetes (43.52%) followed by Proteobacteria (26.63%), Chloroflexi (5.87%), Ignavibacteriae (5.55%), and Bacteroidetes (4.9%). Predominant genera observed included Candidatus Kuenenia – (25.46%) and Candidatus Brocadia – (3.15%), an indication that nitrogen removal mechanism within the UPPAR was mainly conducted via autotrophic anammox process. Scanning electron microscopy (SEM) revealed that sludge samples obtained at steady-state were predominantly in granular form with sizes ranging between 2 mm to 5 mm. Granules surfaces were dominated with normal to coccoid-shaped cells as revealed by the SEM.
format Online
Article
Text
id pubmed-9070342
institution National Center for Biotechnology Information
language English
publishDate 2019
publisher The Royal Society of Chemistry
record_format MEDLINE/PubMed
spelling pubmed-90703422022-05-05 Accelerated start-up, long-term performance and microbial community shifts within a novel upflow porous-plated anaerobic reactor treating nitrogen-rich wastewater via ANAMMOX process Zhang, Dachao Xu, Shi Antwi, Philip Xiao, Longwen Luo, Wuhui Liu, Zuwen Li, Jianzheng Su, Hao Lai, Cheng Ayivi, Frederick RSC Adv Chemistry The anaerobic ammonium oxidation (anammox) process has gained much popularity in recent years following its success in nitrogen removal. However, not much has been reported on techniques to promote anammox bacteria immobilization and associated microbial community evolution. In this study, a novel upflow porous-plate anaerobic reactor (UPPAR) was developed and explored to promote biomass (anammox) retention and growth. To comprehend the performance of the UPPAR, its nitrogen removal efficiencies, as well as the microbial community dynamics involved in the nitrogen removal process, was evaluated and reported. When NLR ranging 0.98–1.08 kg m(−3) d(−1) was introduced at various stages of the UPPAR operation, a rapid start-up was achieved in 63 d, and the overall nitrogen removal rate could reach 90–95%. By the end of the start-up period, it was revealed that Proteobacteria abundance had reduced by 43.92% as opposed Planctomycetes which increased from 2.95% to 43.52%. Conversely, after the UPPAR had been operated for 124 d, thus at steady-state, the most pronounced phylum observed was Planctomycetes (43.52%) followed by Proteobacteria (26.63%), Chloroflexi (5.87%), Ignavibacteriae (5.55%), and Bacteroidetes (4.9%). Predominant genera observed included Candidatus Kuenenia – (25.46%) and Candidatus Brocadia – (3.15%), an indication that nitrogen removal mechanism within the UPPAR was mainly conducted via autotrophic anammox process. Scanning electron microscopy (SEM) revealed that sludge samples obtained at steady-state were predominantly in granular form with sizes ranging between 2 mm to 5 mm. Granules surfaces were dominated with normal to coccoid-shaped cells as revealed by the SEM. The Royal Society of Chemistry 2019-08-21 /pmc/articles/PMC9070342/ /pubmed/35530984 http://dx.doi.org/10.1039/c9ra04225c Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Zhang, Dachao
Xu, Shi
Antwi, Philip
Xiao, Longwen
Luo, Wuhui
Liu, Zuwen
Li, Jianzheng
Su, Hao
Lai, Cheng
Ayivi, Frederick
Accelerated start-up, long-term performance and microbial community shifts within a novel upflow porous-plated anaerobic reactor treating nitrogen-rich wastewater via ANAMMOX process
title Accelerated start-up, long-term performance and microbial community shifts within a novel upflow porous-plated anaerobic reactor treating nitrogen-rich wastewater via ANAMMOX process
title_full Accelerated start-up, long-term performance and microbial community shifts within a novel upflow porous-plated anaerobic reactor treating nitrogen-rich wastewater via ANAMMOX process
title_fullStr Accelerated start-up, long-term performance and microbial community shifts within a novel upflow porous-plated anaerobic reactor treating nitrogen-rich wastewater via ANAMMOX process
title_full_unstemmed Accelerated start-up, long-term performance and microbial community shifts within a novel upflow porous-plated anaerobic reactor treating nitrogen-rich wastewater via ANAMMOX process
title_short Accelerated start-up, long-term performance and microbial community shifts within a novel upflow porous-plated anaerobic reactor treating nitrogen-rich wastewater via ANAMMOX process
title_sort accelerated start-up, long-term performance and microbial community shifts within a novel upflow porous-plated anaerobic reactor treating nitrogen-rich wastewater via anammox process
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9070342/
https://www.ncbi.nlm.nih.gov/pubmed/35530984
http://dx.doi.org/10.1039/c9ra04225c
work_keys_str_mv AT zhangdachao acceleratedstartuplongtermperformanceandmicrobialcommunityshiftswithinanovelupflowporousplatedanaerobicreactortreatingnitrogenrichwastewaterviaanammoxprocess
AT xushi acceleratedstartuplongtermperformanceandmicrobialcommunityshiftswithinanovelupflowporousplatedanaerobicreactortreatingnitrogenrichwastewaterviaanammoxprocess
AT antwiphilip acceleratedstartuplongtermperformanceandmicrobialcommunityshiftswithinanovelupflowporousplatedanaerobicreactortreatingnitrogenrichwastewaterviaanammoxprocess
AT xiaolongwen acceleratedstartuplongtermperformanceandmicrobialcommunityshiftswithinanovelupflowporousplatedanaerobicreactortreatingnitrogenrichwastewaterviaanammoxprocess
AT luowuhui acceleratedstartuplongtermperformanceandmicrobialcommunityshiftswithinanovelupflowporousplatedanaerobicreactortreatingnitrogenrichwastewaterviaanammoxprocess
AT liuzuwen acceleratedstartuplongtermperformanceandmicrobialcommunityshiftswithinanovelupflowporousplatedanaerobicreactortreatingnitrogenrichwastewaterviaanammoxprocess
AT lijianzheng acceleratedstartuplongtermperformanceandmicrobialcommunityshiftswithinanovelupflowporousplatedanaerobicreactortreatingnitrogenrichwastewaterviaanammoxprocess
AT suhao acceleratedstartuplongtermperformanceandmicrobialcommunityshiftswithinanovelupflowporousplatedanaerobicreactortreatingnitrogenrichwastewaterviaanammoxprocess
AT laicheng acceleratedstartuplongtermperformanceandmicrobialcommunityshiftswithinanovelupflowporousplatedanaerobicreactortreatingnitrogenrichwastewaterviaanammoxprocess
AT ayivifrederick acceleratedstartuplongtermperformanceandmicrobialcommunityshiftswithinanovelupflowporousplatedanaerobicreactortreatingnitrogenrichwastewaterviaanammoxprocess