Characterization and Performance of Algal Biofilms for Wastewater Treatment and Industrial Applications

This study was carried out on algal biofilms grown using rotating algal biofilm reactors (RABRs) with the aim of: i) characterizing their growth in terms of photosynthetic activity and morphology ii) evaluating their performance as a wastewater treatment option and a feedstock for biofuels productio...

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Main Author: Kesaano, Maureen
Format: Others
Published: DigitalCommons@USU 2015
Subjects:
Online Access:https://digitalcommons.usu.edu/etd/4445
https://digitalcommons.usu.edu/cgi/viewcontent.cgi?article=5481&context=etd
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spelling ndltd-UTAHS-oai-digitalcommons.usu.edu-etd-54812019-10-13T05:35:26Z Characterization and Performance of Algal Biofilms for Wastewater Treatment and Industrial Applications Kesaano, Maureen This study was carried out on algal biofilms grown using rotating algal biofilm reactors (RABRs) with the aim of: i) characterizing their growth in terms of photosynthetic activity and morphology ii) evaluating their performance as a wastewater treatment option and a feedstock for biofuels production, and iii) examining the algal-bacteria interactions. A review of algal biofilm technologies currently employed in wastewater treatment processes was made to compare nutrient removal efficiencies, factors that influenced algal biofilm growth, and the different bioproducts generated from algal biomass. Consequently, research efforts were directed towards addressing pertinent issues identified in literature in order to optimize these systems for wastewater treatment and bioproducts production. Successful growth of algal biofilms in municipal wastewater and subsequent removal of nutrients from the wastewater was demonstrated. Photosynthetic and respiration rates observed with depth of the biofilm were influenced by the biofilm composition (single vs. mixed species), culturing conditions (laboratory vs. outdoor), orientation to the light, nitrogen availability (N-replete vs. N-deplete), and dissolved inorganic carbon availability (presence or absence of bicarbonate). Slight enhancement in lipid production was also observed as a result of nitrogen stress and bicarbonate addition. However, the accumulated lipids were not as much as expected or as reported in suspended cultures. Presence of bacteria positively influenced microalgae growth in the mixed cultures but the reverse was not true. In conclusion, photosynthetic activity and biofilm structure were characterized with methods developed for the algal biofilms in this study. For now, productivity of the algal biofilms needs to be maximized in order to fully utilize its potential as a biofuel feedstock and nutrient removal option. Further research on algae-bacteria interactions using species native to the wastewater grown algal biofilms is recommended. 2015-08-01T07:00:00Z text application/pdf https://digitalcommons.usu.edu/etd/4445 https://digitalcommons.usu.edu/cgi/viewcontent.cgi?article=5481&context=etd Copyright for this work is held by the author. Transmission or reproduction of materials protected by copyright beyond that allowed by fair use requires the written permission of the copyright owners. Works not in the public domain cannot be commercially exploited without permission of the copyright owner. Responsibility for any use rests exclusively with the user. For more information contact Andrew Wesolek (andrew.wesolek@usu.edu). All Graduate Theses and Dissertations DigitalCommons@USU Characterization Performance Algal Biofilms wastewater treatment industrial applications Biological Engineering
collection NDLTD
format Others
sources NDLTD
topic Characterization
Performance
Algal Biofilms
wastewater treatment
industrial applications
Biological Engineering
spellingShingle Characterization
Performance
Algal Biofilms
wastewater treatment
industrial applications
Biological Engineering
Kesaano, Maureen
Characterization and Performance of Algal Biofilms for Wastewater Treatment and Industrial Applications
description This study was carried out on algal biofilms grown using rotating algal biofilm reactors (RABRs) with the aim of: i) characterizing their growth in terms of photosynthetic activity and morphology ii) evaluating their performance as a wastewater treatment option and a feedstock for biofuels production, and iii) examining the algal-bacteria interactions. A review of algal biofilm technologies currently employed in wastewater treatment processes was made to compare nutrient removal efficiencies, factors that influenced algal biofilm growth, and the different bioproducts generated from algal biomass. Consequently, research efforts were directed towards addressing pertinent issues identified in literature in order to optimize these systems for wastewater treatment and bioproducts production. Successful growth of algal biofilms in municipal wastewater and subsequent removal of nutrients from the wastewater was demonstrated. Photosynthetic and respiration rates observed with depth of the biofilm were influenced by the biofilm composition (single vs. mixed species), culturing conditions (laboratory vs. outdoor), orientation to the light, nitrogen availability (N-replete vs. N-deplete), and dissolved inorganic carbon availability (presence or absence of bicarbonate). Slight enhancement in lipid production was also observed as a result of nitrogen stress and bicarbonate addition. However, the accumulated lipids were not as much as expected or as reported in suspended cultures. Presence of bacteria positively influenced microalgae growth in the mixed cultures but the reverse was not true. In conclusion, photosynthetic activity and biofilm structure were characterized with methods developed for the algal biofilms in this study. For now, productivity of the algal biofilms needs to be maximized in order to fully utilize its potential as a biofuel feedstock and nutrient removal option. Further research on algae-bacteria interactions using species native to the wastewater grown algal biofilms is recommended.
author Kesaano, Maureen
author_facet Kesaano, Maureen
author_sort Kesaano, Maureen
title Characterization and Performance of Algal Biofilms for Wastewater Treatment and Industrial Applications
title_short Characterization and Performance of Algal Biofilms for Wastewater Treatment and Industrial Applications
title_full Characterization and Performance of Algal Biofilms for Wastewater Treatment and Industrial Applications
title_fullStr Characterization and Performance of Algal Biofilms for Wastewater Treatment and Industrial Applications
title_full_unstemmed Characterization and Performance of Algal Biofilms for Wastewater Treatment and Industrial Applications
title_sort characterization and performance of algal biofilms for wastewater treatment and industrial applications
publisher DigitalCommons@USU
publishDate 2015
url https://digitalcommons.usu.edu/etd/4445
https://digitalcommons.usu.edu/cgi/viewcontent.cgi?article=5481&context=etd
work_keys_str_mv AT kesaanomaureen characterizationandperformanceofalgalbiofilmsforwastewatertreatmentandindustrialapplications
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