Novel sequential flow baffled microalgal-bacterial photobioreactor for enhancing nitrogen assimilation into microalgal biomass whilst bioremediating nutrient-rich wastewater simultaneously
- 1. Department of Fundamental and Applied Sciences, HICoE-Centre for Biofuel and Biochemical Research, Institute of Self-Sustainable Building, Universiti Teknologi PETRONAS, 32610 Seri Iskandar, Perak Darul Ridzuan (Malaysia)
- 2. Department of Chemical Engineering, HICoE-Centre for Biofuel and Biochemical Research, Institute of Self-Sustainable Building, Universiti Teknologi PETRONAS, 32610 Seri Iskandar, Perak Darul Ridzuan (Malaysia)
- 3. Department of Environmental Engineering, Faculty of Engineering and Green Technology (FEGT), Universiti Tunku Abdul Rahman, 31900 Kampar, Perak Darul Ridzuan (Malaysia)
- 4. Department of Petrochemical Engineering, Faculty of Engineering and Green Technology (FEGT), Universiti Tunku Abdul Rahman, 31900 Kampar, Perak Darul Ridzuan (Malaysia)
- 5. Department of Mechanical Engineering, The University of Sheffield, Western Bank, Sheffield, S10 2TN (United Kingdom)
Description
Highlights: • New photobioreactor design to enhance microalgal biomass growth. • Rederived kinetic growth model to predict optimum flow rate for photobioreactor. • Prior bacterial nitrification promoting nitrogen assimilation by microalgae. • Extracellular polymeric substances from bacteria flocculating microalgal cells. • Potential low-cost nitrogen exploitation from nutrient-rich wastewater. A novel sequential flow baffled microalgal-bacterial (SFB-AlgalBac) photobioreactor was designed to cater for the synergistic interactions between microalgal and bacterial consortia to enhance nitrogen assimilation into microalgal biomass from nutrient-rich wastewater medium. The performance of the SFB-AlgalBac photobioreactor was found to be optimum at the influent flow rate of 5.0 L/d, equivalent to 20 days of hydraulic retention time (HRT). The highest microalgal nitrogen assimilation rate (0.0271 /d) and biomass productivity (1350 mg/d) were recorded amidst this flow rate. Further increase to the 10.0 L/d flow rate reduced the photobioreactor performance, as evidenced by a reduction in microalgal biomass productivity (>10%). The microalgal biomass per unit of nitrogen assimilated values were attained at 16.69 mg/mg for the 5.0 L/d flow rate as opposed to 7.73 mg/mg for the 10.0 L/d flow rate, despite both having comparable specific growth rates. Also, the prior influent treatment by activated sludge was found to exude extracellular polymeric substances which significantly improved the microalgal biomass settleability up to 37%. The employment of SFB-AlgalBac photobioreactor is anticipated could exploit the low-cost nitrogen sources from nutrient-rich wastewaters via bioconversion into valuable microalgal biomass while fulfilling the requirements of sustainable wastewater treatment technologies.
Availability note (English)
Available from http://dx.doi.org/10.1016/j.jhazmat.2020.124455Additional details
Identifiers
- DOI
- 10.1016/j.jhazmat.2020.124455;
- PII
- S0304389420324456;
Publishing Information
- Journal Title
- Journal of Hazardous Materials
- Journal Volume
- 409
- Journal Page Range
- vp.
- ISSN
- 0304-3894
- CODEN
- JHMAD9
INIS
- Country of Publication
- Netherlands
- Country of Input or Organization
- International Atomic Energy Agency (IAEA)
- INIS RN
- 54029412
- Subject category
- S54: ENVIRONMENTAL SCIENCES; S09: BIOMASS FUELS;
- Descriptors DEI
- ASSIMILATION; BIOCONVERSION; BIOMASS; DESIGN; FLOW RATE; HYDRAULICS; KINETICS; NITRIFICATION; NITROGEN; NUTRIENTS; PERFORMANCE; SLUDGES; WASTE WATER; WATER TREATMENT
- Descriptors DEC
- CHEMICAL REACTIONS; ELEMENTS; ENERGY SOURCES; FLUID MECHANICS; HYDROGEN COMPOUNDS; LIQUID WASTES; MECHANICS; NONMETALS; OXYGEN COMPOUNDS; RENEWABLE ENERGY SOURCES; WASTES; WATER
Optional Information
- Copyright
- Copyright (c) 2020 Elsevier B.V. All rights reserved.