| Literature DB >> 31884878 |
Wai Yan Cheah1, Pau Loke Show2, Yee Jiun Yap3, Hayyiratul Fatimah Mohd Zaid4, Man Kee Lam5,6, Jun Wei Lim6,7, Yeek-Chia Ho8,9, Yang Tao10.
Abstract
Chlorella sorokiniana CY-1 was cultivated using palm oil mill effluent (POME) in a novel-designed photobioreactor (NPBR) and glass-made vessel photobioreactor (PBR). The comparison was made on biomass and lipid productions, as well as its pollutants removal efficiencies. NPBR is transparent and is developed in thin flat panels with a high surface area per volume ratio. It is equipped with microbubbling and baffles retention, ensuring effective light and CO2 utilization. The triangular shape of this reactor at the bottom serves to ease microalgae cell harvesting by sedimentation. Both biomass and lipid yields attained in NPBR were 2.3-2.9 folds higher than cultivated in PBR. The pollutants removal efficiencies achieved were 93.7% of chemical oxygen demand, 98.6% of total nitrogen and 96.0% of total phosphorus. Mathematical model revealed that effective light received and initial mass contributes toward successful microalgae cultivation. Overall, the results revealed the potential of NPBR integration in Chlorella sorokiniana CY-1 cultivation, with an aim to achieve greater feasibility in microalgal-based biofuel real application and for environmental sustainability.Entities:
Keywords: Biofuel; Microalgae; Palm oil mill effluent; Photobioreactor; Wastewater
Mesh:
Substances:
Year: 2020 PMID: 31884878 PMCID: PMC6961591 DOI: 10.1080/21655979.2019.1704536
Source DB: PubMed Journal: Bioengineered ISSN: 2165-5979 Impact factor: 3.269
Figure 1.Schematic representation (a) and real picture (b) of novel-designed photobioreactor.
Figure 2.Biomass concentration (a) and biomass productivity (b) of Chlorella sorokiniana CY-1 cultivated in scale-up PBR and novel PBR.
Figure 3.Lipid content (a) of Chlorella sorokiniana CY-1 cultivated in glass-made vessel and novel PBR and FAME compositions (b) of Chlorella sorokiniana CY-1 cultivated in novel PBR at day 20.
Figure 4.Pollutants removal efficiencies of Chlorella sorokiniana CY-1 cultivated in glass-made vessel PBR and novel PBR.
The biomass and lipid yields of microalgae species grown in POME.
| No. | Microalgae strain | Culture medium | Cultivation method | Maximal biomass concentration (g L−1) | Growth rate (d−1)a | Lipid content (%) | Nutrients reduction | References |
|---|---|---|---|---|---|---|---|---|
| 1 | 30% (v/v) POME + 200 mg L−1 glucose + 200 mg L−1 glycerol + 200 mg L−1 urea | Novel-designed PBR | 5.74 | 408.90 | 14.43 | Removal of 93.7% COD, 98.6% TN, 96.0% TP | This study | |
| 2 | 30% (v/v) POME + 200 mg L−1 glucose + 200 mg L−1 glycerol + 200 mg L−1 urea | Glass-made vessel PBR | 2.50 | 228.90 | 4.83 | Removal of 55.1% COD, 96.6% TN, 98.0% TP | This study | |
| 3 | 30% (v/v) POME + 200 mg L−1 glucose + 200 mg L−1 glycerol + 200 mg L−1 urea | Lab scale flask | 2.04 | 185.71 | 16.04 | Removal of 53.7% COD, 55.6% TN, 77.3% TP | [ | |
| 4 | POME + 60 mg L−1 urea | Lab scale flask | 1.07 | 76.43 | - | Removal of 45.08% COD | [ | |
| 5 | 50% (v/v) POME + 1 g L−1 urea | Lab scale flask | - | 0.06 a | - | - | [ | |
| 6 | 10% (v/v) POME | Programmable controlled reactor tank | 39.41 | - | - | - | [ | |
| 7 | 40% (v/v) POME + D-glucose | Lab scale flask | 1.43 | 1.406 a | 9.7 | - | [ | |
| 8 | 40% (v/v) POME + glycerol | Lab scale flask | 0.98 | 0.328 a | 7.3 | - | [ |