Algal biorefinery: an integrated process for industrial effluent treatment and improved lipid production in bioenergy application

被引:1
作者
Saxena N. [1 ]
Vasistha S. [1 ,2 ]
Rai M.P. [1 ]
机构
[1] Amity Institute of Biotechnology, Amity University Uttar Pradesh, Sector 125, Uttar Pradesh, Noida
[2] School of Biosciences, IMS-Ghaziabad, University Courses Campus, Adhyatmik Nagar, Uttar Pradesh, Ghaziabad
来源
Vegetos | 2023年 / 36卷 / 1期
关键词
Biodiesel; Industrial effluent; Lipid; Microalgae; Nutrient removal; RSM;
D O I
10.1007/s42535-023-00574-9
中图分类号
学科分类号
摘要
Water is the pivotal resource on earth but with the continuous rise in anthropogenic activities has led to biological and chemical waste in water streams thereby contaminating the environment. Microalgae grown in the wide spectrum of wastewater could eliminate contaminants from industries and urban areas, but the research is in primary stage. The current study reflected the capability of isolated microalgae-associated industrial effluent treatment and lipid improvement for the application in biodiesel simultaneously. The microalga Coelastrella sp. KJ04 was cultivated on the industrial effluent released during the Senegalia catechu (Kattha) manufacturing. Response surface methodology-central composite design (RSM-CCD), a linear model tool was utilized in this study to optimize the concentration of the effluent (0–1000) mL L−1 with varying pH. Maximum biomass and lipid production of 0.3440 g L−1 and 4481 RFU respectively were observed at 853.40 mL L−1 effluent concentration and 7.70 pH. In contrast, the biomass and lipid production of 0.3240 g L−1 and 1477 RFU respectively were observed while using the BG-11 media as a control. A significant decrease in chemical oxygen demand (COD), total nitrogen (TN), total carbon (TC), total phosphorus (TP), sulphur (S), magnesium (Mg), and potassium (K) was observed and a nutrient removal efficiency of 55.83, 32.62, 37.50, 28.95, 31.66, 9.32, and 16.47% respectively was calculated in the industrial effluent. Hence, it is reported for the very first time that Coelastrella sp. KJ04 has an exorbitant competence for the consumption of inorganic and organic nutrients from kattha effluent, as an efficient treatment process. Additionally, the kattha effluent can serve as an economical replacement for expensive media in microalgae cultivation. Therefore, this study proposes a comprehensive strategy to cultivate the microalgae for wastewater treatment along with lipid production, which can be processed for biodiesel application. Graphical abstract: [Figure not available: see fulltext.] © 2023, The Author(s) under exclusive licence to Society for Plant Research.
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页码:259 / 267
页数:8
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共 35 条
[1]  
Ambat I., Bec S., Peltomaa E., Srivastava V., Ojala A., Sillanpaa M., A synergic approach for nutrient recovery and biodiesel production by the cultivation of microalga species in the fertilizer plant wastewater, Sci Rep, 9, 1, pp. 1-9, (2019)
[2]  
An M., Gao L., Zhao W., Chen W., Li M., Effects of nitrogen forms and supply mode on lipid production of microalga Scenedesmus obliquus, Energies, 13, (2020)
[3]  
Bhatia S.K., Mehariya S., Bhatia R.K., Kumar M., Pugazhendhi A., Awasthi M.K., Atabani A.E., Kumar G., Kim W., Seo S.O., Yang Y.H., Wastewater based microalgal biorefinery for bioenergy production: progress and challenges, Sci Total Environ, 751, (2021)
[4]  
Doppler P., Kriechbaum R., Kafer M., Kopp J., Remias D., Spadiut O., Coelastrella terrestris for adonixanthin production: physiological characterization and evaluation of secondary carotenoid productivity, Mar Drugs, 20, 3, (2022)
[5]  
Emparan Q., Jye Y.S., Danquah M.K., Harun R., Cultivation of Nannochloropsis sp. microalgae in palm oil mill effluent (POME) media for phycoremediation and biomass production: effect of microalgae cells with and without beads, J Water Process Eng, 33, (2020)
[6]  
Fan H., Wang K., Wang C., Yu F., He X., Ma J., Li X., A comparative study on growth characters and nutrients removal from wastewater by two microalgae under optimized light regimes, Environ Technol Innov, 19, (2020)
[7]  
Farooq W., Lee Y.C., Ryu B.G., Kim B.H., Kim H.S., Choi Y.E., Yang J.W., Two-stage cultivation of two Chlorella sp. strains by simultaneous treatment of brewery wastewater and maximizing lipid productivity, Bioresour Technol, 132, pp. 230-238, (2013)
[8]  
Fawzy M.A., Alharthi S., Use of Response Surface Methodology in optimization of biomass, lipid productivity and fatty acid profiles of marine microalga Dunaliella parva for biodiesel production, Environ Technol Innov, 22, (2021)
[9]  
Gao F., TelesI F.-L., Wijffels R.H., Barbosa M.J., Production and high throughput quantification of fucoxanthin and lipids in Tisochrysislutea using single-cell fluorescence, Bioresour Technol, 318, (2020)
[10]  
Gupta K., Bardhan P., Rather M.A., Saikia D., Loying S., Mandal M., Kataki R., Microbes in resource and nutrient recovery via wastewater treatment, pp. 643-665, (2022)