Pilot-scale microalgae cultivation and wastewater treatment using high-rate ponds: a meta-analysis

被引:10
作者
Velásquez-Orta S.B. [1 ]
Yáñez-Noguez I. [2 ]
Ramírez I.M. [2 ]
Ledesma M.T.O. [2 ]
机构
[1] School of Engineering, Merz Court, Newcastle University, Newcastle Upon Tyne
[2] Instituto de Ingeniería, Universidad Nacional Autónoma de México, Av. Universidad 3000, Alcaldía Coyoacán, Ciudad de México
关键词
High-rate algal pond; Meta-analysis; Microalgae; Outdoor cultivation; Pilot scale; Wastewater;
D O I
10.1007/s11356-024-34000-7
中图分类号
学科分类号
摘要
Microalgae cultivation in wastewater has been widely researched under laboratory conditions as per its potential to couple treatment with biomass production. Currently, only a limited number of published articles consider outdoor and long-term microalgae-bacteria cultivations in real wastewater environmental systems. The scope of this work is to describe microalgal cultivation steps towards high-rate algal pond (HRAP) scalability and identify key parameters that play a major role for biomass productivity under outdoor conditions and long-term cultivations. Reviewed pilot-scale HRAP literature is analysed using multivariate analysis to highlight key productivity parameters within environmental and operational factors. Wastewater treatment analysis indicated that HRAP can effectively remove 90% of NH4+, 70% of COD, and 50% of PO43−. Mean reference values of 210 W m−2 for irradiation, 18 °C for temperature, pH of 8.2, and HRT of 7.7 are derived from pilot-scale cultivations. Microalgae biomass productivity at a large scale is governed by solar radiation and NH4+ concentration, which are more important than retention time variations within investigated studies. Hence, selecting the correct type of location and a minimum of 70 mg L−1 of NH4+ in wastewater will have the greatest effect in microalgae productivity. A high nutrient wastewater content increases final biomass concentrations but not necessarily biomass productivity. Pilot-scale growth rates (~ 0.54 day−1) are half those observed in lab experiments, indicating a scaling-up bottleneck. Microalgae cultivation in wastewater enables a circular bioeconomy framework by unlocking microalgal biomass for the delivery of an array of products. Graphical Abstract: (Figure presented.) © The Author(s) 2024.
引用
收藏
页码:46994 / 47021
页数:27
相关论文
共 109 条
[1]  
Abdelfattah A., Ali S.S., Ramadan H., El-Aswar E.I., Eltawab R., Ho S.H., Elsamahy T., Li S., El-Sheekh M.M., Schagerl M., Kornaros M., Sun J., Microalgae-based wastewater treatment: mechanisms, challenges, recent advances, and future prospects, Environ Sci Ecotech, 13, (2023)
[2]  
Arango L., Cuervo F.M., Gonzalez-Sanchez A., Buitron G., Effect of microalgae inoculation on the startup of microalgae–bacteria systems treating municipal, piggery and digestate wastewaters, Water Sci Technol, 73, 3, pp. 687-696, (2016)
[3]  
Arashiro L.T., Ferrera I., Rousseau D.P.L., Van Hulle S.W.H., Garfi M., The effect of primary treatment of wastewater in high-rate algal pond systems: biomass and bioenergy recovery, Bioresource Technol, 280, pp. 27-36, (2019)
[4]  
Arbib Z., Ruiz J., Alvarez-Diaz P., Garrido-Perez C., Barragan J., Perales J.A., Long term outdoor operation of a tubular airlift pilot photobioreactor and a high-rate algal pond as tertiary treatment of urban wastewater, Ecol Eng, 52, pp. 143-153, (2013)
[5]  
Arbib Z., de Godos I., Ruiz J., Perales J.A., Optimization of pilot high-rate algal ponds for simultaneous nutrient removal and lipids production, Sci Total Environ, 589, pp. 66-72, (2017)
[6]  
Baba M., Shiraiwa Y., Biosynthesis of lipids and hydrocarbons in algae, Photosynthesis, pp. 332-356, (2013)
[7]  
Basu S., Et al., Operational strategies for maximizing CO utilization efficiency by the novel microalga Scenedesmus obliquus SA1 cultivated in lab scale photo- bioreactor, Algal Res, 12, pp. 249-257, (2015)
[8]  
Beal C.M., Hebner R.E., Webber M.E., Ruoff R.S., Seibert A.F., King C.W., Comprehensive evaluation of algal biofuel production: experimental and target results, Energies, 5, 6, pp. 1943-1981, (2012)
[9]  
Bhattacharya M., Goswami S., Microalgae - a green multi product biorefinery for future industrial prospects, Biocatal Agri Biotechnol, 25, (2020)
[10]  
Cai T., Park S.Y., Li Y., Nutrient recovery from wastewater streams by microalgae: status and prospects, Renew Sust Energ Rev, 19, pp. 360-369, (2013)