4.5 Article

A seasonal simulation approach for culture depth influence on the temperature for different characterized microalgae strains

期刊

BIOTECHNOLOGY JOURNAL
卷 17, 期 9, 页码 -

出版社

WILEY-V C H VERLAG GMBH
DOI: 10.1002/biot.202100489

关键词

biomass productivity; culture depth; microalgae; temperature

资金

  1. Spanish Ministry of Science and Innovation [PID2020-112709RB-C21]
  2. EU-ERDF funds [PID2020-112709RB-C21]
  3. European Union's Horizon 2020 Research and Innovation Program [727874 SABANA]

向作者/读者索取更多资源

Irradiance and temperature are crucial variables affecting microalgae growth, especially in outdoor raceway reactors. Developing a decision-making tool to determine the influence of these variables on culture and optimize facility design and operation is of great importance.
Irradiance and temperature are among the most important variables that affect microalgae growth, being both difficult to control in outdoor raceway reactors utilized for large-scale production of microalgae biomass. They are mainly a function of the location of the reactors, thus, producing certain strains of microalgae in inappropriate places conduces to the failure of the systems. To be able to determine important parameters of any microalgae strains on the performance of the culture, such as the influence of irradiance and temperature, is a powerful tool in decision-making processes. In addition, whatever the strain and location, operation strategies must be defined for each specific case, such as the imposed dilution rate and culture depth, both influencing the light availability and temperature of the culture as major variables determining the biomass productivity. In this paper, a simulation-based methodology is proposed to establish the influence of season and culture depth on the 1-year age irradiance and temperature of the culture, and thus on the biomass productivity of different microalgae strains. Up to five of the most frequently produced strains, such as Spirulina platensis, Chlorella vulgaris, Nannochloropsis gaditana, Isochrysis galbana, and Scenedesmus almeriensis have been considered. The challenge is to develop an easy-to-manage decision-making tool for the optimal design and operation of large-scale microalgae facilities. Especially, dates for microalgae production and culture depth at which the reactors must be operated will be provided, being valid for any microalgae strain. The proposed methodology will largely contribute to the risk of investment in this field, then to enlarge the relevance of the microalgae production industry.

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