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May 25, 2026Journal of Applied Phycology0 citationsOpen Access

Sequential growth of different microalgae species in incrementally increasing saline water for efficient utilization of nutrients and recycling of the growth media

PDProbir DasQatar UniversitySKShoyeb KhanQatar UniversityMAMohammad AbdulQuadirQatar University

Key Points

  • This research aims to assess the effectiveness of sequential growth of microalgae in progressively saline conditions for nutrient recovery and biomass production.
  • Four microalgae species were evaluated for growth under different salinity levels, focusing on their salinity tolerances.
  • The growth was conducted in outdoor 1000-L open-raceway ponds with brackish water compensating for evaporation.
  • An energy model was used to calculate potential energy savings associated with the method.
  • The multi-strain growth maintained continuous biomass production with nitrogen recovery while salinity increased from 4 to 72 ppt.
  • The biomass produced was rich in protein and lipids, suitable for applications in aquafeed and biofuel.
  • Energy savings reached up to 4.74 GJ per tonne of biomass through reduced freshwater demand and medium recycling.

Abstract

To eliminate freshwater dependency in brackish- and marine-based algal biomass production, this study evaluates a sequential ‘crop rotation’ of microalgae species designed to handle the evaporative salinity buildup inherent to open cultivation systems. Four species, Limnospira sp., Coelastrella sp., Chroococcidiopsis sp., and Chlorocystis sp., were selected based on their distinct salinity tolerances and proven robustness at an outdoor pilot-scale open cultivation. Following indoor salinity-gradient growth experiments for these four species and their subsequent sequential growth experiment, the process was implemented in 1000-L outdoor open-raceway ponds, with daily evaporative losses compensated entirely with brackish or saline water. The results showed that the multi-strain sequence cultivation maintains continuous production and near-complete nitrogen recovery while culture salinity increases eighteenfold from 4 to 72 ppt. The biomass obtained from outdoor sequential cultivation contained protein and lipid that could potentially be utilized in a variety of applications, including sustainable aquafeed and biofuel production. An energy model shows that by decreasing freshwater demand and recycling nitrogen-rich medium, this technique can save up to 4.74 GJ of energy per tonne of biomass, providing a scalable, low-eutrophication path for saline agriculture.

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Cite This Study

Das et al. (2026) studied this question.

synapsesocial.com/papers/6a13e8520e02ee3982d3314fhttps://doi.org/10.1007/s10811-026-03902-z
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