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February 26, 2026Bulletin of Mathematical Biology0 citationsOpen Access

A Random Differential Equation Approach for Modeling the Growth of Microalgae in Photobioreactors

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JCJuan-Carlos CortésJCJ. Camacho CortésANA. Navarro-Quiles

Key Points

  • The study aims to reformulate the growth model of microalgae in photobioreactors using random differential equations to account for variable light-dark transitions.
  • Reformulated a deterministic photosynthetic factory model as a random differential equation.
  • Derived closed-form expressions for mean and variance of the modified model.
  • Performed Monte Carlo simulations to analyze the effects of varying light-dark cycles on productivity.
  • Demonstrated that an average irradiance per cycle matching the optimum enhances productivity.
  • Showed rapid flashing of light can maintain high productivity under variable conditions, while irregular cycles reduce it.
  • Indicated that adjustments to the proportion of time spent in darkness have minimal impact on overall productivity.

Abstract

Abstract The three-state photosynthetic factory model is frequently employed to analyze microalgal growth in photobioreactors, wherein cells continuously transition between light and dark areas. Experimental data indicate that hydrodynamic mixing results in non-constant, randomly varying intervals between successive light-dark transitions. To address this characteristic, we reformulate the deterministic model as a random differential equation, regarding the switching period as a positive random variable. We derive closed-form expressions for the long-term mean and variance of the model, showing that the average random model differs from the quasi-steady periodic deterministic trajectory. Monte Carlo simulations are utilized to illustrate how the distribution of switching periods and the time fraction spent in darkness influence productivity. The simulations show that, if the average irradiance per cycle matches the optimum under continuous illumination, rapid flashing maintains high productivity even under highly variable periods, while slower and irregular cycles can lead to significant losses, with adjustments to dark fractions having a relatively minor effect. To the best of our knowledge, this work provides the first systematic application of a random differential equation framework to a PSF-type model for microalgal growth under intermittent light regimes, and offers quantitative guidance for the design and operation of photobioreactors under realistic, highly variable light conditions.

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Cite This Study

Cortés et al. (2026) studied this question.

synapsesocial.com/papers/699fe40c95ddcd3a253e838chttps://doi.org/10.1007/s11538-026-01609-3
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