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April 19, 2026Fixed Point Theory and Algorithms for Sciences and Engineering0 citationsOpen Access

A study on the dynamics of a nutrient-plankton-fish interaction model with Caputo fractional operator

KDKaushik DehingiaKhazar UniversityMFMuhammad FarmanUniversity of LahoreSBSuresh Babu BaluguriInternational Institute of Information Technology, Hyderabad

Key Points

  • The aim is to understand the dynamics of algal blooms influenced by fish predation, particularly the impact of memory effects.
  • Developed a nutrient-phytoplankton-zooplankton-fish model using Caputo fractional derivatives.
  • Reduced the fractional derivative order to improve system stability.
  • Identified zooplankton death rate and fish ingestion rate as bifurcation parameters.
  • Applied Newton polynomial interpolation for simulations.
  • Reducing the fractional derivative order from 1.0 to 0.91 enhanced stability by reducing chaotic behavior.
  • Lower zooplankton death rates led to decreased stability near co-axial equilibrium.
  • Higher fish ingestion rates destabilized system dynamics.
  • Increased nutrient consumption by phytoplankton also diminished stability.

Abstract

Abstract The current study aims to fill a knowledge gap in the dynamics and regulation of algal blooms through fish predation, while accounting for the memory effect. A nutrient-phytoplankton-zooplankton-fish model using fractional derivatives in the Caputo sense is developed. The main conclusions are as follows. Reducing the fractional derivative order from 1. 0 to 0. 91 improves system stability by suppressing chaotic dynamics. Furthermore, the zooplankton death rate d₁ d 1 and fish population ingestion rate β were determined as bifurcation parameters. The linear feedback controller is effective at suppressing chaos. Simulations were performed using the Newton polynomial interpolation method. We investigated how the fractional derivative order affects system stability using arbitrarily chosen fractional parameter values. It was discovered that stability deteriorates near the co-axial equilibrium for lower zooplankton death rates. A higher maximal ingestion rate of fish destabilizes the system dynamics. Finally, phytoplankton’s higher nutrient consumption rate reduces stability. Furthermore, higher-order fractional derivatives indicate lower stability, implying that systems with strong memory effects or history dependence are unstable.

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Cite This Study

Dehingia et al. (2026) studied this question.

synapsesocial.com/papers/69e4739a010ef96374d8f6d4https://doi.org/10.1186/s13663-026-00836-6
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