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Oluwole Daniel Makinde

Publications and source records attributed to Oluwole Daniel Makinde.

2 recordsLinked to original sources

Global dynamics and diffusion-driven pattern formation in a predator-prey system with two chemicals

This work analyzes a predator-prey cross-diffusion system coupled with two chemical substances under homogeneous Neumann boundary conditions in a bounded domain Omega subset of R^n (n >= 2) with smooth boundary dOmega. Under appropriate conditions on the model parameters, the global existence of classical solutions is established. Furthermore, by constructing a suitable Lyapunov functional, the asymptotic stability of the spatially homogeneous steady state is proved. The emergence of spatial patterns induced by diffusion-driven instability is also investigated. Owing to the complexity of the resulting four-equation system, the criteria for Turing bifurcation are derived numerically rather than analytically. Numerical simulations are performed to generate Turing bifurcation diagrams, illustrating the dynamical responses of the system to variations in the predation rate. These results provide new insights into the role of predation intensity in the formation of spatial patterns in predator-prey systems mediated by two chemical substances.

math.AP↗

Modelling of Bad Biomass Invasion of a Food Chain Ecosystem with Optimal Control

In this paper we provide a model to describe the dynamics of the species of the ecosystem after it has been raided by a bad competing specie. The competing specie invades the native plants for nutrition, carbon dioxide and space. This affects the population of the native species of the ecosystem. The effect of the bad biomass on the ecosystem is examined by considering it's equilibrium points as well as its stability. An optimal control system is developed by using Pontryagin's maximum principle to construct a Hamiltonian function which minimizes the spread of the bad biomass. Numerical simulations were conducted to analyze the results. It was established that the intrinsic growth rate r of the good biomass was responsible for the sustenance and continuous survival of the ecosystem. If growth rate of the good biomass is increased, the other species showed positive growth. In addition to the growth rate of the good biomass, death rates of both fish and birds also affected the state of the ecosystem. Simulation results also revealed that the invasive bad species biomass introduction affected the growth of the good biomass. This was as a result of the competition for nutrition, carbon dioxide, space between the good and the bad biomases. After implementing the control units, simulation results showed an improvement in the growth of the good biomass, fish and birds populations whereas it showed a decline in the bad biomass growth.

q-bio.PE↗