Existence, Persistence and Stability of Periodic Solutions of a Seasonally Forced West Nile Virus Modelwith Lateral Hosts and Vertical Vector Transmission

Autores/as

  • Kabiru Ahmed Manju Department of General Studies Education, Federal College of Education, Yola, Adamawa State, Nigeria Autor/a
  • Abdulfatai A. Momoh Department of Mathematics, Modibbo Adama University, Yola, Adamawa State, Nigeria. Autor/a
  • Salaudeen Yusuf Department of Epidemiology and Biostatistics, Federal University of Health Sciences, Azare, Bauchi State Autor/a

DOI:

https://doi.org/10.62054/

Resumen

West Nile virus persists in tropical settings where temperature drives vector development, birds transmit laterally through predation, scavenging and a contaminated environment, and mosquitoes transmit vertically to their progeny. We analyse a twenty-two compartment, seasonally forced model of such transmission in which corvid and non-corvid reservoirs, the full mosquito life cycle, three human infection outcomes and an environmental viral reservoir are coupled through temperature-dependent vital and transmission rates of period one year. Existence of a positive periodic solution is established by Mawhin’s continuation theorem after uniform a priori bounds are derived for every compartment; the non-negative orthant is positively invariant, the periodic solution strictly positive, and all trajectories ultimately bounded within a compact absorbing set on which the periodic solution is unique. Setting the avian introduction terms to zero yields a unique disease-free periodic solution, and the periodic reproduction ratio is obtained as the spectral radius of the next-infection operator. Reduction of the thirteen-dimensional next-generation kernel to a five-dimensional block-triangular matrix separates an autonomous human block from a temperature-driven vector-reservoir block. Numerical evaluation gives a threshold of 1.494471, which seasonal forcing depresses well below the constant-temperature value, while a positive bird seeding index sustains transmission below threshold. The endemic periodic orbit is globally asymptotically stable.

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Publicado

2026-08-29

Cómo citar

Existence, Persistence and Stability of Periodic Solutions of a Seasonally Forced West Nile Virus Modelwith Lateral Hosts and Vertical Vector Transmission. (2026). International Journal of Development Mathematics (IJDM), 2(4), 283-301. https://doi.org/10.62054/