Dynamics of a diffusive vaccination model with therapeutic impact and non-linear incidence in epidemiology

J Biol Dyn. 2021 May;15(sup1):S105-S133. doi: 10.1080/17513758.2020.1849831. Epub 2020 Nov 18.

Abstract

In this paper, we study a more general diffusive spatially dependent vaccination model for infectious disease. In our diffusive vaccination model, we consider both therapeutic impact and nonlinear incidence rate. Also, in this model, the number of compartments of susceptible, vaccinated and infectious individuals are considered to be functions of both time and location, where the set of locations (equivalently, spatial habitats) is a subset of Rn with a smooth boundary. Both local and global stability of the model are studied. Our study shows that if the threshold level R01, the disease-free equilibrium E0 is globally asymptotically stable. On the other hand, if R0>1 then there exists a unique stable disease equilibrium E. The existence of solutions of the model and uniform persistence results are studied. Finally, using finite difference scheme, we present a number of numerical examples to verify our analytical results. Our results indicate that the global dynamics of the model are completely determined by the threshold value R0.

Keywords: 76E30; 92D25; 92D30; 93C20; 93D05; 93D20; Spatial vaccination model; global stability; local stability; nonlinear incidence; threshold value; uniform persistence.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Basic Reproduction Number
  • Communicable Diseases* / epidemiology
  • Diffusion
  • Humans
  • Incidence
  • Models, Biological*
  • Vaccination