Dynamical Models for Infectious Diseases with Varying Population Size and Vaccinations

We formulate and discuss models for the spread of infectious diseases with variable population sizes and vaccinations on the susceptible individuals. First, we assume that the susceptible individuals are vaccinated continuously. We establish the threshold-like results for the existence and global st...

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Main Authors: Peilin Shi, Lingzhen Dong
Format: Article
Language:English
Published: Hindawi Limited 2012-01-01
Series:Journal of Applied Mathematics
Online Access:http://dx.doi.org/10.1155/2012/824192
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spelling doaj-5ad72bc85ff9472590ad7261992bf2bb2020-11-24T22:37:29ZengHindawi LimitedJournal of Applied Mathematics1110-757X1687-00422012-01-01201210.1155/2012/824192824192Dynamical Models for Infectious Diseases with Varying Population Size and VaccinationsPeilin Shi0Lingzhen Dong1Department of Mathematics, Taiyuan University of Technology, Taiyuan, Shanxi 030024, ChinaDepartment of Mathematics, Taiyuan University of Technology, Taiyuan, Shanxi 030024, ChinaWe formulate and discuss models for the spread of infectious diseases with variable population sizes and vaccinations on the susceptible individuals. First, we assume that the susceptible individuals are vaccinated continuously. We establish the threshold-like results for the existence and global stability of the disease-free and the endemic equilibriums for these systems. Especially, we prove the global stability of the endemic equilibriums by converting the systems into integrodifferential equations. Second, we suppose that vaccinations occur once per time period. We obtain the existence and global stability of the disease-free periodic solutions for such systems with impulsive effects. By a useful bifurcation theorem, we acquire the existence of the endemic periodic solutions when the disease-related deaths do not occur. At last, we compare the results with vaccinations and without vaccinations and illustrate our results by numerical simulations.http://dx.doi.org/10.1155/2012/824192
collection DOAJ
language English
format Article
sources DOAJ
author Peilin Shi
Lingzhen Dong
spellingShingle Peilin Shi
Lingzhen Dong
Dynamical Models for Infectious Diseases with Varying Population Size and Vaccinations
Journal of Applied Mathematics
author_facet Peilin Shi
Lingzhen Dong
author_sort Peilin Shi
title Dynamical Models for Infectious Diseases with Varying Population Size and Vaccinations
title_short Dynamical Models for Infectious Diseases with Varying Population Size and Vaccinations
title_full Dynamical Models for Infectious Diseases with Varying Population Size and Vaccinations
title_fullStr Dynamical Models for Infectious Diseases with Varying Population Size and Vaccinations
title_full_unstemmed Dynamical Models for Infectious Diseases with Varying Population Size and Vaccinations
title_sort dynamical models for infectious diseases with varying population size and vaccinations
publisher Hindawi Limited
series Journal of Applied Mathematics
issn 1110-757X
1687-0042
publishDate 2012-01-01
description We formulate and discuss models for the spread of infectious diseases with variable population sizes and vaccinations on the susceptible individuals. First, we assume that the susceptible individuals are vaccinated continuously. We establish the threshold-like results for the existence and global stability of the disease-free and the endemic equilibriums for these systems. Especially, we prove the global stability of the endemic equilibriums by converting the systems into integrodifferential equations. Second, we suppose that vaccinations occur once per time period. We obtain the existence and global stability of the disease-free periodic solutions for such systems with impulsive effects. By a useful bifurcation theorem, we acquire the existence of the endemic periodic solutions when the disease-related deaths do not occur. At last, we compare the results with vaccinations and without vaccinations and illustrate our results by numerical simulations.
url http://dx.doi.org/10.1155/2012/824192
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AT lingzhendong dynamicalmodelsforinfectiousdiseaseswithvaryingpopulationsizeandvaccinations
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