Author:
Ali Amjad, ,Suwan Iyad,Abdeljawad Thabet,Abdullah , , ,
Abstract
<abstract><p>In the present work, the authors developed the scheme for time Fractional Partial Diffusion Differential Equation (FPDDE). The considered class of FPDDE describes the flow of fluid from the higher density region to the region of lower density, macroscopically it is associated with the gradient of concentration. FPDDE is used in different branches of science for the modeling and better description of those processes that involve flow of substances. The authors introduced the novel concept of fractional derivatives in term of both time and space independent variables in the proposed FPDDE. We provided the approximate solution for the underlying generalized non-linear time PFDDE in the sense of Caputo differential operator via Laplace transform combined with Adomian decomposition method known as Laplace Adomian Decomposition Method (LADM). Furthermore, we established the general scheme for the considered model in the form of infinite series by aforementioned techniques. The consequent results obtained by the proposed technique ensure that LADM is an effective and accurate technique to handle nonlinear partial differential equations as compared to the other available numerical techniques. At the end of this paper, the obtained numerical solution is visualized graphically by Matlab to describe the dynamics of desired solution.</p></abstract>
Publisher
American Institute of Mathematical Sciences (AIMS)
Reference34 articles.
1. L. Perko, Differential equations and dynamical systems, New York: Springer, 2008.
2. T. Toni, M. P. H. Stumpf, Simulation-based model selection for dynamical systems in systems and population biology, Bioinformatics, 26 (2010), 104–110. doi: 10.1093/bioinformatics/btp619.
3. M. W. Hirsch, S. Smale, R. L. Devaney, Differential equations, dynamical systems and an introduction to chaos, Elsevier, USA, 2012. doi: 10.1016/B978-0-12-382010-5.00015-4.
4. K. M. Owolabi, Modelling and simulation of a dynamical system with the Atangana-Baleanu fractional derivative, Eur. Phys. J. Plus, 133 (2018). doi: 10.1140/epjp/i2018-11863-9.
5. A. Katok, B. Hasselblatt, Introduction to the modern theory of dynamical systems, Cambridge University Press, UK, 1995. doi: 10.1017/CBO9780511809187.
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