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An attractive analytical technique for coupled system of fractional partial differential equations in shallow water waves with conformable derivative

  • Mohammed Al-Smadi
  • , Omar Abu Arqub
  • , Samir Hadid
  • Al-Balqa Applied University
  • Ajman University

Research output: Contribution to journalArticlepeer-review

105 Scopus citations

Abstract

Mathematical simulation of nonlinear physical and abstract systems is a very vital process for predicting the solution behavior of fractional partial differential equations (FPDEs) corresponding to different applications in science and engineering. In this paper, an attractive reliable analytical technique, the conformable residual power series, is implemented for constructing approximate series solutions for a class of nonlinear coupled FPDEs arising in fluid mechanics and fluid flow, which are often designed to demonstrate the behavior of weakly nonlinear and long waves and describe the interaction of shallow water waves. In the proposed technique the n-truncated representation is substituted into the original system and it is assumed the (n - 1) conformable derivative of the residuum is zero. This allows us to estimate coefficients of truncation and successively add the subordinate terms in the multiple fractional power series with a rapidly convergent form. The influence, capacity, and feasibility of the presented approach are verified by testing some real-world applications. Finally, highlights and some closing comments are attached.

Original languageEnglish
Article number085001
JournalCommunications in Theoretical Physics
Volume72
Issue number8
DOIs
StatePublished - 1 Aug 2020
Externally publishedYes

Keywords

  • conformable fractional derivative
  • fractional partial differential equations
  • nonlinear coupled system
  • residual power series method

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