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On Some Novel Exact Solutions To the Time Fractional (2+1) Dimensional Konopelchenko-Dubrovsky System Arising in Physical Science

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Date

2020

Journal Title

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Volume Title

Publisher

de Gruyter Poland Sp Z O O

Open Access Color

GOLD

Green Open Access

No

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No
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Top 10%

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Abstract

The purpose of this article is to construct some novel exact travelling and solitary wave solutions of the time fractional (2 + 1) dimensional Konopelchenko-Dubrovsky equation, and two different forms of integration schemes have been utilized in this context. As a result, a variety of bright and dark solitons, kink- and antikink-type solitons, hyperbolic functions, trigonometric functions, elliptic functions, periodic solitary wave solutions and travelling wave solutions are obtained, and the sufficient conditions for the existence of solution are also discussed. Moreover, some of the obtained solutions are illustrated as two- and three-dimensional graphical images by using computational software Mathematica. These types of solutions have a wide range of applications in applied sciences and mathematical physics. The proposed methods are very useful for solving nonlinear partial differential equations arising in physical science and engineering.

Description

Seadawy, Aly R./0000-0002-7412-4773; Tariq, Kalim U./0000-0003-0300-6515

Keywords

Fractional Konopelchenko-Dubrovsky Equation, Jumarie'S Modified Riemann-Liouville, Unified Riccati Equation Expansion, Modified Extended Auxiliary Equation Mapping Method, fractional konopelchenko–dubrovsky equation, jumarie’s modified riemann–liouville, Physics, QC1-999, unified riccati equation expansion, modified extended auxiliary equation mapping method

Fields of Science

0103 physical sciences, 01 natural sciences

Citation

Akhtar, Junaid...et al. (2020). "On some novel exact solutions to the time fractional (2+1) dimensional Konopelchenko-Dubrovsky system arising in physical science", Open Physics, Vol. 18, No. 1, pp. 806-819.

WoS Q

Q2

Scopus Q

Q2
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OpenCitations Citation Count
4

Source

Open Physics

Volume

18

Issue

1

Start Page

806

End Page

819
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Scopus : 5

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Mendeley Readers : 2

SCOPUS™ Citations

5

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4

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3

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0.13613048

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