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Nonlinear Self-Adjointness, Conserved Vectors, and Traveling Wave Structures for the Kinetics of Phase Separation Dependent on Ternary Alloys in Iron (fe-Cr (Y = Mo, Cu))

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Date

2021

Journal Title

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Volume Title

Publisher

Elsevier

Open Access Color

GOLD

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No

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Abstract

The present exploration is concerned with fundamental elements corresponding to the phase decomposition in (Fe-Cr-Mo) and (Fe-Cr-Cu) ternary composites. For the ternary composites of iron, we examine the dynamical behavior of the phase separation. The dynamic of this separation is depicted by a model known as the CahnHilliard equation. The nonlinear self-adjointness for the model under consideration is taken into account. The conserved quantities are calculated with the help of the direct method. For each symmetry generator, we have reduced the considered equation into non-linear ordinary differential equations (ODEs). Also, we have computed the optimal system of the equation under study to find the similarity reduction. Also, the traveling wave structures of the Cahn-Hilliard equation are obtained with the modified simple equation (MSE) technique. Moreover, solitary wave structures is exhibited graphically in the form of 3D, 2D and contour plots.

Description

Abbas, Naseem/0000-0001-5847-2463; Jhangeer, Adil/0000-0001-6747-425X

Keywords

Convective-Diffusive Cahn-Hilliard Equation, Nonlinear Self-Adjointness, Direct Method, Similarity Reduction, Solitary Wave Solutions, Physics, QC1-999, Nonlinear self-adjointness, Direct method, Convective-diffusive Cahn-Hilliard equation, Similarity reduction, Solitary wave solutions

Fields of Science

0101 mathematics, 01 natural sciences

Citation

Riaz, Muhammad Bilal...et al. (2021). "Nonlinear self-adjointness, conserved vectors, and traveling wave structures for the kinetics of phase separation dependent on ternary alloys in iron (Fe-Cr-Y (Y = Mo, Cu))", RESULTS IN PHYSICS, Vol. 25.

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Q1

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Q1
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OpenCitations Citation Count
23

Source

Results in Physics

Volume

25

Issue

Start Page

104151

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CrossRef : 24

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Mendeley Readers : 2

Web of Science™ Citations

25

checked on Feb 25, 2026

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4

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3.12871015

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