An unconditionally stable numerical approach for solving a nonlinear distributed delay Sobolev model

Fuente: arXiv
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Auteur principal: Ngondiep, Eric
Format: Preprint
Publié: 2025
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author Ngondiep, Eric
author_facet Ngondiep, Eric
contents This paper proposes an unconditionally stable numerical method for solving a nonlinear Sobolev model with distributed delay. The proposed computational approach approximates the time derivative by interpolation technique whereas the spatial derivatives are approximated using the finite element approximation. This combination is simple and easy to implement. Both stability and error estimates of the constructed method are deeply analyzed in a strong norm which is equivalent to the $H^{1}$-norm. The theoretical results indicate that the constructed approach is unconditionally stable, spatial fourth-order accurate, second-order convergent in time and more efficient than a large class of numerical methods discussed in the literature for solving a general class of delay Sobolev problems. Some numerical examples are carried out to confirm the theory and demonstrate the applicability and validity of the developed technique.
format Preprint
id arxiv_https___arxiv_org_abs_2511_00003
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle An unconditionally stable numerical approach for solving a nonlinear distributed delay Sobolev model
Ngondiep, Eric
Numerical Analysis
65M12, 65M06
This paper proposes an unconditionally stable numerical method for solving a nonlinear Sobolev model with distributed delay. The proposed computational approach approximates the time derivative by interpolation technique whereas the spatial derivatives are approximated using the finite element approximation. This combination is simple and easy to implement. Both stability and error estimates of the constructed method are deeply analyzed in a strong norm which is equivalent to the $H^{1}$-norm. The theoretical results indicate that the constructed approach is unconditionally stable, spatial fourth-order accurate, second-order convergent in time and more efficient than a large class of numerical methods discussed in the literature for solving a general class of delay Sobolev problems. Some numerical examples are carried out to confirm the theory and demonstrate the applicability and validity of the developed technique.
title An unconditionally stable numerical approach for solving a nonlinear distributed delay Sobolev model
topic Numerical Analysis
65M12, 65M06
url https://arxiv.org/abs/2511.00003