Detecting immersed obstacle in Stokes fluid flow using the coupled complex boundary method

Fuente: arXiv
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Autores principales: Rabago, Julius Fergy Tiongson, Afraites, Lekbir, Notsu, Hirofumi
Formato: Preprint
Publicado: 2024
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author Rabago, Julius Fergy Tiongson
Afraites, Lekbir
Notsu, Hirofumi
author_facet Rabago, Julius Fergy Tiongson
Afraites, Lekbir
Notsu, Hirofumi
contents A non-conventional shape optimization approach is introduced to address the identification of an obstacle immersed in a fluid described by the Stokes equation within a larger bounded domain, relying on boundary measurements on the accessible surface. The approach employs tools from shape optimization, utilizing the coupled complex boundary method to transform the over-specified problem into a complex boundary value problem by incorporating a complex Robin boundary condition. This condition is derived by coupling the Dirichlet and Neumann boundary conditions along the accessible boundary. The identification of the obstacle involves optimizing a cost function constructed based on the imaginary part of the solution across the entire domain. The subsequent calculation of the shape gradient of this cost function, rigorously performed via the rearrangement method, enables the iterative solution of the optimization problem using a Sobolev gradient descent algorithm. The feasibility of the method is illustrated through numerical experiments in both two and three spatial dimensions, demonstrating its effectiveness in reconstructing obstacles with pronounced concavities under high-level noise-contaminated data, all without perimeter or volume functional penalization.
format Preprint
id arxiv_https___arxiv_org_abs_2403_11819
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Detecting immersed obstacle in Stokes fluid flow using the coupled complex boundary method
Rabago, Julius Fergy Tiongson
Afraites, Lekbir
Notsu, Hirofumi
Optimization and Control
49Q10, 49K20, 65K10, 35R30
A non-conventional shape optimization approach is introduced to address the identification of an obstacle immersed in a fluid described by the Stokes equation within a larger bounded domain, relying on boundary measurements on the accessible surface. The approach employs tools from shape optimization, utilizing the coupled complex boundary method to transform the over-specified problem into a complex boundary value problem by incorporating a complex Robin boundary condition. This condition is derived by coupling the Dirichlet and Neumann boundary conditions along the accessible boundary. The identification of the obstacle involves optimizing a cost function constructed based on the imaginary part of the solution across the entire domain. The subsequent calculation of the shape gradient of this cost function, rigorously performed via the rearrangement method, enables the iterative solution of the optimization problem using a Sobolev gradient descent algorithm. The feasibility of the method is illustrated through numerical experiments in both two and three spatial dimensions, demonstrating its effectiveness in reconstructing obstacles with pronounced concavities under high-level noise-contaminated data, all without perimeter or volume functional penalization.
title Detecting immersed obstacle in Stokes fluid flow using the coupled complex boundary method
topic Optimization and Control
49Q10, 49K20, 65K10, 35R30
url https://arxiv.org/abs/2403.11819