The Solution of the Inverse Problem of Identifying the Thermal Conductivity Tensor in Anisotropic Materials

On the basis of A. N. Tikhonov's regularization theory, a technique has been developed for solving inverse heat conduction problems of identifying the thermal conductivity tensor in a two-dimensional domain. Such problems are replaced by problems of identifying the principal heat conductivity c...

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Main Authors: Yurii M. Matsevytyi, Valerii V. Hanchyn
Format: Article
Language:English
Published: NAS of Ukraine, A. Pidhornyi Institute of Mechanical Engineering Problems 2021-09-01
Series:Journal of Mechanical Engineering
Subjects:
Online Access:https://journal-me.com/wp-content/uploads/2021/09/2021_3_1_eng.pdf
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spelling doaj-6ce20830cd46472a89572f1bf4290b002021-09-30T13:15:55ZengNAS of Ukraine, A. Pidhornyi Institute of Mechanical Engineering ProblemsJournal of Mechanical Engineering2709-29842709-29922021-09-0124361310.15407/pmach2021.03.006The Solution of the Inverse Problem of Identifying the Thermal Conductivity Tensor in Anisotropic MaterialsYurii M. Matsevytyi0https://orcid.org/0000-0002-6127-0341Valerii V. Hanchyn1https://orcid.org/0000-0001-9242-6460A. Pidhornyi Institute of Mechanical Engineering Problems of NASUA. Pidhornyi Institute of Mechanical Engineering Problems of NASUOn the basis of A. N. Tikhonov's regularization theory, a technique has been developed for solving inverse heat conduction problems of identifying the thermal conductivity tensor in a two-dimensional domain. Such problems are replaced by problems of identifying the principal heat conductivity coefficients and the orientation angle of the principal axes, with the principal coefficients being approximated by Schoenberg’s cubic splines. As a result, the problem is reduced to determining the unknown coefficients in these approximations and the orientation angle of the principal axes. With known boundary and initial conditions, the temperature in the domain will depend only on these coefficients and the orientation angle. If one expresses it by the Taylor formula for two terms of series and substitutes it into the Tikhonov functional, then the determination of the increments of the coefficients and the increment of the orientation angle can be reduced to solving a system of linear equations with respect to these increments. By choosing a certain regularization parameter as well as some functions for the principal thermal conductivity coefficients and the orientation angle as an initial approximation, one can implement an iterative process for determining these coefficients. After obtaining the vectors of the coefficients and the angle of orientation as a result of the converging iterative process, it is possible to determine the root-mean-square discrepancy between the temperature obtained and the temperature measured as a result of the experiment. It remains to choose the regularization parameter in such a way that this discrepancy is within the root-mean-square discrepancy of the measurement error. When checking the efficiency of using the proposed method, a number of two-dimensional test problems for bodies with known thermal conductivity tensors were solved. The influence of random measurement errors on the error in the identification of the thermal conductivity tensor was analyzed.https://journal-me.com/wp-content/uploads/2021/09/2021_3_1_eng.pdfinternal inverse heat conduction problemthermal conductivity tensora. n. tikhonov's regularization methodstabilizing functionalregularization parameteridentificationapproximationschoenberg's cubic splines
collection DOAJ
language English
format Article
sources DOAJ
author Yurii M. Matsevytyi
Valerii V. Hanchyn
spellingShingle Yurii M. Matsevytyi
Valerii V. Hanchyn
The Solution of the Inverse Problem of Identifying the Thermal Conductivity Tensor in Anisotropic Materials
Journal of Mechanical Engineering
internal inverse heat conduction problem
thermal conductivity tensor
a. n. tikhonov's regularization method
stabilizing functional
regularization parameter
identification
approximation
schoenberg's cubic splines
author_facet Yurii M. Matsevytyi
Valerii V. Hanchyn
author_sort Yurii M. Matsevytyi
title The Solution of the Inverse Problem of Identifying the Thermal Conductivity Tensor in Anisotropic Materials
title_short The Solution of the Inverse Problem of Identifying the Thermal Conductivity Tensor in Anisotropic Materials
title_full The Solution of the Inverse Problem of Identifying the Thermal Conductivity Tensor in Anisotropic Materials
title_fullStr The Solution of the Inverse Problem of Identifying the Thermal Conductivity Tensor in Anisotropic Materials
title_full_unstemmed The Solution of the Inverse Problem of Identifying the Thermal Conductivity Tensor in Anisotropic Materials
title_sort solution of the inverse problem of identifying the thermal conductivity tensor in anisotropic materials
publisher NAS of Ukraine, A. Pidhornyi Institute of Mechanical Engineering Problems
series Journal of Mechanical Engineering
issn 2709-2984
2709-2992
publishDate 2021-09-01
description On the basis of A. N. Tikhonov's regularization theory, a technique has been developed for solving inverse heat conduction problems of identifying the thermal conductivity tensor in a two-dimensional domain. Such problems are replaced by problems of identifying the principal heat conductivity coefficients and the orientation angle of the principal axes, with the principal coefficients being approximated by Schoenberg’s cubic splines. As a result, the problem is reduced to determining the unknown coefficients in these approximations and the orientation angle of the principal axes. With known boundary and initial conditions, the temperature in the domain will depend only on these coefficients and the orientation angle. If one expresses it by the Taylor formula for two terms of series and substitutes it into the Tikhonov functional, then the determination of the increments of the coefficients and the increment of the orientation angle can be reduced to solving a system of linear equations with respect to these increments. By choosing a certain regularization parameter as well as some functions for the principal thermal conductivity coefficients and the orientation angle as an initial approximation, one can implement an iterative process for determining these coefficients. After obtaining the vectors of the coefficients and the angle of orientation as a result of the converging iterative process, it is possible to determine the root-mean-square discrepancy between the temperature obtained and the temperature measured as a result of the experiment. It remains to choose the regularization parameter in such a way that this discrepancy is within the root-mean-square discrepancy of the measurement error. When checking the efficiency of using the proposed method, a number of two-dimensional test problems for bodies with known thermal conductivity tensors were solved. The influence of random measurement errors on the error in the identification of the thermal conductivity tensor was analyzed.
topic internal inverse heat conduction problem
thermal conductivity tensor
a. n. tikhonov's regularization method
stabilizing functional
regularization parameter
identification
approximation
schoenberg's cubic splines
url https://journal-me.com/wp-content/uploads/2021/09/2021_3_1_eng.pdf
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