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May 28, 2026Symmetry0 citationsOpen Access

Inverse Problem of Heat Conduction in a Multilayer Cylindrical System

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ASAigul SatybaldinaBRBolatbek RysbaiulyAYAizhan Ydyrys

Key Points

  • The research aims to analyze steady-state heat transfer in a three-layer cylindrical system and determine unknown thermal properties.
  • Formulated a mathematical model of heat conduction in cylindrical coordinates.
  • Utilized Fourier series expansion to solve the direct problem analytically.
  • Employed regularized least-squares to solve the inverse problem based on experimental temperature measurements.
  • Successfully reconstructed thermal conductivities for individual layers and heat transfer coefficient.
  • Demonstrated stability and accuracy of the proposed method in identifying thermophysical parameters.
  • Compared averaged reconstructed parameters to exact values from the direct problem, showing effective convergence.

Abstract

This study investigates steady-state heat transfer in a three-layer cylindrical system with angular non-uniformity of the temperature field. For the considered geometry, a mathematical model of heat conduction is formulated in cylindrical coordinates with piecewise constant thermophysical properties and continuity conditions at the interfaces between layers. The direct problem is solved analytically using a Fourier series expansion of the temperature field with respect to the angular coordinate. Based on experimental temperature measurements obtained for various configurations of soil layers, an inverse problem is formulated and solved to reconstruct the thermal conductivities of the individual layers and the heat transfer coefficient at the external boundary. To stabilize the solution, a regularized least-squares approach is employed. The convergence of the recovered parameters with respect to the harmonic number is analyzed, and the averaged reconstructed values are compared with the exact parameters used in the direct problem. The obtained results demonstrate the stability and accuracy of the proposed method, confirming its applicability to the identification of thermophysical parameters in multilayer soil systems based on experimental data.

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Cite This Study

Satybaldina et al. (2026) studied this question.

synapsesocial.com/papers/6a17de013fad632b0f9da7eehttps://doi.org/10.3390/sym18060908
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