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February 12, 2026Modern Physics Letters B0 citations

Transient Simulation and Optimization of Planar Heat Source System Based on Finite Element Method

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CCChenshuo CuiXGXiang GaoZCZhiquan Chen

Key Points

  • The aim is to develop a transient simulation model to optimize heat source systems and improve thermal property measurements.
  • Constructed a three-dimensional full-scale simulation model using the Transient Plane Source method.
  • Conducted static simulations to optimize mesh refinement and determine resistance.
  • Performed transient simulations coupling Joule heating with heat transfer to analyze heat distribution.
  • Achieved a temperature rise curve correlation error below 3% when compared to experimental data.
  • The model consistently predicted thermal conductivity for silica and PMMA within 3% error.
  • Automated calculations and visualizations of thermal conductivity were successfully integrated using a Python program.

Abstract

Traditional methods for measuring thermal properties often suffer from low efficiency and susceptibility to environmental interference. To address this, we present a three-dimensional full-scale simulation model based on the Transient Plane Source (TPS) method, employing a multiphysics-coupled finite element approach. The model is constructed in two stages: static simulation for determining the resistance and optimizing mesh refinement, and transient simulation coupling Joule heating with heat transfer. This framework reveals the current concentration toward the inner side of the double-helix probe due to the skin effect, leading to a non-uniform heat source distribution—a phenomenon rarely quantified in prior studies. Using specialty glass as a reference, the simulated and experimental temperature rise curves show excellent agreement with an error below 3%. The model is further extended to silica and PMMA, yielding similarly high consistency and thermal conductivity inversion errors within 3%. Additionally, a Python program is developed to automate thermal conductivity calculations and enable data visualization. These findings not only validate the proposed simulation strategy but also provide a theoretical foundation for optimizing TPS probe geometry, experimental parameters, and the development of next-generation high-precision thermal property measurement systems.

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Cite This Study

Cui et al. (2026) studied this question.

synapsesocial.com/papers/698d6e2a5be6419ac0d53969https://doi.org/10.1142/s0217984926500818
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