4.6 Review

A State-of-the-Art Review on Integral Transform Technique in Laser-Material Interaction: Fourier and Non-Fourier Heat Equations

期刊

MATERIALS
卷 14, 期 16, 页码 -

出版社

MDPI
DOI: 10.3390/ma14164733

关键词

Fourier heat equation; non-Fourier heat equation; integral transform technique; generalized solutions; heat equation components; MATHEMATICA software user-defined codes

资金

  1. Romanian Ministry of Education and Research under Romanian National Nucleu Program LAPLAS VI [16N/2019]
  2. European Union [764935]
  3. Romanian Ministry of Education and Research [16N/2019, 135/2016, PCE57/2021, PED514/2020]

向作者/读者索取更多资源

Heat equations estimate thermal distribution and phase transformation in real-time based on operating conditions and material properties, with Fourier and non-Fourier heat equations being applicable to equilibrium and non-equilibrium thermodynamical processes. Integral transform technique is a powerful method transforming partial differential equations into ordinary differential equations.
Heat equations can estimate the thermal distribution and phase transformation in real-time based on the operating conditions and material properties. Such wonderful features have enabled heat equations in various fields, including laser and electron beam processing. The integral transform technique (ITT) is a powerful general-purpose semi-analytical/numerical method that transforms partial differential equations into a coupled system of ordinary differential equations. Under this category, Fourier and non-Fourier heat equations can be implemented on both equilibrium and non-equilibrium thermo-dynamical processes, including a wide range of processes such as the Two-Temperature Model, ultra-fast laser irradiation, and biological processes. This review article focuses on heat equation models, including Fourier and non-Fourier heat equations. A comparison between Fourier and non-Fourier heat equations and their generalized solutions have been discussed. Various components of heat equations and their implementation in multiple processes have been illustrated. Besides, literature has been collected based on ITT implementation in various materials. Furthermore, a future outlook has been provided for Fourier and non-Fourier heat equations. It was found that the Fourier heat equation is simple to use but involves infinite speed heat propagation in comparison to the non-Fourier heat equation and can be linked with the Two-Temperature Model in a natural way. On the other hand, the non-Fourier heat equation is complex and involves various unknowns compared to the Fourier heat equation. Fourier and Non-Fourier heat equations have proved their reliability in the case of laser-metallic materials, electron beam-biological and -inorganic materials, laser-semiconducting materials, and laser-graphene material interactions. It has been identified that the material properties, electron-phonon relaxation time, and Eigen Values play an essential role in defining the precise results of Fourier and non-Fourier heat equations. In the case of laser-graphene interaction, a restriction has been identified from ITT. When computations are carried out for attosecond pulse durations, the laser wavelength approaches the nucleus-first electron separation distance, resulting in meaningless results.

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