4.7 Article

Numerical modeling of thermoelastic generation of ultrasound by laser irradiation in the coupled thermoelasticity

Journal

ULTRASONICS
Volume 53, Issue 1, Pages 141-149

Publisher

ELSEVIER SCIENCE BV
DOI: 10.1016/j.ultras.2012.05.001

Keywords

Laser-generation; Ultrasonic waves; Surface waves; Numerical solution; Direct integration

Funding

  1. FWF Austrian Science Fund [M 1298-N20]
  2. Christian Doppler Research Association
  3. Federal Ministry of Economy, Family and Youth
  4. European Regional Development Fund in the framework of the European Union program Regio 13
  5. federal state of Upper Austria

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Laser-generation of ultrasound is investigated in the coupled dynamical thermoelasticity in the presented paper. The coupled heat conduction and wave equations are solved using finite differences. It is shown that the application of staggered grids in combination with explicit integration of the wave equation facilitates the decoupling of the solution and enables the application of a combination of implicit and explicit numerical integration techniques. The presented solution is applied to model the generation of ultrasound by a laser source in isotropic and transversely isotropic materials. The influence of the coupling of the generalized thermoelasticity is investigated and it will be shown, that for ultra high frequency waves (i.e. 100 GHz) generated by laser pulses with duration in the picosecond range, the thermal feedback becomes considerable leading to a strong attenuation of the longitudinal bulk wave. Moreover, the coupling leads to dispersion influencing the wave velocities at low frequencies. The numerical simulations are compared to theoretical results available in the literature. Wave fields generated by a line focused laser source are presented by the numerical model for isotropic and for transversely isotropic materials. (C) 2012 Elsevier B.V. All rights reserved.

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