Green's Function Solutions of One- and Two-Dimensional Dual-Phase-Lag Laser Heating Problems in Nano/Microstructures

Author:

Troy William1,Dutta Mitra2,Stroscio Michael3

Affiliation:

1. Department of Electrical and Computer Engineering, University of Illinois at Chicago, Chicago, IL 60607

2. Department of Electrical and Computer Engineering, University of Illinois at Chicago, Chicago, IL 60607; Physics Department, University of Illinois at Chicago, Chicago, IL 60607

3. Department of Electrical and Computer Engineering, University of Illinois at Chicago, Chicago, IL 60607; Physics Department, University of Illinois at Chicago, Chicago, IL 60607; Richard and Loan Hill Department of Biomedical Engineering, University of Illinois at Chicago, Chicago, IL 60607

Abstract

Abstract Lasers and laser heating have a wide variety of applications such as spectroscopy, laser welding, laser cutting, and even biological applications like tumor irradiation and surgery. Theoretical modeling of laser heating has proven to be quite difficult, and classical heating equations have shown to be inaccurate due to the large temperature gradients created by the laser heating. Furthermore, the commonly used Fourier's Law assumed the speed for a thermal wave to propagate as infinite; this is unrealistic in any medium and especially in domains with slow propagation speeds such as biological media and in fast nano/microscale heating applications. This study helps fill some of the gaps in accurate model of laser heating by presenting unique 1D and 2D models of the analytically solved Dual-Phase-Lag heating equations which can much more accurately describe the temperature of such interactions in both the temporal and spatial domains.

Funder

Army Research Office

University of Illinois at Chicago

Publisher

ASME International

Subject

Mechanical Engineering,Mechanics of Materials,Condensed Matter Physics,General Materials Science

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