Absorption in a paraboloid of revolution-shaped welding or drilling cavityirradiated by a polarized laser beam

Authors
Citation
Cy. Ho et Ps. Wei, Absorption in a paraboloid of revolution-shaped welding or drilling cavityirradiated by a polarized laser beam, MET MAT T B, 32(4), 2001, pp. 603-614
Citations number
41
Categorie Soggetti
Metallurgy
Journal title
METALLURGICAL AND MATERIALS TRANSACTIONS B-PROCESS METALLURGY AND MATERIALS PROCESSING SCIENCE
ISSN journal
10735615 → ACNP
Volume
32
Issue
4
Year of publication
2001
Pages
603 - 614
Database
ISI
SICI code
1073-5615(200108)32:4<603:AIAPOR>2.0.ZU;2-8
Abstract
Energy flux absorbed by a paraboloid of revolution-shaped cavity subject to a focused polarized laser beam is systematically and quantitatively invest igated. The incident flux is considered to be TEM00 mode of a Gaussian dist ribution specified by the wavelength, spot size, and focal location of the laser beam. By neglecting absorption and scattering within the plasma in th e cavity and accounting for diffuse and Fresnel specular reflections of the wall, the predicted results show that in contrast to cutting or etching, e nergy absorbed near the critical radius for a deep welding or drilling cavi ty is higher for s-polarization than that for p-polarization. On the other hand, absorption for p-polarization is higher than that for s-polarization in a shallow cavity. The critical radius indicating the jump of energy flux absorbed is independent of polarization and optical properties of the work piece. The use of constant specular reflectivity instead of more elaborate c-polarized Fresnel reflectivities to predict absorption is accurate. A dec rease in the wavelength of the laser beam and increase in cavity depth redu ce the critical radius and enhance the peak of energy flux absorbed. As the focal distance and spot size decrease, both the critical radius and peak o f energy flux absorbed increase. The predicted energy flux absorbed from th e Monte Carlo method agrees well with an asymptotic solution.