Thermal energy coupling to Al in ablation with ms-, ns-, and fs-laser pulses

Residual energy coefficient defined as the ratio of thermal energy retained in aluminum sample following laser ablation to the energy of incident laser radiation as a function of laser fluence was studied. Experiments were performed in various gas media with the use of ms-and ns-ruby, ns-Nd:glass, a...

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Hauptverfasser: Vorobyev, A.Y., Kuzmichev, V.M., Chunlei Guo, Kokody, N.G., Kohns, P.
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Kuzmichev, V.M.
Chunlei Guo
Kokody, N.G.
Kohns, P.
description Residual energy coefficient defined as the ratio of thermal energy retained in aluminum sample following laser ablation to the energy of incident laser radiation as a function of laser fluence was studied. Experiments were performed in various gas media with the use of ms-and ns-ruby, ns-Nd:glass, and fs-Ti:sapphire lasers. For ns- and fs-laser pulses an abrupt significant rise of residual energy coefficient of aluminum occurs above the ablation threshold in a gas medium and does not occur in vacuum. For ms-laser pulses the residual energy coefficient increases slightly both in air and vacuum in the range of laser fluences above the ablation threshold.
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subjects Aluminum
Artificial intelligence
Elementary particle vacuum
Energy measurement
Gas lasers
Laser ablation
Optical coupling
Optical pulse generation
Optical pulses
Temperature measurement
title Thermal energy coupling to Al in ablation with ms-, ns-, and fs-laser pulses
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