Thermal affected zone obtained in machining steel XC42 by high-power continuous CO2 laser
A high-power continuous CO2 laser (4 kW) can provide energy capable of causing melting or even, with a special treatment of the surface, vaporization of an XC42-steel sample. The laser-metal interaction causes an energetic machining mechanism, which takes place according to the assumption that the m...
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Veröffentlicht in: | Optics and laser technology 2008-09, Vol.40 (6), p.864-873 |
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Format: | Artikel |
Sprache: | eng |
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Zusammenfassung: | A high-power continuous CO2 laser (4 kW) can provide energy capable of causing melting or even, with a special treatment of the surface, vaporization of an XC42-steel sample. The laser-metal interaction causes an energetic machining mechanism, which takes place according to the assumption that the melting front precedes the laser beam, such that the laser beam interacts with a preheated surface whose temperature is near the melting point. The proposed model, obtained from the energy balance during the interaction time, concerns the case of machining with an inert gas jet and permits the calculation of the characteristic parameters of the groove according to the characteristic laser parameters (absorbed laser energy and impact diameter of the laser beam) and allows the estimation of the quantity of the energy causing the thermal affected zone (TAZ). This energy is equivalent to the heat quantity that must be injected in the heat propagation equation. In the case of a semi-infinite medium with fusion temperature at the surface, the resolution of the heat propagation equation gives access to the width of the TAZ. |
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ISSN: | 0030-3992 1879-2545 |
DOI: | 10.1016/j.optlastec.2007.11.006 |