We demonstrate that a non-invasive sensing technique based on optical feedback interferometry is capable to instantaneously measure the ablation front displacement and the removal rate during ultrafast laser percussion drilling of metallic plates. The sawtooth-like modulation of the interferometric signal out of the detecting sensor has been analyzed to reveal the time dependence of the removal depth with sub-micrometric resolution. Various dynamic factors related to the influence of laser pulse duration and peak energy have been assessed by in-situ spatial- and time-dependent characterization all through the ablation process. The importance of realtime measurement of the ablation rate is crucial to improve the basic understanding of ultrafast lasermaterial interactions. Moreover, the detection system results high-sensitive, compact, and easily integrable in most industrial workstations, enabling the development of on-line control to improve the ablation efficiency and the quality of laser micromachining processes.

Direct in-situ measurement of the ablation rate in short pulse laser percussion drilling of metal targets

Mezzapesa FP;Ancona A;Sibillano T;Dabbicco M;Scamarcio G
2011

Abstract

We demonstrate that a non-invasive sensing technique based on optical feedback interferometry is capable to instantaneously measure the ablation front displacement and the removal rate during ultrafast laser percussion drilling of metallic plates. The sawtooth-like modulation of the interferometric signal out of the detecting sensor has been analyzed to reveal the time dependence of the removal depth with sub-micrometric resolution. Various dynamic factors related to the influence of laser pulse duration and peak energy have been assessed by in-situ spatial- and time-dependent characterization all through the ablation process. The importance of realtime measurement of the ablation rate is crucial to improve the basic understanding of ultrafast lasermaterial interactions. Moreover, the detection system results high-sensitive, compact, and easily integrable in most industrial workstations, enabling the development of on-line control to improve the ablation efficiency and the quality of laser micromachining processes.
2011
Istituto di fotonica e nanotecnologie - IFN
978-0-912035-94-9
Ablation efficiency
Ablation fronts
Ablation process
Ablation rates
Detecting sensors
Detection system
Dynamic factors
In-situ
In-situ measurement
Interferometric signals
Laser micro-machining
Laser percussion drilling
Laser pulse duration
Laser-material interactions
Metal target
Metallic plate
Non-invasive sensing
On-line controls
Optical feedback interferometry
Peak energy
Real time measurements
Removal depth
Removal rate
Short-pulse lasers
Time dependence
Time-dependent
Ultra-fast
Feedback
Instruments
Interferometry
Micromachining
Percussion welding
Sensors
Ultrafast lasers
Ablation
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/264394
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