We present an experimental study of the drilling of metal targets with ultrashort laser pulses with pulse durations from 800 fs to 19 ps at repetition rates up to 1 MHz, average powers up to 70 Watts, using an Ytterbium-doped fiber CPA system. Particle shielding and heat accumulation have been found to influence the drilling efficiency at high repetition rates. Particle shielding causes an increase in the number of pulses for breakthrough. It occurs at a few hundred kHz, depending on the pulse energy and duration. The heat accumulation effect is noticed at higher repetition rates. Although it overbalances the particle shielding thus making the drilling process faster, heat accumulation is responsible for the formation of a large amount of molten material that limits the hole quality. The variations of the pulse duration reveal that heat accumulation starts at higher repetition rates for shorter pulse lengths. This is in agreement with the observed higher ablation efficiency with shorter pulse duration. Thus, the shorter pulses might be advantageous if highest precision and processing speed is required.

Ultrashort pulse laser drilling of metals using a high repetition rate, high average power fiber CPA system

Ancona A;
2009

Abstract

We present an experimental study of the drilling of metal targets with ultrashort laser pulses with pulse durations from 800 fs to 19 ps at repetition rates up to 1 MHz, average powers up to 70 Watts, using an Ytterbium-doped fiber CPA system. Particle shielding and heat accumulation have been found to influence the drilling efficiency at high repetition rates. Particle shielding causes an increase in the number of pulses for breakthrough. It occurs at a few hundred kHz, depending on the pulse energy and duration. The heat accumulation effect is noticed at higher repetition rates. Although it overbalances the particle shielding thus making the drilling process faster, heat accumulation is responsible for the formation of a large amount of molten material that limits the hole quality. The variations of the pulse duration reveal that heat accumulation starts at higher repetition rates for shorter pulse lengths. This is in agreement with the observed higher ablation efficiency with shorter pulse duration. Thus, the shorter pulses might be advantageous if highest precision and processing speed is required.
2009
Istituto di fotonica e nanotecnologie - IFN
978-0-8194-7449-0
Ablation efficiency
Chirped pulse amplification
Drilling efficiency
Drilling process
Experimental studies
Fiber laser amplifiers
Heat accumulation
High average power
High repetition rate
Hole quality
Laser drilling
Metal target
Processing speed
Pulse durations
Pulse energies
Pulse length
Repetition rate
Ultra-short pulse laser
Ultrafast lasers
Ultrashort laser pulse
Ytterbium doped fibers
Amplification
Drilling
Fiber amplifiers
Fibers
Laser beams
Lasers
Metal melting
Molten materials
Pulse amplifiers
Pulse generators
Shielding
Ultrafast phenomena
Ultrashort pulses
Ytterbium
Pulsed laser applications
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/264386
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