Electromagnetic energy distributions for electromagnetically...

Electric lamp and discharge devices: systems – Discharge device and/or rectifier in the supply circuit – Flashers

Reexamination Certificate

Rate now

  [ 0.00 ] – not rated yet Voters 0   Comments 0

Details

C315S2090CD, C606S002000, C606S003000

Reexamination Certificate

active

06288499

ABSTRACT:

BACKGROUND OF THE INVENTION
1. Field of the Invention
The present invention relates generally to lasers and, more particularly, to output optical energy distributions of lasers.
2. Description of Related Art
A variety of laser systems are present in the prior art. A solid-state laser system generally comprises a laser rod for emitting coherent light and a stimulation source for stimulating the laser rod to emit the coherent light. Flashlamps are typically used as stimulation sources for Erbium laser systems, for example. The flashlamp is driven by a flashlamp current, which comprises a predetermined pulse shape and a predetermined frequency.
The flashlamp current drives the flashlamp at the predetermined frequency, to thereby produce an output flashlamp light distribution having substantially the same frequency as the flashlamp current. This output flashlamp light distribution from the flashlamp drives the laser rod to produce coherent light at substantially the same predetermined frequency as the flashlamp current. The coherent light generated by the laser rod has an output optical energy distribution over time that generally corresponds to the pulse shape of the flashlamp current.
The pulse shape of the output optical energy distribution over time typically comprises a relatively gradually rising energy that ramps up to a maximum energy, and a subsequent decreasing energy over time. The pulse shape of a typical output optical energy distribution can provide a relatively efficient operation of the laser system, which corresponds to a relatively high ratio of average output optical energy to average power inputted into the laser system.
The prior art pulse shape and frequency may be suitable for thermal cutting procedures, for example, where the output optical energy is directed onto a target surface to induce cutting. New cutting procedures, however, do not altogether rely on laser-induced thermal cutting mechanisms. More particularly, a new cutting mechanism directs output optical energy from a laser system into a distribution of atomized fluid particles located in a volume of space just above the target surface. The output optical energy interacts with the atomized fluid particles causing the atomized fluid particles to expand and impart electromagnetically-induced mechanical cutting forces onto the target surface. As a result of the unique interactions of the output optical energy with the atomized fluid particles, typical prior art output optical energy distribution pulse shapes and frequencies have not been especially suited for providing optical electromagnetically-induced mechanical cutting. Specialized output optical energy distributions are required for optimal cutting when the output optical energy is directed into a distribution of atomized fluid particles for effectuating electromagnetically-induced mechanical cutting of the target surface.
SUMMARY OF THE INVENTION
The output optical energy distributions of the present invention comprise relatively high energy magnitudes at the beginning of each pulse. As a result of these relatively high energy magnitudes at the beginning of each pulse, the leading edge of each pulse comprises a relatively large slope. This slope is preferably greater than or equal to 5. Additionally, the full-width half-max (FWHM) values of the output optical energy distributions are greater than 0.025 microseconds. More preferably, the full-width half-max values are between 0.025 and 250 microseconds and, more preferably, are between 10 and 150 microseconds. The full-width half-max value is about 70 microseconds in the illustrated embodiment. A flashlamp is used to drive the laser system, and a current is used to drive the flashlamp. A flashlamp current generating circuit comprises a solid core inductor having an inductance of about 50 microhenries and a capacitor having a capacitance of about 50 microfarads.
The present invention, together with additional features and advantages thereof, may best be understood by reference to the following description taken in connection with the accompanying illustrative drawings.


REFERENCES:
patent: 3286128 (1966-11-01), Ward
patent: 3679863 (1972-07-01), Houldcroft et al.
patent: 3679998 (1972-07-01), Dahlinger
patent: 3991296 (1976-11-01), Kohima et al.
patent: 4276497 (1981-06-01), Burbeck et al.
patent: 4477796 (1984-10-01), Kearsley
patent: 4724299 (1988-02-01), Hammeke
patent: 4826431 (1989-05-01), Fujimura et al.
patent: 5092773 (1992-03-01), Levy
patent: 5092864 (1992-03-01), Hayes et al.
patent: 5151029 (1992-09-01), Levy
patent: 5173642 (1992-12-01), Matsumoto et al.
patent: 5199870 (1993-04-01), Steiner et al.
patent: 5267856 (1993-12-01), Wolbarsht et al.
patent: 5313481 (1994-05-01), Cook et al.
patent: 5318562 (1994-06-01), Levy et al.
patent: 5334019 (1994-08-01), Goldsmith et al.
patent: 5374266 (1994-12-01), Kataoka et al.
patent: 5388988 (1995-02-01), Goisser et al.
patent: 5401171 (1995-03-01), Paghdiwala
patent: 5409376 (1995-04-01), Murphy
patent: 5415652 (1995-05-01), Mueller et al.
patent: 5497051 (1996-03-01), Langhans et al.
patent: 5552675 (1996-09-01), Lemelson
patent: 5585698 (1996-12-01), Langhans et al.
patent: 5729562 (1998-03-01), Birx et al.
patent: 6056738 (2000-05-01), Marchitto et al.
patent: 4138468 (1993-03-01), None
patent: 0181199 (1986-05-01), None
patent: 0192833 (1986-09-01), None
patent: 0454312 (1991-10-01), None
patent: 5945092 (1984-03-01), None
patent: WO9641657 (1996-12-01), None
T. S. Fahlen, Efficient Quarter-Joule KrF Laser with Corona Preionization, IEEE Journal of Quantum Electronicss, vol. QE-15, No. 5, p. 311-312, May 5, 1979.*
Bernard Grob, Basic Electronics, Glencoe division of Macmillan/McGraw-Hill, p. 690-681, 1989.*
New laser—Matter Interaction Concept to enhance Hard Tissue Cutting Efficiency by Ioana M. Rizoiu and Larry G. DeShazer, published in SPIE vol. 2134A Laser-Tissue Interaction V(1994)/309.

LandOfFree

Say what you really think

Search LandOfFree.com for the USA inventors and patents. Rate them and share your experience with other people.

Rating

Electromagnetic energy distributions for electromagnetically... does not yet have a rating. At this time, there are no reviews or comments for this patent.

If you have personal experience with Electromagnetic energy distributions for electromagnetically..., we encourage you to share that experience with our LandOfFree.com community. Your opinion is very important and Electromagnetic energy distributions for electromagnetically... will most certainly appreciate the feedback.

Rate now

     

Profile ID: LFUS-PAI-O-2526406

  Search
All data on this website is collected from public sources. Our data reflects the most accurate information available at the time of publication.