IP Library › Granted Patent US 10,857,377
Granted Patent B2
US 10,857,377 · App. 15/948,545 · Granted Dec 8, 2020

Laser device and laser output control method therein

Inventors: Sung Hyun Pyun (Seoul, KR); Wanki Min (Gyeonggi-do, KR); Hyoung Soo Shin (Seoul, KR)
Assignee: Speclipse, Inc.
A61N5/0616A61B18/203A61B2017/00057A61B2017/00106A61B2018/00452A61B2018/00642A61B2018/00785A61N2005/063A61N2005/067A61N2005/0626A61N2005/0644A61N2005/0666A61N2005/0667
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Quick Facts
Patent No.
US 10,857,377
App. No.
15/948,545
Granted
Dec 8, 2020
Kind
B2
Abstract

The present disclosure relates to a method and a device for controlling a laser output. According to an embodiment, there are provided a method for controlling a laser output of a laser device, provided with a laser generator and a handpiece for radiating a laser generated at the laser generator onto a target, and a device performing the method. The method includes the steps of: measuring, by a plurality of distance sensors arranged along a circumference of one end of the handpiece from which the laser is outputted, distances between the plurality of distance sensors and the target; based on the distances between the distance sensors and the target, calculating an effective area which is a region of the target onto which the laser is really radiated; and increasing or reducing the laser output to radiate the laser onto the effective area with a predetermined energy density.

Claims (24)

1. A method for controlling a laser output of a laser device provided with a laser generator and a handpiece for radiating a laser generated at the laser generator onto a target, the method comprising the steps of:

measuring, by a plurality of distance sensors arranged along a circumference of one end of the handpiece from which the laser is outputted, distances d between the plurality of distance sensors and the target;

calculating an effective area which is a region of the target onto which the laser is really radiated, based on the distances d between the distance sensors and the target; and

increasing or reducing the laser output to radiate the laser onto the effective area with a predetermined energy density,

wherein the plurality of distance sensors comprise three or more sensors, and the plurality of distance sensors are arranged along the circumference of the one end of the handpiece at predetermined intervals.

2. The method of claim 1 , further comprising a step of stopping the laser output when a distance measured between any one of the plurality of distance sensors and the target is longer than or equal to a predetermined distance.

3. The method of claim 1 , wherein the step of calculating the effective area of the target comprises the steps of:

calculating a slope θ of the handpiece with respect to the target and a distance h between the target and the handpiece, based on the measured plurality of distances d; and

calculating the effective area of the target based on the slope θ of the handpiece and the distance h.

4. The method of claim 3 , wherein the step of calculating the effective area of the target comprises calculating the effective area of the target according to the slope θ of the handpiece and the distance h, based on an output angle α and a diameter of the laser outputted from the handpiece.

5. The method of claim 3 , further comprising a step of stopping the laser output when the calculated slope θ of the handpiece is less than or equal to a predetermined angle.

6. The method of claim 1 , wherein the laser outputted from the handpiece is a collimated beam, a focused beam, or a defocused beam.

7. A laser device comprising:

a laser generator configured to generate a laser;

a controller configured to control an output of the laser generated at the laser generator;

a handpiece configured to output the laser generated at the laser generator through one end thereof; and

a plurality of distance sensors attached along a circumference of the one end of the handpiece,

wherein the controller is configured to calculate an effective area which is a region of a target onto which the laser is really radiated, based on distances d to the target measured by the plurality of distance sensors, and to increase or reduce a laser output to radiate the laser onto the effective area with a predetermined energy density, and

wherein the plurality of distance sensors comprise three or more sensors, and the plurality of distance sensors are arranged along the circumference of the one end of the handpiece at predetermined intervals.

8. The laser device of claim 7 , wherein the controller is configured to stop the laser output when a distance measured between any one of the plurality of distance sensors and the target is longer than or equal to a predetermined distance.

9. The laser device of claim 7 , wherein the controller is configured to calculate a slope θ of the handpiece with respect to the target and a distance h between the target and the handpiece, based on the measured distances d to the target, and to calculate the effective area of the target based on the slope θ of the handpiece and the distance h.

10. The laser device of claim 9 , wherein the controller is configured to calculate the effective area of the target according to the slope θ of the handpiece and the distance h, based on an output angle α and a diameter of the laser outputted from the handpiece.

11. The laser device of claim 9 , wherein the controller is configured to step the laser output when the calculated slope θ of the handpiece is less than or equal to a predetermined angle.

12. The laser device of claim 7 , wherein the laser outputted from the handpiece is a collimated beam, a focused beam, or a defocused beam.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 9, 2018
From: PYUN, SUNG HYUN; MIN, WANKI; SHIN, HYOUNG SOO
To: SPECLIPSE, INC.
Reel/Frame 045483/0123 →
Priority Claims (1)
KR 10-2017-0088575 · Jul 12, 2017 · national
Continuity (1)
Related Publication 20190015681A1 · Jan 17, 2019