IP Library Granted Patent US 10,667,948
Granted Patent B2
US 10,667,948 · App. 14/949,139 · Granted Jun 2, 2020

Device for protecting eye tissue during laser treatments

Inventor: Christian Rathjen (Bremen, DE)
Assignee: Ziemer Ophthalmic Systems AG
A61F9/008A61B2017/0019A61B2017/00123A61B2017/00194A61B2018/00779A61B2090/049A61B2560/0487A61F2009/00846A61F2009/00878A61F2009/00897
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Quick Facts
Patent No.
US 10,667,948
App. No.
14/949,139
Granted
Jun 2, 2020
Kind
B2
Abstract

A device for protecting tissue when treating an eye using a laser beam generated by a laser system and deflected by a scanner system comprises an eye model, a control data module and a processor. The eye model comprises eye data which define dimensions and locations of eye structures. The control data module is configured to register control data which define beam parameters of the laser beam and a scanning pattern for the laser beam. The processor is configured to simulate by computation a light spot moving on or in an eye structure on the basis of the eye data and the control data, to add up, for a plurality of measurement points of the eye structure and continuously, a beam dose emitted at the relevant measurement point by the moving light spot and to generate an emergency signal if a dose limit D max is exceeded at one of the measurement points.

Claims (31)

1. A device for protecting tissue when treating an eye using a laser beam generated by an optical therapy system and deflected by a scanner system, comprising:

an eye model comprising eye data which define dimensions and locations of eye structures, the eye structures being modelled by arrays comprising array elements which represent parts of the eye structures;

a control data module configured to register control data which define beam parameters of the laser beam and a scanning speed and a scanning pattern for the laser beam, the beam parameters including a laser beam intensity profile; and

a processor configured to simulate by computation a light spot moving on or in an eye structure on the basis of the eye data and the control data, by determining an intensity profile of the light spot, based on the laser beam intensity profile, and modelling the intensity profile of the light spot on the eye structures by adding different intensity values to array elements representing parts of the eye structures covered by the light spot, depending on a value of the intensity profile of the light spot at the part of the eye structure represented by the respective array element, and moving the light spot based on the scanning speed and scanning pattern defined by the control data, such as to add up, continuously with the moving light spot, for a plurality of measurement points of the eye structure, each measurement point represented by one of the array elements, a beam dose emitted at the relevant measurement point by the moving light spot and to generate an emergency signal if a dose limit D max is exceeded at one of the measurement points,

wherein the processor is configured to calculate the dose limit D max for the measurement points, using in each case an irradiation time at the relevant measurement point and a constant which is derived from beam parameters of the laser beam.

2. The device of claim 1 , wherein the processor is configured to simulate the moving light spot with a movement speed based on the scanning speed.

3. The device of claim 1 , wherein the beam parameters comprise the beam power of the laser beam and wherein the processor is configured to add up the beam dose at the measurement points, respectively as an energy value, by integrating the beam power of the laser beam from the light spot moving over the relevant measurement point.

4. The device of claim 1 , wherein the processor is configured to establish, for the measurement points of the eye structure and continuously, the irradiation time resulting by the moving light spot.

5. The device of claim 1 , wherein the processor is configured to define the dose limit D max for the measurement points in a manner dependent on the wavelength of the laser beam.

6. The device of claim 1 , wherein the processor is configured to calculate the dose limit D max for the measurement points according to the equation D max =C·t 3/4 in each case, where C is the constant dependent on beam parameters of the laser beam and t is the irradiation time at the relevant measurement point.

7. The device of claim 1 , wherein the processor is configured to simulate the deflected laser beam on the basis of the scanning pattern defined by the control data, to model the eye structure on the basis of the eye data, and to simulate the moving light spot on the basis of the simulated deflected laser beam and the modeled eye structure.

8. The device of claim 1 , wherein the processor is configured to establish the moving light spot on a surface of the eye structure and to add up the beam dose resulting from the moving light spot for a plurality of measurement points on the surface of the eye structure.

9. The device of claim 1 , wherein the processor is configured to determine the moving light spot and the measurement points on a surface of one or more eye structures from the following list: epithelium, endothelium, iris, sclera, front lens surface, rear lens surface and retinal surface.

10. The device of claim 1 , wherein the device is connected to the optical therapy system and the scanner system and wherein the processor is configured to register the control data from the optical therapy system and from the scanning system during the treatment of the eye and to transmit the emergency signal for interrupting the treatment to the optical therapy system.

11. The device of claim 1 , wherein the processor is configured to register the control data for simulating the treatment of the eye by way of a user interface and to output the emergency signal as a warning notification by way of the user interface.

12. The device of claim 1 , wherein the control data define one or more beam parameters from the following list: pulse width, pulse rate, pulse energy, pulse intensity, focal size, laser beam intensity profile and divergence of the laser beam provided for the focused projection, and wherein the processor is configured to simulate the moving light spot on the basis of the one or more beam parameters.

13. The device of claim 1 , further comprising a measurement system configured to determine the eye data during the treatment of the eye.

14. The device of claim 1 , further comprising a positioning system configured to determine a relative position of the eye during the treatment and to position the eye model relative to the optical therapy system in a manner dependent on the relative position.

15. A method comprising:

providing an eye model comprising eye data, the eye data defining dimensions and locations of eye structures, the eye structures being modelled by arrays comprising array elements which represent parts of the eye structures;

providing a control data module configured to register control data, the control data defining beam parameters of the laser beam and a scanning speed and a scanning pattern for the laser beam, the beam parameters including a laser beam intensity profile; and

one or more processors configured to simulate by computation a light spot moving on or in an eye structure on the basis of the eye data and the control data, by determining an intensity profile of the light spot, based on the laser beam intensity profile, and modelling the intensity profile of the light spot on the eye structures by adding different intensity values to array elements representing parts of the eye structures covered by the light spot, depending on a value of the intensity profile of the light spot at the part of the eye structure represented by the respective array element, and moving the light spot based on a scanning speed and scanning pattern defined by the control data, such as to add up, continuously with the moving light spot, for a plurality of measurement points of the eye structure, each measurement point represented by one of the array elements, a beam dose emitted at the relevant measurement point by the moving light spot and to generate an emergency signal if a dose limit is exceeded at one of the measurement points,

wherein the one or more processors is further configured to calculate the dose limit for the measurement points, using in each case an irradiation time at the relevant measurement point and a constant which is derived from beam parameters of the laser beam.

16. The method of claim 15 , wherein the one or more processors is further configured to simulate the moving light spot with a movement speed based on the scanning speed.

17. The method of claim 15 , wherein the beam parameters further comprise the beam power of the laser beam and wherein the one or more processors is further configured to add up the beam dose at the measurement points, respectively as an energy value, by integrating the beam power of the laser beam from the light spot moving over the relevant measurement point.

18. The method of claim 15 , wherein the one or more processors is further configured to establish, for the measurement points of the eye structure and continuously, the irradiation time resulting by the moving light spot.

19. A device comprising:

an eye model comprising eye data, the eye data defining dimensions and locations of eye structures, the eye structures being modelled by arrays comprising array elements which represent parts of the eye structures;

a control data module configured to register control data, the control data defining beam parameters of the laser beam, the beam parameters including a laser beam intensity profile; and

a processor configured to simulate by computation a light spot moving on or in an eye structure on the basis of the eye data and the control data, by determining an intensity profile of the light spot, based on the laser beam intensity profile, and modelling the intensity profile of the light spot on the eye structures by adding different intensity values to array elements representing parts of the eye structures covered by the light spot, depending on a value of the intensity profile of the light spot at the part of the eye structure represented by the respective array element, and moving the light spot based on the scanning speed and scanning pattern defined by the control data, such as to add up, continuously with the moving light spot, for a plurality of measurement points of the eye structure, each measurement point represented by one of the array elements, a beam dose emitted at the relevant measurement point by the moving light spot and to generate an emergency signal if a dose limit is exceeded at one of the measurement points,

wherein the processor is further configured to calculate the dose limit for the measurement points, using in each case an irradiation time at the relevant measurement point and a constant which is derived from beam parameters of the laser beam.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 16, 2015
From: RATHJEN, CHRISTIAN
To: ZIEMER OPHTHALMIC SYSTEMS AG
Reel/Frame 037307/0494 →
Priority Claims (1)
EP 14003938 · Nov 24, 2014 · regional
Continuity (1)
Related Publication 20160143775A1 · May 26, 2016