IP Library Granted Patent US 7,286,285
Granted Patent B2
US 7,286,285 · App. 10/794,997 · Granted Oct 23, 2007

Surgical microscope having an object field illumination system

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Quick Facts
Patent No.
US 7,286,285
App. No.
10/794,997
Granted
Oct 23, 2007
Kind
B2
Abstract

The invention concerns a surgical microscope ( 2, 3, 5 ) having a novel laser illumination system ( 11 ) and, in a preferred embodiment, an arrangement in which a diffractive element ( 7 ) produces an additional illuminating beam and a measurement beam.

Claims (28)

1. A surgical microscope comprising:

a main objective for viewing an object field;

a laser light source emitting a laser beam;

a diffractive element arranged after the laser light source for splitting the laser beam into a zero-order beam and a pair of first-order beams;

a deflection element arranged after the diffractive element and before the main objective to receive the zero-order beam from the diffractive element and direct the zero-order beam through the main objective to non-destructively illuminate the object field;

a sensor arranged to measure the intensity of one of the pair of first-order beams, wherein the measured first-order beam has not interacted with an object being observed, to provide information regarding the intensity of the zero-order beam and the intensity of the other of the pair of first-order beams; and

an eyepiece tube through which the object field illuminated by the zero-order beam is visually observed by a user of the surgical microscope.

2. The surgical microscope as defined in claim 1 , further comprising an electronic data processing system connected to the laser light source for driving the laser light source, wherein the sensor is connected to the electronic data processing system.

3. The surgical microscope as defined in claim 2 , wherein the diffractive element is controllable to adjust the intensity of the zero-order beam.

4. The surgical microscope as defined in claim 3 , further comprising an electronic driving system for driving the diffractive element, wherein the electronic driving system is connected to the electronic data processing system and the electronic data processing system controls the electronic driving system.

5. The surgical microscope as defined in claim 3 , wherein the diffractive element is a diffractive variable beam attenuator.

6. The surgical microscope as defined in claim 1 , further comprising a display device connected to the sensor for displaying a measured intensity.

7. The surgical microscope as defined in claim 6 , further comprising a data overlay deflection element arranged to deflect an image of the display device into an observation beam path of the surgical microscope.

8. The surgical microscope as defined in claim 1 , further comprising a first illuminating optical system arranged after the diffractive element for widening and imaging the zero-order beam.

9. The surgical microscope as defined in claim 8 , wherein the first illuminating optical system is corrected only for the light wavelength of the laser light source.

10. The surgical microscope as defined in claim 8 , further comprising a second illuminating optical system arranged after the diffractive element for receiving the other first-order beam.

11. The surgical microscope as defined in claim 10 , wherein the second illuminating optical system images the other first-order beam obliquely onto the object field.

12. A surgical microscope comprising:

a main objective for viewing an object field;

a laser light source emitting a laser beam;

a diffractive element arranged after the laser light source for splitting the laser beam into a zero-order beam and a pair of first-order beams;

a deflection element arranged after the diffractive element and before the main objective to receive the zero-order beam from the diffractive element and direct the zero-order beam through the main objective to non-destructively illuminate the object field; and

an illuminating optical system arranged after the diffractive element for imaging one of the pair of first-order beams obliquely onto the object field along a direct path bypassing the main objective.

13. The surgical microscope as defined in claim 12 , further comprising another illuminating optical system arranged after the diffractive element for widening and imaging the zero-order beam.

14. The surgical microscope as defined in claim 12 , further comprising a scanning device arranged after the diffractive element for scanning the zero-order beam over the object field.

15. The surgical microscope system as defined in claim 12 , further comprising at least one absorber arranged after the diffractive element to receive the other of the pair of first-order beams.

16. The surgical microscope as defined in claim 12 , further comprising a shutter after the diffractive element for blocking the zero-order beam in pulsed fashion.

17. The surgical microscope as defined in claim 12 , further comprising a shutter after the diffractive element for blocking the one first-order beam in pulsed fashion.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 25, 2010
From: LEICA MICROSYSTEMS (SCHWEIZ) AG
To: LEICA INSTRUMENTS (SINGAPORE) PTE. LTD.
Reel/Frame 024128/0669 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 7, 2010
From: LEICA MICROSYSTEMS (SCHWEIZ) AG
To: LEICA INSTRUMENTS PTE. LTD.
Reel/Frame 023741/0870 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 5, 2004
From: SANDER, ULRICH
To: LEICA MICROSYSTEMS (SCHWEIZ) AG
Reel/Frame 015064/0197 →