IP Library Granted Patent US 11,389,179
Granted Patent B2
US 11,389,179 · App. 16/266,802 · Granted Jul 19, 2022

Rotary oscillating bone, cartilage, and disk removal tool assembly

Inventors: Peter L. Bono (Bingham Farms, MI); James D. Lark (West Bloomfield, MI); Corey A. Freimark (Grand Haven, MI); Anthony J. Ruhala (Almont, MI)
Assignee: Globus Medical, Inc.
A61B17/1624A61B17/1671A61B17/32002A61B17/14A61B17/162A61B17/1622A61B17/1628A61B17/320016A61B17/8875A61B17/8897A61B2017/320028Y10T74/1683Y10T74/2101Y10T74/2107
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Quick Facts
Patent No.
US 11,389,179
App. No.
16/266,802
Granted
Jul 19, 2022
Kind
B2
Abstract

A bone, cartilage, and disk removal tool assembly is provided with a motor mounted in a housing. A spindle is mounted for rotation to the housing. A rack-and-pinion mechanism is operably driven by the motor and connected to the spindle to oscillate the spindle for providing a rotary oscillating cutting operation. According to at least another embodiment, a plurality of cams is supported in the housing and driven for rotation by the motor. A plurality of followers is mounted for rotation to the housing, in engagement with the plurality of cams so that one rotation of the plurality of cams oscillates the plurality of followers more than once while preventing over-rotation of the plurality of followers. A peak angular acceleration of the spindle is less than nine million radians per second squared.

Claims (23)

1. A bone, cartilage, and disk removal tool assembly comprising:

a housing;

a motor mounted in the housing;

a plurality of cams supported in the housing and driven for rotation by the motor;

a follower having a plurality of follower surfaces in contact with the plurality of cams, the follower mounted for oscillating rotation about a spindle axis of rotation and in engagement with the plurality of cams so that one rotation of the plurality of cams oscillates the follower at least once, wherein atleast one follower surface provides rotation of the spindle and at least one follower surface prevents over-rotation of the spindle; and

the spindle mounted for rotation to the housing in engagement with the follower for providing a rotary oscillating cutting operation.

2. The bone, cartilage, and disk removal tool assembly of claim 1 wherein the plurality of cams engages the follower surfaces upon at least two contact points at all positions of the plurality of cams and the plurality of followers.

3. The bone, cartilage, and disk removal tool assembly of claim 2 wherein the plurality of follower surfaces includes at least four follower surfaces.

4. The bone, cartilage, and disk removal tool assembly of claim 1 wherein each of the plurality of cams includes a distinct cam profile.

5. The bone, cartilage, and disk removal tool assembly of claim 1 wherein a peak angular acceleration of the spindle is less than nine million radians per second squared.

6. The bone, cartilage, and disk removal tool assembly of claim 5 wherein angular jerk of the spindle is less than twenty-five billion radians per second cubed.

7. A bone, cartilage, and disk removal tool assembly comprising:

a housing;

a motor mounted in the housing;

a spindle mounted for rotation to the housing; and

a cam and follower mechanism operably driven by the motor and connected to the spindle to oscillate the spindle for providing a rotary oscillating cutting operation, the cam and follower mechanism including a plurality of cams supported in the housing and driven for rotation by the motor, a follower secured to the spindle for rotation therewith, the follower including a plurality of follower surfaces in engagement with the plurality of cams so that rotation of the plurality of cams oscillates the follower, the follower in operative engagement with the spindle to cause rotary oscillating movement of the spindle, wherein at least one follower surface provides rotation of the spindle and at least one of the other follower surfaces prevents over-rotation of the spindle.

8. The bone, cartilage, and disk removal tool assembly of claim 7 wherein oscillations per minute of the spindle is at least double rotations per minute of the motor.

9. The bone, cartilage, and disk removal tool assembly of claim 7 wherein maximum angular velocity of said spindle is provided at the mid-point of said oscillating motion.

10. The bone, cartilage, and disk removal tool assembly of claim 7 wherein said rotary oscillating motion is at least ninety degrees of included angular displacement.

11. The bone, cartilage, and disk removal tool assembly of claim 10 wherein said rotary oscillating motion is less than one hundred and forty five degrees of included angular displacement.

12. The bone, cartilage, and disk removal tool assembly of claim 7 wherein said rotary oscillating motion is adjustable between at least ninety degrees of included angular motion and less than one hundred and forty five degrees of included angular displacement.

13. The bone, cartilage, and disk removal tool assembly of claim 7 wherein said housing includes at least one light therein, said at least one light having abeam directed at a distal end of said spindle.

14. The bone, cartilage, and disk removal tool assembly of claim 13 wherein said at least one light is a light emitting diode.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 5, 2021
From: CAPSTONE SURGICAL TECHNOLOGIES, LLC
To: GLOBUS MEDICAL, INC.
Reel/Frame 058037/0432 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 18, 2021
From: BONO, PETER L.
To: CAPSTONE SURGICAL TECHNOLOGIES, LLC
Reel/Frame 057844/0893 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 1, 2019
From: BONO, PETER L.; LARK, JAMES D.; FREIMARK, COREY A.; RUHALA, ANTHONY J.
To: PETER L. BONO
Reel/Frame 048754/0542 →
Continuity (2)
Division 13469665 · May 11, 2012
Related Publication 20190209185A1 · Jul 11, 2019
Cited By (1)
US 12,446,894