IP Library Granted Patent US 10,426,560
Granted Patent B2
US 10,426,560 · App. 15/595,343 · Granted Oct 1, 2019

Robotic system and method for reorienting a surgical instrument moving along a tool path

Inventors: David Gene Bowling (Los Ranchos de Albuquerque, NM); John Michael Stuart (Rio Rancho, NM); Joel N. Beer (Albuquerque, NM)
Assignee: Stryker Corporation
A61B34/70A61B17/16A61B17/1626A61B18/148A61B34/20A61B34/30A61B34/32A61B34/37A61B34/76B25J9/009B25J9/1633B25J13/00B25J13/085G16H40/63A61B2018/00565A61B2018/00601A61B2034/107A61B2034/2046A61B2090/066G05B2219/40191G05B2219/45117
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Quick Facts
Patent No.
US 10,426,560
App. No.
15/595,343
Granted
Oct 1, 2019
Kind
B2
Abstract

Robotic system and method for positioning an energy applicator extending from a surgical instrument. The robotic system includes a surgical manipulator operable in a manual mode or a semi-autonomous mode. The surgical manipulator moves the energy applicator along a tool path in the semi-autonomous mode and reorients the surgical instrument.

Claims (36)

1. A surgical manipulator comprising:

a surgical instrument and an energy applicator extending from said surgical instrument, and wherein said surgical instrument and said energy applicator define a common axis; and

at least one controller configured to:

model said surgical instrument and said energy applicator as a virtual rigid body;

define a reference surface aperture in a reference surface;

determine forces and torques to be applied to the virtual rigid body to maintain the common axis within the reference surface aperture;

reposition said surgical instrument, based on the forces and torques, to maintain the common axis within the reference surface aperture; and

dynamically change a shape of the reference surface aperture.

2. The surgical manipulator of claim 1 , wherein said at least one controller is configured to define the reference surface to be located above a distal end of said energy applicator.

3. The surgical manipulator of claim 2 , wherein said at least one controller is configured to define the reference surface aperture to have a radius of between two centimeters and five centimeters in the reference surface.

4. The surgical manipulator of claim 2 , wherein said at least one controller is configured to define the reference surface aperture around a point where the common axis intersects the reference surface.

5. The surgical manipulator of claim 4 , wherein said at least one controller is configured to determine the forces and torques to be applied to the virtual rigid body so that the common axis moves towards a centering point of the reference surface aperture.

6. The surgical manipulator of claim 5 , wherein said at least one controller determines the forces and torques to be applied to the virtual rigid body by determining an intersection point along the common axis that intersects the reference surface and by determining a distance from the intersection point to the centering point.

7. The surgical manipulator of claim 2 , wherein the reference surface is further defined as a first reference surface, and said at least one controller is configured to define a second reference surface located in a different position than the first reference surface.

8. The surgical manipulator of claim 7 , wherein the reference surface aperture is further defined as a first reference surface aperture, and said at least one controller is configured to define a second reference surface aperture in the second reference surface, the second reference aperture having a width greater than a width of the first reference surface aperture.

9. The surgical manipulator of claim 1 , wherein said at least one controller is configured to determine the forces and torques to be applied to the virtual rigid body based on a location of the reference surface aperture.

10. The surgical manipulator of claim 1 , wherein the reference surface aperture is defined by a user with a navigation pointer.

11. The surgical manipulator of claim 1 , wherein the reference surface aperture is defined based on locations of markers attached to the patient.

12. The surgical manipulator of claim 11 , wherein said markers define a perimeter of the reference surface aperture.

13. The surgical manipulator of claim 12 , wherein said markers are configured to be monitored by a navigation system and said at least one controller is configured to dynamically change a shape of the reference surface aperture.

14. The surgical manipulator of claim 1 , wherein said at least one controller is configured to operate said surgical manipulator in a semi-autonomous mode to move said energy applicator along a tool path.

15. A method for operating a system comprising at least one controller and a surgical manipulator including a surgical instrument and an energy applicator extending from the surgical instrument, and wherein the surgical instrument and the energy applicator define a common axis, said method comprising the at least one controller performing the steps of:

modeling the surgical instrument and the energy applicator as a virtual rigid body;

defining a reference surface aperture in a reference surface;

determining forces and torques to be applied to the virtual rigid body to maintain the common axis within the reference surface aperture;

repositioning the surgical instrument, based on the forces and torques, for maintaining the common axis within the reference surface aperture; and

dynamically changing a shape of the reference surface aperture.

16. The method of claim 15 , further comprising the at least one controller defining the reference surface to be located above a distal end of the energy applicator.

17. The method of claim 16 , further comprising the at least one controller defining the reference surface aperture around a point where the common axis intersects the reference surface.

18. The method of claim 17 , further comprising the at least one controller determining the forces and torques to be applied to the virtual rigid body so that the common axis moves towards a centering point of the reference surface aperture.

19. The method of claim 18 , further comprising the at least one controller determining the forces and torques to be applied to the virtual rigid body by:

determining an intersection point along the common axis that intersects the reference surface; and

determining a distance from the intersection point to the centering point.

20. The method of claim 16 , wherein the reference surface is further defined as a first reference surface and wherein the reference surface aperture is further defined as a first reference surface aperture, and further comprising the at least one controller:

defining a second reference surface located in a different position than the first reference surface; and

defining a second reference surface aperture in the second reference surface, the second reference aperture having a width greater than a width of the first reference surface aperture.

Assignments (2)
CHANGE OF ADDRESS Recorded Dec 18, 2024
From: STRYKER CORPORATION
To: STRYKER CORPORATION
Reel/Frame 069737/0184 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 30, 2019
From: BOWLING, DAVID G.; STUART, JOHN M.; BEER, JOEL N.
To: STRYKER CORPORATION
Reel/Frame 050188/0337 →
Continuity (7)
Continuation 14739146 · Jun 15, 2015
Continuation 14208293 · Mar 13, 2014
Continuation In Part 13958070 · Aug 2, 2013
Continuation In Part 13958070
Provisional Application 61679258 · Aug 3, 2012
Provisional Application 61792251 · Mar 15, 2013
Related Publication 20170245955A1 · Aug 31, 2017
Cited By (9)
US 12,193,764 US 12,217,870 US 12,240,124 US 12,364,561 US 12,484,984 US 12,514,428 US 12,582,480 US 12,622,762 US 12,714,527