IP Library › Granted Patent US 10,966,788
Granted Patent B2
US 10,966,788 · App. 16/219,512 · Granted Apr 6, 2021

Sensor-based shoulder system and method

Inventors: Orsa Britton (Warsaw, IN); David A. Nolan (Fort Wayne, IN); William Van Kampen (Saline, MI)
Assignee: Zimmer, Inc.
A61B34/10A61B5/4528A61B5/4576A61F2/4014A61F2/4081A61F2/4657A61F2/4684A61B2034/105A61B2034/107A61F2/40A61F2002/3037A61F2002/30566A61F2002/30616A61F2002/30672A61F2002/4633A61F2002/4666A61F2002/4668
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Quick Facts
Patent No.
US 10,966,788
App. No.
16/219,512
Granted
Apr 6, 2021
Kind
B2
Abstract

The subject matter includes a system and method for providing graphical feedback visualizing forces within a joint through a range of motion of the joint. The method can comprise receiving position data, receiving force data, and generating a graphical representation based on the position data and the force data. The receiving position data can include data for at least one bone of a joint while the at least one bone is moved through a range of motion (ROM). The receiving force data can occur concurrently to receiving the position data and using one or more processors, the force data can be collected from at least one force sensor embedded within a trial prosthesis in the joint. The graphical representation can illustrate changes in the force data versus locations of the bone as it moved through the ROM.

Claims (58)

1. A sensor device for use within a joint prosthesis, the sensor device comprising:

a measurement shaft coupled to an articular surface component of the joint prosthesis;

a bias element biasing the measurement shaft into a first unloaded position;

a housing containing the measurement shaft and bias element; and

a position sensor affixed within the housing to detect a position of the measurement shaft relative to the housing,

wherein the bias element is a coil spring surrounding the measurement shaft.

2. The sensor device of claim 1 , wherein the coil spring is calibrated to enable translation of deflection distance into a force measurement to be output by the sensor device.

3. The sensor device of claim 1 , wherein the housing includes an upper housing comprising a cylindrical body dimensioned to contain the measurement shaft and the coil spring.

4. The sensor device of claim 3 , wherein the housing includes a lower housing comprising a second cylindrical body coupled to the upper housing and interconnected by a bore dimensioned to receive a measurement end of the measurement shaft.

5. The sensor device of claim 4 , wherein the lower housing includes the position sensor disposed along at least one side portion of the second cylindrical body.

6. The sensor device of claim 1 , wherein the position sensor is a magnetic position sensor.

7. The sensor device of claim 1 , wherein the position sensor is an induction sensor.

8. The sensor device of claim 1 , wherein the position sensor is a magnetostrictive sensor.

9. An instrumented trial joint prosthesis system comprising:

a joint prosthesis including an implantable body and an articular component moveable relative to the implantable body, wherein the articular component includes an articular surface opposite the implantable body;

a sensor module disposed within the implantable body and coupled to the articular component, the sensor module comprising:

a measurement shaft coupled to the articular component of the joint prosthesis;

a bias element biasing the measurement shaft into a first unloaded position;

a housing embedded within the implantable body, the housing containing the measurement shaft and bias element; and

a position sensor affixed within the housing in a position to detect a position of the measurement shaft.

10. The instrumented trial joint prosthesis system of claim 9 , wherein the articular component and the measurement shaft include a range of travel from the first unloaded position to a second maximum load position and the position sensor is configured to detect positions of the measurement shaft from the first unloaded position to the second maximum load position.

11. The instrumented trial joint prosthesis system of claim 10 , wherein in the second maximum load position a portion of the articular component abuts the implantable body.

12. The instrumented trial joint prosthesis system of claim 10 , wherein in the first unloaded position the articular component is spaced a distance from the implantable body.

13. The instrumented trial joint prosthesis system of claim 9 , wherein the bias element is a calibrated coil spring to enable translation of deflection distance into a force measurement to be output by the sensor module.

14. The instrumented trial joint prosthesis system of claim 13 , wherein the housing includes an upper housing comprising a cylindrical body dimensioned to contain the measurement shaft and the coil spring.

15. The instrumented trial joint prosthesis system of claim 14 , wherein the housing includes a lower housing comprising a second cylindrical body coupled to the upper housing and interconnected by a bore dimensioned to receive a measurement end of the measurement shaft.

16. The instrumented trial joint prosthesis system of claim 9 , wherein the position sensor is selected from a group of sensors including:

a magnetic position sensor;

a induction position sensor; and

a magnetostrictive position sensor.

17. A trial shoulder joint prosthesis comprising:

a humeral articular component configured to slidably engage a glenoid articular surface;

a humeral stem implant movably coupled to the humeral articular component and configured to be inserted into a humerus bone of a patient;

a sensor module coupled between the humeral articular component and the humeral stem implant, the sensor module comprising:

a measurement shaft coupled to the humeral articular component;

a calibrated coil spring biasing the measurement shaft into a first position, wherein in the first position the humeral articular component is engaged with the glenoid articular surface when the trial shoulder joint prosthesis is implanted in the patient;

a housing containing the measurement shaft and the calibrated coil spring; and

a position sensor affixed within the housing in a position to detect a position of the measurement shaft.

18. The trial shoulder joint prosthesis of claim 17 , wherein the humeral articular component includes a humeral tray trial configured to engage a glenosphere.

19. The trial shoulder joint prosthesis of claim 17 , wherein the humeral articular component includes a humeral head trial configured to engage a glenoid trial.

20. A sensor device for use within a joint prosthesis, the sensor device comprising:

a measurement shaft coupled to an articular surface component of the joint prosthesis;

a bias element biasing the measurement shaft into a first unloaded position;

a housing containing the measurement shaft and bias element; and

a position sensor affixed within the housing to detect a position of the measurement shaft relative to the housing,

wherein the position sensor is a magnetic position sensor.

21. A sensor device for use within a joint prosthesis, the sensor device comprising:

a measurement shaft coupled to an articular surface component of the joint prosthesis;

a bias element biasing the measurement shaft into a first unloaded position;

a housing containing the measurement shaft and bias element; and

a position sensor affixed within the housing to detect a position of the measurement shaft relative to the housing,

wherein the position sensor is an induction sensor.

22. A sensor device for use within a joint prosthesis, the sensor device comprising:

a measurement shaft coupled to an articular surface component of the joint prosthesis;

a bias element biasing the measurement shaft into a first unloaded position;

a housing containing the measurement shaft and bias element; and

a position sensor affixed within the housing to detect a position of the measurement shaft relative to the housing,

wherein the position sensor is a magnetostrictive sensor.

Continuity (3)
Continuation 15204590 · Jul 7, 2016
Provisional Application 62190054 · Jul 8, 2015
Related Publication 20190117312A1 · Apr 25, 2019
Cited By (8)
US 1,123,159 US 12,268,611 US 12,310,857 US 12,390,334 US 12,616,578 US 12,642,671 US 12,642,672 US 12,708,529