IP Library › Patent Application 18269714
Patent Application
App. No. 18/269,714

SURGICAL SYSTEM FOR CUTTING WITH NAVIGATED ASSISTANCE

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Quick Facts
Patent No.
US None
App. No.
18/269,714
Abstract

Described herein are robotic arm assemblies that are configured to assist in making planar cuts in an orthopedic surgical procedure. The robotic arm assemblies have less than three motorized joints, but possess the functionality of conventional robotic arm assemblies that have greater numbers of motorized joints. The robotic arm assemblies further include one to four non-motorized joints. The non-motorized joints can include braking or locking mechanisms that are configured to selectively slow or lock the movement of the joints and the associated arm sections of the robotic arm assembly.

Claims (51)

1 . A robotic arm assembly comprising:

a plurality of arm sections;

at least one motorized joint, wherein each motorized joint comprises an actuation unit configured to move the motorized joint in order to control the movement of an adjacent arm section connected thereto;

a plurality of non-motorized joints, wherein each of the plurality of non-motorized joints is configured to control the movement of the adjacent arm section without the actuation unit; and

a braking mechanism associated with one or more of the plurality of non-motorized joints, the braking mechanism configured to arrest movement of the adjacent arm section connected to the one or more of the plurality of non-motorized joints;

wherein:

the plurality of arm sections are connected to each other by the at least one non-motorized joint and the plurality of non-motorized joints,

the at least one motorized joint and the plurality of non-motorized joints collectively are configured to provide six degrees of freedom, and

a number of the at least one motorized joint number is less than a number of the plurality of non-motorized joints.

2 . The robotic arm assembly of claim 1 , further comprising an end effector disposed at a distal end thereof.

3 . The robotic arm assembly of claim 2 , wherein the end effector is configured to make planar cuts in an orthopedic surgical procedure.

4 . The robotic arm assembly of claim 1 , wherein the braking mechanism is configured to simultaneously lock two or more of the plurality of non-motorized joints.

5 . The robotic arm assembly of claim 4 , wherein:

the braking mechanism is associated with one of the at least one motorized joint; and

the braking mechanism is configured to brake the motorized joint with which it is associated and the one or more of the non-motorized joints of adjacent arm sections.

6 . The robotic arm assembly of claim 1 , wherein the braking mechanism comprises a motor that is coupled to and configured to actuate a mechanical braking assembly.

7 . A surgical system comprising:

a robotic arm assembly comprising:

a plurality of arm sections,

at least one motorized joint, wherein each motorized joint comprises an actuation unit configured to move the motorized joint in order to control the movement of an adjacent arm section connected thereto,

a plurality of non-motorized joints, wherein each of the plurality of non-motorized joints is configured to control the movement of the adjacent arm section without the actuation unit, and

a braking mechanism associated with one or more of the plurality of non-motorized joints, the braking mechanism configured to arrest movement of the adjacent arm section connected to the one or more of the plurality of non-motorized joints,

wherein:

the plurality of arm sections are connected to each other by the at least one non-motorized joint and the plurality of non-motorized joints,

the at least one motorized joint and the plurality of non-motorized joints collectively are configured to provide six degrees of freedom, and

a number of the at least one motorized joint number is less than a number of the plurality of non-motorized joints;

a tracking system configured to identify a pose of the robotic arm assembly; and

a computer system coupled to the tracking system and the braking mechanism, the computer system comprising a processor configured to control the braking mechanism based on the pose of the robotic arm assembly.

8 . The surgical system of claim 7 , wherein the robotic arm assembly further comprises an end effector disposed at a distal end thereof.

9 . The surgical system of claim 8 , wherein the end effector is configured to make planar cuts in an orthopedic surgical procedure.

10 . The surgical system of claim 7 , wherein the braking mechanism is configured to simultaneously lock two or more of the plurality of non-motorized joints.

11 . The surgical system of claim 10 , wherein:

the braking mechanism is associated with one of the at least one motorized joint; and

the braking mechanism is configured to brake the motorized joint with which it is associated and the one or more of the non-motorized joints of adjacent arm sections.

12 . The surgical system of claim 7 , wherein the braking mechanism comprises a motor that is coupled to and configured to actuate a mechanical braking assembly.

13 . The surgical system of claim 7 , wherein the processor is further configured to:

receive, from the tracking system, the pose of the robotic arm assembly;

determine whether the received pose corresponds to a predetermined pose for the robotic arm assembly; and

selectively control the braking mechanism based on the determination whether the received pose corresponds to the predetermined pose.

14 . The surgical system of claim 7 , wherein the tracking system is configured to identify an optical tracker disposed on at least one of the plurality of arm sections.

15 . A method of controlling a robotic arm assembly, the robotic arm assembly comprising a plurality of arm sections, at least one motorized joint, wherein each motorized joint comprises an actuation unit configured to move the motorized joint in order to control the movement of an adjacent arm section connected thereto, a plurality of non-motorized joints, wherein each of the plurality of non-motorized joints is configured to control the movement of the adjacent arm section without the actuation unit, and a braking mechanism associated with one or more of the plurality of non-motorized joints, the braking mechanism configured to arrest movement of the adjacent arm section connected to the one or more of the plurality of non-motorized joints, wherein the plurality of arm sections are connected to each other by the at least one non-motorized joint and the plurality of non-motorized joints, wherein the at least one motorized joint and the plurality of non-motorized joints collectively are configured to provide six degrees of freedom, and wherein a number of the at least one motorized joint number is less than a number of the plurality of non-motorized joints, the method comprising:

receiving, from a tracking system, a pose of the robotic arm assembly;

determining whether the received pose corresponds to a predetermined pose for the robotic arm assembly; and

selectively controlling the braking mechanism based on the determination whether the received pose corresponds to the predetermined pose.

16 . The method of claim 15 , wherein the robotic arm assembly further comprises an end effector disposed at a distal end thereof, the end effector configured to make planar cuts in an orthopedic surgical procedure.

17 . The method of claim 15 , wherein the braking mechanism is configured to simultaneously lock two or more of the plurality of non-motorized joints.

18 . The method of claim 17 , wherein:

the braking mechanism is associated with one of the at least one motorized joint; and

the braking mechanism is configured to brake the motorized joint with which it is associated and the one or more of the non-motorized joints of adjacent arm sections.

19 . The method of claim 15 , wherein the braking mechanism comprises a motor that is coupled to and configured to actuate a mechanical braking assembly.

20 . The method of claim 15 , wherein the tracking system is configured to identify an optical tracker disposed on at least one of the plurality of arm sections.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 16, 2025
From: DUMPE, SAMUEL C.; JARAMAZ, BRANISLAV
To: SMITH & NEPHEW, INC.
Reel/Frame 071731/0328 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 16, 2025
From: SMITH & NEPHEW, INC.
To: SMITH & NEPHEW, INC.; SMITH & NEPHEW ORTHOPAEDICS AG; SMITH & NEPHEW ASIA PACIFIC PTE. LIMITED
Reel/Frame 071731/0588 →