IP Library › Granted Patent US 12,733,928
Granted Patent B2
US 12,733,928 · App. 19/078,607 · Granted Sep 15, 2026

Transmission assembly for driving instrument motion, and related devices, systems and methods

Inventors: William A. Burbank (Sandy Hook, CT); Matthew Aaron Wixey (Rochester, CT)
Assignee: Intuitive Surgical Operations, Inc.
A61B17/068A61B34/35B25J9/104A61B2017/00398
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Quick Facts
Patent No.
US 12,733,928
App. No.
19/078,607
Granted
Sep 15, 2026
Kind
B2
Abstract

A medical instrument comprises an instrument shaft, a movable component coupled to the instrument shaft, a rotational actuation element extending through the instrument shaft and operably coupled to the movable component, and a transmission assembly movably coupled to the instrument shaft. The transmission assembly comprises a first drive member configured to drive translation of the instrument shaft relative to the transmission assembly, and a second drive member coupled to the rotational actuation element and configured to drive rotation of the rotational actuation element. Translation of the instrument shaft relative to the transmission assembly causes translation of the rotational actuation element relative to the transmission assembly.

Claims (56)

1 . A medical instrument comprising:

an instrument shaft;

a movable component coupled to the instrument shaft;

a rotational actuation element extending through the instrument shaft and operably coupled to the movable component; and

a transmission assembly movably coupled to the instrument shaft and comprising:

a first drive member configured to drive translation of the instrument shaft relative to the transmission assembly; and

a second drive member coupled to the rotational actuation element and configured to drive rotation of the rotational actuation element;

wherein translation of the instrument shaft relative to the transmission assembly causes translation of the rotational actuation element relative to the transmission assembly.

2 . The medical instrument of claim 1 , further comprising:

a gear assembly coupled to the rotational actuation element,

wherein the second drive member comprises a drive shaft coupled to the gear assembly such that rotation of the drive shaft drives rotation of the rotational actuation element.

3 . The medical instrument of claim 2 , wherein:

the gear assembly comprises a first gear coupled to the drive shaft and a second gear coupled to the rotational actuation element; and

the first gear is translatable along the drive shaft.

4 . The medical instrument of claim 3 , wherein:

translation of the instrument shaft relative to the transmission assembly causes translation of the first gear along the drive shaft.

5 . The medical instrument of claim 2 , further comprising:

a gear housing coupled to a proximal portion of the instrument shaft and housing the gear assembly.

6 . The medical instrument of claim 1 , further comprising:

an end effector coupled to a distal end of the instrument shaft, wherein the movable component comprises a portion of the end effector.

7 . The medical instrument of claim 6 , wherein:

the end effector comprises a jaw mechanism and the movable component comprises a translatable component coupled to drive opening and closing motion of the jaw mechanism.

8 . The medical instrument of claim 7 , wherein:

the end effector comprises a stapler and the movable component comprises a staple firing mechanism translatable relative to the jaw mechanism to drive opening and closing of the jaw mechanism and firing of staples.

9 . The medical instrument of claim 6 , further comprising:

a pushable actuation element; and

a rotary-to-linear motion conversion mechanism,

wherein:

the portion of the end effector comprises a translatable component coupled to the pushable actuation element; and

the rotational actuation element is coupled to the pushable actuation element by the rotary-to-linear motion conversion mechanism such that rotation of the rotational actuation element drives translation of the translatable component.

10 . The medical instrument of claim 6 , wherein the portion of the end effector is coupled directly with the rotational actuation element.

11 . The medical instrument of claim 10 , wherein:

the end effector comprises a jaw mechanism and the portion of the end effector is an actuation link configured to drive motion of the jaw mechanism.

12 . The medical instrument of claim 1 , further comprising:

a plurality of pullable actuation elements;

wherein:

the first drive member comprises a drum; and

the plurality of pullable actuation elements are coupled to the drum and to the instrument shaft such that rotation of the drum drives translation of the instrument shaft relative to the transmission assembly.

13 . The medical instrument of claim 12 , wherein the movable component is a first movable component and the medical instrument further comprises:

a second movable component coupled to the instrument shaft;

wherein:

a first pullable actuation element of the plurality of pullable actuation elements is coupled to the second movable component and to the drum; and

the transmission assembly further comprises a third drive member configured to actuate the first pullable actuation element to drive a degree of freedom of motion of the second movable component.

14 . The medical instrument of claim 13 , wherein the third drive member comprises an actuation transfer mechanism coupled to the first pullable actuation element such that the first pullable actuation element is independently actuatable by the third drive member and the first drive member.

15 . The medical instrument of claim 13 , wherein the second movable component comprises an articulable structure.

16 . The medical instrument of claim 15 , wherein the rotatable rotational actuation element extends through the articulable structure.

17 . The medical instrument of claim 15 , wherein the rotatable rotational actuation element is coupled to a pushable actuation element that extends through the articulable structure.

18 . A method of operating a medical instrument comprising an instrument shaft, a transmission assembly, and a movable component, the method comprising:

causing motion of the instrument shaft relative to the transmission assembly by driving a first drive member of the transmission assembly; and

causing motion of the movable component by driving a second drive member of the transmission assembly to rotate a rotational actuation element that extends through the instrument shaft and is operably coupled to the movable component;

wherein translation of the instrument shaft relative to the transmission assembly causes translation of the rotational actuation element relative to the transmission assembly.

19 . The method of claim 18 , wherein:

driving the second drive member of the transmission assembly to rotate the rotational actuation element comprises causing a drive shaft of the second drive member to rotate, the drive shaft operably coupled to the rotational actuation element by a gear assembly coupled to the instrument shaft; and

the translation of the instrument shaft relative to the transmission assembly causes translation of the gear assembly along the drive shaft.

20 . The method of claim 18 , wherein:

causing motion of the movable component comprises converting rotation of the rotational actuation element into translation of the movable component.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 14, 2025
From: BURBANK, WILLIAM A.; WIXEY, MATTHEW AARON
To: INTUITIVE SURGICAL OPERATIONS, INC.
Reel/Frame 070510/0112 →
Continuity (2)
Provisional Application 63565170 · Mar 14, 2024
Related Publication 20250288291A1 · Sep 18, 2025
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