IP Library › Granted Patent US 11,179,211
Granted Patent B2
US 11,179,211 · App. 16/303,926 · Granted Nov 23, 2021

Robotic surgical assemblies

Inventors: Mike Zemlok (Prospect, CT); Matthew Hartzsch (Glastonbury, CT)
Assignee: Covidien LP
A61B34/71A61B18/12A61B34/35A61B34/37A61B34/70A61B34/74A61B46/10A61B46/23A61B90/50B25J9/0021B25J9/0024B25J9/04B25J9/108B25J9/1035B25J9/1045B25J15/0019B25J15/0408B25J19/0041A61B34/30A61B2017/0084A61B2017/00411A61B2017/00477A61B2017/00836A61B2017/00853A61B2017/00929A61B2018/00178A61B2034/301A61B2034/302A61B2034/715
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Quick Facts
Patent No.
US 11,179,211
App. No.
16/303,926
Granted
Nov 23, 2021
Kind
B2
Abstract

A surgical instrument for coupling to a robotic surgical assembly configured to transfer rotational forces to the surgical instrument is provided. The surgical instrument includes an elongated shaft, an end effector coupled to a distal end of the elongated shaft, and a drive assembly operatively coupled to the end effector. The drive assembly includes one or more cables connected to the end effector. Movement of the one or more cables actuates a movement of the end effector. The one or more cables may be coated with parylene.

Claims (27)

1. A surgical instrument for coupling to a robotic surgical assembly configured to transfer rotational forces to the surgical instrument, the surgical instrument comprising:

an elongated shaft;

an end effector coupled to a distal end of the elongated shaft;

a drive assembly operatively coupled to the end effector and including at least one cable connected to the end effector, wherein movement of the at least one cable actuates a movement of the end effector; and

a housing supported on a proximal end of the elongated shaft, the housing configured to couple to the robotic surgical assembly, wherein the housing includes a side surface supporting a ramped camming surface, the ramped camming surface being configured to enable the housing to be transversely coupled to the robotic surgical assembly such that a corresponding camming surface of the robotic surgical assembly engages the ramped camming surface of the surgical instrument to cam the housing in a proximal direction in response to a transverse movement of the housing relative to the robotic surgical assembly.

2. The surgical instrument of claim 1 , wherein the at least one cable is movable in response to rotational forces transmitted from the robotic surgical assembly.

3. The surgical instrument of claim 1 , wherein the drive assembly further includes a drive screw supporting a drive nut, wherein the drive nut is axially movable along the drive screw as the drive screw rotates to move the at least one cable.

4. The surgical instrument of claim 3 , further including a second drive assembly operatively coupled to the end effector, wherein the second drive assembly includes a second drive screw supporting a second drive nut that is axially movable along the second drive screw as the second drive screw rotates.

5. The surgical instrument of claim 4 , wherein the first and second drive nuts are configured to move in axially opposite directions as the first and second drive screws rotate.

6. The surgical instrument of claim 1 , wherein the drive assembly further includes a biasing member that maintains the at least one cable in tension.

7. The surgical instrument of claim 1 , wherein the housing supports at least one electrical connector configured to electrically couple to the robotic surgical assembly so that the surgical instrument can electrically communicate with the robotic surgical assembly.

8. The surgical instrument of claim 1 , wherein the at least one cable is formed of tungsten and coated with parylene.

9. The surgical instrument of claim 1 , wherein the housing has a proximal end configured to detachably couple to the robotic surgical assembly, and a distal end coupled to the elongated shaft, the ramped camming surface protruding laterally outward from the side surface.

10. The surgical instrument of claim 9 , wherein the ramped camming surface is oriented in a generally distal direction.

11. A robotic surgical instrument comprising:

a housing configured to couple to a robotic surgical assembly;

an elongated shaft extending distally from the housing;

an end effector extending distally from the elongated shaft; and

a drive assembly supported in the housing, the drive assembly including a cable connected to the end effector, wherein the cable is movable to actuate the end effector, wherein the housing includes a side surface supporting a ramped camming surface, the ramped camming surface being configured to enable the housing to be transversely coupled to the robotic surgical assembly such that a corresponding camming surface of the robotic surgical assembly engages the ramped camming surface of the surgical instrument to cam the housing in a proximal direction in response to a transverse movement of the housing relative to the robotic surgical assembly.

12. The robotic surgical instrument of claim 11 , wherein the cable is movable in response to rotational forces transmitted from the robotic surgical assembly while the housing is coupled to the robotic surgical assembly.

13. The robotic surgical instrument of claim 11 , wherein the drive assembly further includes a drive screw supporting a drive nut, wherein the drive nut is axially movable along the drive screw as the drive screw rotates to move the cable.

14. The robotic surgical instrument of claim 13 , further including a second drive assembly operatively coupled to the end effector, wherein the second drive assembly includes a second drive screw supporting a second drive nut that is axially movable along the second drive screw as the second drive screw rotates.

15. The robotic surgical instrument of claim 14 , wherein the first and second drive nuts are configured to move in axially opposite directions as the first and second drive screws rotate.

16. The robotic surgical instrument of claim 11 , wherein the drive assembly further includes a biasing member that maintains the cable in tension.

17. The robotic surgical instrument of claim 11 , wherein the cable is coated with an autoclavable material.

18. The robotic surgical instrument of claim 11 , wherein the cable is formed of tungsten.

19. The robotic surgical instrument of claim 11 , wherein the housing supports at least one electrical connector configured to electrically couple to the robotic surgical assembly so that the surgical instrument can electrically communicate with the robotic surgical assembly.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 11, 2018
From: ZEMLOK, MIKE; HARTZSCH, MATTHEW
To: COVIDIEN LP
Reel/Frame 047747/0232 →
Continuity (8)
Provisional Application 62341714 · May 26, 2016
Provisional Application 62341701 · May 26, 2016
Provisional Application 62341720 · May 26, 2016
Provisional Application 62341748 · May 26, 2016
Provisional Application 62341761 · May 26, 2016
Provisional Application 62341774 · May 26, 2016
Provisional Application 62341804 · May 26, 2016
Related Publication 20200315727A1 · Oct 8, 2020
Cited By (8)
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