IP Library Granted Patent US 10,454,347
Granted Patent B2
US 10,454,347 · App. 15/582,390 · Granted Oct 22, 2019

Compact height torque sensing articulation axis assembly

Inventors: Travis Covington (Sunnyvale, CA); Colin Wilson (San Jose, CA)
Assignee: Auris Health, Inc.
H02K11/24A61B34/30A61B90/06F16H57/08F16H57/082H02K7/116H02K11/21A61B2017/00323A61B2034/301A61B2090/064A61B2090/066F16H2057/016F16H2057/02034F16H2057/02039
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Quick Facts
Patent No.
US 10,454,347
App. No.
15/582,390
Granted
Oct 22, 2019
Kind
B2
Abstract

A compact height torque sensing articulation axis assembly is disclosed herein having a torque sensor, an assembly mounting flange, a motor, a motor gearbox, a gearbox output shaft, an encoder, and a cable. The assembly may sense tension on robotic catheter pullwires in an articulating catheter and/or torque on a robotic output axis using the torque sensor. Disclosed embodiments may advantageously be used to achieve small, lightweight robotic catheter systems.

Claims (49)

1. A robotic surgical system, comprising:

a control system configured to be connected to an input device and to receive information for positioning or orienting a catheter from the input device; and

an instrument driver operatively connected to the control system, the instrument driver including:

a motor configured to provide rotary output to actuate movement of an elongate member;

a gearbox configured to modify the rotary output of the motor; and

a reactive torque sensor coaxial with and radially surrounding at least one of the motor and the gearbox,

wherein the control system is configured to actuate the motor in response to the information to drive an output shaft in communication with the elongate member; and

wherein the reactive torque sensor is configured to determine an output shaft torque imparted by the output shaft.

2. The robotic surgical system of claim 1 , wherein the torque sensor does not substantially add to an overall length to the instrument driver along the longitudinal axis.

3. The robotic surgical system of claim 1 , wherein the reactive torque sensor provides a grounded mounting structure for the motor and the gearbox.

4. The robotic surgical system of claim 1 , wherein at least one of the gearbox and the rotary motor is mounted to the reactive torque sensor by a first mounting flange and wherein torque sensor is mounted to the instrument driver by a second mounting flange.

5. The robotic surgical system of claim 4 , wherein at least one of the first and second mounting flanges is integrally formed with a wall of the motor or gearbox.

6. The robotic surgical system of claim 4 , wherein at least one strain gauge is placed on one or more struts placed between the first mounting flange and the second mounting flange.

7. The robotic surgical system of claim 6 , wherein the at least one strain gauge is configured to measure bending strain or shear strain.

8. The robotic surgical system of claim 7 , wherein the first mounting flange forms a first ring and the second mounting flange forms a second ring that is coaxial with the first ring.

9. The robotic surgical system of claim 8 , wherein the one or more strut extends from the first ring to the second ring.

10. The robotic surgical system of claim 1 , wherein the instrument driver is configured to adjust a pullwire tension to impart motion to a tip of the catheter.

11. The robotic surgical system of claim 1 , wherein the reactive torque sensor further comprises at least one strain gauge configured to measure the output shaft torque.

12. The robotic surgical system of claim 11 , wherein the at least one strain gauge is placed on one or more struts placed between a first mounting flange and a second mounting flange.

13. The robotic surgical system of claim 12 , wherein the at least one strain gauge is configured to measure bending strain or shear strain.

14. The robotic surgical system of claim 1 , comprising a grounded structure for supporting the motor and gearbox and wherein the reactive torque system comprises a mounting flange that couples at least one of the motor or gear box to the grounded structure.

15. An instrument driver for an elongate member of a robotic surgical system, comprising one or more drive assemblies, each assembly comprising:

a gearbox configured to actuate movement of the elongate member by driving an output shaft in communication with the elongate member;

a rotary output motor configured to drive the gearbox; and

a reactive torque sensor radially surrounding the gearbox and configured to determine an output shaft torque imparted by the output shaft to the elongate member.

16. The instrument driver of claim 15 , wherein the torque sensor adds no axial length to the drive assembly.

17. The instrument driver of claim 15 , wherein the reactive torque sensor provides a grounded mounting structure for the motor and the gearbox.

18. The instrument driver of claim 15 , wherein the rotary output motor is a brushless motor.

19. The instrument driver of claim 15 , wherein at least one of the gearbox and the rotary motor is mounted to the reactive torque sensor by a first mounting flange and wherein torque sensor is mounted to the instrument driver by a second mounting flange.

20. The instrument driver of claim 19 , wherein the reactive torque sensor further comprises at least one strain gauge configured to measure the output shaft torque.

21. The instrument driver of claim 20 , wherein the at least one strain gauge is placed on one or more struts placed between the first mounting flange and the second mounting flange.

22. A method of controlling a robotic surgical system, comprising:

rotating a rotary output shaft with a motor that drives the output shaft; and

determining an output torque of the output shaft using a torque sensor disposed in surrounding relation to the motor.

23. The method of claim 22 , comprising using the determined output torque to determine tension in an elongated member operatively coupled to the output shaft.

24. The method of claim 23 , wherein the elongated member is a pullwire.

25. The method of claim 23 , further comprising using the determined tension to perform at failure detection in the robotic surgical system.

26. A compact height apparatus for measuring an output torque, comprising:

a housing comprising a motor configured to provide rotary output via an output shaft; and

a reactive torque sensor circumferentially surrounding the motor, the reactive torque sensor having a first flange attached to the housing and a second flange attached to the motor,

wherein the reactive torque sensor measures torque relative to the housing.

27. The compact height apparatus of claim 26 , wherein the reactive torque sensor adds no axial length to the motor.

28. The compact height apparatus of claim 26 , wherein the reactive torque sensor provides a grounded mounting structure for the motor.

29. The compact height apparatus of claim 26 , wherein the motor is a brushless motor.

30. The compact height apparatus of claim 26 , further comprising an encoder attached to the motor.

31. The compact height apparatus of claim 26 , further comprising a gearbox attached to the motor.

32. The compact height apparatus of claim 31 , wherein at least one of the gearbox and the motor is mounted to the reactive torque sensor by the first flange and wherein the torque sensor is mounted to the instrument driver by the second flange.

33. The compact height apparatus of claim 26 , wherein the reactive torque sensor further comprises at least one strain gauge configured to measure an output shaft torque.

34. The compact height apparatus of claim 33 , wherein the at least one strain gauge is placed on one or more struts placed between the first flange and the second flange.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 11, 2018
From: HANSEN MEDICAL, INC.
To: AURIS HEALTH, INC.
Reel/Frame 047050/0340 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 30, 2017
From: COVINGTON, TRAVIS; WILSON, COLIN
To: HANSEN MEDICAL, INC.
Reel/Frame 042877/0208 →
Continuity (2)
Provisional Application 62329617 · Apr 29, 2016
Related Publication 20170312481A1 · Nov 2, 2017
Cited By (21)
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