IP Library › Granted Patent US 10,258,417
Granted Patent B2
US 10,258,417 · App. 15/112,707 · Granted Apr 16, 2019

Sensorless force control for transeopagel echocardiography probe

Inventors: Aleksandra Popovic (Boston, MA); David Paul Noonan (New York, NY)
Assignee: KONINKLIJKE PHILIPS N.V.
A61B34/37A61B1/0016A61B1/00039A61B1/00057A61B1/31A61B8/0883A61B8/12A61B34/30A61M25/0116A61M25/09041A61B1/00006A61B1/0051A61B2017/00725A61B2034/301A61B2090/065
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 10,258,417
App. No.
15/112,707
Granted
Apr 16, 2019
Kind
B2
Abstract

A robotic actuation system for sensorless force control of an interventional tool ( 14 ) having cable driven distal end (e.g., a probe, a steerable catheter, a guidewire and a colonoscope). The system employs a robotic actuator ( 30 ) having one or more motorized gears operate the cable drive of the interventional tool ( 14 ). The system further employs a robotic workstation ( 20 ) to generate motor commands for simultaneous actuation position and contact force control of the interventional tool ( 14 ). The motor commands are a function of an actuation position measurement and a motor current measurement of the at least one motorized gear for a desired actuation position of the interventional tool ( 14 ).

Claims (29)

1. A robotic workstation for sensorless force control of an interventional tool having a cable driven distal end, the robotic workstation comprising:

an actuation controller including

a calibration lookup table of expected motor currents for a measured motor position of one or each of at least one motorized gear engaging the interventional tool, and

a calibration curve including a force-to-motor current curve for the interventional tool;

wherein the actuation controller is configured to generate motor commands for simultaneous actuation position and contact force control of the interventional tool derived from the calibration lookup table and the calibration curve; and

wherein the robotic workstation is configured to generate the motor commands as a function of an actuation position measurement and a motor current measurement of the at least one motorized gear for a desired actuation position of the interventional tool.

2. The robotic workstation of claim 1 ,

wherein the actuation controller generates a motor position error as a function of a comparison of a measured motor position of one or each of the at least one motorized gear to a desired motor position of one or each of the at least one motorized gear associated with the desired actuation position of the interventional tool;

wherein the robotic workstation generates a contact force error as a function of a comparison of an expected contact force of the interventional tool to a desired contact force of the interventional tool; and

wherein the motor commands are generated by the actuator controller to minimize the motor position error and the contact force error.

3. The robotic workstation of claim 2 ,

wherein the actuation controller derives the expected contact force of the interventional tool from the calibration lookup table and the calibration curve.

4. The robotic workstation of claim 3 , wherein the actuation controller inputs a measured motor position of one or each of the at least one motorized gear into the calibration lookup table to output at least one expected motor current.

5. The robotic workstation of claim 4 , wherein the actuation controller applies the at least one expected motor current and a measured current motor of one or each of the at least one motorized gear to the calibration curve to output the expected contact force of the interventional tool.

6. The robotic workstation of claim 1 , wherein the interventional tool is one of a cable driven group of interventional tools including a probe, a steerable catheter, a guidewire and a colonoscope.

7. A robotic workstation for sensorless force control of an interventional tool having a cable driven distal end, the robotic workstation comprising:

an actuation position calibrator configured to generate a calibration lookup table of expected motor currents for a measured motor position of one or each of at least one motorized gear engaging the interventional tool;

a contact force calibrator configured to a generate a calibration curve including a force-to-motor current curve for the interventional tool;

an actuation controller operably connected to the actuation position calibrator and the contact force calibrator, wherein the actuator controller is configured to generate motor commands for simultaneous actuation position and contact force control of the interventional tool derived from the calibration lookup table and the calibration curve; and

wherein the robotic workstation is configured to generate the motor commands as a function of an actuation position measurement and a motor current measurement of the at least one motorized gear for a desired actuation position of the interventional tool.

8. The robotic workstation of claim 7 ,

wherein the actuation controller generates a motor position error as a function of a comparison of a measured motor position of one or each of the at least one motorized gear to a desired motor position of one or each of the at least one motorized gear associated with the desired actuation position of the interventional tool;

wherein the robotic workstation generates a contact force error as a function of a comparison of an expected contact force of the interventional tool to a desired contact force of the interventional tool; and

wherein the motor commands are generated by the actuator controller to minimize the motor position error and the contact force error.

9. The robotic workstation of claim 8 ,

wherein the actuation controller derives the expected contact force of the interventional tool from the calibration lookup table and the calibration curve.

10. The robotic workstation of claim 9 , wherein the actuation controller inputs a measured motor position of one or each of the at least one motorized gear into the calibration lookup table to output at least one expected motor current.

11. The robotic workstation of claim 10 , wherein the actuation controller applies the at least one expected motor current and a measured current motor of one or each of the at least one motorized gear to the calibration curve to output the expected contact force of the interventional tool.

12. The robotic workstation of claim 7 , wherein the interventional tool is one of a cable driven group of interventional tools including a probe, a steerable catheter, a guidewire and a colonoscope.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 30, 2018
From: POPOVIC, ALEKSANDRA; NOONAN, DAVID PAUL
To: KONINKLIJKE PHILIPS N.V.
Reel/Frame 046752/0424 →
Continuity (2)
Provisional Application 61931203 · Jan 24, 2014
Related Publication 20160338787A1 · Nov 24, 2016