IP Library Granted Patent US 11,811,253
Granted Patent B2
US 11,811,253 · App. 17/708,064 · Granted Nov 7, 2023

Surgical robotic system with fault state detection configurations based on motor current draw

Inventors: Frederick E. Shelton (Hillsboro, OH); Mark D. Overmyer (Cincinnati, OH); David C. Yates (Morrow, OH); Jason L. Harris (Lebanon, OH)
Assignee: Cilag GmbH International
H02J7/007A61B17/068A61B17/07207H02J7/0029H02J7/0063A61B90/98A61B2017/0003A61B2017/003A61B2017/00017A61B2017/0046A61B2017/00075A61B2017/00119A61B2017/00154A61B2017/00398A61B2017/00473A61B2017/00477A61B2017/00734A61B2017/00876A61B2017/07257A61B2017/07271A61B2017/07278A61B2017/07285A61B2017/2927A61B2017/2931A61B2017/2943A61B2090/034A61B2090/0808A61B2090/0809A61B2090/0814H02J7/00714H02J7/007182H02J7/007194
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 11,811,253
App. No.
17/708,064
Filed
Mar 30, 2022
Granted
Nov 7, 2023
Kind
B2
Art Unit
3731
USPC
227/175.2
Abstract

A surgical robotic system includes a housing, wherein the housing includes a rotary drive; a motor that applies a rotary motion to the rotary drive; a surgical tool that releasably attaches to the housing, the surgical tool including: an end effector; a rotary interface that releasably couples to the rotary drive; a firing assembly; a lockout member movable from a locked state to an unlocked state by a sled; and a control circuit communicably coupled to the motor, wherein the control circuit is configured to: activate the motor to effect the motion of the firing assembly; monitor a current draw of the motor during the motion of the firing assembly; detect a fault state in the motion of the firing assembly based on the current draw of the motor; stop the motor based on the detection of the fault state; and alert a user regarding the fault state.

Claims (47)

1. A surgical robotic system for deploying staples from a staple cartridge including a sled, the surgical robotic system comprising:

a housing, wherein the housing comprises a rotary drive;

a motor that applies a rotary motion to the rotary drive;

a surgical tool that releasably attaches to the housing, the surgical tool comprising:

an end effector, comprising:

a first jaw; and

a second jaw movable relative to the first jaw from an open configuration toward a closed configuration, wherein the second jaw comprises a longitudinal channel configured to releasably receive the staple cartridge;

a rotary interface that releasably couples to the rotary drive;

a firing assembly, wherein the rotary interface is configured to effect a motion of the firing assembly to advance the sled from an unspent position within the staple cartridge, wherein the firing assembly comprises a firing member, comprising:

a first camming portion configured to engage the first jaw; and

a second camming portion configured to engage the second jaw;

a lockout member movable from a locked state to an unlocked state by the sled while the sled is in the unspent position, wherein the lockout member is configured to block advancement of the firing member while the lockout member is in the locked state;

a user interface; and

a control circuit communicably coupled to the motor and the user interface, wherein the control circuit is configured to:

activate the motor to effect the motion of the firing assembly;

monitor a current draw of the motor during the motion of the firing assembly;

detect a fault state in the motion of the firing assembly based on the current draw of the motor;

stop the motor based on the detection of the fault state; and

cause the user interface to alert a user regarding the fault state.

2. The surgical robotic system of claim 1 , wherein the detection of the fault state by control circuit is based on a predetermined threshold associated with the current draw of the motor.

3. The surgical robotic system of claim 1 , wherein the control circuit is configured to cause the motor to reset the firing member.

4. The surgical robotic system of claim 3 , wherein the detection of the fault state by control circuit is based on a predetermined threshold associated with the current draw of the motor.

5. The surgical robotic system of claim 1 , wherein the motion of the firing assembly comprises moving the second jaw toward the first jaw.

6. The surgical robotic system of claim 1 , wherein the detection of the fault state by the control circuit occurs when the current draw of the motor is below a predetermined threshold.

7. A surgical robotic system, comprising:

a housing, wherein the housing comprises a rotary drive; and

a motor that applies a rotary motion to the rotary drive;

a surgical tool that releasably attaches to the housing, the surgical tool comprising:

an end effector, comprising:

a first jaw;

a second jaw movable relative to the first jaw from an open configuration toward a closed configuration, wherein the second jaw comprises a longitudinal channel; and

a staple cartridge releasably received in the longitudinal channel, wherein the staple cartridge comprises:

a sled; and

staples deployable from the staple cartridge by advancement of the sled from an unspent position;

a rotary interface that releasably couples to the rotary drive;

a firing assembly, wherein the rotary interface is configured to effect a motion of the firing assembly to advance the sled from an unspent position within the staple cartridge, wherein the firing assembly comprises a firing member, comprising:

a first camming portion configured to engage the first jaw; and

a second camming portion configured to engage the second jaw;

a lockout member movable from a locked state to an unlocked state by the sled while the sled is in the unspent position, wherein the lockout member is configured to block advancement of the firing member while the lockout member is in the locked state;

a user interface; and

a control circuit communicably coupled to the motor and the user interface, wherein the control circuit is configured to:

activate the motor to effect the motion of the firing assembly;

monitor a current draw of the motor during the motion of the firing assembly;

detect a fault state in the motion of the firing assembly based on the current draw of the motor;

stop the motor based on the detection of the fault state; and

cause the user interface to alert a user regarding the fault state.

8. The surgical robotic system of claim 7 , wherein the control circuit is configured to cause the motor to reset the firing member.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 13, 2022
From: SHELTON, FREDERICK E., IV; OVERMYER, MARK D.; YATES, DAVID C.; HARRIS, JASON L.
To: ETHICON ENDO-SURGERY, LLC
Reel/Frame 060183/0967 →
CHANGE OF NAME Recorded Jun 13, 2022
From: ETHICON ENDO-SURGERY, LLC
To: ETHICON LLC
Reel/Frame 060184/0110 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 13, 2022
From: ETHICON LLC
To: CILAG GMBH INTERNATIONAL
Reel/Frame 060349/0772 →
Continuity (3)
Continuation 16432319 · Jun 5, 2019
Continuation 15131963 · Apr 18, 2016
Related Publication 20220218332A1 · Jul 14, 2022
Cited By (1)
US 12,279,915