IP Library Granted Patent US 12,740,801
Granted Patent B2
US 12,740,801 · App. 17/964,363 · Granted Sep 22, 2026

Method of operating an articulating ultrasonic surgical instrument

Inventors: Barry C. Worrell (Maineville, OH); Benjamin J. Danziger (Kenmore, WA); Benjamin D. Dickerson (San Francisco, CA); Brian D. Black (Loveland, OH); Cara L. Shapiro (Milford, OH); Charles J. Scheib (Loveland, OH); Craig N. Faller (Batavia, OH); Daniel J. Mumaw (Liberty Township, OH); David J. Cagle (Cincinnati, OH); David T. Martin (Milford, OH); David A. Monroe (Milford, OH); Disha V. Estera (Cincinnati, OH); Foster B. Stulen (Johns Island, SC); Frederick L. Estera (Cincinnati, OH); Geoffrey S. Strobl (Williamsburg, OH); Gregory W. Johnson (Minneapolis, MN); Jacob S. Gee (Cincinnati, OH); Jason R. Sullivan (Morrow, OH); Jeffrey D. Messerly (Cincinnati, OH); Jeffrey S. Swayze (West Chester, OH); John A. Hibner (Mason, OH); John B. Schulte (West Chester, OH); Joseph E Hollo (Liberty Township, OH); Kristen G. Denzinger (Cincinnati, OH); Kristen L. D'Uva (Cincinnati, OH); Matthew C. Miller (Cincinnati, OH); Michael R. Lamping (Cincinnati, OH); Richard W. Timm (Cincinnati, OH); Rudolph H. Nobis (Mason, OH); Ryan M. Asher (Cincinnati, OH); Stephen M. Leuck (Milford, OH); Tylor C. Muhlenkamp (Cincinnati, OH); William B. Weisenburgh, II (Maineville, OH); William A. Olson (Lebanon, OH)
Assignee: CILAG GMBH INTERNATIONAL
A61B17/320092A61B17/320068A61B18/1445A61N7/00A61B2017/003A61B2017/00309A61B2017/00314A61B2017/00327A61B2017/00398A61B2017/22018A61B2017/2927A61B2017/320069A61B2017/320071A61B2017/320088A61B2017/320089A61B2017/320093A61B2017/320094A61B2017/320095A61B2017/320097A61B2018/00589A61B2018/00595A61B2018/00601A61B2018/00607A61B2018/00619A61B2018/0063A61B2018/00642A61B2018/00791A61B2018/00875A61B2018/00892A61B2090/0811
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Quick Facts
Patent No.
US 12,740,801
App. No.
17/964,363
Granted
Sep 22, 2026
Kind
B2
Abstract

An apparatus comprises a body assembly, a shaft, an acoustic waveguide, an articulation section, an end effector, and an articulation drive assembly. The shaft extends distally from the body assembly and defines a longitudinal axis. The acoustic waveguide comprises a flexible portion. The articulation section is coupled with the shaft. A portion of the articulation section encompasses the flexible portion of the waveguide. The articulation section comprises a plurality of body portions aligned along the longitudinal axis and a flexible locking member. The flexible locking member is operable to secure the body portions in relation to each other and in relation to the shaft. The end effector comprises an ultrasonic blade in acoustic communication with the waveguide. The articulation drive assembly is operable to drive articulation of the articulation section to thereby deflect the end effector from the longitudinal axis.

Claims (44)

1 . A surgical instrument, comprising:

(a) a shaft assembly defining a longitudinal axis, wherein the shaft assembly includes:

(i) a proximal end portion,

(ii) a distal end portion configured to receive an end effector, and

(iii) an articulation section configured to deflect the distal end portion from the longitudinal axis through an articulation plane; and

(b) an articulation control assembly connected to the proximal end portion of the shaft assembly, wherein the articulation control assembly includes:

(i) an articulation control member rotatably mounted relative to the shaft assembly such that the articulation control member is spaced from the articulation plane, wherein the articulation control member is configured to be selectively manipulated by an operator, and

(ii) a transmission assembly operatively connected between the articulation control member and the articulation section of the shaft assembly, wherein the transmission assembly is configured to transmit selective manipulation of the articulation control member to the articulation section and selectively actuate the articulation section,

wherein the articulation control assembly is configured to lock without selective manipulation of the articulation control member to thereby inhibit actuation of the articulation section and unlock with selective manipulation of the articulation control member to thereby actuate the articulation section.

2 . The surgical instrument of claim 1 , wherein the transmission assembly further includes:

(A) a drive gear fixed to the articulation control member such that the articulation control member is rotatable to rotate the drive gear, and

(B) a driven gear engaged with the drive gear, wherein the driven gear is operatively connected to the articulation section such that the driven gear is configured to transmit rotation of the drive gear to the remainder of the transmission assembly to selectively actuate the articulation section.

3 . The surgical instrument of claim 2 , wherein the drive gear is in the form of a bevel drive gear, and wherein the driven gear is in the form of a bevel driven gear.

4 . The surgical instrument of claim 3 , wherein the bevel drive gear is configured to rotate about an axis that is transverse to the longitudinal axis of the shaft assembly, and wherein the bevel driven gear is configured to rotate about the longitudinal axis of the shaft assembly.

5 . The surgical instrument of claim 4 , wherein the transmission assembly further includes:

(A) a housing configured to rotate about the longitudinal axis, wherein the housing includes a plurality of inner threads about the longitudinal axis, and

(B) at least one lead screw engaged with the plurality of inner threads and configured to translate along the longitudinal axis upon rotation of the housing for actuating the articulation section,

wherein the bevel driven gear is affixed to the housing such that the articulation control member is rotatable to rotate the housing.

6 . The surgical instrument of claim 5 , wherein the at least one lead screw is configured to lock without selective manipulation of the articulation control member to thereby inhibit actuation of the articulation section and unlock with selective manipulation of the articulation control member to thereby actuate the articulation section.

7 . The surgical instrument of claim 6 , wherein the transmission assembly further includes a guide receiving the at least one lead screw thereon such that the at least one lead screw is configured to translate along the guide, and wherein the guide is further configured to inhibit rotation of the at least one lead screw.

8 . The surgical instrument of claim 7 , wherein the at least one lead screw includes a first lead screw and a second lead screw.

9 . The surgical instrument of claim 7 , wherein the transmission assembly further includes a frame, wherein the guide extends from the frame, and wherein the driven gear is rotatable relative to the frame.

10 . The surgical instrument of claim 9 , wherein the driven gear is rotatably received on the frame.

11 . The surgical instrument of claim 10 , wherein the drive gear is rotatably relative to the frame.

12 . The surgical instrument of claim 11 , wherein the drive gear is rotatably received on the frame.

13 . The surgical instrument of claim 1 , wherein the articulation control assembly further includes at least one detent feature configured to generate a tactile feedback through the articulation control member for indicating a first configuration of the articulation section.

14 . The surgical instrument of claim 1 , further comprising a handle assembly extending proximally from the shaft assembly.

15 . The surgical instrument of claim 1 , wherein the transmission assembly further includes:

(A) a housing configured to rotate about the longitudinal axis, wherein the housing includes a plurality of inner threads about the longitudinal axis, and

(B) at least one lead screw engaged with the plurality of inner threads and configured to translate along the longitudinal axis upon rotation of the housing for actuating the articulation section,

wherein the articulation control member is operatively connected to the housing such that the articulation control member is rotatable to rotate the housing.

16 . The surgical instrument of claim 1 , wherein the articulation control member is configured to rotate in a first plane about a first axis, wherein the first axis is transverse to the first plane, and wherein the first plane is parallel to the articulation plane.

17 . A surgical instrument, comprising:

(a) a shaft assembly defining a longitudinal axis and including:

(i) a proximal end portion,

(ii) a distal end portion configured to receive an end effector, and

(iii) an articulation section configured to deflect the distal end portion from the longitudinal axis; and

(b) an articulation control assembly connected to the proximal end portion of the shaft assembly, wherein the articulation control assembly includes:

(i) an articulation control member rotatably mounted relative to the shaft assembly, wherein the articulation control member is configured to be selectively manipulated by an operator, and

(ii) a transmission assembly operatively connected between the articulation control member and the articulation section of the shaft assembly, wherein the transmission assembly is configured to transmit selective manipulation of the articulation control member to the articulation section and selectively actuate the articulation section, wherein the transmission assembly includes:

(A) a bevel drive gear fixed to the articulation control member such that the articulation control member is rotatable to rotate the bevel drive gear, and

(B) a bevel driven gear engaged with the bevel drive gear and positioned on the longitudinal axis, wherein the bevel driven gear is operatively connected to the articulation section such that the bevel driven gear is configured to rotate about the longitudinal axis to transmit rotation of the bevel drive gear to the remainder of the transmission assembly to selectively actuate the articulation section,

wherein the bevel drive gear is configured to rotate in a first plane about a first axis, wherein the first axis is transverse to the first plane, wherein the articulation section is configured to deflect the distal end portion from the longitudinal axis through an articulation plane, and wherein the first plane is parallel to the articulation plane.

18 . The surgical instrument of claim 17 , wherein the bevel drive gear is configured to rotate about a first axis that is transverse to the longitudinal axis of the shaft assembly.

Continuity (4)
Continuation 16244282 · Jan 10, 2019
Continuation 14688684 · Apr 16, 2015
Provisional Application 62176880 · Apr 22, 2014
Related Publication 20230112022A1 · Apr 13, 2023
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