ARTICULATING ULTRASONIC SURGICAL INSTRUMENTS AND SYSTEMS
20230098378 · 2023-03-30
Inventors
- James R. Fagan (Erie, CO, US)
- Thomas E. Drochner (Longmont, CO, US)
- Michael B. Lyons (Boulder, CO, US)
- David J. Van Tol (Boulder, CO, US)
- Matthew S. Cowley (Frederick, CO, US)
Cpc classification
A61B17/320092
HUMAN NECESSITIES
International classification
Abstract
An articulating surgical end effector includes an expandable pivot defined at a distal end of an ultrasonic waveguide, a socket at least partially receiving the expandable pivot within an interior volume thereof, and a blade extending distally from the socket. The socket is configured to articulate about the expandable pivot in any direction, and the expandable pivot and socket together are configured to enable ultrasonic energy transmission through the ultrasonic waveguide to the blade in any articulated position of the socket relative to the expandable pivot.
Claims
1. An articulating ultrasonic surgical end effector, comprising: an expandable pivot defined at a distal end of an ultrasonic waveguide; a socket at least partially receiving the expandable pivot within an interior volume thereof, the socket configured for articulation about the expandable pivot in any direction; and a blade extending distally from the socket, where the expandable pivot and socket are configured to enable ultrasonic energy transmission through the ultrasonic waveguide to the blade in any articulated position of the socket relative to the expandable pivot.
2. The articulating ultrasonic surgical end effector according to claim 1, wherein the expandable pivot is configured to expand radially when ultrasonically excited.
3. The articulating ultrasonic surgical end effector according to claim 2, wherein the radial expansion of the expandable pivot transfers ultrasonic energy from the expandable to the socket at any articulated position.
4. The articulating ultrasonic surgical end effector according to claim 3, wherein the expandable pivot is spherical in shape.
5. The articulating ultrasonic surgical end effector according to claim 4, wherein the mating feature of the socket is at least partially spherical in shape.
6. The articulating ultrasonic surgical end effector according to claim 5, wherein the blade extends out from the socket along the central axis.
7. An ultrasonic surgical instrument, comprising: a handle assembly; an ultrasonic transducer disposed within the handle assembly; an elongated body extending distally from the handle assembly; a waveguide extending at least partially through the elongated body; and an end effector disposed on a distal end of the waveguide, the end effector comprising: an expandable pivot defined at a distal end of an ultrasonic waveguide; a socket at least partially receiving the expandable pivot within an interior volume thereof, the socket configured for articulation about the expandable pivot in any direction; and a blade extending distally from the socket, where the expandable pivot and socket are configured to enable ultrasonic energy transmission through the ultrasonic waveguide to the blade in any articulated position of the socket relative to the expandable pivot.
8. The ultrasonic surgical instrument according to claim 7, wherein the expandable pivot is configured to expand radially when ultrasonically excited.
9. The ultrasonic surgical instrument according to claim 8, wherein the radial expansion of the expandable pivot transfers ultrasonic energy through the socket to the blade at any angle of articulation.
10. The ultrasonic surgical instrument according to claim 9, wherein the expandable pivot is spherical in shape.
11. The ultrasonic surgical instrument according to claim 10, wherein the mating feature of the socket is at least partially spherical in shape.
12. The ultrasonic surgical instrument according to claim 11, wherein the blade extends from a centermost point of the at least partially spherical socket.
13. An articulating ultrasonic surgical end effector, comprising: a socket defined at a distal end of an ultrasonic waveguide, the socket including an interior volume; an expandable pivot configured to be at least partially inserted into the interior volume of the socket, the expandable pivot configured for articulation within the socket in at least one direction; and a blade extending distally from the expandable pivot, where the expandable pivot and socket are configured to enable ultrasonic energy transmission through the ultrasonic waveguide to the blade in an articulated position of the expandable pivot relative to the socket.
14. The articulating ultrasonic surgical end effector according to claim 13, wherein the expandable pivot is configured to expand radially when ultrasonically excited.
15. The articulating ultrasonic surgical end effector according to claim 14, wherein the radial expansion of the expandable pivot transfers ultrasonic energy from the expandable pivot to the socket at any articulated position.
16. The articulating ultrasonic surgical end effector according to claim 15, wherein the expandable pivot is spherical or cylindrical in shape.
17. The articulating ultrasonic surgical end effector according to claim 16, wherein the mating feature of the socket is at least partially spherical or cylindrical in shape.
18. The articulating ultrasonic surgical end effector according to claim 17, wherein the blade extends out from the expandable pivot along the central axis.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0020] The above and other aspects and features of the present disclosure will become more apparent in view of the following detailed description when taken in conjunction with the accompanying drawings wherein like reference numerals identify similar or identical elements.
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DETAILED DESCRIPTION
[0035] Referring to
[0036] Ultrasonic surgical instrument 10 generally includes a handle assembly 12, an elongated body portion 14 (
[0037] Handle assembly 12 supports a battery assembly 18 and a transducer and generator assembly (“TAG”) 20 including an ultrasonic transducer and a surgical generator. Handle assembly 12 further includes a first rotation knob 22, a second rotation knob 23, an activation button 24, and a clamp trigger 26. Clamp trigger 26 of ultrasonic surgical instrument 10 is selectively manipulatable to actuate ultrasonic instrument 10. First rotation knob 22 is selectively manipulatable to rotate elongated body portion 14 and, thus, end effector 200 relative to handle assembly 12. Second rotation knob 23 is selectively manipulatable to actuate a motor, other powered drive mechanism, or a manual drive mechanism, e.g., gears, pulleys, tension cables, etc., to articulate end effector 200 relative to handle assembly 12. As an alternative to or in addition to first and second rotation knobs 22, 23, other suitable actuation mechanisms, e.g., toggle switches, joysticks, buttons, etc., may be provided to enable rotation and/or articulation.
[0038] Battery assembly 18 and TAG 20 cooperate, upon activation of activation button 24, to enable generation and transmission of ultrasonic energy for treating tissue therewith, e.g., to coagulate, cauterize, fuse, seal, cut, desiccate, fulgurate, or otherwise treat tissue, as detailed below. Battery assembly 18 and TAG 20 are each releasably secured to handle assembly 12, and are removable therefrom to facilitate disposal of handle assembly 12, with the exception of battery assembly 18 and TAG 20. However, it is contemplated that any or all of the components of ultrasonic surgical instrument 10 may be configured as disposable single-use components or sterilizable multi-use components, and/or that endoscopic surgical instrument 10 be connectable to a remote power source or generator rather than having such components on-board.
[0039] Elongated body portion 14 of ultrasonic surgical instrument 10 defines a longitudinal axis “X-X” (waveguide 15 may likewise be centered on longitudinal axis “X-X”) and includes a proximal shaft 16, an articulation section 17, and a distal support 19. Articulation section 17 extends between and interconnects proximal shaft 16 and distal support 19. In this manner, articulation of articulation section 17 relative to proximal shaft 16 articulates end effector 200 relative to proximal shaft 16 and handle assembly 12. Articulation section 17 may include one or more articulation components, e.g., articulation joint(s), articulation linkage(s), flexible portion(s), etc., coupled between proximal shaft 16 and distal support 19 to enable articulation of distal support 19 and, thus, end effector 200 relative to proximal shaft 16 in any radial direction, e.g., through 360 degrees about longitudinal axis “X-X” of proximal shaft 16. In other versions of the device, defined direction(s) of articulation, e.g., pitch and yaw, rather than infinite directions of articulation are also contemplated.
[0040] A jaw 240 is pivotably mounted on distal support 19 and a drive assembly (not shown) operably couples clamp trigger 26 of handle assembly 12 with jaw 240 of end effector 200 such that clamp trigger 26 is selectively actuatable to pivot jaw 240 relative to distal support 19 and blade 230 of end effector 200 between an open position and a clamping position for clamping tissue between jaw 240 and blade 230. The drive assembly may include a drive shaft, drive sleeve, drive cables, and/or other suitable components extending through handle assembly 12 and elongated body portion 14 to operably couple clamp trigger 26 with jaw 240 to enable pivoting of jaw 240 between the open and clamping positions regardless of the articulation of articulation section 17. Jaw 240 includes a more-rigid structural body 242 which is pivotably mounted on distal support 19, and a more-compliant jaw liner 244 secured to the more-rigid structural body 242 and positioned to oppose blade 230 to enable clamping of tissue therebetween.
[0041] The ultrasonic transducer of TAG 20 includes a plurality of piezoelectric elements or other suitable transducer component(s) configured to convert an electrical drive signal into ultrasonic vibration energy for transmission along waveguide 15 (see
[0042] Referring to
[0043] Robotic surgical system 1000 generally includes a plurality of robot arms 1002, 1003; a control device 1004; and an operating console 1005 coupled with control device 1004. Operating console 1005 may include a display device 1006, which may be set up in particular to display three-dimensional images; and manual input devices 1007, 1008, by means of which a person (not shown), for example a surgeon, may be able to telemanipulate robot arms 1002, 1003 in a first operating mode. Robotic surgical system 1000 may be configured for use on a patient 1013 lying on a patient table 1012 to be treated in a minimally invasive manner. Robotic surgical system 1000 may further include a database 1014, in particular coupled to control device 1004, in which are stored, for example, pre-operative data from patient 1013 and/or anatomical atlases.
[0044] Each of the robot arms 1002, 1003 may include a plurality of members, which are connected through joints, and an attaching device 1009, 1011, to which may be attached, for example, a surgical tool “ST” supporting an end effector 200, 1100. End effector 200, as noted above with respect to endoscopic surgical instrument 10 (
[0045] Referring again to
[0046] With additional reference to
[0047] Articulating surgical end effector 200 includes expandable pivot 210, e.g., formed at a distal end of waveguide 15, at least partially enclosed within the socket 220. Socket 220 includes an interior volume 215 (
[0048] In use, when the ultrasonic transducer of TAG 20 transmits ultrasonic energy along waveguide 15, the expandable pivot 210 is stimulated to expand outward (radial expansion) and this expansion in turn transfers the ultrasonic energy to socket 220 and, ultimately, to the blade 230 at any angle of articulation. Accordingly, the expandable pivot 210 transitions between an contracted state P1 and an expanded state P2. More specifically, during ultrasonic energy transmission, expandable pivot 210 oscillates between the contracted state P1 and an expanded state P2.
[0049] In contrast,
[0050] Turning to
[0051] Referring now to
[0052] In other aspects of articulating surgical end effectors, the expandable pivot and the socket need not be spherical.
[0053] Moreover, in still other aspects, the relative positioning of the socket 320 and the expandable pivot 310 can be reversed such that the socket 320 is defined at the distal end of waveguide 15 and the expandable pivot 310 is defined at the proximal end of the ultrasonic blade. In this reversed configuration, the blade 330 extends distally from expandable pivot 310, and expandable pivot 310 can articulate about axis “Y-Y” while maintaining physical contact with inner surface 325 of socket 320.
[0054] While several aspects of the disclosure have been shown in the drawings, it is not intended that the disclosure be limited thereto, as it is intended that the disclosure be as broad in scope as the art will allow and that the specification be read likewise. Therefore, the above description should not be construed as limiting, but merely as exemplifications of particular embodiments. Those skilled in the art will envision other modifications within the scope and spirit of the claims appended hereto.