Hand held electromechanical surgical handle assembly for use with surgical end effectors, and methods of use
11071561 · 2021-07-27
Assignee
Inventors
- Peter T. Collings (Shelton, CT, US)
- Xingrui Chen (Glastonbury, CT, US)
- Luis Dussan (East Haven, CT, US)
- Kelly Valentine (New Britain, CT, US)
Cpc classification
A61B2017/0046
HUMAN NECESSITIES
A61B2017/00389
HUMAN NECESSITIES
G05G11/00
PHYSICS
A61B2017/00221
HUMAN NECESSITIES
Y10T29/49002
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
A61B17/068
HUMAN NECESSITIES
A61B2017/2912
HUMAN NECESSITIES
A61B2017/291
HUMAN NECESSITIES
A61B17/320016
HUMAN NECESSITIES
A61B17/115
HUMAN NECESSITIES
A61B17/072
HUMAN NECESSITIES
International classification
A61B17/072
HUMAN NECESSITIES
A61B17/068
HUMAN NECESSITIES
G05G11/00
PHYSICS
Abstract
The present disclosure relates to hand held electromechanical powered surgical handle assemblies for use with surgical end effectors capable of clamping, cutting and/or stapling tissue and methods of use thereof. The surgical device includes a handle assembly and a drive unit assembly removably and selectively connectable to a selected first connecting feature and second connecting feature of the handle assembly. The drive unit assembly includes a motor and a drive shaft driven by the motor.
Claims
1. A handle assembly for a powered, hand held, electromechanical surgical system, the handle assembly, comprising: a handle housing defining a longitudinal axis, the handle housing including a first connecting feature and a second connecting feature, wherein each connecting feature is configured to releasably engage a removable surgical drive unit assembly; a circuit board disposed within the handle housing; at least one electrical contact associated with the first connecting feature of the handle housing and being in electrical communication with the circuit board; at least one electrical contact associated with the second connecting feature of the handle housing and being in electrical communication with the circuit board; and a first firing button for actuation by a finger of a user, the first firing button being in electrical communication with the circuit board and a battery, wherein, the removable surgical drive unit assembly is extendable from the handle assembly in a first direction when releasably engaged with the first connecting feature, and the removable surgical drive unit assembly is extendable from the handle assembly in a second direction different from the first direction when releasably engaged with the second connecting feature.
2. The handle assembly according to claim 1, further comprising a second button for actuation by a thumb of the user.
3. The handle assembly according to claim 1, wherein the first connecting feature is located at a longitudinally distal-most surface of the handle housing.
4. The handle assembly according to claim 3, wherein the second connecting feature is located on a lateral side surface of the handle housing.
5. The handle assembly according to claim 1, further comprising an attachment feature associated with each of the first connecting feature and the second connecting feature.
6. The handle assembly according to claim 5, wherein each attachment feature includes a recess formed in a surface of the handle assembly.
7. The handle assembly according to claim 1, wherein the battery is disposed within the handle housing and is in electrical communication with the circuit board.
8. The handle assembly according to claim 7, wherein the at least one electrical contact associated with the first connecting feature of the handle housing is in electrical communication with the circuit board and the battery.
9. The handle assembly according to claim 7, wherein the at least one electrical contact associated with the second connecting feature of the handle housing is in electrical communication with the circuit board and the battery.
10. The handle assembly according to claim 7, wherein the at least one first firing button of the handle assembly is in electrical communication with the circuit board and battery.
11. A method of configuring a powered, hand held, electromechanical surgical device, the method comprising: providing a handle assembly including: a handle housing defining a longitudinal axis, the handle housing including a first connecting feature and a second connecting feature; a circuit board disposed within the handle housing; a battery disposed within the handle housing and being in electrical communication with the circuit board; at least one electrical contact associated with the first connecting feature of the handle housing and being in electrical communication with the circuit board and battery; at least one electrical contact associated with the second connecting feature of the handle housing and being in electrical communication with the circuit board and battery; and at least one first firing button for actuation by a finger of a user, each first firing button being in electrical communication with the circuit board; connecting a drive unit assembly to the first connecting feature of the handle assembly, wherein a longitudinal axis of the drive unit assembly is parallel relative to the longitudinal axis of the handle housing, when an in-line configuration of the surgical device is desired; and connecting the drive unit assembly to the second connecting feature of the handle assembly, wherein the longitudinal axis of the drive unit assembly is angled relative to the longitudinal axis of the handle housing, when a pistol-grip configuration of the surgical device is desired.
12. The method according to claim 11, further comprising: removably and selectively connecting the drive unit assembly to a selected one of the first connecting feature and the second connecting feature of the handle assembly, the drive unit assembly including: a drive unit housing defining a longitudinal axis, the drive unit housing including a connecting feature configured and adapted to mate with a selected one of the first connecting feature and the second connecting feature of the handle assembly; a motor disposed within the drive unit housing; a drive shaft rotatably supported in and extending from the drive unit housing, the drive shaft being driven by the motor; and at least one electrical contact associated with the connecting feature of the drive unit housing and being in electrical communication with the motor.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Embodiments of the present disclosure are described herein with reference to the accompanying drawings, wherein:
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DETAILED DESCRIPTION OF EMBODIMENTS
(9) Embodiments of the presently disclosed surgical systems and/or handle assemblies are described in detail with reference to the drawings, in which like reference numerals designate identical or corresponding elements in each of the several views. As used herein the term “distal” refers to that portion of the surgical system and/or handle assembly, or component thereof, farther from the user, while the term “proximal” refers to that portion of the surgical system and/or handle assembly, or component thereof, closer to the user.
(10) A surgical device, in accordance with an embodiment of the present disclosure, is generally designated as 100, and is in the form of a powered hand held electromechanical handle assembly configured for selective attachment thereto of a plurality of different end effectors, either directly thereto or through an adapter, that are each configured for actuation and manipulation by the powered hand held electromechanical surgical handle assembly.
(11) As illustrated in
(12) Housing 104 of handle assembly 102 houses a circuit board 150. Circuit board 150 is configured to control the various operations of surgical device 100.
(13) Housing 104 of handle assembly 102 also removably or non-removably houses a battery 156 therein. Battery 156 may be rechargeable, non-rechargeable, re-useable and/or disposable. Battery 156 is configured to supply power to any of the electrical components of surgical device 100.
(14) Housing 104 of handle assembly 102 supports at least one trigger or button 106 on a surface or side thereof for engagement by an index finger of the user or surgeon. Housing 104 of handle assembly 102 further supports at least one other trigger or button 108 on a surface or side thereof for engagement by a thumb of the user or surgeon.
(15) It is contemplated that trigger and/or button 106, 108 may be in the form of trigger switches, Hall Effect switches, pressure switches, contact switches, touch pads, inductance switches, dials, toggles, rockers, wheels and the like.
(16) The actuation of trigger 106 or 108 causes circuit board 150 to provide appropriate signals to a drive unit assembly 200 (as will be discussed in greater detail below) to close a tool assembly 304 of end effector 300 (see
(17) As can be seen in
(18) With reference to
(19) Housing 202 of drive unit assembly 200 includes a connecting feature 210 configured and adapted to selectively and removably connect with either first connecting feature 110 or second connecting feature 120 of handle assembly 102. Connecting feature 220 includes a respective electrical contact or terminal 222 associated therewith which is in electrical communication with a motor 230 (as will be discussed in greater detail below).
(20) For example, in an embodiment, each connecting feature 110, 120 of handle assembly 102 may be in the form of a male plug for insertion into connecting feature 210 of drive unit assembly 200 which may be in the from of a female receptacle, or vice-versa. It is envisioned that the interface between connecting feature 210 of drive unit assembly 200 and either first connecting feature 110 or second connecting feature 120 of handle assembly 102 may be in the form of a snap-fit connection, bayonet-type connection or the like.
(21) As can be seen in
(22) Further, as can be seen in
(23) Housing 202 of drive unit assembly 200 supports at least one motor 230 therein. Motor 230 may be brushed or brushless. Housing 202 may include heat dissipating features in the form of slits, apertures or the like formed therein, or in the form of heat sinks.
(24) Drive unit housing 202 of drive unit assembly 200 supports at least one electrical contact or receptacle 212 for selective electrical connection to a respective electrical contact or terminal 112, 122 of connecting feature 110, 120 of handle assembly 102 when drive unit assembly 200 is connected to handle assembly 102. Electrical contact 212 is in electrical communication with motor 230. In this manner, when drive unit assembly 200 is connected to handle assembly 102, motor 230 is in electrical communication with circuit board 150 and battery 156 of handle assembly 102.
(25) As illustrated in
(26) While a latch assembly 214 is shown supported on drive unit assembly 200, it is contemplated that multiple latch assemblies may be provided on handle assembly and that a complementary recess may be provided in drive unit assembly. Additionally, it is contemplated that selective connection/disconnection of handle assembly 102 and drive unit assembly 200 to/from one another may be accomplished using any number of features, including and not limited to a locking pin/rod/post arrangement, a retractable collar and ball pin arrangement and the like.
(27) As can be seen in
(28) Connecting portion 202a of drive unit housing 202 may define a cylindrical recess that receives a drive coupling assembly 210 of adapter assembly 400 when adapter assembly 400 is mated to drive unit housing 202. Connecting portion 202a of drive unit housing 202 rotatably supports at least one rotatable drive shaft 204 (see
(29) When adapter assembly 400 is mated to connecting portion 202a of drive unit housing 202, each of rotatable drive shafts 204 of connecting portion 202a of drive unit housing 202 couples with a corresponding rotatable connector sleeve (not shown) of adapter assembly 400. Specifically, for example, the interface between a corresponding drive shaft 204 and a connector sleeve are keyed such that rotation of drive shaft 204 of connecting portion 202a of drive unit housing 202 causes a corresponding rotation of the corresponding connector sleeve of adapter assembly 400.
(30) The mating of each of drive shafts 204 of connecting portion 202a of drive unit housing 202 with corresponding connector sleeves of adapter assembly 400 allows rotational forces to be independently transmitted via each of the respective connector interfaces. Drive shafts 204 of connecting portion 202a of drive unit housing 202 may be configured to be independently rotated by motor 230. If multiple drive shafts are provided, drive unit assembly 200 may include a function selection module (not shown) which functions to select which drive shaft of the drive shafts 204 of connecting portion 202a of drive unit housing 202 is to be driven by motor 230.
(31) Each of drive shafts 204 of connecting portion 202a of drive unit housing 202 has a keyed and/or substantially non-rotatable interface with respective connector sleeves of the adapter, wherein when the adapter is coupled to drive unit assembly 200, rotational force(s) are selectively transferred from motor 230 of drive unit assembly 200 to the adapter.
(32) The selective rotation of drive shafts 204 of connecting portion 202a of drive unit housing 202 allows surgical device 100 to selectively actuate different functions of the end effector. As will be described in greater detail below, selective and independent rotation of a first drive shaft of drive shafts 204 of connecting portion 202a of drive unit housing 202 may correspond to the selective and independent opening and closing of a tool assembly of the end effector, and driving of a stapling/cutting component of the tool assembly of the end effector.
(33) Also, the selective and independent rotation of a second drive shaft (not shown) of drive shafts 204 of connecting portion 202a of drive unit housing 202 may correspond to the selective and independent articulation of a tool assembly 304 of end effector 300 transverse to longitudinal axis “X2” of drive unit assembly 200 (see
(34) In use, depending on the particular surgical procedure, depending on the particular end effectors to be utilized for the surgical procedure, and depending on the desired hand grip the surgeon prefers, desires or needs in order to perform the surgical procedure, the surgeon (or other operating room technician) selectively connects drive unit assembly 200 to either first connecting assembly or feature 110 formed or provided in/on the first surface or side of handle assembly 102 or second connecting assembly or feature 120 formed or provided in/on the second surface or side of handle assembly 102.
(35) When drive unit assembly 200 is connected to first connecting assembly or feature 110 formed or provided in/on the first surface or side of handle assembly 102, the surgeon may grip surgical device 100 in an in-line of handshake grip fashion. When drive unit assembly 200 is connected to second connecting assembly or feature 120 formed or provided in/on the second surface or side of handle assembly 102, the surgeon may grip surgical device 100 in a pistol-grip fashion.
(36) As illustrated in
(37) End effector 300 includes a proximal body portion 302 and a tool assembly 304. Proximal body portion 302 is releasably attached to a distal coupling of the adapter and tool assembly 304 is pivotally attached to a distal end of proximal body portion 302. Tool assembly 304 includes an anvil assembly 306 and a cartridge assembly 308. Cartridge assembly 308 is pivotal in relation to anvil assembly 306 and is movable between an open or unclamped position and a closed or clamped position for insertion through a cannula of a trocar.
(38) Proximal body portion 302 includes at least a drive assembly 360 and an articulation link 366.
(39) Reference may be made to U.S. Patent Publication No. 2009/0314821, filed on Aug. 31, 2009, entitled “TOOL ASSEMBLY FOR A SURGICAL STAPLING DEVICE,” the entire content of which is incorporated herein by reference, or U.S. patent application Ser. No. 13/904,497, filed on May 29, 2013, (U.S. Patent Publication No. 2014/0012237), the entire content of which was previously incorporated herein by reference, for a detailed discussion of the construction and operation of end effector 300.
(40) In an embodiment, it is contemplated that handle assembly 102 and drive unit assembly 200 may be provided with wireless communication components such that circuit board 150 of handle assembly 102 may wirelessly communicate with motor 230 of drive unit assembly 200. Examples of wireless communication components include, and are not limited to, Bluetooth, WIFI 802.11, zigby, etc.
(41) In accordance with the present disclosure, information that may be communicated between handle assembly 102 and drive unit assembly 200 includes, and is not limited to information about motor control (i.e., current, speed, turns, torque), about forces, about switch activation, about system status (i.e., error/fault); information about an identification of components, about log information/usage counters; information about the environment (i.e., temperature, pressure, humidity); information about tissue properties (i.e., levels of oxygen, blood flow, tissue thickness); video/imaging information; and/or information about battery life/power.
(42) It will be understood that various modifications may be made to the embodiments of the presently disclosed adapter assemblies. Therefore, the above description should not be construed as limiting, but merely as exemplifications of embodiments. Those skilled in the art will envision other modifications within the scope and spirit of the present disclosure.