1. Technical Field
The present disclosure relates generally to powered surgical devices. More specifically, the present disclosure relates to adapter assemblies for selectively connecting end effectors to actuation units of powered surgical devices.
2. Background of Related Art
Powered devices for use in surgical procedures typically convert rotational motion from a handle assembly to linear motion for effectuating one or more functions, e.g., clamping, stapling, cutting. To permit reuse of the handle assemblies of these powered surgical devices and so that the handle assembly may be used with a variety of end effectors, adapter assemblies have been developed for selective attachment to the handle assemblies and to a variety of end effectors. Following use, the adapter assembly may be disposed of along with the end effector.
An adapter assembly for operably connecting an end effector to a powered surgical instrument is provided. The adapter assembly includes a drive coupling assembly and first, second, and third drive assemblies. The first drive assembly is operably connected to the drive coupling assembly and includes a rotatable drive shaft. The second drive assembly is operably connected to the drive coupling assembly and includes a first pair of rotatable drive shafts. A first shaft of the first pair of rotatable drive shafts rotates in a first direction and a second shaft of the first pair of rotatable drive shafts rotates in a second direction. The third drive assembly is operably connected to the drive coupling assembly. The third drive assembly includes a second pair of rotatable drive shafts. A first shaft of the second pair of rotatable drive shafts rotates in a first direction and a second shaft of the second pair of rotatable drive shafts rotates in a second direction.
In one embodiment, the adapter assembly further includes a trocar member. Rotation of the rotatable drive shaft of the first drive assembly may effect longitudinal movement of the trocar member. The adapter assembly may further include a first pusher assembly supported in a distal end of the adapter assembly. Rotation of the first pair of rotatable drive shafts may effect longitudinal movement of the first pusher assembly. The adapter assembly may further include a second pusher assembly supported in a distal end of the adapter assembly, wherein rotation of the second pair of rotatable drive shafts effects longitudinal movement of a second pusher assembly. The second pusher assembly may be nested within the first pusher assembly.
In other embodiments, each of the first, second, and/or third drive assemblies of the adapter assembly may include a high ratio transmission assembly. The first, second, and/or third high ratio transmission assemblies may be one of a harmonic gear system or a planetary gear system. The harmonic gear system may be one of an orbital gear system or a yoked sun orbital gear system.
The adapter assembly may further include an outer sleeve. Each of the first, second, and third drive assemblies may extend through the outer sleeve. The outer sleeve may be flexible. The coupling assembly may be configured for operable connection to a handle assembly. The first and second shafts of the first pair of rotatable drive shafts of the second drive assembly are radially spaced equidistant from the longitudinal axis of the first drive assembly. The first and second shafts of the second pair of rotatable drive shafts are radially spaced equidistant from the longitudinal axis of the first drive assembly.
In embodiments, an input load from a handle assembly is equally distributed between the first and second shafts of the first pair of rotatable drive shafts during operation of the second drive assembly. Similarly, an input load from a handle assembly is equally distributed between the first and second shafts of the second pair of rotatable drive shafts during operation of the third drive assembly.
Embodiments of the present disclosure are described herein with reference to the accompanying drawings, wherein:
Embodiments of the presently disclosed adapter assembly for surgical devices 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 adapter assembly or surgical device, or component thereof, farther from the user, while the term “proximal” refers to that portion of the adapter assembly or surgical device, or component thereof, closer to the user.
With reference to
For a detailed description of the structure and function of an exemplary handle assembly, please refer to commonly owned U.S. Pat. Appl. Publ. No. 2012/0253329, the content of which is incorporated by reference herein in its entirety.
With continued reference to
First, second, and third drive assemblies 120, 130, 140 (
With reference to
The second drive assembly 130 extends through the proximal and intermediate portions 102, 106 of the adapter assembly 100 and includes first and second rotatable flexible drive shafts 132, 134 of a first pair of drive shafts 133 (
The third drive assembly 140 (
With particular reference to
The high ratio transmission assemblies 126, 136 convert the high speed, low torque rotary input from the handle assembly 20 (
Each of the second and third drive assemblies 130, 140 includes a direction idler (not shown) for changing the direction of one of each of the first and second rotatable flexible shafts 132, 134, 142, 144 of the respective first and second pairs of drive shafts 133, 143. For example, as shown in
By changing the direction of rotation of one of each of the first and second rotatable flexible shafts 132, 134, 142, 144 of the respective first and second pairs of drive shafts 133, 143, and by equally radially offsetting the first and second rotatable flexible shafts 132, 134, 142, 144 from a central longitudinal axis “x” of adapter assembly 100, the moments experienced within the adapter assembly 100 are negated, thereby providing a balanced load delivery. The counter torque pairing eliminates the need for a robust support sheath for high loads, thereby allowing for a more flexible intermediate portion 106 (
The first and second rotatable flexible shafts 132, 134, 142, 144 of the respective first and second pairs of drive shafts 133, 143 each transfer half of an input load from the handle assembly 20 to the distal portion 104 of the adapter assembly 100. In this manner, a second input load received from the handle assembly 20 through the second connector 126 is split equally between the first and second rotatable flexible shafts 132, 134 of the first pair of drive shafts 133. Similarly, a third input load received from the handle assembly 20 through the third connector 128 is split equally between the first and second rotatable flexible shafts 142, 144 of the second pair of drive shafts 143. Further, by splitting the load between the first and second rotatable flexible shafts 132, 134, 142, 144 of the respective first and second pairs of drive shafts 133, 143 rather than through an equivalent single drive shaft (not shown), the diameter of each of the first and second rotatable shafts 132, 134, 142, 144 is smaller than the diameter of the single drive shaft. A smaller diameter shaft allows for greater flexibility of the flexible intermediate portion 106 of the adapter assembly 100 over an intermediate portion (not shown) of an adapter assembly (not shown) including an equivalent single drive cable (not shown).
As shown in
With reference now to
With continued reference to
With continued reference to
With additional reference to
With continued reference to
Rotation of the first drive gear 176a in the first direction, simultaneous with rotation of the second drive gear 176b in a second direction, causes longitudinal movement of the first pusher member 172, as indicated by arrow “F” in
Distal movement of the first pusher member 172 of the first pusher assembly 170 effects actuation of a loading unit, e.g., loading unit 40 (
With additional reference to
With continued reference to
Rotation of the first drive gear 186a in the first direction, simultaneous with rotation of the second drive gear 186b in a second direction, causes longitudinal movement of the second pusher member 182, as indicated by arrow “G” in
Distal movement of the second pusher member 182 of the second pusher assembly 180 effects actuation of a loading unit, e.g., loading unit 40 (
The surgical stapling device 10, including adapter assembly 100, operates in a traditional manner. During a surgical stapling procedure, with the anvil assembly 50 of the tool assembly 30 connected to the trocar member 162 of the trocar assembly 160, activation of the first drive assembly 120 causes retraction of the anvil assembly 50 to effect the clamping of tissue (not shown) between an anvil head 52 (
Following completion of the surgical stapling procedure, the loading unit 40 (
With reference now to
With continued reference to
Although the adapter assembly 100 has been shown and described in relation to operation of the tool assembly 30 (
Any of the components described herein may be fabricated from either metals, plastics, resins, composites or the like taking into consideration strength, durability, wearability, weight, resistance to corrosion, ease of manufacturing, cost of manufacturing, and the like.
Persons skilled in the art will understand that the devices and methods specifically described herein and illustrated in the accompanying drawings are non-limiting exemplary embodiments. It is envisioned that the elements and features illustrated or described in connection with one exemplary embodiment may be combined with the elements and features of another without departing from the scope of the present disclosure. As well, one skilled in the art will appreciate further features and advantages of the disclosure based on the above-described embodiments. Accordingly, the disclosure is not to be limited by what has been particularly shown and described, except as indicated by the appended claims.
This application claims the benefit of and priority to U.S. Provisional Patent Application No. 62/239,301 filed Oct. 9, 2015, the entire disclosure of which is incorporated by reference herein.
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