Adapter for securing loading units to handle assemblies of surgical stapling instruments
11660092 · 2023-05-30
Assignee
Inventors
Cpc classification
A61B2017/0046
HUMAN NECESSITIES
A61B17/072
HUMAN NECESSITIES
A61B2017/00367
HUMAN NECESSITIES
A61B2017/07278
HUMAN NECESSITIES
A61B2017/00398
HUMAN NECESSITIES
A61B2090/037
HUMAN NECESSITIES
International classification
A61B17/068
HUMAN NECESSITIES
Abstract
An adapter for releasably connecting a loading unit to a handle assembly includes a proximal drive shaft, a distal drive shaft, and a shear pin connecting the proximal drive shaft to the distal drive shaft. The proximal drive shaft includes proximal and distal portions. The proximal portion of the proximal drive shaft is configured for releasable connection to the handle assembly. The distal drive shaft includes proximal and distal portions. The distal portion of the distal drive shaft being configured for releasable connection to the loading unit. The shear pin is configured to rotationally fix the proximal drive shaft to the distal drive shaft and is configured to fracture to permit rotation of the proximal drive shaft independent of rotation of the distal drive shaft when a predetermined torque is applied to the distal drive shaft.
Claims
1. An adapter for releasably connecting a loading unit to a handle assembly, the adapter comprising: a proximal drive shaft having a proximal portion and a distal portion, the proximal portion of the proximal drive shaft being configured for releasable connection to the handle assembly; a distal drive shaft having a proximal portion and a distal portion, the distal portion of the distal drive shaft being configured for releasable connection to the loading unit; and a shear pin connecting the proximal drive shaft to the distal drive shaft, wherein the shear pin is configured to rotationally fix the proximal drive shaft to the distal drive shaft and is configured to fracture to permit rotation of the proximal drive shaft independent of rotation of the distal drive shaft when a predetermined torque is applied to the distal drive shaft.
2. The adapter of claim 1, wherein the proximal portion of the distal drive shaft includes an annular flange, and the distal portion of the proximal drive shaft is received within the annular flange.
3. The adapter of claim 1, wherein the annular flange of the distal drive shaft and the distal portion of the proximal drive shaft each define an opening.
4. The adapter of claim 3, wherein the shear pin is configured to be received through the opening in the annular flange of the distal drive shaft and the opening in the distal portion of the proximal drive shaft.
5. The adapter of claim 1, further including a locking plate that releasably secures the adapter to the handle assembly and the loading unit.
6. The adapter of claim 5, further including a button member secured to the locking plate, wherein movement of the button member causes corresponding movement of the locking plate.
7. The adapter of claim 6, wherein the button member is movable from a distal position in which the adapter is secured to the handle assembly and the loading unit, to a proximal position in which the adapter is releasable from the handle assembly and the loading unit.
8. The adapter of claim 1, further including a first housing section and a second housing section that rotationally support the proximal and distal drive shafts.
9. The adapter of claim 8, further including a sleeve, wherein the first and second housing sections are received within the sleeve.
10. The adapter of claim 1, further including a spacer positioned between the proximal and distal drive shafts.
11. A surgical stapling instrument comprising: a handle assembly; and an adapter releasably connectable to the handle assembly, the adapter including, a proximal drive shaft having a proximal portion and a distal portion, the proximal portion of the proximal drive shaft being configured for releasable connection to the handle assembly; a distal drive shaft having a proximal portion and a distal portion, the distal portion of the distal drive shaft being configured for releasable connection to a loading unit; and a shear pin connecting the proximal drive shaft to the distal drive shaft, wherein the shear pin is configured to rotationally fix the proximal drive shaft to the distal drive shaft and is configured to fracture to permit rotation of the proximal drive shaft independent of rotation of the distal drive shaft when a predetermined torque is applied to the distal drive shaft.
12. The surgical stapling instrument of claim 11, wherein the proximal portion of the distal drive shaft includes an annular flange, and the distal portion of the proximal drive shaft is received within the annular flange.
13. The surgical stapling instrument of claim 11, wherein the annular flange of the distal drive shaft and the distal portion of the proximal drive shaft each define an opening.
14. The surgical stapling instrument of claim 13, wherein the shear pin is configured to be received through the opening in the annular flange of the distal drive shaft and the opening in the distal portion of the proximal drive shaft.
15. The surgical stapling instrument of claim 11, further including a locking plate that releasably secures the adapter to the handle assembly and the loading unit.
16. The surgical stapling instrument of claim 15, further including a button member secured to the locking plate, wherein movement of the button member causes corresponding movement of the locking plate.
17. The surgical stapling instrument of claim 16, wherein the button member is movable from a distal position in which the adapter is secured to the handle assembly and the loading unit to a proximal position in which the adapter is releasable from the handle assembly and the loading unit.
18. The surgical stapling instrument of claim 11, further including a first housing section and a second housing section that rotationally support the proximal and distal drive shafts.
19. The surgical stapling instrument of claim 18, further including a sleeve, wherein the first and second housing sections are received within the sleeve.
20. A surgical stapling instrument comprising: a handle assembly; a loading unit; and an adapter releasably connecting the loading unit to the handle assembly, the adapter including, a proximal drive shaft having a proximal portion and a distal portion, the proximal portion of the proximal drive shaft being configured for releasable connection to the handle assembly; a distal drive shaft having a proximal portion and a distal portion, the distal portion of the distal drive shaft being configured for releasable connection to the loading unit; and a shear pin connecting the proximal drive shaft to the distal drive shaft, wherein the shear pin is configured to rotationally fix the proximal drive shaft to the distal drive shaft and is configured to fracture to permit rotation of the proximal drive shaft independent of rotation of the distal drive shaft when a predetermined torque is applied to the distal drive shaft.
21. An adapter for connecting an end effector to a handle assembly, the adapter comprising: a proximal drive shaft having a proximal portion and a distal portion, the proximal portion of the proximal drive shaft being configured for releasable connection to the handle assembly; a distal drive shaft having a proximal portion and a distal portion, the distal portion of the distal drive shaft coupled to the end effector; and a shear pin connecting the proximal drive shaft to the distal drive shaft, wherein the shear pin is configured to rotationally fix the proximal drive shaft to the distal drive shaft and is configured to fracture to permit rotation of the proximal drive shaft independent of rotation of the distal drive shaft when a predetermined torque is applied to the distal drive shaft.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Aspects of the disclosure are described herein with reference to the accompanying drawings, wherein:
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DETAILED DESCRIPTION
(12) Aspects of the disclosed adapter for surgical instruments having at least one rotating drive assembly 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 clinician, while the term “proximal” refers to that portion of the adapter assembly or surgical device, or component thereof, closer to the clinician. As used herein the term “clinician” refers to a user, a surgeon, an assistant, or any other medical personnel involved with a surgery.
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(14) The surgical stapling instrument 5 will only be described to the extent necessary to fully disclose the aspects of the disclosure. For a detailed description of the structure and function of exemplary powered handle assemblies, please refer to U.S. Pat. Nos. 9,055,943 and 9,023,014. For a detailed description of the structure and function of exemplary adapter assemblies and loading units, please refer to U.S. Pat. No. 10,117,650.
(15) The powered handle assembly 10 includes a handle 12 and the adapter assembly 20. The handle 12 is configured for operable engagement by a user and includes a battery (not shown) and a motor (not shown) for rotating a drive shaft 22 (
(16) The adapter assembly 20 may be integrally formed with the powered handle assembly 10 or may be configured for releasable connection with the powered handle assembly 10. Although shown and described as used with a powered handle assembly 10, it is envisioned that the aspects of the adapter 100 may be modified for use with a manually actuated handle assembly (not shown).
(17) As shown, the loading unit 50 includes a linear stapling end effector 52. In aspects of the disclosure, the loading unit 50 is a multiple use loading unit (“MULU”) in that it is configured to releasably receive a staple cartridge assembly, e.g., staple cartridge 64. Although aspects of the adapter 100 are shown and described with reference to the loading unit 50, it is envisioned that the adapter 100 may be modified for use with any surgical instrument that includes a drive assembly with a rotating shaft.
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(20) Each of the upper and lower housing sections 110, 120 define a longitudinal channel 111, 121 that, when received within the outer sleeve 102, form a longitudinal passage 103 for receipt of the drive transfer assembly 150. The upper housing section 110 includes a first flange 112 and a second flange 114 and defines a cutout 113 between the first and second flanges 112, 114. The first and second flanges 112, 114 support the locking plate 130 and a portion of the locking plate 130 is slidable received within the cutout 113. As shown, the upper and lower housing sections 110, 120 are secured together and/or maintained in a longitudinal fixed relationship with one another by tongues 116 and grooves 117, or in any other suitable manner. It is envisioned that the upper and lower housing sections 110, 120 need not be secured to one another, and may instead be maintained relative to each other through receipt within the outer sleeve 102.
(21) The locking plate 130 of the adapter 100 includes a planar body 132. A proximal portion 132a of the planar body 132 includes a latch 134 for engaging a tab 24 (
(22) The locking plate 130 of the adapter 100 defines a first elongate opening 133 in the proximal portion 132a of the planar body 132, a second elongate opening 135 in the distal portion 132b of the planar body 132, and a pair of openings 137 disposed between the first and second elongate openings 133, 135. The first and second elongate openings 133, 135 of the locking plate 130 receive the respective first and second flanges 112, 114 of the upper housing section 110 of the adapter 100. The first and second openings 133, 135 are sized to permit longitudinal movement of the locking plate 130 relative to the upper housing section 110 when the first and second flanges 112, 114 are received within the respective first and second elongate openings 133, 135.
(23) The locking plate 130 of the adapter 100 includes a prong 136 extending into the first opening 133. The prong 136 of the locking plate 130 supports the spring 138 that biases the locking plate 130 to its locked position. (
(24) The button member 140 of the adapter 100 is configured for operable engagement by a clinician. The button member 140 may include a marking or markings identifying the purpose of the button member 140. For example, and as shown, the button member 140 includes an unlock symbol 142, indicating to a clinician that movement of the button member 140 will unlock the adapter 100.
(25) The button member 140 of the adapter 100 includes a pair of posts 144 that are received within the pair of openings 137 of the locking plate 130. The pair of posts 144 may be secured to the locking plate 130 by friction fit, welding, riveting, adhesives, screws, or other mechanical fasteners.
(26) The drive transfer assembly 150 of the adapter 100 includes a proximal drive shaft 160 and a distal drive shaft 170 releasably secured to the proximal drive shaft 160 by a shear pin 152. More particularly, the proximal drive shaft 160 of the drive transfer assembly 150 includes an insertion portion 162 and an annular flange 164 disposed proximal of the insertion portion 162. An opening 163 extends through the insertion portion 162. The distal drive shaft 170 of the drive transfer assembly 150 includes an annular sleeve 172 defining a recess 171 (
(27) As shown, a proximal end of the proximal drive shaft 160 defines an opening 165 (
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(29) In one aspect of the disclosure, the shear pin 152 defines annular grooves 155a, 155b between the respective first and second end portions 154b, 154c of the shear pin 152 and the central body portion 154a of the shear pin 152. The annular grooves 155a, 155b provide weakened locations along the cylindrical body 152a of the shear pin 152 to facilitate shearing of the first and second end portions 154b, 154c from the body portion 154a. It is envisioned that the shear pin 152 may instead include through holes (not shown), scoring, or be otherwise configured to facilitate shearing of the first and second end portions 154b, 154c from the body portion 154a. It is also envisioned that the shear pin 152 may include a single annular groove.
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(35) Subsequent to shearing of the shear pin 152, the adapter 100 of the surgical stapling instrument 5 (
(36) 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.
(37) It will be understood that various modifications may be made to the aspects of the disclosed adapters. Therefore, the above description should not be construed as limiting, but merely as exemplifications of aspects of the disclosure. Those skilled in the art will envision other modifications within the scope and spirit of the disclosure.