Electrosurgical forceps for video assisted thoracoscopic surgery and other surgical procedures

Information

  • Patent Grant
  • 11576697
  • Patent Number
    11,576,697
  • Date Filed
    Tuesday, April 28, 2020
    4 years ago
  • Date Issued
    Tuesday, February 14, 2023
    a year ago
Abstract
A surgical instrument includes a shaft defining an axis, an end effector coupled to a distal portion thereof, a fixed handle coupled to a proximal portion thereof, a drive bar, a movable handle, and a linkage. The drive bar is disposed within the shaft and operably coupled to the end effector. The movable handle is movable relative to the fixed handle between open and closed positions and is coupled to the drive bar via a first pin on the axis. The linkage includes a first end portion coupled to the movable handle via a second pin and a second end portion coupled to the shaft via a third pin on the axis. In the closed position of the movable handle, the second pin is disposed in a near-over-center position relative to the axis to reduce a force necessary to maintain the movable handle in the closed position.
Description
BACKGROUND
Technical Field

The present disclosure relates to surgical instruments and, more particularly, to an electrosurgical forceps configured for treating and/or cutting tissue in Video Assisted Thoracoscopic Surgery and other surgical procedures.


Background of Related Art

In minimally-invasive surgical procedures, operations are carried out within the body by elongated instruments inserted through small entrance openings in the body, either directly or through one or more access ports positioned within the entrance openings. Because the instrumentation and any required punctures or incisions are relatively small, minimally-invasive surgery is less invasive compared to conventional open surgical procedures. As a result, minimally-invasive surgery tends to minimizes trauma to the patient, reduce patient recovery time, and minimize hospital costs.


In minimally-invasive thoracic surgery, for example, access to the thoracic cavity as well as maneuverability within the thoracic cavity is limited since the access port is typically placed within the confined intercostal space between a patient's ribs. Such procedures, commonly referred to as Video Assisted Thoracoscopic Surgery (VATS), aim to reduce patient recovery time by accessing the thoracic cavity through the natural intercostal space without spreading the ribs as in open procedures. Procedures performed in this manner may include, for example, lung resection procedures.


Electrosurgical forceps utilize both mechanical clamping action and energy to treat, e.g., coagulate, cauterize, and/or seal, tissue. Typically, once tissue is treated, the treated tissue is divided by way of a knife or blade member incorporated into the electrosurgical forceps. Electrosurgical forceps are useful in VATS procedures such as, for example, lung resection procedures, where electrosurgical forceps may be utilized to treat and cut surrounding tissue, thus facilitating the isolation of lung tissue to be removed and reducing bleeding during the lung resection procedure.


It would therefore be advantageous to provide an electrosurgical forceps configured for use in VATS procedures and other surgical procedures, for example, to facilitate lung resection procedures.


SUMMARY

As used herein, the term “distal” refers to the portion that is being described which is further from a user, while the term “proximal” refers to the portion that is being described which is closer to a user. Further, to the extent consistent, any of the aspects described herein may be used in conjunction with any or all of the other aspects described herein.


In accordance with aspects of the present disclosure, a surgical instrument is provided. The surgical instrument includes an elongated shaft defining a longitudinal axis and including a proximal portion and a distal portion, an end effector assembly coupled to the distal portion of the elongated shaft, a fixed handle coupled to the proximal portion of the elongated shaft, a drive bar, a movable handle, and a linkage. The drive bar is slidably disposed within the elongated shaft and operably coupled to the end effector assembly such that translation of the drive bar through the elongated shaft manipulates the end effector assembly. The movable handle is movable relative to the fixed handle between an open position and a closed position to translate the drive bar through the elongated shaft. The movable handle, more specifically, is pivotably coupled to the drive bar via a first pivot pin. The first pivot pin is aligned on the longitudinal axis. The linkage includes a first end portion and a second end portion. The first end portion of the linkage is pivotably coupled to the movable handle via a second pivot pin, while the second end portion of the linkage is pivotably coupled to the elongated shaft via a third pivot pin. The third pivot pin is aligned on the longitudinal axis. In the closed position of the movable handle, the second pivot pin is disposed in a near-over-center position relative to the longitudinal axis to reduce a force necessary to maintain the movable handle in the closed position.


In an aspect of the present disclosure, the elongated shaft defines a cut-out disposed therein configured to receive at least a portion of the second pivot pin in the near-over-center position of the second pivot pin.


In another aspect of the present disclosure, the movable handle, the fixed handle, and/or the elongated shaft inhibits the second pivot pin from reaching an over-the-center position relative to the longitudinal axis.


In yet another aspect of the present disclosure, the end effector assembly includes first and second jaw members. In such aspects, translation of the drive bar through the elongated shaft moves the first and second jaw members between a spaced-apart position and an approximated position.


In still another aspect of the present disclosure, the near-over-center position of the second pivot pin corresponds to the approximated position of the first and second jaw members.


In still yet another aspect of the present disclosure, each of the first and second jaw members defines an electrically-conductive tissue-contacting surface adapted to connect to a source of energy. The tissue-contacting surfaces are configured to grasp tissue therebetween.


In another aspect of the present disclosure, the movable handle includes a clevis configured to couple at least a portion of the elongated shaft with at least a portion of the linkage. The first and second pivot pins extend within the clevis.


In another aspect of the present disclosure, the elongated shaft includes a pair of opposed slots defined therethrough. The first pivot pin extends through the opposed slots of the elongated shaft.


In still another aspect of the present disclosure, an activation assembly is disposed on the fixed handle or the movable handle. The activation assembly is selectively activatable to supply energy to the end effector assembly.


In yet another aspect of the present disclosure, the activation assembly is positioned such that the activation assembly is activated upon movement of the movable handle to the closed position.


In still yet another aspect of the present disclosure, the fixed handle and/or the movable handle includes a finger ring.


Another surgical instrument provided in accordance with aspects of the present disclosure includes an elongated shaft, an end effector assembly, a drive bar, a movable handle, and a linkage. The elongated shaft includes a proximal portion and a distal portion. The end effector assembly is coupled to the distal portion of the elongated shaft and includes first and second jaw members movable between a spaced-apart position and an approximated position. The drive bar is slidably disposed within the elongated shaft and operably coupled to the first jaw member and/or the second jaw member such that translation of the drive bar through the elongated shaft moves the first and second jaw members between the spaced-apart position and the approximated position. The movable handle is pivotably coupled to the drive bar via a first pivot pin and is movable between an open position and a closed position to translate the drive bar through the elongated shaft to thereby move the first and second jaw members between the spaced-apart position and the approximated position. The linkage includes a first end portion and a second end portion. The first end portion of the linkage is pivotably coupled to the movable handle via a second pivot pin. The second end portion of the linkage is pivotably coupled to the elongated shaft via a third pivot pin. In the closed position of the movable handle, the second pivot pin is disposed in a near-over-center position relative to the first pivot pin and the third pivot pin to reduce a force necessary to maintain the movable handle in the closed position.


In an aspect of the present disclosure, the elongated shaft defines a cut-out disposed therethrough configured to receive at least a portion of the second pivot pin in the near-over-center position of the second pivot pin.


In another aspect of the present disclosure, a fixed handle fixed relative to the elongated shaft is provided. In such aspects, the movable handle is movable relative to the fixed handle between the open and closed positions.


In still another aspect of the present disclosure, each of the first and second jaw members defines an electrically-conductive tissue-contacting surface adapted to connect to a source of energy. The tissue-contacting surfaces are configured to grasp tissue therebetween in the approximated position.


In yet another aspect of the present disclosure, the movable handle includes a clevis configured to couple at least a portion of the elongated shaft with at least a portion of the linkage. In such aspects, the first and second pivot pins extend within the clevis.


In another aspect of the present disclosure, the elongated shaft includes a pair of opposed slots defined therethrough. The first pivot pin extends through the opposed slots of the elongated shaft.


In still yet another aspect of the present disclosure, an activation assembly is disposed on the movable handle. The activation assembly is selectively activatable to supply energy to the first and second jaw members.


In another aspect of the present disclosure, the activation assembly is positioned such that the activation assembly is activated upon movement of the movable handle to the closed position.


In an aspect of the present disclosure, the movable handle includes a finger ring.





BRIEF DESCRIPTION OF THE DRAWINGS

Various aspects and features of the present disclosure are described herein with reference to the drawings, wherein:



FIG. 1 is a side view of an electrosurgical forceps provided in accordance with aspects of the present disclosure;



FIG. 2 is a side view of a proximal portion of the forceps of FIG. 1;



FIG. 3A is an enlarged, side view of the area of detail indicated as “3A” in FIG. 1;



FIG. 3B is an enlarged, side view of the area of detail indicated as “3A” in FIG. 1, with parts removed;



FIG. 3C is an enlarged, side view of the area of detail indicated as “3A” in FIG. 1, with other parts removed;



FIG. 4 is a side view of a distal portion of the forceps of FIG. 1;



FIG. 5A is a side view of the distal portion of the forceps of FIG. 1, with an elongated shaft and one jaw member removed;



FIG. 5B is a side view of the distal portion of the forceps of FIG. 1, with the elongated shaft and another jaw member removed;



FIG. 6A is a transverse, cross-sectional view of an end effector assembly of the forceps of FIG. 1;



FIG. 6B is a perspective view of a cam pin of the end effector assembly of FIG. 6A including a clip engaged about the cam pin;



FIG. 7 is a top view of one of jaw members of the end effector assembly of the forceps of FIG. 1;



FIG. 8 is a side view of a proximal portion of the forceps of FIG. 1, with the elongated shaft and a portion of a housing of a fixed handle removed;



FIG. 9 is a side view of a trigger assembly and a knife assembly of the forceps of FIG. 1;



FIG. 10 is a side view of the end effector assembly of the forceps of FIG. 1 including a knife of the knife assembly of FIG. 8 operably positioned relative thereto; and



FIG. 11 is a side view of a distal portion of the forceps of FIG. 1, with a portion of the elongated shaft removed.





DETAILED DESCRIPTION

Turning to FIG. 1, an electrosurgical forceps provided in accordance with the present disclosure is shown generally identified by reference numeral 10. Forceps 10 is configured for use in VATS procedures and other surgical procedures and generally includes an elongated shaft 20, a handle assembly 30, a drive assembly 50 (FIGS. 3A-3C), a trigger assembly 70, a knife assembly 80 (FIGS. 8 and 9), an activation assembly 90, and an end effector assembly 100 which mutually cooperate to grasp, treat, and/or cut tissue. Forceps 10 further includes an electrosurgical cable (not shown) adapted to connect forceps 10 to a source of energy, e.g., a generator (not shown), although forceps 10 may alternatively be configured as a battery-powered instrument.


With additional reference to FIG. 2, handle assembly 30 is operably coupled to a proximal portion of elongated shaft 20 and includes a pair of handle members: a fixed handle 32 and a movable handle 42. Fixed handle 32 is fixedly engaged with elongated shaft 20 and extends proximally therefrom. Fixed handle 32 includes a body 34 formed from first and second housing components that cooperate to house the internal components of trigger assembly 70 (FIG. 8) as well as knife drive bar 82 of knife assembly 80 (FIG. 9). Fixed handle 32 further includes a finger ring 36 disposed on a proximal portion of body 34. Finger ring 36 is configured to receive one or more fingers of a user to facilitate grasping and manipulating forceps 10.


Movable handle 42 of handle assembly 30 includes a body 44 formed from first and second housing components that cooperate to retain activation assembly 90 partially within body 44 and in operable position relative to fixed handle 32, as detailed below. The electrosurgical cable (not shown) of forceps 10 is configured to operably couple to movable handle 42 while the internal wires (not shown) thereof are configured to extend through body 44 of movable handle 42 and elongated shaft 20 to end effector assembly 100 (FIG. 1) to electrically couple end effector assembly 100 (FIG. 1) and activation assembly 90 with the source of energy (not shown). Movable handle 42 further includes a finger ring 46 disposed on a proximal portion of body 44. Finger ring 46 is configured to receive one or more fingers of a user to facilitate grasping and manipulating forceps 10.


Referring to FIGS. 3A-3C, movable handle 42 additionally includes a clevis 48 extending distally from a distal portion of body 44. Clevis 48 defines a bifurcated configuration including first and second spaced-apart clevis members. The first and second spaced-apart clevis member of clevis 48 are configured for positioning on either side of elongated shaft 20 such that elongated shaft 20 is at least partially received within clevis 48. Clevis 48 is configured to operably couple movable handle 42 with elongated shaft 20 and drive assembly 50. Distal and proximal pins 49a, 49b are fixed relative to clevis 48 and extend transversely between the first and second spaced-apart clevis members of clevis 48. Distal pin 49a is configured to pivotably couple clevis 48 to a proximal portion of drive bar 52 of drive assembly 50. Elongated shaft 20 defines a pair of opposed slots 22 (only one is shown) through which distal pin 49a extends to enable coupling of clevis 48 and drive bar 52 with elongated shaft 20 disposed therebetween. Proximal pin 49b is configured to pivotably couple clevis 48 to a distal portion of linkage 54 of drive assembly 50. Elongated shaft 20 defines a cut-out 24 configured to enable pivoting of movable handle 42 relative to fixed handle 32 and elongated shaft 20, as detailed below.


Drive assembly 50 of forceps 10, as noted above, includes drive bar 52 and linkage 54. Drive bar 52 is slidably disposed within elongated shaft 20 and includes a proximal portion that is pivotably coupled to clevis 48 of movable handle 42 via distal pin 49a. A distal portion of linkage 54 extends through cut-out 24 of elongated shaft 20 and is pivotably coupled to clevis 48 via proximal pin 49b. A proximal portion of linkage 54 extends through cut-out 24 into elongated shaft 20 and is pivotably coupled to elongated shaft 20 within elongated shaft 20 via a linkage pin 55. Linkage pin 55 and distal pin 49a are both aligned on a longitudinal axis “X-X” of elongated shaft 20.


As a result of the above-detailed configuration of movable handle 42 and drive assembly 50, pivoting of movable handle 42 relative to fixed handle 32 between an open position and a closed position translates drive bar 52 through elongated shaft 20. More specifically, pivoting of movable handle 42 towards fixed handle 32, e.g., towards the closed position, translates drive bar 52 distally through elongated shaft 20, while pivoting of movable handle 42 away from fixed handle 32, e.g., towards the open position, translates drive bar 52 proximally through elongated shaft 20.


As movable handle 42 is pivoted towards the closed position, the distal portion of linkage 54 is pivoted towards an aligned orientation relative to elongated shaft 20 and, thus, proximal pin 49b is moved towards longitudinal axis “X-X” of elongated shaft 20. The configuration of handle assembly 30, elongated shaft 20, and/or drive assembly 50 inhibits linkage 54 from reaching an aligned position relative to longitudinal axis “X-X” of elongated shaft 20 and, thus, inhibits proximal pin 49b from reaching an over-center position relative to linkage pin 55, distal pin 49a, and longitudinal axis “X-X” of elongated shaft 20. As such, movable handle 42 remains freely movable relative to fixed handle 32 and is not locked in position relative thereto, as is the case when an over-center position is achieved.


Despite being inhibited from reaching an over-center position, proximal pin 49b is configured to move at least partially into cut-out 24 of elongated shaft 20 as movable handle 42 is moved to the closed position to achieve a near-over-center position. This near-over-center position reduces the forces necessary to pivot movable handle 42 towards fixed handle 32 as movable handle 42 approaches the closed position without permitting locking of the movable handle 42. The term near-over-center position, for the purposes herein, corresponds to a position wherein proximal pin 49b is disposed at least partially within cut-out 24 of elongated shaft 20 and, thus, is at least partially inside the outer diameter of elongated shaft 20. As such, the near-over-center position of proximal pin 49b corresponds to a radial distance between longitudinal axis “X-X” of elongated shaft 20 and proximal pin 49b that is equal to or less than the radius of elongated shaft 20 plus the diameter of proximal pin 49b. In embodiments where elongated shaft 20 defines a rectangular or other non-cylindrical configuration, the near-over-center position of proximal pin 49b corresponds to a radial distance between longitudinal axis “X-X” of elongated shaft 20 and proximal pin 49b that is equal to or less than half of the corresponding transverse dimension of elongated shaft 20 (taken along a line perpendicular to longitudinal axis “X-X” and intersecting proximal pin 49b) plus the diameter of proximal pin 49b.


Referring to FIGS. 1 and 4-5B, end effector assembly 100 is coupled to a distal portion of elongated shaft 20 and includes first and second jaw members 110, 120. One or both of jaw members 110, 120 is pivotable relative to the other and the elongated shaft 20 about a pivot pin 102. Each jaw member 110, 120 includes a proximal flange 111, 121 and a distal jaw body 112, 122 supporting an electrically-conductive tissue-contacting surface 114, 124. Tissue-contacting surfaces 114, 124 are electrically coupled to activation assembly 90 (FIG. 1) and the source of energy (not shown), e.g., via the wires (not shown) extending through the electrosurgical cable (not shown), movable handle 42, and elongated shaft 20, such that energy may be selectively supplied to tissue-contacting surface 114 and/or tissue-contacting surface 124 and conducted through tissue grasped between jaw members 110, 120 to treat, e.g., seal, tissue.


Proximal flanges 111, 121 of jaw members 110, 120 are pivotably coupled to one another via pivot pin 102. End effector assembly 100 is configured as a unilateral assembly, wherein jaw member 120 is fixed relative to elongated shaft 20 and jaw member 110 is pivotable about pivot pin 102 relative to elongated shaft 20 and fixed jaw member 120. However, end effector assembly 100 may alternatively be configured as a bilateral assembly, where both jaw member 110 and jaw member 120 are movable about pivot pin 102 relative to one another and elongated shaft 20. For the purposes herein, the terms “movement of the jaw members,” “pivoting of the jaw members,” and like terms are understood to encompass both unilateral and bilateral configurations. In the illustrated unilateral configuration, proximal flange 121 of jaw member 120 may be fixedly engaged to elongated shaft 20 via welding or other suitable engagement. Pivot pin 102 may be welded, on either side thereof, to proximal flange 121 of jaw member 120 and pivotably disposed within an aperture defined through proximal flange 111 of jaw member 110. Other configurations are also contemplated, for example, using a clip similar to that detailed below with respect to cam pin 104 and clip 106 (FIGS. 6A-6B).


Proximal flanges 111, 121 of jaw members 110, 120 define oppositely-oriented U-shaped configurations. One of the proximal flanges, e.g., proximal flange 121 of jaw member 120, may surround the proximal flange, e.g., proximal flange 111 of jaw member 110, of the other jaw member, as illustrated (see FIG. 6A). Alternatively, proximal flanges 111, 121 may be disposed in an overlapping, offset configuration. Each proximal flange 111, 121 defines a pair of cam slots 116, 126 therethrough. Cam slots 116 of proximal flange 111 of jaw member 110 are angled relative to cam slots 126 of proximal flange 121 of jaw member 120. Cam slots 116, 126 are configured to receive a cam pin 104 that extends through an aperture defined through a distal portion of drive bar 52. As a result of this configuration, translation of drive bar 52 through elongated shaft 20, e.g., in response to pivoting of movable handle 42 (FIG. 1) between the open an closed positions, pivots jaw members 110, 120 between spaced-apart and approximated positions for grasping tissue therebetween. More specifically, cam slots 116, 126 are oriented such that distal translation of drive bar 52 and, thus, cam pin 104, effects pivoting of jaw members 110, 120 from the spaced-apart position towards the approximated position, and such that proximal translation of drive bar 52 and, thus, cam pin 104 pivots jaw members 110, 120 towards the spaced-apart position.


Referring to FIGS. 6A and 6B, a clip 106 is provided to operably couple cam pin 104 with jaw members 110, 120 and drive bar 52, and to retain cam pin 104 in position without the need for welding (or otherwise affixing) cam pin 104 to drive bar 52. Such a configuration is advantageous in that welding (or otherwise affixing) cam pin 104 to drive bar 52 is difficult due to the necessity for drive bar 52 to be operably positioned between jaw members 110, 120 and cam pin 104 inserted therebetween prior to welding cam pin 104 thereto.


Clip 106 includes a body 107a having a pair of resilient, semi-annular side fingers 107b (only one is shown) extending from either side thereof and a central finger 107c extending between side fingers 107b. Cam pin 104 defines an annular groove 105 to facilitate engagement of clip 106 thereabout. Side fingers 107b, at the free ends thereof and in their at-rest position, are spaced-apart a distance smaller than the diameter of the portion of clip 106 that defines groove 105.


In order to operably couple jaw members 110, 120 and drive bar 52 with one another via cam pin 104, jaw members 110, 120 are first aligned such that cam slots 116, 126 of proximal flanges 111, 121 of jaw members 110, 120, respectively, are aligned with one another. Drive bar 52 is inserted between proximal flanges 111, 121 such that the aperture defined within drive bar 52 is aligned with cam slots 116, 126. Once cam slots 116, 126 are aligned with one another and the aperture of drive bar 52, cam pin 104 may be inserted, from either side of end effector assembly 100, through cam slots 116, 126 and the aperture of drive bar 52. In the inserted position of cam pin 104, groove 105 is exposed between between drive bar 52 and flanges 111, 121 to enable distal insertion of clip 106 between drive bar 52 and flanges 111, 121 and into engagement with cam pin 104.


In order to engage clip 106 about cam pin 104, clip 106 is aligned with groove 105 of cam pin 104 and moved transversely towards clip 106. As clip 106 is moved into contact with cam pin 104, side fingers 107b contact the inner surface of can pin defining groove 105 and are flexed outwardly relative to one another to widen the gap therebetween and permit cam pin 104 to pass therebetween. Once cam pin 104 is positioned more than halfway within clip 106, e.g., once side fingers 107b clear the diameter of cam pin 104, side fingers 107b are returned under bias inwardly into engagement within groove 105, thereby retaining clip 106 about cam pin 104. Upon engagement of clip 106 about cam pin 104, central finger 107c is also disposed within groove 105.


With clip 106 engaged about cam pin 104, cam pin 104 is inhibited from sliding laterally out of engagement with cam slots 116, 126 and/or the aperture of drive bar 52. Thus, cam pin 104 is retained in operable engagement within cam slots 116, 126 and the aperture of drive bar 52 such that translation of drive bar 52 relative to end effector assembly 100 translates cam pin 104 through cam slots 116, 126 to pivot jaw members 110, 120 between the spaced-apart and approximated positions.


With reference to FIGS. 4-5B, distal jaw bodies 112, 122 of jaw members 110, 120 extend distally from proximal flanges 111, 121, respectively, and, as noted above, support respective electrically-conductive tissue-contacting surfaces 114, 124 thereon. Distal jaw bodies 112, 122 and, thus, tissue-contacting surfaces 114, 124, define curved configurations, although other configurations may also be provided. In the approximated position of jaw members 110, 120, tissue-contacting surfaces 114, 124 are configured to grasp tissue therebetween and, upon activation of activation assembly 90 (FIG. 1), conduct energy therebetween and through grasped tissue to treat, e.g., seal, tissue. Either or both tissue-contacting plates 114, 124 may further define a longitudinally-extending knife channel 117, 127 extending therethrough. Knife channel(s) 117, 127 are configured to receive a knife 84 of knife assembly 80 (FIG. 9) to facilitate reciprocation of knife 84 (FIG. 9) between jaw members 110, 120 to cut tissue disposed therebetween, e.g., upon actuation of rotatable trigger 72 of trigger assembly 70 (see FIG. 9).


Referring additionally to FIG. 7, the distal jaw body 112, 122 of one or both of jaw members 110, 120 further includes a plurality of vent holes 118, 128 defined therethrough (only vent holes 118 of jaw member 110 are shown in FIG. 7; the vent holes of jaw member 120 may be similar in embodiments where so provided). Vent holes 118, 128 are arranged longitudinally along jaw member 110 and extend completely through distal jaw bodies 112, 122. More specifically, vent holes 118, 128 are aligned with and disposed in communication with knife channels 117, 127 of jaw members 110, 120. As such, steam generated during tissue treatment may escape the area between jaw members 110, 120 via knife channels 117, 127 and vent holes 118, 128.


Turning to FIGS. 8-11, trigger assembly 70 and knife assembly 80 cooperate to enable selective deployment of knife 84 between a retracted position, wherein knife 84 is disposed proximally of jaw members 110, 120, and an extended position, wherein knife 84 extends at least partially through knife channels 117, 127 (FIGS. 5A-5B) between jaw members 110, 120. Trigger assembly 70 is operably coupled to and partially disposed within body 34 of fixed handle 32. Trigger assembly 70 includes a rotatable trigger 72, a first linkage 74, a second linkage 76, and a spring 78. Rotatable trigger 72 defines a bifurcated configuration and extends from body 34 of fixed handle 32 towards movable handle 42. In the closed position of handle assembly 30, the bifurcated rotatable trigger 72 at least partially surrounds body 44 of movable handle 42, thus enabling actuation of rotatable trigger 72 from either side of forceps 10 (FIG. 1). Rotatable trigger 72 is pivotably coupled to fixed handle 32 about a pivot 73.


First linkage 74 of trigger assembly 70 is disposed within body 34 of fixed handle 32. First linkage 74 is pivotably coupled to fixed handle 32 about pivot 73 towards a first end of first linkage 74 and is engaged with rotatable trigger 72 such that pivoting of rotatable trigger about pivot 73 likewise pivots first linkage 74 about pivot 73. The second end of first linkage 74 defines a Y-connector 75. Spring 78 is disposed within body 34 of fixed handle 32 and includes a first end that is fixed relative to body 34 and a second end that is engaged with one of the prongs of Y-connector 75. Spring 78 is configured to bias first linkage 74 and, thus, rotatable trigger 72, towards an un-actuated position. Spring 78 also biases knife 84 towards the retracted position.


Second linkage 76 operably couples first linkage 74 and, thus rotatable trigger 72, with knife assembly 80. More specifically, second linkage 76 is coupled to the other prong of Y-connector 75 of first linkage 74 towards the proximal end of second linkage 76, and is coupled to a proximal portion of knife drive bar 82 towards the distal end of second linkage 76. As a result, pivoting of rotatable trigger 72 about pivot 73 pivots first linkage 74 about pivot 73 to urge second linkage 76 distally through body 34 of fixed handle 32.


Knife assembly 80 includes knife drive bar 82 and knife 84. A proximal portion of knife drive bar 82 is pivotably coupled to a distal portion of second linkage 76, and a distal portion of knife drive bar 82 is fixedly engaged with a proximal portion of knife 84 with knife 84 extending distally therefrom. Knife drive bar 82 defines a slot 83 configured to receive distal pin 49a and linkage pin 55 (see FIGS. 3A-3C) to enable knife drive bar 82 to slide relative thereto. Knife 84 defines a distal cutting edge 86. In operation, pivoting of rotatable trigger 72 from an un-actuated position to an actuated position pivots first linkage 74 to urge second linkage 76 distally through body 34 of fixed handle 32, thereby urging knife drive bar 82 distally through elongated shaft 20 and translating knife 84 from the retracted position to the extended position. Release of rotatable trigger 72 returns rotatable trigger 72 back towards the un-actuated position under the bias of spring 78, thereby returning first linkage 74, second linkage 76, and knife drive bar 82 such that knife 84 is returned to the retracted position.


Referring again to FIGS. 1 and 2, activation assembly 90, as noted above, is at least partially retained within body 44 of movable handle 42. Activation assembly 90 includes an activation button 92 and a base 94. Activation button 92 is selectively depressible relative to base 94 to initiate the supply of energy to tissue-contacting surfaces 114, 124 of jaw members 110, 120 (see FIGS. 5A-5B), respectively. More specifically, upon achieving the fully closed position of handle assembly 30, activation button 92 is urged into the opposed surface of body 34 of fixed handle 32 so as to depress activation button 92 and initiate the supply of energy to tissue-contacting surfaces 114, 124 of jaw members 110, 120 (see FIGS. 5A-5B).


The various aspects and features provided herein may also be configured to work with robotic surgical systems and what is commonly referred to as “Telesurgery.” Such systems employ various robotic elements to assist the surgeon in the operating room and allow remote operation (or partial remote operation) of surgical instrumentation. Various robotic arms, gears, cams, pulleys, electric and mechanical motors, etc. may be employed for this purpose and may be designed with a robotic surgical system to assist the surgeon during the course of an operation or treatment. Such robotic systems may include remotely steerable systems, automatically flexible surgical systems, remotely flexible surgical systems, remotely articulating surgical systems, wireless surgical systems, modular or selectively configurable remotely operated surgical systems, etc.


The robotic surgical systems may be employed with one or more consoles that are next to the operating theater or located in a remote location. In this instance, one team of surgeons or nurses may prep the patient for surgery and configure the robotic surgical system with one or more of the instruments provided herein while another surgeon (or group of surgeons) remotely control the instruments via the robotic surgical system. As can be appreciated, a highly skilled surgeon may perform multiple operations in multiple locations without leaving the remote console, which can be both economically advantageous and a benefit to the patient or a series of patients.


The robotic arms of the surgical system are typically coupled to a pair of master handles by a controller. The handles can be moved by the surgeon to produce a corresponding movement of the working ends of any type of surgical instrument (e.g., end effectors, graspers, knifes, scissors, etc.) which may complement the use of one or more of the aspects and features described herein. The movement of the master handles may be scaled so that the working ends have a corresponding movement that is different, smaller or larger, than the movement performed by the operating hands of the surgeon. The scale factor or gearing ratio may be adjustable so that the operator can control the resolution of the working ends of the surgical instrument(s).


The master handles may include various sensors to provide feedback to the surgeon relating to various tissue parameters or conditions, e.g., tissue resistance due to manipulation, cutting, or treating, pressure by the instrument onto the tissue, tissue temperature, tissue impedance, etc. As can be appreciated, such sensors provide the surgeon with enhanced tactile feedback simulating actual operating conditions. The master handles may also include a variety of different actuators for delicate tissue manipulation or treatment further enhancing the surgeon's ability to mimic actual operating conditions.


From the foregoing and with reference to the various figure drawings, those skilled in the art will appreciate that certain modifications can also be made to the present disclosure without departing from the scope of the same. While several embodiments 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.

Claims
  • 1. An end effector assembly of an electrosurgical instrument, comprising: first and second jaw members each including a proximal flange portion and a distal body portion, the distal body portions of the first and second jaws members defining tissue-contacting surfaces, the proximal flange portions of the first and second jaw members pivotably coupled to one another such that at least one of the first or second jaw members is movable relative to the other between spaced-apart and approximated positions for grasping tissue between the tissue-contacting surfaces, the proximal flange portions of the first and second jaw members each defining a cam slot;a cam pin extending through the cam slots of the first and second jaw members and configured to slide through the cam slots to move the at least one of the first or second jaw members between the spaced-apart and approximated positions; anda clip engaged with the cam pin to retain the cam pin within the cam slots of the first and second jaw members,wherein the cam pin defines an annular groove configured to receive a portion of the clip.
  • 2. The end effector assembly according to claim 1, wherein each proximal flange portion is bifurcated such that the first and second jaw members each define a pair of spaced-apart proximal flange components, the proximal flange components of the first jaw member defining aligned cam slot segments that cooperate to define the cam slot of the first jaw member and the proximal flange components of the second jaw member defining aligned cam slot segments that cooperate to define the cam slot of the second jaw member.
  • 3. The end effector assembly according to claim 2, wherein proximal flange components of the first jaw member are disposed between the proximal flange components of the second jaw member.
  • 4. The end effector assembly according to claim 3, wherein the clip is disposed between the proximal flange components of the first jaw member.
  • 5. The end effector assembly according to claim 2, wherein proximal flange components of the first and second jaw members are disposed in offset, overlapping relation relative to one another.
  • 6. The end effector assembly according to claim 5, wherein the clip is disposed between one of the proximal flange components of the first jaw member and one of the proximal flange components of the second jaw member.
  • 7. The end effector assembly according to claim 1, wherein the clip includes a pair of side fingers and a central finger disposed between the side fingers, each of the side fingers and the central finger configured for engagement within the annular groove of the cam pin.
  • 8. An electrosurgical instrument, comprising: a shaft;a drive bar extending through the shaft; andan end effector assembly disposed at a distal end portion of the shaft, the end effector assembly including;first and second jaw members each including a proximal flange portion and a distal body portion, the distal body portions of the first and second jaws members defining tissue-contacting surfaces, the proximal flange portions of the first and second jaw members pivotably coupled to one another and at least one of the proximal flange portions pivotably coupled to the shaft such that at least one of the first or second jaw members is movable relative to the other and the shaft between spaced-apart and approximated positions for grasping tissue between the tissue-contacting surfaces, the proximal flange portions of the first and second jaw members each further defining a cam slot;a cam pin extending through the cam slots of the first and second jaw members, wherein the drive bar is engaged about the cam pin such that translation of the drive bar slides the cam pin through the cam slots to move the at least one of the first or second jaw members between the spaced-apart and approximated positions; anda clip engaged with the cam pin to retain the cam pin within the cam slots of the first and second jaw members,wherein the cam pin defines an annular groove configured to receive a portion of the clip.
  • 9. The electrosurgical instrument according to claim 8, wherein each proximal flange portion is bifurcated such that the first and second jaw members each define a pair of spaced-apart proximal flange components, the proximal flange components of the first jaw member defining aligned cam slots segments that cooperate to define the cam slot of the first jaw member and the proximal flange components of the second jaw member defining aligned cam slot segments that cooperate to define the cam slot of the second jaw member.
  • 10. The electrosurgical instrument according to claim 9, wherein proximal flange components of the first jaw member are disposed between the proximal flange components of the second jaw member.
  • 11. The electrosurgical instrument according to claim 10, wherein the clip is disposed between the proximal flange components of the first jaw member.
  • 12. The electrosurgical instrument according to claim 10, wherein the drive bar is engaged about the cam pin between the proximal flange components of the first jaw member.
  • 13. The electrosurgical instrument according to claim 9, wherein proximal flange components of the first and second jaw members are disposed in offset, overlapping relation relative to one another.
  • 14. The electrosurgical instrument according to claim 13, wherein the clip is disposed between one of the proximal flange components of the first jaw member and one of the proximal flange components of the second jaw member.
  • 15. The electrosurgical instrument according to claim 13, wherein the drive bar is engaged about the cam pin between one of the proximal flange components of the first jaw member and one of the proximal flange components of the second jaw member.
  • 16. The electrosurgical instrument according to claim 1, wherein the clip includes a pair of side fingers and a central finger disposed between the side fingers, each of the side fingers and the central finger configured for engagement within the annular groove of the cam pin.
CROSS REFERENCE TO RELATED APPLICATION

This application is a continuation application of U.S. patent application Ser. No. 15/671,200, filed on Aug. 8, 2017, now U.S. Pat. No. 10,631,887, which claims the benefit of and priority to U.S. Provisional Application Ser. No. 62/374,989, filed on Aug. 15, 2016 the entire contents of each of which are hereby incorporated herein by reference.

US Referenced Citations (336)
Number Name Date Kind
D249549 Pike Sep 1978 S
D263020 Rau, III Feb 1982 S
D295893 Sharkany et al. May 1988 S
D295894 Sharkany et al. May 1988 S
4763669 Jaeger Aug 1988 A
D298353 Manno Nov 1988 S
D299413 DeCarolis Jan 1989 S
5100420 Green et al. Mar 1992 A
5258001 Corman Nov 1993 A
D343453 Noda Jan 1994 S
5304203 El-Mallawany et al. Apr 1994 A
5308357 Lichtman May 1994 A
D348930 Olson Jul 1994 S
D349341 Lichtman et al. Aug 1994 S
5344424 Roberts et al. Sep 1994 A
D354564 Medema Jan 1995 S
D358887 Feinberg May 1995 S
5540685 Parins et al. Jul 1996 A
5578052 Koros et al. Nov 1996 A
5611808 Hossain et al. Mar 1997 A
5618294 Aust et al. Apr 1997 A
D384413 Zlock et al. Sep 1997 S
5665100 Yoon Sep 1997 A
5752644 Bolanos et al. May 1998 A
H1745 Paraschac Aug 1998 H
5814043 Shapeton Sep 1998 A
D402028 Grimm et al. Dec 1998 S
D408018 McNaughton Apr 1999 S
5913874 Berns et al. Jun 1999 A
5960544 Beyers Oct 1999 A
D416089 Barton et al. Nov 1999 S
6050996 Schmaltz et al. Apr 2000 A
D424694 Tetzlaff et al. May 2000 S
D425201 Tetzlaff et al. May 2000 S
H1904 Yates et al. Oct 2000 H
6293954 Fogarty et al. Sep 2001 B1
D449886 Tetzlaff et al. Oct 2001 S
6329778 Culp et al. Dec 2001 B1
6334861 Chandler et al. Jan 2002 B1
D453923 Olson Feb 2002 S
D454951 Bon Mar 2002 S
D457958 Dycus et al. May 2002 S
D457959 Tetzlaff et al. May 2002 S
6406485 Hossain et al. Jun 2002 B1
H2037 Yates et al. Jul 2002 H
6464704 Schmaltz et al. Oct 2002 B2
D465281 Lang Nov 2002 S
D466209 Bon Nov 2002 S
6511480 Tetzlaff et al. Jan 2003 B1
6673092 Bacher Jan 2004 B1
D493888 Reschke Aug 2004 S
D496997 Dycus et al. Oct 2004 S
D499181 Dycus et al. Nov 2004 S
D502994 Blake, III Mar 2005 S
D509297 Wells Sep 2005 S
D525361 Hushka Jul 2006 S
D531311 Guerra et al. Oct 2006 S
7118570 Tetzlaff et al. Oct 2006 B2
D533274 Visconti et al. Dec 2006 S
D533942 Kerr et al. Dec 2006 S
D535027 James et al. Jan 2007 S
D538932 Malik Mar 2007 S
D541418 Schechter et al. Apr 2007 S
D541611 Aglassinger May 2007 S
D541938 Kerr et al. May 2007 S
D545432 Watanabe Jun 2007 S
D547154 Lee Jul 2007 S
7329257 Kanehira et al. Feb 2008 B2
D564662 Moses et al. Mar 2008 S
D567943 Moses et al. Apr 2008 S
D575395 Hushka Aug 2008 S
D575401 Hixson et al. Aug 2008 S
7431730 Viola Oct 2008 B2
D582038 Swoyer et al. Dec 2008 S
7641653 Dalla Betta et al. Jan 2010 B2
D617900 Kingsley et al. Jun 2010 S
D617901 Unger et al. Jun 2010 S
D617902 Twomey et al. Jun 2010 S
D617903 Unger et al. Jun 2010 S
D618798 Olson et al. Jun 2010 S
D621503 Otten et al. Aug 2010 S
D627462 Kingsley Nov 2010 S
D628289 Romero Nov 2010 S
D628290 Romero Nov 2010 S
7854185 Zhang et al. Dec 2010 B2
D630324 Reschke Jan 2011 S
7896878 Johnson et al. Mar 2011 B2
D649249 Guerra Nov 2011 S
D649643 Allen, IV et al. Nov 2011 S
8147489 Moses et al. Apr 2012 B2
D661394 Romero et al. Jun 2012 S
8298233 Mueller Oct 2012 B2
D670808 Moua et al. Nov 2012 S
8366709 Schechter et al. Feb 2013 B2
8394096 Moses et al. Mar 2013 B2
D680220 Rachlin Apr 2013 S
8409246 Kerr et al. Apr 2013 B2
8409247 Garrison et al. Apr 2013 B2
8425504 Orton et al. Apr 2013 B2
8425511 Olson Apr 2013 B2
8430877 Kerr et al. Apr 2013 B2
8439913 Horner et al. May 2013 B2
8469716 Fedotov et al. Jun 2013 B2
8469991 Kerr Jun 2013 B2
8469992 Roy et al. Jun 2013 B2
8480671 Mueller Jul 2013 B2
8491624 Kerr et al. Jul 2013 B2
8491625 Horner Jul 2013 B2
8491626 Roy et al. Jul 2013 B2
8512336 Couture Aug 2013 B2
8540749 Garrison et al. Sep 2013 B2
8551091 Couture et al. Oct 2013 B2
8556929 Harper et al. Oct 2013 B2
8568397 Horner et al. Oct 2013 B2
8568408 Townsend et al. Oct 2013 B2
8585736 Horner et al. Nov 2013 B2
8591510 Allen, IV et al. Nov 2013 B2
8597295 Kerr Dec 2013 B2
8623018 Horner et al. Jan 2014 B2
8628557 Collings et al. Jan 2014 B2
8641712 Couture Feb 2014 B2
8647343 Chojin et al. Feb 2014 B2
8652135 Nau, Jr. Feb 2014 B2
8663222 Anderson et al. Mar 2014 B2
8672939 Garrison Mar 2014 B2
8679098 Hart Mar 2014 B2
8685009 Chernov et al. Apr 2014 B2
8685021 Chernov et al. Apr 2014 B2
8685056 Evans et al. Apr 2014 B2
8702737 Chojin et al. Apr 2014 B2
8702749 Twomey Apr 2014 B2
8734445 Johnson et al. May 2014 B2
8740898 Chojin et al. Jun 2014 B2
8745840 Hempstead et al. Jun 2014 B2
8747434 Larson et al. Jun 2014 B2
8756785 Allen, IV et al. Jun 2014 B2
8784418 Romero Jul 2014 B2
8795269 Garrison Aug 2014 B2
8808288 Reschke Aug 2014 B2
8814864 Gilbert Aug 2014 B2
8840639 Gerhardt, Jr. et al. Sep 2014 B2
8845636 Allen, IV et al. Sep 2014 B2
8852185 Twomey Oct 2014 B2
8852228 Nau, Jr. Oct 2014 B2
8858553 Chojin Oct 2014 B2
8864753 Nau, Jr. et al. Oct 2014 B2
8864795 Kerr et al. Oct 2014 B2
8887373 Brandt et al. Nov 2014 B2
8888771 Twomey Nov 2014 B2
8888775 Nau, Jr. et al. Nov 2014 B2
8898888 Brandt et al. Dec 2014 B2
8900232 Ourada Dec 2014 B2
8906018 Rooks et al. Dec 2014 B2
8920421 Rupp Dec 2014 B2
8932293 Chernov et al. Jan 2015 B2
8936614 Allen, IV Jan 2015 B2
8939972 Twomey Jan 2015 B2
8945175 Twomey Feb 2015 B2
8961504 Hoarau et al. Feb 2015 B2
8968283 Kharin Mar 2015 B2
8968305 Dumbauld et al. Mar 2015 B2
8968316 Roy et al. Mar 2015 B2
8968357 Mueller Mar 2015 B2
8968359 Kerr et al. Mar 2015 B2
9005200 Roy et al. Apr 2015 B2
9017372 Artale et al. Apr 2015 B2
9028484 Craig May 2015 B2
9028492 Kerr et al. May 2015 B2
9028495 Mueller et al. May 2015 B2
9039704 Joseph May 2015 B2
9039732 Sims et al. May 2015 B2
9084608 Larson et al. Jul 2015 B2
9113933 Chernova et al. Aug 2015 B2
9113934 Chernov et al. Aug 2015 B2
9113938 Kerr Aug 2015 B2
9161807 Garrison Oct 2015 B2
9211657 Ackley et al. Dec 2015 B2
9265568 Chernov et al. Feb 2016 B2
9333002 Garrison May 2016 B2
9381059 Garrison Jul 2016 B2
9456870 Chernov et al. Oct 2016 B2
9498278 Couture et al. Nov 2016 B2
9498279 Artale et al. Nov 2016 B2
9504519 Kerr et al. Nov 2016 B2
9585709 Krapohl Mar 2017 B2
9615877 Tyrrell et al. Apr 2017 B2
9655672 Artale et al. May 2017 B2
10631887 Frushour et al. Apr 2020 B2
20030018332 Schmaltz et al. Jan 2003 A1
20030109875 Tetzlaff et al. Jun 2003 A1
20030199869 Johnson et al. Oct 2003 A1
20030220637 Truckai et al. Nov 2003 A1
20030229344 Dycus et al. Dec 2003 A1
20040092927 Podhajsky et al. May 2004 A1
20050070889 Nobis et al. Mar 2005 A1
20050107784 Moses et al. May 2005 A1
20050113826 Johnson et al. May 2005 A1
20050113828 Shields et al. May 2005 A1
20050119655 Moses et al. Jun 2005 A1
20050159745 Truckai et al. Jul 2005 A1
20060253126 Bjerken et al. Nov 2006 A1
20070062017 Dycus et al. Mar 2007 A1
20070088356 Moses et al. Apr 2007 A1
20070179499 Garrison Aug 2007 A1
20070260241 Dalla Betta et al. Nov 2007 A1
20080215048 Hafner et al. Sep 2008 A1
20090131934 Odom et al. May 2009 A1
20090171353 Johnson et al. Jul 2009 A1
20090182327 Unger Jul 2009 A1
20090240246 Deville et al. Sep 2009 A1
20090302090 Shah Dec 2009 A1
20090308909 Nalagatla et al. Dec 2009 A1
20100016857 McKenna et al. Jan 2010 A1
20100130977 Garrison et al. May 2010 A1
20100179540 Marczyk et al. Jul 2010 A1
20100179545 Twomey et al. Jul 2010 A1
20100179547 Cunningham et al. Jul 2010 A1
20100228250 Brogna Sep 2010 A1
20100274244 Heard Oct 2010 A1
20100292691 Brogna Nov 2010 A1
20100305567 Swanson Dec 2010 A1
20110060314 Wallace et al. Mar 2011 A1
20110060356 Reschke et al. Mar 2011 A1
20110072638 Brandt et al. Mar 2011 A1
20110087218 Boudreaux et al. Apr 2011 A1
20110218530 Reschke Sep 2011 A1
20110238065 Hunt et al. Sep 2011 A1
20110238067 Moses et al. Sep 2011 A1
20110257680 Reschke et al. Oct 2011 A1
20110270245 Horner et al. Nov 2011 A1
20110270251 Horner et al. Nov 2011 A1
20110276049 Gerhardt Nov 2011 A1
20110295313 Kerr Dec 2011 A1
20120059372 Johnson Mar 2012 A1
20120059409 Reschke et al. Mar 2012 A1
20120083785 Roy et al. Apr 2012 A1
20120083786 Artale et al. Apr 2012 A1
20120083827 Artale et al. Apr 2012 A1
20120123402 Chernov et al. May 2012 A1
20120123404 Craig May 2012 A1
20120123410 Craig May 2012 A1
20120130367 Garrison May 2012 A1
20120136354 Rupp May 2012 A1
20120172868 Twomey et al. Jul 2012 A1
20120172873 Artale et al. Jul 2012 A1
20120172924 Allen, IV Jul 2012 A1
20120184989 Twomey Jul 2012 A1
20120184990 Twomey Jul 2012 A1
20120209263 Sharp et al. Aug 2012 A1
20120215219 Roy et al. Aug 2012 A1
20120239034 Horner et al. Sep 2012 A1
20120253344 Dumbauld et al. Oct 2012 A1
20120259331 Garrison Oct 2012 A1
20120265241 Hart et al. Oct 2012 A1
20120283727 Twomey Nov 2012 A1
20120296205 Chernov et al. Nov 2012 A1
20120296238 Chernov et al. Nov 2012 A1
20120296239 Chernov et al. Nov 2012 A1
20120296317 Chernov et al. Nov 2012 A1
20120296323 Chernov et al. Nov 2012 A1
20120296324 Chernov et al. Nov 2012 A1
20120296334 Kharin Nov 2012 A1
20120303025 Garrison Nov 2012 A1
20120323238 Tyrrell et al. Dec 2012 A1
20120330308 Joseph Dec 2012 A1
20120330309 Joseph Dec 2012 A1
20130018364 Chernov et al. Jan 2013 A1
20130018372 Sims et al. Jan 2013 A1
20130018411 Collings et al. Jan 2013 A1
20130022495 Allen, IV et al. Jan 2013 A1
20130030432 Garrison et al. Jan 2013 A1
20130041370 Unger Feb 2013 A1
20130046295 Kerr et al. Feb 2013 A1
20130046303 Evans et al. Feb 2013 A1
20130046306 Evans et al. Feb 2013 A1
20130046337 Evans et al. Feb 2013 A1
20130060250 Twomey et al. Mar 2013 A1
20130066318 Kerr Mar 2013 A1
20130071282 Fry Mar 2013 A1
20130072927 Allen, IV et al. Mar 2013 A1
20130079760 Twomey et al. Mar 2013 A1
20130079762 Twomey et al. Mar 2013 A1
20130079774 Whitney et al. Mar 2013 A1
20130085491 Twomey et al. Apr 2013 A1
20130085496 Unger et al. Apr 2013 A1
20130103030 Garrison Apr 2013 A1
20130103031 Garrison Apr 2013 A1
20130103035 Horner et al. Apr 2013 A1
20130123837 Roy et al. May 2013 A1
20130138101 Kerr May 2013 A1
20130138102 Twomey et al. May 2013 A1
20130138129 Garrison et al. May 2013 A1
20130144284 Behnke, II et al. Jun 2013 A1
20130178852 Allen, IV et al. Jul 2013 A1
20130185922 Twomey et al. Jul 2013 A1
20130190753 Garrison Jul 2013 A1
20130190760 Allen, IV Jul 2013 A1
20130197503 Orszulak Aug 2013 A1
20130226177 Brandt Aug 2013 A1
20130296843 Boudreaux et al. Nov 2013 A1
20140221994 Reschke Aug 2014 A1
20140221995 Guerra et al. Aug 2014 A1
20140221999 Cunningham et al. Aug 2014 A1
20140228842 Dycus et al. Aug 2014 A1
20140230243 Roy et al. Aug 2014 A1
20140236149 Kharin et al. Aug 2014 A1
20140243811 Reschke et al. Aug 2014 A1
20140243824 Gilbert Aug 2014 A1
20140249528 Hixson et al. Sep 2014 A1
20140250686 Hempstead et al. Sep 2014 A1
20140257274 McCullough, Jr. et al. Sep 2014 A1
20140257283 Johnson et al. Sep 2014 A1
20140257284 Artale Sep 2014 A1
20140257285 Moua Sep 2014 A1
20140276803 Hart Sep 2014 A1
20140284313 Allen, IV et al. Sep 2014 A1
20140288549 McKenna et al. Sep 2014 A1
20140288553 Johnson et al. Sep 2014 A1
20140330308 Hart et al. Nov 2014 A1
20140336635 Hart et al. Nov 2014 A1
20140353188 Reschke et al. Dec 2014 A1
20150018816 Latimer Jan 2015 A1
20150025528 Arts Jan 2015 A1
20150032106 Rachlin Jan 2015 A1
20150051598 Orszulak et al. Feb 2015 A1
20150051640 Twomey et al. Feb 2015 A1
20150066026 Hart et al. Mar 2015 A1
20150066076 Kerr et al. Mar 2015 A1
20150080889 Cunningham et al. Mar 2015 A1
20150082928 Kappus et al. Mar 2015 A1
20150088122 Jensen Mar 2015 A1
20150088126 Duffin et al. Mar 2015 A1
20150088128 Couture Mar 2015 A1
20150094714 Lee et al. Apr 2015 A1
20150223874 Artale et al. Aug 2015 A1
20160157925 Artale et al. Jun 2016 A1
Foreign Referenced Citations (103)
Number Date Country
201299462 Sep 2009 CN
202086577 Dec 2011 CN
102525639 Jul 2012 CN
2415263 Oct 1975 DE
02514501 Oct 1976 DE
2627679 Jan 1977 DE
03423356 02 Jun 1986 DE
03612646 Apr 1987 DE
3627221 Feb 1988 DE
8712328 Feb 1988 DE
04303882 02 Feb 1995 DE
04403252 Aug 1995 DE
19515914 Jul 1996 DE
19506363 Aug 1996 DE
29616210 Nov 1996 DE
19608716 Apr 1997 DE
19751106 May 1998 DE
19738457 Mar 1999 DE
19751108 May 1999 DE
19946527 Jul 2001 DE
20121161 Apr 2002 DE
10045375 Oct 2002 DE
202007009165 Aug 2007 DE
202007009317 Aug 2007 DE
202007009318 Aug 2007 DE
10031773 Nov 2007 DE
202007016233 Jan 2008 DE
102004026179 Jan 2009 DE
102008018406 Jul 2009 DE
1281878 Feb 2003 EP
1159926 Mar 2003 EP
2353535 Aug 2011 EP
2436330 Apr 2012 EP
61501068 May 1986 JP
1147150 Jun 1989 JP
55106 Jan 1993 JP
0540112 Feb 1993 JP
6121797 May 1994 JP
6285078 Oct 1994 JP
06343644 Dec 1994 JP
6511401 Dec 1994 JP
H07265328 Oct 1995 JP
H0856955 Mar 1996 JP
08252263 Oct 1996 JP
8289895 Nov 1996 JP
8317934 Dec 1996 JP
8317936 Dec 1996 JP
09000538 Jan 1997 JP
H0910223 Jan 1997 JP
9122138 May 1997 JP
0010000195 Jan 1998 JP
H1024051 Jan 1998 JP
H1070124 Mar 1998 JP
10155798 Jun 1998 JP
1147149 Feb 1999 JP
11169381 Jun 1999 JP
11192238 Jul 1999 JP
H11244298 Sep 1999 JP
2000102545 Apr 2000 JP
2000135222 May 2000 JP
2000342599 Dec 2000 JP
2000350732 Dec 2000 JP
2001003400 Jan 2001 JP
2001008944 Jan 2001 JP
2001029355 Feb 2001 JP
2001029356 Feb 2001 JP
2001128990 May 2001 JP
2001190564 Jul 2001 JP
2002136525 May 2002 JP
2002528166 Sep 2002 JP
2003116871 Apr 2003 JP
2003175052 Jun 2003 JP
2003245285 Sep 2003 JP
2004517668 Jun 2004 JP
2004528869 Sep 2004 JP
2005152663 Jun 2005 JP
2005253789 Sep 2005 JP
2005312807 Nov 2005 JP
2006015078 Jan 2006 JP
2006501939 Jan 2006 JP
2006095316 Apr 2006 JP
2008054926 Mar 2008 JP
2011125195 Jun 2011 JP
0006030945 Nov 2016 JP
6502328 Apr 2019 JP
401367 Oct 1973 SU
9400059 Jan 1994 WO
9923933 May 1999 WO
0024330 May 2000 WO
0036986 Jun 2000 WO
0059392 Oct 2000 WO
0115614 Mar 2001 WO
0154604 Aug 2001 WO
0245589 Jun 2002 WO
02080786 Oct 2002 WO
02080793 Oct 2002 WO
2006021269 Mar 2006 WO
2005110264 Apr 2006 WO
2008040483 Apr 2008 WO
2011018154 Feb 2011 WO
2013009758 Jan 2013 WO
2013022928 Feb 2013 WO
2016015233 Feb 2016 WO
Non-Patent Literature Citations (55)
Entry
McLellan et al. “Vessel Sealing for Hemostasis During Gynecologic Surgery” Sales/Product Literature 1999.
“Electrosurgery: A Historical Overview” Innovations in Electrosurgery; Sales/Product Literature; Dec. 31, 2000, 6 pages.
Johnson et al. “Evaluation of a Bipolar Electrothermal Vessel Sealing Device in Hemorrhoidectomy” Sales/Product Literature; Jan. 2004, 1 page.
Burdette et al. “In Vivo Probe Measurement Technique for Determining Dielectric Properties at VHF Through Microwave Frequencies”, IEEE Transactions on Microwave Theory and Techniques, vol. MTT-28, No. 4, Apr. 1980 pp. 414-427.
Heniford et al. “Initial Results with an Electrothermal Bipolar Vessel Sealer” Surgical Endoscopy (2000) 15:799-801. (4 pages).
Notification of Transmittal of the International Search Report and the Written Opinion of the International Searching Authority, or the Declaration issuedin corresponding PCT application No. PCT/US2017/046019 dated Nov. 22, 2017, 12 pages.
“Reducing Needlestick Injuries in the Operating Room” Sales/Product Literature 2001. (1 page).
Levy et al., “Update on Hysterectomy—New Technologies and Techniques” OBG Management, Feb. 2003, 15 pages.
Barbara Levy, “Use of a New Vessel Ligation Device During Vaginal Hysterectomy” FIGO 2000, Washington, D.C. (1 page).
Vallfors et al., “Automatically Controlled Bipolar Electrocoagulation—COA-COMP”, Neurosurg. Rev. (1984), pp. 187-190.
U.S. Appl. No. 08/926,869, filed Sep. 10, 1997, James G. Chandler.
U.S. Appl. No. 09/177,950, filed Oct. 23, 1998, Randel A. Frazier.
U.S. Appl. No. 09/387,883, filed Sep. 1, 1999, Dale F. Schmaltz, abandoned.
U.S. Appl. No. 09/591,328, filed Jun. 9, 2000, Thomas P. Ryan.
U.S. Appl. No. 12/336,970, filed Dec. 17, 2008, Paul R. Sremeich, abandoned.
U.S. Appl. No. 13/183,856, filed Jul. 15, 2011, John R. Twomey.
U.S. Appl. No. 13/185,593, filed Jul. 19, 2011, James D. Allen, IV.
Michael Choti, “Abdominoperineal Resection with the LigaSure Vessel Sealing System and LigaSure Atlas 20 cm Open Instrument” Innovations That Work, Jun. 2003.
Chung et al., “Clinical Experience of Sutureless Closed Hemorrhoidectomy with LigaSure” Diseases of the Colon & Rectum vol. 46, No. 1 Jan. 2003.
Tinkcler L.F., “Combined Diathermy and Suction Forceps”, Feb. 6, 1967 (Feb. 6, 1967), British Medical Journal Feb. 6, 1976, vol. 1, nr. 5431 p. 361, ISSN: 0007-1447.
Carbonell et al., “Comparison of theGyrus PlasmaKinetic Sealer and the Valleylab LigaSure Device in the Hemostasis of Small, Medium, and Large-Sized Arteries” Carolinas Laparoscopic and Advanced Surgery Program, Carolinas MedicalCenter, Charlotte, NC; Date: Aug. 2003.
Peterson et al., “Comparison of Healing Process Following Ligation with Sutures and Bipolar Vessel Sealing” Surgical Technology International (2001).
E. David Crawford, “Evaluation of a New Vessel Sealing Device in Urologic Cancer Surgery” Sales/Product Literature 2000.
Johnson et al. “Evaluation of the LigaSure Vessel Sealing System in Hemorrhoidectormy” American College of Surgeons (ACS) Clinicla Congress Poster (2000).
Muller et al. “Extended Left Hemicolectomy Using the LigaSure Vessel Sealing System” Innovations That Work; Sep. 1999.
Kennedy et al., “High-burst-strength, feedback-controlled bipolar vessel sealing” Surgical Endoscopy (1998) 12:876-878.
Carus et al., “Initial Experience With the LigaSure Vessel Sealing System in Abdominal Surgery” Innovations That Work,Jun. 2002.
Heniford et al. “Initial Research and Clinical Results with an Electrothermal Bipolar Vessel Sealer” Oct. 1999.
Herman et al., “Laparoscopic Intestinal Resection With the LigaSure Vessel Sealing System: A Case Report” Innovations That Work, Feb. 2002.
Koyle et al., “Laparoscopic Palomo Varicocele Ligation in Children and Adolescents” Pediatric Endosurgery & Innovative Techniques, vol. 6, No. 1, 2002.
W. Scott Helton, “LigaSure Vessel Sealing System: Revolutionary Hemostasis Product for General Surgery”; Sales/Product Literature 1999.
LigaSure Vessel Sealing System, the Seal of Confidence in General, Gynecologic, Urologic, and Laparaoscopic Surgery; Sales/Product Literature; Apr. 2002.
Joseph Ortenberg “LigaSure System Used in Laparoscopic 1st and 2nd Stage Orchiopexy” Innovations That Work, Nov. 2002.
Sigel et al., “The Mechanism of Blood Vessel Closure by High Frequency Electrocoagulation” Surgery Gynecology & Obstetrics, Oct. 1965 pp. 823-831.
Sampayan et al, “Multilayer Ultra-High Gradient Insulator Technology” Discharges and Electrical Insulation in Vacuum, 1998. Netherlands Aug. 17-21, 1998; vol. 2, pp. 740-743.
Paul G. Horgan, “A Novel Technique for Parenchymal Division During Hepatectomy” The American Journal of Surgery, vol. 181, No. 3, Apr. 2001 pp. 236-237.
Benaron et al., “Optical Time-Of-Flight and Absorbance Imaging of Biologic Media”, Science, American Association for the Advancement of Science, Washington, DC, vol. 259, Mar. 5, 1993, pp. 1463-1466.
Olsson et al. “Radical Cystectomy in Females”. Current Surgical Techniques in Urology, vol. 14, Issue 3, 2001.
Palazzo et al. “Randomized clinical trial of Ligasure versus open haemorrhoidectomy” British Journal of Surgery 2002, 89, 154-157.
Levy et al. “Randomized Trial of Suture Versus Electrosurgical Bipolar Vessel Sealing in Vaginal Hysterectomy” Obstetrics & Gynecology, vol. 102, No. 1, Jul. 2003.
Bergdahl et al., “Studies on Coagulation and the Development of an Automatic Computerized Bipolar Coagulator” J. Neurosurg, vol. 75, Jul. 1991, pp. 148-151.
Strasberg et al. “A Phase I Study of the LigaSure Vessel Sealing System in Hepatic Surgery” Section of HPB Surger, Washington University School of Medicine, St. Louis MO, Presented at AHPBA, Feb. 2001.
Sayfan et al., “Sutureless Closed Hemorrhoidectomy: A New Technique” Annals of Surgery, vol. 234, No. 1, Jul. 2001, pp. 21-24.
Levy et al., “Update on Hysterectomy—New Technologies and Techniques” OBG Management, Feb. 2003.
Dulemba et al. “Use of a Bipolar Electrothermal Vessel Sealer in Laparoscopically Assisted Vaginal Hysterectomy” Sales/Product Literature; Jan. 2004.
Strasberg et al., “Use of a Bipolar Vessel-Sealing Device for Parenchymal Transection During Liver Surgery” Journal of Gastrointestinal Surgery, vol. 6, No. 4, Jul./Aug. 2002 pp. 569-574.
Sengupta et al., “Use of a Computer-Controlled Bipolar Diathermy System in Radical Prostatectomies and Other Open Urological Surgery” ANZ Journal of Surgery (2001)71.9 pp. 538-540.
Rothenberg et al. “Use of the LigaSure Vessel Sealing System in Minimally Invasive Surgery in Children” Int'l Pediatric Endosurgery Group (IPEG) 2000.
Crawford et al. “Use of the LigaSure Vessel Sealing System in Urologic Cancer Surgery”; Grand Rounds in Urology 1999 vol. 1 Issue 4 pp. 10-17.
Craig Johnson, “Use of the LigaSure Vessel Sealing System in Bloodless Hemorrhoidectomy”; Innovations That Work, Mar. 2000.
Levy et al. “Use of a New Energy-based Vessel Ligation Device During Vaginal Hysterectomy”; Int'l Federation of Gynecology and Obstetrics (FIGO) World Congress 1999.
E. David Crawford, “Use of a Novel Vessel Sealing Technology in Management of the Dorsal Veinous Complex” Sales/Product Literature 2000.
Jarrett et al., “Use of the LigaSure Vessel Sealing System for Peri-Hilar Vessels in Laparoscopic Nephrectomy”; Sales/Product Literature 2000.
Crouch et al. “A Velocity-Dependent Model for Needle Insertion in Soft Tissue”; MICCAI 2005; LNCS 3750 pp. 624-632, Dated: 2005.
McLellan et al., “Vessel Sealing for Hemostasis During Pelvic Surgery” Int'l Federation of Gynecology and Obstetrics FIGO World Congress 2000, Washington, DC.
Related Publications (1)
Number Date Country
20200253630 A1 Aug 2020 US
Provisional Applications (1)
Number Date Country
62374989 Aug 2016 US
Continuations (1)
Number Date Country
Parent 15671200 Aug 2017 US
Child 16860360 US