SCISSOR FORCEPS
20190201031 ยท 2019-07-04
Assignee
Inventors
Cpc classification
B26B17/00
PERFORMING OPERATIONS; TRANSPORTING
International classification
B26B17/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A scissor forceps comprises a base and a pair of blades configured to be pivotally attached to one another via a swing shaft attached to the base in an overlapping relationship. A drive mechanism is used to drive the blades and includes a power transmitting member that transmits a pulling force. A swing mechanism is disposed on a proximal side of the blades relative to the swing shaft converting a portion of the pulling force being transmitted by the power transmitting member to a first force that swings the blades. A pressing mechanism that converts another portion of the pulling force to a second force that separates the blades in the axial direction of the swing shaft on the proximal side of the blades. The swing mechanism includes cam grooves formed through the blades along directions that intersect one another on the proximal side of each of the blades.
Claims
1. A scissor forceps comprising: a base; a pair of blades configured to be pivotally attached to one another via a swing shaft attached to the base in an overlapping relationship in an axial direction of the swing shaft; and a drive mechanism being used to drive the blades wherein the drive mechanism includes a power transmitting member that transmits a pulling force, a swing mechanism disposed on a proximal side of the blades relative to the swing shaft converting a portion of the pulling force being transmitted by the power transmitting member to a first force that swings the blades, and a pressing mechanism that converts another portion of the pulling force to a second force that separates the blades in the axial direction of the swing shaft on the proximal side of the blades, the swing mechanism includes cam grooves formed through the blades along directions that intersect one another on the proximal side of each of the blades relative to the swing shaft, and a pin that penetrates an intersection position of the cam grooves and being supported by the blades so as to define a cantilever, the power transmitting member being connected to a tip side of the cantilever, and the pressing mechanism includes a moment transmitting portion that transmits, to one of the blades, a moment generated on the pin as a result of the pulling force transmitted by the power transmitting member.
2. The scissor forceps of claim 1, wherein the moment transmitting portion is a large diameter portion that is disposed around the pin in such a manner as to protrude in a radial direction and is disposed between the blades and is brought into tight contact with a surface of one of the blades.
3. The scissor forceps of claim 2, wherein the power transmitting member is defined by a wire, and the moment transmitting portion is defined by a pulley that is disposed rotatably around the pin and around which the wire is wound.
4. The scissor forceps of claim 2, wherein the power transmitting member is defined by a wire, and the moment transmitting portion is defined by a pulley that is disposed rotatably around the pin and is made of an elastic material, the wire being wound around the elastic pulley, and the moment transmitting portion expands in the axial direction when being contracted in a radial direction by the pulling force.
5. The scissor forceps of claim 1, wherein at least one of the blades has an energy emitting portion.
6. A scissor forceps comprising: a base; a pair of blades configured to be pivotally attached to one another via a swing shaft attached to the base in an overlapping relationship in an axial direction of the swing shaft; and a drive mechanism being used to drive the blades wherein the drive mechanism includes a power transmitting member that transmits a pulling force, a swing mechanism disposed on a proximal side of the blades relative to the swing shaft converting a portion of the pulling force being transmitted by the power transmitting member to a first force that swings the blades, and a pressing mechanism that converts another portion of the pulling force to a second force that separates the blades in the axial direction of the swing shaft on the proximal side of the blades, the swing mechanism includes two coupled links that is pivotally coupled at each of respective one ends and having the other ends being pivotally coupled by a coupling shaft to the proximal side of a respective one of the blades relative to the swing shaft and connecting the power transmitting member to the coupling shaft, the pressing mechanism is defined by the coupling shaft having two small links which have one ends coupled pivotally and each have the other end pivotally coupled to a second pin fitted to a hole made at a proximal end of the coupled link and connecting the power transmitting member to a coupling portion between the small links wherein the coupling portion is located on a distal side of the second pins.
7. The scissor forceps of claim 6, wherein at least one of the blades has an energy emitting portion.
8. A scissor forceps comprising: a base; a pair of blades configured to be pivotally attached to one another via a swing shaft attached to the base in an overlapping relationship in an axial direction of the swing shaft; and a drive mechanism being used to drive the blades wherein the drive mechanism includes a power transmitting member that transmits a pulling force, a swing mechanism disposed on a proximal side of the blades relative to the swing shaft converting a portion of the pulling force being transmitted by the power transmitting member to a first force that swings the blades, and a pressing mechanism that converts another portion of the pulling force to a second force that separates the blades in the axial direction of the swing shaft on the proximal side of the blades, the swing mechanism includes two coupled links that is pivotally coupled at each of respective one ends and having the other ends being pivotally coupled by a coupling shaft to the proximal side of a respective one of the blades relative to the swing shaft and connecting the power transmitting member to the coupling shaft, and the pressing mechanism is defined by the coupling shaft bendably and includes a moment transmitting portion that transmits, to one of the blades, a moment generated on the coupling shaft as a result of bending attributed to the pulling force transmitted by the power transmitting member.
9. The scissor forceps of claim 8, wherein at least one of the blades has an energy emitting portion.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0025] The technology disclosed herein, in accordance with one or more various embodiments, is described in detail with reference to the following figures. The drawings are provided for purposes of illustration only and merely depict typical or example embodiments of the disclosed technology. These drawings are provided to facilitate the reader's understanding of the disclosed technology and shall not be considered limiting of the breadth, scope, or applicability thereof. It should be noted that for clarity and ease of illustration these drawings are not necessarily made to scale.
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DETAILED DESCRIPTION OF THE EMBODIMENTS
[0042] In the following description, various embodiments of the technology will be described. For purposes of explanation, specific configurations and details are set forth in order to provide a thorough understanding of the embodiments. However, it will also be apparent to one skilled in the art that the technology disclosed herein may be practiced without the specific details. Furthermore, well-known features may be omitted or simplified in order not to obscure the embodiment being described.
[0043] A scissor forceps 1 according to one embodiment of the disclosed technology will be described below with reference to the drawings.
[0044] The scissor forceps 1 according to the present embodiment include a pair of blades 2a and 2b disposed at the distal end of an insertion portion inserted in a channel of an endoscope and a drive mechanism 3 that being used to drive these blades 2a and 2b, for example.
[0045] The blades 2a and 2b are each formed into a flat plate shape and, in the state of being overlapped with each other in the plate thickness direction, are mutually pivotally coupled by a swing shaft 4 that penetrates in the plate thickness direction at a halfway position in the length direction. These blades 2a and 2b are relatively swung between the state of being opened as depicted in
[0046] The respective blades 2a and 2b have blade edges along rims that mutually overlap in the closed state on the distal side relative to the swing shaft 4. By disposing tissue that is a cutting target between the blades 2a and 2b in the opened state and making a transition to the closed state, the blade edges are made to sequentially intersect from a position close to the swing shaft 4 and the tissue is cut.
[0047] On the proximal side of one blade (hereinafter, referred to also as first blade) 2a relative to the swing shaft 4, as depicted in
[0048] The proximal side of the other blade (hereinafter, referred to also as second blade) 2b is housed between the two flat plate portions 5a and 5b of the first blade 2a. In the two flat plate portions 5a and 5b of the first blade 2a, first long holes 7, or cam grooves, that penetrate the respective flat plate portions 5a and 5b in the plate thickness direction and extend along a straight line including the swing shaft 4 to the proximal side relative to the swing shaft 4 are formed. Furthermore, in the second blade 2b, a second long hole 8, or cam groove, that extends in a direction intersecting the first long holes 7 is formed to penetrate in the plate thickness direction.
[0049] For the two blades 2a and 2b, at the position of the swing shaft 4, relative movement in the plate thickness direction is constrained and only relative swinging around the swing shaft 4 is permitted.
[0050] Meanwhile, between the base portion 6 of the first blade 2a and the second blade 2b, a gap is formed in the plate thickness direction on the proximal side relative to the swing shaft 4. This allows the second blade 2b to be displaced in such a direction as to decrease the gap when receiving a force in the plate thickness direction on the proximal side relative to the swing shaft 4.
[0051] The drive mechanism 3 is disposed at the proximal end of the insertion portion and includes a power transmitting member 9 formed of an elongated member such as a wire that transmits a pulling force from a drive portion that is not depicted in the diagram, such as a handle that generates the pulling force, to the distal end of the insertion portion, a swing mechanism 10 that swings the second blade 2b around the swing shaft 4 relative to the first blade 2a by part of the pulling force transmitted by the power transmitting member 9, and a pressing mechanism 11 that biases the first blade 2a and the second blade 2b in such a direction as to press the blade edges of the first blade 2a and the second blade 2b against each other in the plate thickness direction by the other part of the pulling force.
[0052] The swing mechanism 10 includes the first long holes 7 and the second long hole 8 formed in the two blades 2a and 2b and a pin 12 disposed to penetrate the intersection position of these first long holes 7 and the second long hole 8 in the plate thickness direction.
[0053] Furthermore, the pressing mechanism 11 is configured by a large diameter portion 13, or moment transmitting portion, with an outer flange shape that is disposed at a position sandwiched by the two blades 2a and 2b and protrudes in the radial direction.
[0054] The distal end of the power transmitting member 9 is attached to the large diameter portion 13 and the pulling force transmitted by the power transmitting member 9 acts on the large diameter portion 13.
[0055] The operation of the scissor forceps 1 according to the present embodiment configured in this manner will be described below.
[0056] To cut tissue by using the scissor forceps 1 according to the present embodiment, the scissor forceps 1 in which the two blades 2a and 2b are set to the closed state are inserted into a body from the distal end through a channel of an endoscope disposed in the body, and the two blades 2a and 2b are made opposed to an affected site in the body. In this state, the drive portion at the proximal end of the insertion portion disposed outside the body is actuated and a pressing force is transmitted to the large diameter portion 13 disposed between the blades 2a and 2b by the power transmitting member 9.
[0057] Thereby, the pin 12 around which the large diameter portion 13 is disposed is moved by the pressing force toward the distal side along the first long holes 7 made in the first blade 2a and the second long hole 8 made in the second blade 2b is moved by the pin 12. As a result, the second blade 2b is swung around the swing shaft 4 relative to the first blade 2a and the first blade 2a and the second blade 2b are opened as depicted in
[0058] Then, while the tissue is checked by the endoscope, the tissue that is the cutting target is disposed between the first blade 2a and the second blade 2b that are opened and a pulling force depicted by an arrow in
[0059] In this case, according to the scissor forceps 1 in accordance with the present embodiment, as depicted in
[0060] Then, the generated moment is received by pressing shoulder portions of the large diameter portion 13 against the first blade 2a and the second blade 2b. Thus, from the shoulder portions of the large diameter portion 13, a pressing force that separates the first blade 2a and the second blade 2b in the plate thickness direction acts in directions depicted by arrows in
[0061] As described hereinbefore, in the scissor forceps 1 according to the present embodiment, the position of the first blade 2a and the second blade 2b in the longitudinal direction of the swing shaft 4 is constrained at the position of the swing shaft 4 and a gap is made on the proximal side relative to the swing shaft 4. Therefore, when a pressing force that separates the first blade 2a and the second blade 2b acts on the proximal side of the swing shaft 4, a biasing force that presses the first blade 2a and the second blade 2b on the distal side relative to the swing shaft 4 acts, with the position of the swing shaft 4 being a fulcrum.
[0062] Then, by a pulling force applied to the large diameter portion 13, the pin 12 around which the large diameter portion 13 is disposed is moved toward the proximal side along the first long holes 7 as depicted in
[0063] As described hereinbefore, according to the scissor forceps 1 in accordance with the present embodiment, when a pulling force is transmitted by the power transmitting member 9, by the transmitted pulling force, the first blade 2a and the second blade 2b are relatively swung in the closing direction around the swing shaft 4 while the first blade 2a and the second blade 2b on the distal side relative to the swing shaft 4 are mutually pressed in the plate thickness direction at all swinging positions. Due to this, the first blade 2a and the second blade 2b are closed while the blade edges of the first blade 2a and the second blade 2b disposed on the distal side relative to the swing shaft 4 are mutually pressed. Thus, there is an advantage that tissue disposed between the first blade 2a and the second blade 2b can be cut more surely.
[0064] In the present embodiment, the swing mechanism 10 is configured by the first long holes 7 and the second long hole 8 that mutually intersect and the pin 12 that penetrates the intersection position of them. However, instead of this, the swing mechanism 10 may be configured by links 14a and 14b, or coupled links, as depicted in
[0065] In the example depicted in
[0066] In this case, as depicted in
[0067] Due to this, when a pulling force acts on the joint portion 16, a so-called toggle mechanism in which the joint portion 16 is unbent and the coupling shaft 15 stretches is configured and the two links 14a and 14b are separated on the proximal side relative to the swing shaft 4 as depicted in
[0068] That is, also by such a configuration, part of the pulling force transmitted by the power transmitting member 9 always generates a force that swings the first blade 2a and the second blade 2b in the closing direction and a biasing force that causes the first blade 2a and the second blade 2b to be mutually pressed in the plate thickness direction, and a high shear force is generated on tissue between the first blade 2a and the second blade 2b, so that the tissue can be cut more surely.
[0069] Furthermore, instead of what is obtained by coupling the two small links 17a and 17b having the joint portion 16 as the coupling shaft 15, as depicted in
[0070] As a result, also by such a configuration, part of the pulling force transmitted by the power transmitting member 9 always generates a force that swings the first blade 2a and the second blade 2b in the closing direction and a biasing force that causes the first blade 2a and the second blade 2b to be mutually pressed in the plate thickness direction, and a high shear force is generated on tissue between the first blade 2a and the second blade 2b, so that the tissue can be cut more surely.
[0071] In this case, the coupling shaft 18 may be what is obtained by coupling two small links 17a and 17b by the joint portion 16 or a monolithic coupling shaft composed of an elastically deformable material may be employed.
[0072] Moreover, as depicted in
[0073] By doing this, the pulley 20 that moves together with the pin 12 can be caused to function as a movable pulley and a pulling force applied to the wire 21 can be amplified to be applied to the pin 12. Due to this, there is an advantage that the pulling force applied to the proximal end of the wire 21 can be reduced and cutting work can be easily carried out with a small pulling force.
[0074] In this case, the amplification rate of the pulling force may be increased by disposing an attached pulley (diagrammatic representation is omitted) attached to the first blade 2a or the second blade 2b rotatably around an axis line parallel to the pin 12 and winding plural wires 21 between the pulley 20 attached to the pin 12 and the attached pulley.
[0075] Furthermore, instead of the pulley 20 in
[0076] The first blade 2a and the second blade 2b can be pressed in the separating direction by the expanding pulley 22 and the first blade 2a and the second blade 2b on the distal side relative to the swing shaft 4 can be mutually pressed in the plate thickness direction.
[0077] Moreover, as depicted in
[0078] Furthermore, by employing what has a cross-sectional shape whose thickness gradually increases from the blade edge side as depicted in
[0079] An embodiment of a scissor forceps comprises an elongated first blade having a U-shaped first end at a proximal and a free second end opposed from the U-shaped first end. The U-shaped first end is defined by a base. A second blade is pivotally attached to the U-shaped first end of the first blade via a swing shaft and is sandwiched inside the U-shaped first end in an axial direction of the swing shaft. A power transmitting member is configured to transmit a pulling force. A swing mechanism is configured to convert the pulling force to a first force that swings the first and the second blades. The swing mechanism includes a first cam groove formed in the U-shaped first end of the first blade on a proximal side of the first blade relative to the swing shaft. A second cam groove is formed on a proximal side of the second blade relative to the swing shaft. The second cam groove intersecting to the first cam groove and a pin penetrates the first and the second blades and is configured to move along the first and second cam grooves. The pin is configured to be supported by the first and second blades so as to define a cantilever. A pressing mechanism is configured to convert the pulling force to a second force that separates the first and second blades in the axial direction of the swing shaft on the proximal side of the first and second blades. The pressing mechanism includes a moment transmitting portion formed around a tip side of the pin and connected to the power transmitting member. The moment transmitting portion is configured to transmit a moment generated on the pin by the pulling force to one of the first and second blades.
[0080] The moment transmitting portion is a large diameter portion that is disposed around the pin in such a manner as to protrude in a radial direction and is disposed between the first and second blades and is brought into tight contact with a surface of one of the blades. The power transmitting member is defined by a wire. The moment transmitting portion is defined by a pulley that is disposed rotatably around the pin and around which the wire is wound. The power transmitting member is defined by a wire and the moment transmitting portion is defined by an elastic pulley that is disposed rotatably around the pin. The wire is wound around the elastic pulley and the moment transmitting portion expands in the axial direction when being contracted in a radial direction by the pulling force. At least one of the first and second blades has an energy emitting portion.
[0081] Another embodiment of a scissor forceps comprises a first blade having a first plate portion and a second plate portion. The first plate portion and the second plate portion respectively having proximal ends. The first plate portion and the second plate portion are connected at the both proximal ends via a base. A second blade relatively is pivotally attached to the first blade around a swing shaft and is sandwiched between the first and the second plate portion in an axial direction of a swing shaft. A power transmitting member is configured to transmit a pulling force. A swing mechanism is configured to convert the pulling force to a first force that swings the first and the second blades. The swing mechanism includes two coupled links respectively having proximal ends and distal ends. The proximal ends of the two coupled links pivotally coupled at each other by a coupling shaft. The coupling shaft is connected to the power transmitting member. the distal ends of the two coupled links are disposed a proximal side of the first and second blades relative to the swing shaft. The distal ends of the two coupled links are pivotally coupled by a respective one of the first and second blades. A pressing mechanism is configured to convert the pulling force to a second force that separates the first and second blades in the axial direction of the swing shaft on the proximal side of the first and second blades. The pressing mechanism is defined by the coupling shaft. The coupling shaft includes two second links respectively having first ends and second ends. The first ends of the second links are pivotally coupled to each other and are connected to the power transmitting member. The second ends of the second links are pivotally fitted to holes formed at the proximal ends of the coupled link. The at least one of the first and second blades has an energy emitting portion.
[0082] A further embodiment of a scissor forceps comprises a first blade having a first plate portion and a second plate portion. The first plate portion and the second plate portion respectively having proximal ends. The first plate portion and the second plate portion are connected at the both proximal ends via a base. A second blade relatively is pivotally attached to the first blade around a swing shaft and is sandwiched between the first and the second plate portion in an axial direction of a swing shaft. A power transmitting member is configured to transmit a pulling force. A swing mechanism is configured to convert the pulling force to a first force that swings the first and the second blades. The swing mechanism includes two coupled links respectively having proximal ends and distal ends. The proximal ends of the two coupled links pivotally coupled at each other by a coupling shaft. The coupling shaft is connected to the power transmitting member. The distal ends of the two coupled links are disposed a proximal side of the first and second blades relative to the swing shaft. The distal ends of the two coupled links are pivotally coupled by a respective one of the first and second blades. A pressing mechanism is configured to convert the pulling force to a second force that separates the first and second blades in the axial direction of the swing shaft on the proximal side of the first and second blades. The pressing mechanism is defined by the coupling shaft and a moment transmitting portion. The coupling shaft is bendable. The moment transmitting portion is configured to transmit a moment to one of the first and second blades. The moment is generated on the coupling shaft by bending the coupling shaft based on the pulling force. The at least one of the blades has an energy emitting portion.
[0083] While various embodiments of the disclosed technology have been described above, it should be understood that they have been presented by way of example only, and not of limitation. Likewise, the various diagrams may depict an example schematic or other configuration for the disclosed technology, which is done to aid in understanding the features and functionality that can be included in the disclosed technology. The disclosed technology is not restricted to the illustrated example schematic or configurations, but the desired features can be implemented using a variety of alternative illustrations and configurations. Indeed, it will be apparent to one of skill in the art how alternative functional, logical or physical locations and configurations can be implemented to implement the desired features of the technology disclosed herein.
[0084] Although the disclosed technology is described above in terms of various exemplary embodiments and implementations, it should be understood that the various features, aspects and functionality described in one or more of the individual embodiments are not limited in their applicability to the particular embodiment with which they are described, but instead can be applied, alone or in various combinations, to one or more of the other embodiments of the disclosed technology, whether or not such embodiments are described and whether or not such features are presented as being a part of a described embodiment. Thus, the breadth and scope of the technology disclosed herein should not be limited by any of the above-described exemplary embodiments.
[0085] Terms and phrases used in this document, and variations thereof, unless otherwise expressly stated, should be construed as open ended as opposed to limiting. As examples of the foregoing: the term including should be read as meaning including, without limitation or the like; the term example is used to provide exemplary instances of the item in discussion, not an exhaustive or limiting list thereof; the terms a or an should be read as meaning at least one, one or more or the like; and adjectives such as conventional, traditional, normal, standard, known and terms of similar meaning should not be construed as limiting the item described to a given time period or to an item available as of a given time, but instead should be read to encompass conventional, traditional, normal, or standard technologies that may be available or known now or at any time in the future. Likewise, where this document refers to technologies that would be apparent or known to one of ordinary skill in the art, such technologies encompass those apparent or known to the skilled artisan now or at any time in the future.
[0086] The presence of broadening words and phrases such as one or more, at least, but not limited to or other like phrases in some instances shall not be read to mean that the narrower case is intended or required in instances where such broadening phrases may be absent. Additionally, the various embodiments set forth herein are described in terms of exemplary schematics, block diagrams, and other illustrations. As will become apparent to one of ordinary skill in the art after reading this document, the illustrated embodiments and their various alternatives can be implemented without confinement to the illustrated examples. For example, block diagrams and their accompanying description should not be construed as mandating a particular configuration.
NUMERAL REFERENCE LIST
[0087] 1 Scissor forceps [0088] 2a First blade (Blade) [0089] 2b Second blade (Blade) [0090] 3 Drive mechanism [0091] 4 Swing shaft [0092] 6 Base portion (Base) [0093] 7 First long hole (Cam groove) [0094] 8 Second long hole (Cam groove) [0095] 9 Power transmitting member [0096] 10 Swing mechanism [0097] 11 Pressing mechanism [0098] 12 Pin [0099] 13, 19a, 19b Large diameter portion (Moment transmitting portion) [0100] 14a, 14b Link (Coupled link) [0101] 15, 18 Coupling shaft [0102] 16 Joint portion (coupling portion) [0103] 17a, 17b Small link [0104] 20, 22 Pulley (Moment transmitting portion) [0105] 21 Wire (Power transmitting member) [0106] 23 Energy emitting portion [0107] 27 Hole [0108] 28 Fitted pin