The present invention relates to a surgical operating apparatus in which a hand switch is disposed in an operation portion of a surgical instrument.
Surgical operating apparatuses generally include a surgical instrument such as a pair of forceps. For example, in Jpn. Pat. Appln. KOKAI Publication No. 9-327465 (Patent document 1), a treatment portion is provided at the distal end of an insertion portion to be inserted into a body, and an operation portion for operating the treatment portion is provided at the proximal end of the insertion portion. This surgical instrument has an openable/closable handle in the operation portion. One handle switch is attached to this handle. The handle switch is configured to be operated by the finger of a user gripping the handle during the use of this surgical instrument.
Furthermore, Jpn. Pat. Appln. KOKAI Publication No. 2003-126116 (Patent document 2) has disclosed a configuration in which two switches are provided in the vicinity of levers of two handles disposed in an operation portion of a surgical instrument.
A surgical operating apparatus in one aspect of the present invention comprises: a surgical operating apparatus which includes: a sheath with a distal end and a proximal end; an apparatus main body to be coupled to the proximal end of the sheath; a probe which is inserted through the sheath and which transmits ultrasonic waves; a probe distal end provided at the distal end of the probe; a jaw which is pivotally supported at the distal end of the sheath and which is geared with the distal end of the probe; a fixed handle provided in the apparatus main body; and a movable handle which is swingable with respect to the fixed handle and which operates the jaw in a direction to be in and out of contact with the distal end of the probe by a swing operation, the surgical operating apparatus comprising: a switch portion which is provided in the fixed handle and which controls a treatment of a living tissue; a switch holding portion which is provided in the fixed handle and which holds the switch; and a pressing member which fixes the switch portion in a state pressed against the switch holding portion.
Preferably, the switch holding portion has a switch mounting hole portion provided in the fixed handle, and a switch receiving portion provided in the peripheral edge part of an opening of the switch mounting hole portion, the switch portion has a flat-plate-shaped switch support formed of an elastic body, and a switch main body mounted on the switch support, and the pressing member has a pressing portion which presses the switch support from the inner side of the switch mounting hole portion so that the switch support is in pressure contact with the switch receiving portion.
Advantages of the invention will be set forth in the description which follows, and in part will be obvious from the description, or may be learned by practice of the invention. Advantages of the invention may be realized and obtained by means of the instrumentalities and combinations particularly pointed out hereinafter.
The accompanying drawings, which are incorporated in and constitute a part of the specification, illustrate embodiments of the invention, and together with the general description given above and the detailed description of the embodiments given below, serve to explain the principles of the invention.
Hereinafter, a first embodiment of the present invention will be described with reference to
As shown in
In the transducer unit 2, there is incorporated a transducer 6 (see
The proximal end of a horn 10 for amplifying/expanding the ultrasonic vibrations is coupled to the front end of the ultrasonic transducer 6 within the transducer cover 7. A screw hole 10a for attaching a probe is formed at the distal end of the horn 10.
A probe distal end 3a is provided at the distal end of the vibration transmitting member 11. The probe distal end 3a is formed to have a substantially J-shaped curve. The axial sectional area of the probe unit 3 is reduced at several vibration nodes partway in the axial direction so that amplitude necessary for a treatment can be obtained at the probe distal end 3a. Rubber rings formed of an elastic member with a ring shape are attached at several positions of the vibration nodes partway in the axial direction of the probe unit 3. Thus, these rubber rings prevent interference between the probe unit 3 and the sheath unit 5.
A flange portion 14 is provided at the position of the vibration node closest to the side of the proximal end in the axial direction of the probe unit 3. As shown in
The sheath unit 5 has a sheath main unit 16 formed by a cylindrical member, and a jaw 17 disposed at the distal end of the sheath main unit 16. The sheath main unit 16 has a metal outer cylinder 18 whose sectional shape is circular as shown in
As shown in
The proximal end of a substantially cylindrical distal end cover 25 is fixed to the distal end of the outer cylinder 18. On the side of the inner peripheral surface of the proximal end of the distal end cover 25, there is attached a pipe-shaped holding member 26 for holding the probe unit 3 to prevent this probe unit 3 from contacting the distal end cover 25. A channel 20 having a circular section for passing the probe unit 3 is formed inside the holding member 26.
As shown in
Thus, the jaw 17 is opposite to the probe distal end 3a of the probe unit 3 and swingably supported on the two supporting point pins 27 (see
A treatment portion 1A of the hand piece 1 is formed by the jaw 17 and the probe distal end 3a of the probe unit 3. The treatment portion 1A has a plurality of, in the present embodiment, two selectable surgical functions (a first surgical function and a second surgical function). For example, the first surgical function is set to a function for simultaneously outputting an ultrasonic treatment output and a high-frequency treatment output. The second surgical function is set to a function for independently outputting the high-frequency treatment output alone.
In addition, the first surgical function and the second surgical function of the treatment portion 1A are not limited to the configurations mentioned above. For example, the first surgical function may be set to a function for outputting the ultrasonic treatment output in a maximum output state, and the second surgical function may be set to a function for outputting the ultrasonic treatment output in a preset arbitrary set output state lower than the maximum output state.
The jaw main unit 28 has a grip member 29 made of a resin such as PTFE, and a metal grip member attachment member 30 for holding the grip member 29. The grip member 29 is attached to the grip member attachment member 30 so that this grip member 29 can swing over a given angle by a pin 31 (see
The pinch member 32 has a first ring-shaped fixing portion 32a disposed at the front end, and a second cylindrical fixing portion 32b disposed at the rear end. The inner peripheral surface of the first fixing portion 32a is fixed to the outer peripheral surface of the proximal end of the sheath main unit 16. The second fixing portion 32b of the pinch member 32 has a fixing portion 35 of the guide cylindrical member 33 disposed on the front end side, and an attachment/detachment portion 36 disposed on the rear end side for attachment to/detachment from the handle unit 4.
The guide cylindrical member 33 has a large-diameter front end flange portion 33a disposed at the front end, and an outer peripheral flange portion 33b disposed on the rear end side. As shown in
A metal joining pipe 38 is disposed inside the guide cylindrical member 33. The inner peripheral surface at the front end of this joining pipe 38 is fixed to the outer cylinder 18 of the sheath main unit 16 by laser welding. Further, the joining pipe 38 is fixed to the guide cylindrical member 33 by a metal fixing screw 39. This permits electric conduction between the guide cylindrical member 33, the fixing screw 39, the joining pipe 38, the outer cylinder 18, the distal end cover 25, the supporting point pins 27 and the jaw main unit 28, thereby forming a sheath unit side electric path 40 for transmitting a high-frequency current.
The attachment/detachment portion 36 of the pinch member 32 has a guide groove 41 in the form of an inclined surface provided to extend along a circumferential direction as shown in
The connecting pipe member 34 is inserted into the guide cylindrical member 33 slidably in a direction of the axis line of the sheath main unit 16. The proximal end of the drive shaft 21 is fixed to the distal end of this connecting pipe member 34 via a pin 21A (see
The outer peripheral flange portion 33b has a non-circular engaging portion 46. In the engaging portion 46, there are formed three plane portions 46a formed by cutting off a plurality of places, three places in the present embodiment, in the circular outer peripheral surface of the outer peripheral flange portion 33b. Corner portions 46b whose diameters are larger than those of the plane portions 46a are formed at junctions between the three plane portions 46a. Thus, the engaging portion 46 whose sectional shape is substantially close to a triangular shape is formed in the outer peripheral flange portion 33b. In addition, this non-circular engaging portion 46 does not necessarily have to have the substantially triangular shape, and various shapes including polygonal shapes such as quadrangular and pentangular shapes can be conceived as long as they are non-circular shapes.
The handle unit 4 mainly has a fixed handle (fixed handle element) 47, a holding cylinder 48, a movable handle (movable handle element) 49, a swing operation knob 50, and a handle unit side electric path 95 for transmitting a high-frequency current. The holding cylinder 48 is disposed on the top of the fixed handle 47. A switch holding portion 51 is provided between the fixed handle 47 and the holding cylinder 48. As shown in
As shown in
In the switch attachment portion 52, the first switch 54 and the second switch 55 are vertically arranged. Further, on the switch attachment surface 52a, a bulging portion 501 is disposed between the first switch 54 and the second switch 55. The bulging portion 501 divides the switches 54 and 55, and doubles as a finger receiving portion.
The first switch 54 is disposed on the upper side of the switch attachment surface 52a, and set to a switch for selecting the frequently used first surgical function of the plurality of surgical functions. The second switch 55 is disposed on the lower side of the switch attachment surface 52a, and set to a switch for selecting another second surgical function of the plurality of surgical functions.
The bulging portion 501 is set so that the height of projection of this bulging portion from the switch attachment surface 52a is larger than the height of projection of the first switch 54 and the second switch 55 from the attachment surface 52a. The bulging portion 501 has an extension 502 (see
The switch attachment portion 52 has one switch unit 503, and a concave unit receiver 504 to which the switch unit 503 is attached. As shown in
The switch unit 503 has a push button 54a for the first switch 54, a push button 55a for the second switch 55, a flexible wiring line circuit board 503a for the two switches (the first switch 54 and the second switch 55), and a flexible base member 503c in which the wiring line circuit board 503a is embedded in two insulating rubber plates (elastic members) 503b.
Connected to the wiring line circuit board 503a are a first surgical function wiring line 93a whose one end is connected to the first switch 54, a second surgical function wiring line 93b whose one end is connected to the second switch 55, and a ground wiring line 93c whose one end is connected to a common terminal for ground. These three wiring lines 93a to 93c are incorporated in the switch holding portion 51 in a rolled state.
As shown in
A movable handle 49 has a substantially U-shaped arm portion 56 on its top. The U-shaped arm portion 56 has two arms 56a and 56b, as shown in
Each of the arms 56a and 56b has a supporting point pin 57 and an action pin 58. Pin receiving holes 59 and windows 60 are formed on both sides of the holding cylinder 48. The supporting point pin 57 of each of the arms 56a and 56b is inserted in the pin receiving hole 59 of the holding cylinder 48. Thus, the upper end of the movable handle 49 is swingably supported on the holding cylinder 48 via the supporting point pins 57.
As shown in
The switch attachment surface 52a has a curving surface 506 curving along a flow line L1 on which the index finger H2 moves in a condition where the thumb H1 is inserted into the thumb insertion ring portion 62 and the plurality of fingers H3, H4 and H5 except for the thumb H1 and index finger H2 are inserted into the multiple finger insertion ring portion 61, as shown in
As shown in
Each of the action pins 58 of the movable handle 49 extends into the holding cylinder 48 through a window 60 of the holding cylinder 48. An operation force transmitting mechanism 63 for transmitting the operation force of the movable handle 49 to the drive shaft 21 of the jaw 17 is provided inside the holding cylinder 48.
As shown in
On the outer peripheral surface of the spring bearing member 64, there are provided a coil spring 67, the slider member 65, a stopper 68 and a spring bearing 69. The front end of the coil spring 67 is fixed to the spring bearing 69. The stopper 68 regulates the moving position of the rear end side of the slider member 65. The coil spring 67 is installed between the spring bearing 69 and the slider member 65 with a given amount of force of equipment.
A ring-shaped engaging groove 65a is formed on the outer peripheral surface of the slider member 65 along its circumferential direction. The action pins 58 of the movable handle 49 engage with the engaging groove 65a so that they are inserted in this engaging groove 65a, as shown in
Furthermore, when the living tissue is gripped between the grip member 29 of the jaw 17 and the probe distal end 3a of the probe unit 3 in accordance with the above operation, the grip member 29 swings at a given angle on the pin 31A to follow the bending of the probe distal end 3a so that force is equally applied to the overall length of the grip member 29. When the ultrasonic waves are output in this state, it is possible to coagulate or incise the living tissue such as a blood vessel.
A ring-shaped bearing 70 is formed at the front end of the holding cylinder 48. A cylindrical rotation transmitting member 71 made of a metal is coupled to the bearing 70 swingably in a direction around the axis. In the rotation transmitting member 71, there are formed a protrusion 72 protruding ahead of the bearing 70, and a large-diameter portion 73 provided to extend from the bearing 70 onto the internal side of the holding cylinder 48.
The swing operation knob 50 is fixed to the protrusion 72 in an externally fitted state. The engaging lever 43 is provided at the front end of this swing operation knob 50. The intermediate portion of the engaging lever 43 is swingably coupled to the protrusion 72 via a pin 74. The proximal end of the engaging lever 43 extends into the inside of a lever receiving concave portion 75 formed in the front surface of the swing operation knob 50.
An operation button 76 for operating the engaging lever 43 in a disengaging direction is provided on the outer peripheral surface at the front end of the swing operation knob 50. A downward actuating pin 77 is provided to protrude in the operation button 76. The actuating pin 77 extends onto the internal side of the lever receiving concave portion 75 via a wall hole of the swing operation knob 50. The proximal end of the engaging lever 43 is swingably coupled to the lower end of the actuating pin 77 via a pin 78.
A drop preventing ring 80 for the swing operation knob 50 is provided at the distal end of the protrusion 72. A male screw 79 is formed at the distal end of the protrusion 72. A female screw 80a to which the male screw 79 is threadably attached is formed on the inner peripheral surface of the drop preventing ring 80. Thus, the female screw 80a of the drop preventing ring 80 is screwed to the male screw 79 of the protrusion 72, such that the swing operation knob 50 is fixed to the rotation transmitting member 71.
As shown in
On the contrary, the rotational operation of the rotation transmitting member 71 rotating together with the swing operation knob 50 is transmitted to the side of the spring bearing member 64 via the pin 81 during the rotational operation of the swing operation knob 50. Thus, during the rotational operation of the swing operation knob 50, a set unit including the rotation transmitting member 71, the pin 81, the spring bearing member 64, the slider member 65 and the coil spring 67 inside the holding cylinder 48 is driven to integrally rotate in a direction around the axis together with the swing operation knob 50.
As shown in
In the same manner, the second electrode receiving portion 85 has one contact member fixing hole 85a and two through-holes 85b and 85c, as shown in
The contact member fixing hole 84a of the first electrode receiving portion 84, the contact member fixing hole 85a of the second electrode receiving portion 85 and the contact member fixing hole 86a of the third electrode receiving portion 86 are positioned so that they are displaced from each other in the circumferential direction of the electrode holding member 83.
The electrode member 87A has one linear fixed portion 87a, and two bending portions 87b and 87c. The one bending portion 87b is disposed at one end of the linear fixed portion 87a, and the other bending portion 87c is disposed at the other end thereof. Thus, the electrode member 87A is formed to be bent into a substantially U shape, as shown in
A hole 88 and an L-shaped wiring line connecting portion 89 are provided at the central position of the fixed portion 87a. Constricted portions 90 having an inwardly curving shape are formed in the two bending portions 87b and 87c at their central positions.
When the electrode member 87A is set to the first electrode receiving portion 84, a fixing pin 91 is inserted into the hole 88 of the fixed portion 87a of the electrode member 87A and into the contact member fixing hole 85a of the first electrode receiving portion 84. The electrode member 87A is fixed to the first electrode receiving portion 84 by the fixing pin 91. At this point, the constricted portion 90 of the one bending portion 87b of the electrode member 87A is disposed to be inserted into the one through-hole 85b of the first electrode receiving portion 84, while the constricted portion 90 of the other bending portion 87c of the electrode member 87A is disposed to be inserted into the other through-hole 85c. The same holds true for the case where the electrode member 87B is set to the second electrode receiving portion 85 and for the case where the electrode member 87C is set to the third electrode receiving portion 86.
As shown in
A step portion 43b for contacting the fixed flange portion 83a of the electrode holding member 83 is formed in the holding cylinder 48. The electrode holding member 83 is screwed to the holding cylinder 48 by a fixing screw 48c so that the fixed flange portion 83a of the electrode holding member 83 is placed in collision with this step portion 43b. This regulates the axial movement of the electrode holding member 83 with respect to the holding cylinder 48.
The ends of three wiring lines 93a to 93c incorporated in the switch holding portion 51 are connected to the wiring line connecting portions 89 of the three electrode members 87A, 87B and 87C set to the contact unit 66.
The contact unit 66 is further provided with a substantially C-shaped electric contact member 96 configured by a metal leaf spring, as shown in
The handle unit side electric path 95 comprises the electric contact member 96, the spring bearing member 64, the positioning pins 81 and the rotation transmitting member 71.
On the inner peripheral surface of the rotation transmitting member 71, there is provided engaging means 94 for removably engaging with the outer peripheral flange portion 33b of the sheath unit 5 substantially at the central position along the axial direction. As shown in
The shape of the inner peripheral surface of the conductive rubber ring 94b is substantially the same as that of the engaging portion 46 of the outer peripheral flange portion 33b. In other words, there are formed three plane portions 94b1 cut at a plurality of places, in the present embodiment, at three places on the circular inner peripheral surface, and three corner portions 94b2 which are disposed at junctions between the three plane portions 94b1 and which have diameters larger than those of the plane portions 94b1. This forms a sectional shape substantially close to a triangular shape. Therefore, the conductive rubber ring 94b is held at a non-compression position where it is in a natural state, at a position where the shape of the inner peripheral surface of the conductive rubber ring 94b corresponds to the engaging portion 46 of the outer peripheral flange portion 33b, that is, in a situation where the three corner portions 46b of the outer peripheral flange portion 33b correspond to the three corner portions 94b2 of the conductive rubber ring 94b, as shown in
In the present embodiment, the conductive rubber ring 94b is held at the non-compression position where it is in the natural state as shown in
As shown in
On the inner peripheral surface of the tubular member 98, there are formed three engaging convex portions 99 corresponding to the three engaging concave portions 15 (see
In addition, the engaging portion between the flange portion 14 of the probe unit 3 and the tubular member 98 is not limited to the configuration described above. For example, the tubular member 98 may be formed to have a D-shaped section, and the flange portion 14 of the probe unit 3 may be formed to have a D-shaped section correspondingly.
The front end of the transducer unit 2 is removably coupled to the contact unit 66. In one cable 9 at the rear end of the transducer unit 2, there are incorporated two wiring lines 101 and 102 for the ultrasonic transducer, two wiring lines 103 and 104 for high-frequency conduction, and three wiring lines 105, 106 and 107 connected to the wiring line circuit board 503a within the switch holding portion 51, as shown in
Four first to fourth conducting plates 111 to 114 for electric connection are disposed at the rear end of the transducer unit 2. The distal end of the other wiring line 104 for high-frequency conduction is connected to the first conducting plate 111. The three wiring lines 105, 106 and 107 are connected to the second to fourth conducting plates 112 to 114, respectively.
A cylindrical first contact member 131 is attached onto the outer peripheral surface of the first cylindrical portion 123. In the same manner, a cylindrical second contact member 132 is attached onto the outer peripheral surface of the second cylindrical portion 124, and a cylindrical third contact member 133 is attached onto the outer peripheral surface of the third cylindrical portion 125. The second conducting plate 112 is connected to the first contact member 131, the third conducting plate 113 is connected to the second contact member 132, and the fourth conducting plate 114 is connected to the third contact member 133.
A cylindrical fourth contact member 134 is attached onto the inner peripheral surface of the first cylindrical portion 123. The fourth contact member 134 is connected to the first conducting plate 111.
When the handle unit 4 is coupled to the transducer unit 2, the contact unit 66 of the handle unit 4 is connected to the front end of the transducer unit 2. At this point, the electrode member 87A of the contact unit 66 is connected to the first contact member 131 of the transducer unit 2. At the same time, the electrode member 87B of the contact unit 66 is connected to the second contact member 132 of the transducer unit 2, the electrode member 87C of the contact unit 66 is connected to the third contact member 133 of the transducer unit 2, and the C-shaped electric contact member 96 of the contact unit 66 is connected to the fourth contact member 134 of the transducer unit 2.
Next, effects of the present embodiment will be described. In the hand piece 1 of the ultrasonic operating apparatus of the present embodiment, the four units including the transducer unit 2, the probe unit 3, the handle unit 4 and the sheath unit 5 are detachable, as shown in
Subsequently, the handle unit 4 is coupled to the sheath unit 5. When the handle unit 4 is coupled to the sheath unit 5, the connecting pipe member 34 is inserted into the rotation transmitting member 71 of the handle unit 4 while the pinch member 32 of the sheath unit 5 is being gripped. When the sheath unit 5 is coupled to the handle unit 4, the engaging lever 43 on the side of the handle unit 4 is held while being stranded on the inclined surface of the guide groove 41 of the pinch member 32 of the sheath unit 5, as shown in
Then, after this insertion operation is finished, the pinch member 32 of the sheath unit 5 is rotated in the direction around the axis with respect to the handle unit 4. Owing to this operation, the engaging lever 43 on the side of the handle unit 4 engages in an inserted state with the engaging concave portion 42 at one end of the guide groove 41, as shown in
During this rotational operation of the sheath unit 5 in a direction around the axis, the pair of engaging pins 45 on the side of the handle unit 4 removably engages with the engaging grooves 44a at the terminal ends of the guide grooves 44 of the sheath unit 5 at the same time. Thus, the spring bearing member 64 on the side of the handle unit 4 is coupled to the connecting pipe member 34 on the side of the sheath unit 5 via the engaging pins 45. As a result, the operation force on the side of the handle unit 4 during the operation of closing the movable handle 49 with respect to the fixed handle 47 can be transmitted to the drive shaft 21 of the jaw 17 on the side of the sheath unit 5. This is the state where the sheath unit 5 is coupled to the handle unit 4.
Subsequently, the combination of the sheath unit 5 and the handle unit 4 and the combination of the ultrasonic transducer 6 and the probe unit 3 are set to be united into one. During this setting operation, the contact unit 66 of the handle unit 4 is connected to the front end of the transducer unit 2. At this point, the electrode member 87A of the contact unit 66 is connected to the first contact member 131 of the transducer unit 2. At the same time, the electrode member 87B of the contact unit 66 is connected to the second contact member 132 of the transducer unit 2, the electrode member 87C of the contact unit 66 is connected to the third contact member 133 of the transducer unit 2, and the C-shaped electric contact member 96 of the contact unit 66 is connected to the fourth contact member 134 of the transducer unit 2. Thus, the second high-frequency electric path 97 of the combination of the sheath unit 5 and the handle unit 4 is connected to the wiring line 104 for the high-frequency conduction within the cable 9. Further, the three wiring lines 105, 106 and 107 within the cable 9 are connected to the wiring line circuit board 503a within the switch holding portion 51. This is the state where the setting of the hand piece 1 is finished.
Then, during the use of this hand piece 1, the thumb H1 is inserted into the thumb insertion ring portion 62 of the movable handle 49, and the plurality of fingers H3, H4 and H5 except for the thumb H1 and index finger H2 are inserted into the multiple finger insertion ring portion 61 of the fixed handle 47, as shown in
In this state, one of the first switch button 54a and the second switch button 55a of the movable handle 49 is selectively pushed. When the second switch button 55a is pushed, electricity is conducted in the first high-frequency electric path 13 for conducting a high-frequency current to the probe distal end 3a of the probe unit 3 and in the second high-frequency electric path 97 for conducting a high-frequency current to the jaw main unit 28 of the sheath unit 5. Thus, two bipolar electrodes for the high-frequency treatment are formed by the probe distal end 3a of the probe unit 3 and the jaw main unit 28 of the sheath unit 5. Then, the high-frequency current is conducted across the two bipolar electrodes formed by the probe distal end 3a of the probe unit 3 and the jaw main unit 28 of the sheath unit 5, such that the living tissue between the jaw 17 and the probe distal end 3a of the probe unit 3 can be subjected to the high-frequency treatment by the bipolar.
When the first switch button 54a is pushed, a drive current is conducted to the ultrasonic transducer 6 simultaneously with the high frequency conduction, and the ultrasonic transducer 6 is driven. Thus, the ultrasonic vibrations from the ultrasonic transducer 6 are transmitted to the probe distal end 3a via the vibration transmitting member 11, such that the treatment such as the incision or removal of the living tissue can be administered using the ultrasonic waves simultaneously with the high frequency conduction. In addition, the ultrasonic waves can also be used to coagulate the living tissue.
Furthermore, during the rotational operation of the swing operation knob 50, the rotational operation of the rotation transmitting member 71 which rotates together with the swing operation knob 50 is transmitted to the side of the spring bearing member 64 via the pins 81. Thus, during the rotational operation of the swing operation knob 50, the set unit of the rotation transmitting member 71, the pins 81, the spring bearing member 64, the slider member 65 and the coil spring 67 within the holding cylinder 48 are driven to integrally rotate in a direction around the axis together with the swing operation knob 50. Moreover, the rotational operation force of the swing operation knob 50 is transmitted to the vibration transmitting member 11 of the probe unit 3 via the tubular member 98 which rotates together with the spring bearing member 64 within the holding cylinder 48. Thus, the set unit within the holding cylinder 48 and the combination of the transducer unit 2 and the probe unit 3 are driven to integrally rotate together in a direction around the axis.
Therefore, the configuration described above provides the following advantages: the first switch 54 and the second switch 55 are vertically arranged in the switch holding portion 51 between the fixed handle 47 and the holding cylinder 48 in the hand piece 1 of the ultrasonic treatment apparatus in the present embodiment. Moreover, the bulging portion 501 is disposed between the first switch 54 and the second switch 55. Therefore, when the switch 54 or 55 is operated with the index finger H2 of the user gripping the handle unit 4, the position of the first switch 54 can be distinguished from the position of the second switch 55 on the basis of the position of the bulging portion 501. This ensures that the user can differentiate between the first switch 54 and the second switch 55 that have different functions.
Furthermore, the bulging portion 501 is set so that the height of projection of this bulging portion from the switch attachment surface 52a is larger than the height of projection of the first switch 54 and the second switch 55 from the attachment surface 52a. Therefore, the user gripping the handle unit 4 can easily distinguish between the bulging portion 501 and the first and second switches 54 and 55 in accordance with the feeling in the index finger H2 touching the bulging portion 501 and the first and second switches 54 and 55. This can omit the visual identification of the first switch 54 and the second switch 55 and therefore provides an advantage that the user gripping the handle unit 4 is allowed to easily operate the first switch 54 and the second switch 55.
Still further, the bulging portion 501 has the extension 502 which continuously extends from the switch attachment surface 52a of the fixed handle 47 to both sides thereof. Therefore, except for the case where the index finger H2 of the user operates the first switch 54 and the second switch 55 from the front side of the switch attachment surface 52a, the index finger H2 of the user can touch the extension 502 of the bulging portion 501 to easily distinguish the first switch 54 from the second switch 55 even if the index finger H2 of the user operates the first switch 54 and the second switch 55 from the side surface of the switch attachment surface 52a.
Still further, in the present embodiment, the switch attachment surface 52a has the curving surface 506 curving along the flow line L1 on which the index finger H2 moves in a condition where the thumb H1 is inserted into the thumb H1 insertion ring portion 62 and the plurality of fingers H3, H4 and H5 except for the thumb H1 and index finger H2 are inserted into the multiple finger insertion ring portion 61 as shown in
Further yet, in the present embodiment, the unit receiver 504 has the two bosses 505a and 505b for receiving the force to push the push buttons 54a and 55a for the two switches, as shown in
In this configuration, during the use of this hand piece 1, the movable handle 49 can be operated so that the thumb H1 of the user is hooked on the finger hook 601 on the top of the thumb insertion ring portion 62. This makes it possible to adapt to the use of many users.
That is, in a hand piece 1 in the present embodiment, a fixed handle (fixed handle element) 611 is fixed onto one side of a holding cylinder 48. Moreover, a movable handle (movable handle element) 612 is disposed on the other side of the holding cylinder 48, that is, on the side opposite to the side where the fixed handle 611 is fixed.
A multiple finger insertion ring portion 61 of the fixed handle 611 is provided to extend backward from the one side of the holding cylinder 48 along the long axis direction of a probe unit 3. A switch holding portion 51 having about the same configuration as that in the first embodiment is disposed between the holding cylinder 48 and the multiple finger insertion ring portion 61. A switch attachment surface 52a is provided on the front side of a switch attachment portion 52 of the switch holding portion 51. A first switch 54 and a second switch 55 are arranged on the switch attachment surface 52a. Moreover, on the switch attachment surface 52a, a bulging portion 501 is disposed between the first switch 54 and the second switch 55. The bulging portion 501 divides the switches 54 and 55, and doubles as a finger receiving portion.
In the movable handle 612, one end of a bending arm 613 bending perpendicularly to the U-shaped portion of a U-shaped arm 56 is coupled to the base of this arm 56. The other end of the bending arm 613 extends toward the rear of the hand piece 1. The thumb insertion ring portion 62 is formed at the extending end of this bending arm 613. Other parts are configured in the same manner as those in the first embodiment.
Thus, this configuration provides the following advantages: in the hand piece 1 of the ultrasonic treatment apparatus in the present embodiment, the switch holding portion 51 having about the same configuration as that in the first embodiment is disposed between the multiple finger insertion ring portion 61 of the fixed handle 611 and one side of the holding cylinder 48. Thus, the present embodiment also provides the same effects as the effects in the first embodiment.
That is, in a hand piece 1 in the present embodiment, a finger pad portion 621 made of an elastic material is detachably attached to a multiple finger insertion ring portion 61 of a fixed handle 611. This finger pad portion 621 is formed into the same shape as the shape of the inner peripheral surface of the multiple finger insertion ring portion 61. In this finger pad portion 621, there are formed an inner peripheral surface cover 621a covering the inner peripheral surface of the multiple finger insertion ring portion 61, and two side covers 621b provided to extend on both sides of the inner peripheral surface cover 621a. Thus, when the finger pad portion 621 is attached to the multiple finger insertion ring portion 61, the inner peripheral surface cover 621a of the finger pad portion 621 covers the inner peripheral surface of the multiple finger insertion ring portion 61, and the two side covers 621b of the finger pad portion 621 cover the both side surfaces of the multiple finger insertion ring portion 61.
Furthermore, a finger pad portion 622 also made of an elastic material is detachably attached to a thumb insertion ring portion 62 of a movable handle 612. This finger pad portion 622 is formed into the same shape as the shape of the inner peripheral surface of the thumb insertion ring portion 62. In this finger pad portion 622, there are formed an inner peripheral surface cover 622a covering the inner peripheral surface of the thumb insertion ring portion 62, and two side covers 622b provided to extend on both sides of the inner peripheral surface cover 622a. Thus, when the finger pad portion 622 is attached to the thumb insertion ring portion 62, the inner peripheral surface cover 622a of the finger pad portion 622 covers the inner peripheral surface of the thumb insertion ring portion 62, and the two side covers 622b of the finger pad portion 622 cover the both side surfaces of the thumb insertion ring portion 62.
Thus, the configuration described above provides the following advantages: in the hand piece 1 of the ultrasonic treatment apparatus in the present embodiment, the finger pad portion 621 formed of an elastic material is detachably attached to the multiple finger insertion ring portion 61 of the fixed handle 611. Moreover, the finger pad portion 622 also formed of an elastic material is detachably attached to the thumb insertion ring portion 62 of the movable handle 612. Thus, in the present embodiment, a metal material is not directly touched by the plurality of fingers H3, H4 and H5 (except for the thumb H1 and index finger H2) inserted in the multiple finger insertion ring portion 61 of the fixed handle 611 and by the thumb H1 inserted in the thumb insertion ring portion 62 of the movable handle 612. This can reduce user fatigue.
Furthermore,
That is, in the present embodiment, there are connected, to the power supply main unit 8, a first hand piece 401 (corresponding to the hand piece 1 in the first embodiment) capable of the bipolar high-frequency treatment and ultrasonic treatment, and a second hand piece 402 exclusive to the ultrasonic treatment, as shown in
The power supply main unit 8 has an ultrasonic wave output section 411, a high-frequency output section 412, a judging section 413 and a control section 414. The ultrasonic wave output section 411, the high-frequency output section 412 and the judging section 413 are connected to the control section 414.
When the connector portion 415 of the cable 9 of the hand piece 401, 402 is connected to the power supply main unit 8, the resistance value of the resistor 416 is detected by the judging section 413 of the power supply main unit 8. Then, the model of the hand piece 401, 402 connected to the power supply main unit 8 is judged in accordance with the detected resistance.
Data on the model of the hand piece 401, 402 judged by the judging section 413 is output to the control section 414. This control section 414 automatically switches the function of the hand switch of the fixed handle 47 depending on the model of the hand piece 401, 402. That is, when the first hand piece 401 is connected to the power supply main unit 8, a first switch 54a functions as an on/off switch for the bipolar high-frequency treatment, and a second switch 55a functions as an on/off switch for a combination of the ultrasonic treatment and the bipolar high-frequency treatment.
On the other hand, when the second hand piece 402 is connected to the power supply main unit 8, the first switch 54a functions as an on/off switch for driving an ultrasonic transducer 6 under a condition where its output is set, and the second switch 55a functions as an on/off switch for driving the ultrasonic transducer 6 under a condition where its output is high.
Therefore, the configuration described above provides the following advantages: in the present embodiment, the function of the hand switch of the fixed handle 47 can be automatically switched depending on the kind of the hand piece 1 connected to the power supply main unit 8 of the ultrasonic operating apparatus. There is thus no need for troublesome tasks of, for example, changing the setting of the power supply main unit 8 depending on the model of the hand piece 401, 402 connected to the power supply main unit 8 of the ultrasonic operating apparatus, and workability can be enhanced.
That is, in a hand piece 1 in the present embodiment, three switches (a first switch 54, a second switch 55 and a third switch 511) are vertically arranged on a switch attachment surface 52a of a switch holding portion 51 of a fixed handle 47. Moreover, on the switch attachment surface 52a, a bulging portion 501 is disposed between the first switch 54 and the second switch 55. Likewise, a bulging portion 512 is disposed between the second switch 55 and the third switch 511. The bulging portion 501 divides the switches 54 and 55, and doubles as a finger receiving portion. Likewise, the bulging portion 512 divides the second switch 55 and the third switch 511, and doubles as a finger receiving portion. In addition, the shape of the bulging portion 501 may be different from the shape of the bulging portion 512. In this case, the three switches (a first switch 54, a second switch 55 and a third switch 511) can be more easily differentiated from each other.
When the first switch 54 is operated, a drive current is conducted to an ultrasonic transducer 6 simultaneously with the high frequency conduction, and the ultrasonic transducer 6 is driven. Thus, the ultrasonic vibrations from the ultrasonic transducer 6 are transmitted to a probe distal end 3a via a vibration transmitting member 11, such that the treatment such as the incision or removal of the living tissue can be administered using the ultrasonic waves simultaneously with the high frequency conduction.
When the second switch 55 is operated, the high frequency conduction alone, for example, is carried out. Thus, two bipolar electrodes for the high-frequency treatment are formed by the probe distal end 3a of the probe unit 3 and a jaw main unit 28 of a sheath unit 5. Then, the high-frequency current is conducted across the two bipolar electrodes formed by the probe distal end 3a of the probe unit 3 and the jaw main unit 28 of the sheath unit 5, such that the living tissue between the jaw 17 and the probe distal end 3a of the probe unit 3 can be subjected to the high-frequency treatment by the bipolar.
When the third switch 511 is operated, the ultrasonic transducer 6 alone, for example, is driven. Thus, the ultrasonic vibrations from the ultrasonic transducer 6 are transmitted to the probe distal end 3a via the vibration transmitting member 11, such that the treatment such as the incision or removal of the living tissue can be administered using the ultrasonic waves. In addition, the ultrasonic waves can also be used to coagulate the living tissue.
That is, in a hand piece 1 in the present embodiment, three switches (a first switch 54, a second switch 55 and a third switch 511) are vertically arranged on a switch attachment surface 52a of a switch holding portion 51 of a fixed handle 47. Moreover, on the switch attachment surface 52a, a bulging portion 501 is disposed between the first switch 54 and the second switch 55.
Furthermore, a concave portion 513 recessed in the switch attachment surface 52a is formed between the second switch 55 and the third switch 511. The bulging portion 501 divides the switches 54 and 55, and doubles as a finger receiving portion. The concave portion 513 functions as a mark for dividing the second switch 55 and the third switch 511.
Moreover, the functions of the first switch 54, the second switch 55 and the third switch 511 are similar to those in the sixth embodiment.
Furthermore,
That is, in a hand piece 1 of the present embodiment, the structure of the attachment of a switch unit 641 to a fixed handle 47 is different from the structure of the attachment of the switch unit 503. The fixed handle 47 of the present embodiment has a handle body 631 molded integrally with the side of a holding cylinder 48. As shown in
A bulging portion 634 which serves as a partition wall doubling as a finger receiver is formed in the switch attachment surface 633. A first switch button insertion hole 635 is formed on the upper side of the bulging portion 634. A second switch button insertion hole 636 is formed on the lower side of the bulging portion 634.
As shown in
Furthermore, the switch pressing member 651 has a guide surface 652, a switch unit pressing convex portion 653, and a wiring line holding portion 654. The guide surface 652 is joined along the wall surface, which is on the lower side in
The switch unit pressing convex portion 653 presses the base member 503c of the switch unit 641 against the side of the switch attachment surface 633. At this point, the base member 503c of the switch unit 641 is pressed in pressure contact against the side of the switch attachment surface 633 so that it is bent by the switch unit pressing convex portion 653. Thus, the base member 503c of the switch unit 641 itself functions as a packing, so that it is possible to reduce, for example, a seal member around the switch unit 641.
The wiring line holding portion 654 holds wiring lines 93a, 93b, 93c of the switch unit 641 within the concave portion 632 of the handle body 631.
Furthermore, in the handle body 631, a boss portion 637 is provided to protrude between the concave portion 632 and the internal space of the holding cylinder 48. This boss portion 637 prevents the wiring lines 93a, 93b, 93c of the switch unit 641 from coming into the side of the internal space of the holding cylinder 48 to interfere with operating members within the holding cylinder 48.
Therefore, in the hand piece 1 of the present embodiment having the configuration described above, during the operation of attaching the switch unit 641 to the fixed handle 47, the switch unit 641 and the switch pressing member 651 are sequentially inserted into the concave portion 632 of the handle body 631, and the switch unit 641 is fixed so that it is pressed against the side of the switch attachment surface 633 by the switch pressing member 651. This facilitates the operation of attaching the switch unit 641 to the fixed handle 47.
Moreover, the base member 503c of the switch unit 641 is pressed in pressure contact against the side of the switch attachment surface 633 by the switch pressing member 651 so that it is bent by the switch unit pressing convex portion 653. Thus, the base member 503c of the switch unit 641 itself functions as a packing, so that it is possible to reduce, for example, a seal member around the switch unit 641. This further facilitates the operation of attaching the switch unit 641.
Furthermore,
The structure of the attachment of the switch unit 641 to the fixed handle 703 of the hand piece 701 is different from the structure of the attachment of the switch unit 503 in the third embodiment. That is, in the present embodiment, the fixed handle 703 has a handle body 706 molded integrally with the holding cylinder 702, as shown in
As shown in
As shown in
A bulging portion 723 which serves as a partition wall doubling as a finger receiver in a plate-shaped main body 722 is formed in the switch pressing member 721. A first switch button insertion hole 724 is formed on the upper side of the bulging portion 723. A second switch button insertion hole 725 is formed on the lower side of the bulging portion 723.
Here, in the switch unit 641, a push button 54a for a first switch 54 is inserted in the first switch button insertion hole 724, and a push button 55a for a second switch 55 is inserted in the second switch button insertion hole 725. In this state, the base member 503c of the switch unit 641 is inserted into the switch unit pressing portion 712 from its front side. Then, the base member 503c is pressed against the side of the switch attachment surface 712a of the switch unit pressing portion 712 by the switch unit pressing portion 712, and set to the handle body 706 in a bent state.
Therefore, in the hand piece 1 of the present embodiment having the configuration described above, during the operation of attaching the switch unit 641 to the fixed handle 703, the wiring lines 93a, 93b, 93c of the switch unit 641 are inserted into the wiring line insertion portion 713. Then, the base member 503c of the switch unit 641 and the switch pressing member 721 are sequentially inserted into the switch unit pressing portion 712. Further, the switch unit 641 is fixed so that it is pressed against the side of the switch attachment surface 712a by the switch pressing member 721. This facilitates the operation of attaching the switch unit 641 to the fixed handle 703.
Furthermore, the base member 503c of the switch unit 641 is pressed in pressure contact against the side of the switch attachment surface 712a by the switch pressing member 721. Thus, the base member 503c of the switch unit 641 itself functions as a packing, so that it is possible to reduce, for example, a seal member around the switch unit 641. This further facilitates the operation of attaching the switch unit 641.
It is to be noted that the present invention is not limited to the embodiments described above, and needless to say, various modifications can be made without departing from the spirit of the present invention.
Additional advantages and modifications will readily occur to those skilled in the art. Therefore, the invention in its broader aspects is not limited to the specific details and representative embodiments shown and described herein. Accordingly, various modifications may be made without departing from the spirit or scope of the general inventive concept as defined by the appended claims and their equivalents.
Number | Date | Country | |
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Parent | 11844504 | Aug 2007 | US |
Child | 12099847 | US |