Irrigation function-equipped suction device
11351298 · 2022-06-07
Assignee
Inventors
Cpc classification
A61M1/774
HUMAN NECESSITIES
A61M3/0283
HUMAN NECESSITIES
International classification
Abstract
An irrigation function-equipped suction device including a suction device body, a suction path, an irrigation path and a flexible tube. With communication or closing of the suction path and the flexible tube by a first switch mechanism, the irrigation path and the flexible tube are caused to be closed off from each other or to communicate with each other by a second switch mechanism. The first switch mechanism is provided in a first section inside the suction device body, and the second switch mechanism is provided inside the irrigation path between the conversion mechanism and the flexible tube. The closing valve included in the second switch mechanism is disposed at a position on a side opposite to the flexible tube relative to the first switch mechanism and the conversion mechanism.
Claims
1. An irrigation function-equipped suction device including: a suction device body; a rotation lever provided so as to be capable of being opened or closed relative to the suction device body; a suction path provided in the suction device body; an irrigation path provided in the suction device body; a flexible tube having a proximal end attached to a distal end of the suction device body, a distal end of the flexible tube being directed to a surgical site; a first switch mechanism including a rotation valve, the first switch mechanism making switching to cause the suction path and the flexible tube to communicate with each other or be closed off from each other; a second switch mechanism including a closing valve, the second switch mechanism making switching to cause the irrigation path and the flexible tube to communicate with each other or be closed off from each other; and a conversion mechanism that causes opening/closing motion of the rotation lever to be converted into linear motion along a longitudinal direction of the irrigation path by rotational motion of a rotation drum to move the closing valve, wherein: if the suction path and the flexible tube are brought into communication with each other by the first switch mechanism, the irrigation path is closed by the second switch mechanism and the conversion mechanism; if the suction path is closed by the first switch mechanism, the irrigation path and the flexible tube are brought into communication with each other by the second switch mechanism and the conversion mechanism; the first switch mechanism is provided in a first section inside the suction device body; the second switch mechanism and the conversion mechanism are provided in a second section inside the suction device body; an irrigation path internal joining member included in the conversion mechanism, the irrigation path internal joining member making linear motion along the longitudinal direction of the irrigation path, is provided inside the irrigation path; the irrigation path is connected to the suction path at a position on the flexible tube side relative to the rotation valve included in the first switch mechanism and the rotation drum included in the conversion mechanism, based on a plane perpendicular to a linear line along the longitudinal direction of the irrigation path; and the closing valve included in the second switch mechanism is disposed at a position on a side opposite to the flexible tube relative to the rotation valve included in the first switch mechanism and the rotation drum included in the conversion mechanism, based on the plane perpendicular to the linear line along the longitudinal direction of the irrigation path.
2. The irrigation function-equipped suction device according to claim 1, wherein if the irrigation path is closed by the second switch mechanism, a path for communication with atmosphere is kept for the conversion mechanism.
3. The irrigation function-equipped suction device according to claim 2, wherein: the second switch mechanism includes: the closing valve that closes the irrigation path, and the irrigation path internal joining member that makes linear motion along the longitudinal direction of the irrigation path relative to the closing valve, along with an operation of the conversion mechanism; and wherein the rotation drum controls movement and stoppage of the closing valve during the linear motion of the irrigation path internal joining member.
4. The irrigation function-equipped suction device according to claim 3, including: a first opening/closing joining member and a second opening/closing joining member each movably joined to the rotation lever; a first rotation joining member movably joined to the first opening/closing joining member, the rotation valve being movably joined to the first rotation joining member; and a second rotation joining member movably joined to the second opening/closing joining member, the rotation drum being movably joined to the second rotation joining member; wherein: the irrigation path internal joining member is movably joined to the rotation drum, along with an operation of insertion of the first opening/closing joining member to the first section, the rotation valve rotates and thereby closes the suction path, along with an operation of insertion of the second opening/closing joining member to the second section, the rotation drum rotates and thereby brings the irrigation path into communication, subsequent to the closing of the suction path, the irrigation path is brought into communication, along with an operation of the first opening/closing joining member being pulled out from the first section, the rotation valve rotates and thereby brings the suction path into communication, along with an operation of the second opening/closing joining member being pulled out from the second section, the rotation drum rotates and thereby closes the irrigation path, and subsequent to the closing of the irrigation path, the suction path is brought into communication are provided.
5. The irrigation function-equipped suction device according to claim 4, wherein: the irrigation path internal joining member includes a closing valve push-out portion and a closing valve pull-back portion; the closing valve includes a closing portion, an open side surface and an irrigation path internal joining member contact portion; the closing valve push-out portion and the closing valve pull-back portion are provided in the irrigation path internal joining member in such a manner that the closing valve push-out portion and the closing valve pull-back portion are spaced from each other; if the irrigation path internal joining member moves to a side of the suction device body opposite to a flexible tube-provided side of the suction device body, the closing valve push-out portion of the irrigation path internal joining member comes into contact with the irrigation path internal joining member contact portion of the closing valve, the closing valve is pushed out to the side of the suction device body opposite to the flexible tube-provided side of the suction device body, closing of the irrigation path by the closing valve is cancelled, and the open side surface of the closing valve is exposed inside a part of the irrigation path on the side of the suction device body opposite to the flexible tube-provided side of the suction device body and the irrigation path is thereby brought into communication, and if the irrigation path internal joining member moves to the flexible tube-provided side of the suction device body, the closing valve pull-back portion of the irrigation path internal joining member comes into contact with the irrigation path internal joining member contact portion of the closing valve, the closing valve is pulled back to the flexible tube-provided side of the suction device body and the irrigation path is closed by the closing valve.
6. The irrigation function-equipped suction device according to claim 5, wherein: the closing valve is pressed to the suction device body side from the outer side of the suction device body by a repulsive force of an elastic body, during linear motion of the irrigation path internal joining member, if there is a space between the closing valve push-out portion of the irrigation path internal joining member and the irrigation path internal joining member contact portion of the closing valve, the closing valve keeps closing the irrigation path.
7. The irrigation function-equipped suction device according to claim 6, wherein: the rotation lever includes a depression portion, an adjustment hole and a conduction path that brings the rotation lever into communication, the adjustment hole is provided in the depression portion in an outer surface of the rotation lever, an end of the conduction path is connected to the adjustment hole, and another end of the conduction path is connected to the suction path via the flexible tube.
8. The irrigation function-equipped suction device according to claim 4, wherein: each of the first opening/closing joining member and the second opening/closing joining member includes an opening/closing joining member body portion; and a curve surface portion provided at each of opposite ends of both of the opening/closing joining member body portions, and based on a cross-section perpendicular to a longitudinal direction of each of the opening/closing joining member body portions, a largest cross-section of each of the curve surface portions is larger than a largest cross-section of each of the opening/closing joining member body portions, and as observed in the longitudinal direction of each of the opening/closing joining member body portions, the largest cross-section of each of the opening/closing joining member body portions is located within the largest cross-section of each of the curve surface portions.
9. The irrigation function-equipped suction device according to claim 4, wherein: the rotation valve includes a hollow portion, a void provided inside the rotation valve, and a vent hole that makes the void and an outside of the rotation valve communicate with each other, neither the void nor the vent hole communicates with the hollow portion inside the rotation valve, and when the suction path and the flexible tube are closed off from each other, the vent hole is exposed in the suction path.
Description
BRIEF DESCRIPTION OF DRAWINGS
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DESCRIPTION OF EMBODIMENTS
Embodiment 1 of Invention
(22) An embodiment of the present invention will be described below with reference to the drawings.
(23)
(24) Also,
(25) In the irrigation function-equipped suction device 100 according to Embodiment 1 of the present invention, a rotation lever 20 is joined to a suction device body 10 by an opening/closing connection portion 11 so as to be capable of being opened or closed. Elastic repulsive means 15 such as torsion springs (see
(26)
(27) A flexible tube 30 including a proximal end 31 attached to a suction device body 10 and a distal end 32 to be directed to a surgical site, wherein the flexible tube 30 is detachably connected to the suction device body 10 via a connection tube 33.
(28) The flexible tube 30 is hollow inside, enabling, e.g., liquid or gas to freely travel through the inside thereof.
(29) Furthermore, the flexible tube 30 can freely be bent and can be kept in a certain shape resulting from being bent. Note that although an opening portion is provided at the distal end 32 of the flexible tube 30 illustrated in
(30) Also, the flexible tube 30 can be replaced with, e.g., one with a large tube diameter or one with a small tube diameter depending on the purpose.
(31) In the suction device body 10, a depression portion 12 is provided as a point a finger is put on when the irrigation function-equipped suction device 100 is held.
(32) The installation of the depression portion 12 enables the irrigation function-equipped suction device 100 to be easily held and thus facilitates keeping the flexible tube 30 at a fixed position.
(33) An irrigation tube 40 and a suction tube 50 are respectively connected to the suction device body 10.
(34) In the irrigation tube 40, irrigation connection portions 40a, 40b for connecting an irrigation flexible tube (not illustrated) are provided.
(35) At least one kind of liquid from among, e.g., water, distilled water, sterilized water, saline and drug solution can be introduced to the suction device body 10 through the irrigation flexible tube and the irrigation tube 40.
(36) Examples of means for introducing the liquid to the suction device body 10 include means of holding a liquid container, to which the irrigation flexible tube is connected, at a position higher than the irrigation function-equipped suction device 100 and means of feeding liquid via the irrigation flexible tube using, e.g., a liquid feeding pump.
(37) Likewise, in the suction tube 50, suction connection portions 50a, 50b for connecting a suction flexible tube (not illustrated) are provided.
(38) Examples of means for introducing a suction function to the suction device body 10 include means of connecting a suction pump to the suction flexible tube.
(39) In the rotation lever 20, a depression portion 22 including an adjustment hole 21 is provided. Furthermore, in the rotation lever 20, a hollow conduction path that makes a conduction tube 23 and the adjustment hole 21 communicate with each other is provided.
(40) The conduction tube 23 communicates with a branch tube 51 provided in the suction tube 50, through a connection flexible tube 52 formed of a synthetic resin.
(41) When the rotation lever 20 is not pressed and the adjustment hole 21 is not closed by a finger, the adjustment hole 21 and the suction tube 50 communicates with each other, enabling decrease of a suction force on the distal end 32 side of the flexible tube 30.
(42) On the other hand, putting a finger on the depression portion 22 to close the adjustment hole 21 enables increase of the suction force on the distal end 32 side of the flexible tube 30.
(43)
(44)
(45) A first opening/closing joining member 60 and a second opening/closing joining member 70 are each movably joined to the rotation lever 20.
(46) Upon opening/closing of the rotation lever 20, the first opening/closing joining member 60 and the second opening/closing joining member 70 each move vertically according to the degree of the opening/closing of the rotation lever 20 as illustrated in
(47) In the rotation lever 20, protrusion portions 25 each including an elongated hole 24 are provided (see
(48) The same applies to a structure of the second opening/closing joining member 70 and the rotation lever 20.
(49) As illustrated in
(50) Joining portions 13, 13 provided in the suction device body 10 are housed in respective groove portions 27, 27 of the rotation lever 20 when the rotation lever 20 is closed.
(51)
(52)
(53) A first switch mechanism 600 includes a rotation valve 61. The rotation valve 61 includes a cylindrical hollow portion 62 incorporated therein.
(54) Rotation of the rotation valve 61 enables the suction path 610 and the hollow portion 62 to communicate with each other or be closed off from each other.
(55) The rotation valve 61 can be rotatably inserted onto a hollow inner surface of a hollow cavity 620 provided inside the suction device body 10, with substantially no gap therebetween.
(56) “With substantially no gap” here means that when the rotation valve 61 is inserted to the hollow cavity 620, no light transmitted from an interface of contact between the rotation valve 61 and the hollow cavity 620 (see
(57) Preferably, a part of an outer circumferential surface of the rotation valve 61 is in contact with the hollow inner surface of the hollow cavity 620, and more preferably, an entirety of the outer circumferential surface of the rotation valve 61 is in contact with the hollow inner surface of the hollow cavity 620.
(58) Rotation of the rotation valve 61 inside the hollow cavity 620 enables the hollow portion 62 of the rotation valve 61 and the suction path 610 to communicate with each other or be closed off from each other.
(59) As illustrated in
(60) The suction path 610 linearly extends through the suction device body 10 and the rotation valve 61 is provided among the suction path 610.
(61) Upon the rotation lever 20 being pressed with, e.g., a finger of a surgeon, the first opening/closing joining member 60 is pressed down. A first rotation joining member 63 is movably joined to the first opening/closing joining member 60.
(62) As a result of the first opening/closing joining member 60 being pressed down, the first rotation joining member 63 moves. The movement is transmitted from the first rotation joining member 63 to the rotation valve 61, whereby the rotation valve 61 rotates and the hollow portion 62 provided inside the rotation valve 61 is closed.
(63) On the other hand, upon the force pressing the rotation lever 20 being lessened, the rotation lever 20 and the suction device body 10 are opened from each other by means of an action of the elastic repulsive means 15 such as torsion springs (see
(64) Preferably, the hollow portion 62 inside the rotation valve 61 and the suction path 610 are disposed linearly and respective sections in a longitudinal direction of the hollow portion 62 and the suction path 610 are constant and match with each other in the longitudinal direction.
(65) Preferably, when the hollow portion 62 inside the rotation valve 61 and the suction path 610 completely communicate with each other, the hollow portion 62 inside the rotation valve 61 and the suction path 610 form a path with no irregularities inside.
(66) Since foreign substances such as bone fragments sucked from the flexible tube 30 smoothly travel through the path, the inside of the suction path 610 can be prevented from being occluded by the foreign substances inside the irrigation function-equipped suction device 100.
(67) Each of respective sectional shapes in a direction perpendicular to the longitudinal direction of the hollow portion 62 inside the rotation valve 61 and the suction path 610 is formed preferably by a smooth curve such as a circle or an ellipse, more preferably by a circle.
(68) As illustrated in
(69) In the suction device body 10, a first opening/closing joining member insertion hole 630 for inserting the first opening/closing joining member 60 from the upper side in
(70) Also, in the suction device body 10, a first rotation joining member installation groove 631 for movably housing the first rotation joining member 63 is provided.
(71) The hollow cavity 620, the first opening/closing joining member insertion hole 630 and the first opening/closing joining member insertion groove 631 form the first section 640.
(72) The first opening/closing joining member 60 is inserted to the first section 640 so as to be movable in the vertical direction in
(73) Annular elastic bodies 64, 65 such as O-rings are disposed on opposite sides of the rotation valve 61 (see
(74) As illustrated in
(75) Also, when liquid travels through the suction path 610, the annular elastic bodies 64, 65 such as O-rings close the opposite sides of the rotation valve 61, enabling the liquid to be prevented from being leaked from the first opening/closing joining member insertion hole 630 or the first rotation joining member installation groove 631.
(76)
(77) As illustrated in
(78) As described above, as a result of the first rotation joining member 63 and the rotation valve 61 being movably joined at a position on the first opening/closing joining member 60 side relative to the straight line connecting the joining axle 60x between the first opening/closing joining member 60 and the first rotation joining member 63 and the center axis 61x of the rotation valve, vertical motion of the first opening/closing joining member 60 is smoothly converted into rotational motion of the rotation valve 61.
(79) The first opening/closing joining member 60 includes an opening/closing joining member body portion 60c, and curve surface portions 60a, 60b provided at opposite ends of the opening/closing joining member body portion 60c.
(80) Based on a cross-section perpendicular to a longitudinal direction of the opening/closing joining member body portion 60c, that is, the vertical direction in
(81) If there are a plurality of such cross-sections, the relevant largest cross-section is calculated based on the area of an inner surface of an outer circumference connecting the plurality of cross-sections so that the outer circumference is shortest.
(82) Also, if there is a hollow portion in the cross-section, the relevant largest cross-section is calculated based on the area of an inner surface of an outer circumference of the cross-section. The same applies to the below.
(83) As observed in the longitudinal direction of the opening/closing joining member body portion 60c, the largest cross-section of the opening/closing joining member body portion 60c is located within each of the respective largest cross-sections of the curve surface portions 60a, 60b.
(84) Provision of the curve surface portions 60a, 60b allows the first opening/closing joining member 60 to smoothly move along the inside of the first opening/closing joining member insertion hole 630 provided inside the suction device body 10.
(85)
(86)
(87) A conversion mechanism used in the present invention includes the second opening/closing joining member 70, a rotation drum 71, a second rotation joining member 73 and an irrigation path internal joining member 74.
(88) Also, the second switch mechanism used in the present invention includes a closing valve 80.
(89) The closing valve 80 includes at least a closing portion 81, open side surfaces 82 and an irrigation path internal joining member contact portion 83.
(90) The closing valve 80 can move in a longitudinal direction (horizontal direction in
(91) Movement of the closing portion 81 of the closing valve 80 in the longitudinal direction of the irrigation path 710 inside the irrigation path 710 enables switching between communication and closing of the irrigation path 710.
(92) As illustrated in
(93) The closing valve 80 is pressed by elastic repulsive means 90, a spring being illustrated as an example thereof, from the irrigation connection portion 40a, 40b side (see
(94) Upon the rotation lever 20 being pressed by, e.g., a finger of a surgeon, the second opening/closing joining member 70 illustrated in
(95) Upon the second opening/closing joining member 70 being pressed down, the second rotation joining member 73 moves. The movement is transmitted from the second rotation joining member 73 to the rotation drum 71, whereby the rotation drum 71 rotates.
(96) The irrigation path internal joining member 74 is movably joined to the rotation drum 71. Upon rotation of the rotation drum 71, the irrigation path internal joining member 74 makes linear motion along the longitudinal direction of the irrigation path 710.
(97) The irrigation path internal joining member 74 includes a closing valve push-out portion 74a and a closing valve pull-back portion 74b.
(98) As a result of rotation of the rotation drum 71, the irrigation path internal joining member 74 moves toward the upstream side of the irrigation path 710, that is, the side of the irrigation path 710 from which liquid flows into the suction device body 10.
(99) However, even if the irrigation path internal joining member 74 moves toward the upstream side of the irrigation path 710, the closing portion 81 of the closing valve 80 does not immediately move to the upstream side of the irrigation path 710.
(100) There is a gap between the closing valve push-out portion 74a of the irrigation path internal joining member 74 and the irrigation path internal joining member contact portion 83 of the closing valve 80. As long as the gap exists, the closing valve push-out portion 74a of the irrigation path internal joining member 74 and the irrigation path internal joining member contact portion 83 of the closing valve 80 are not in contact with each other, and thus, the closing valve 80 is kept closed.
(101) Upon the closing valve push-out portion 74a of the irrigation path internal joining member 74 and the irrigation path internal joining member contact portion 83 of the closing valve 80 coming into contact with each other along with the movement of the irrigation path internal joining member 74 toward the upstream side of the irrigation path 710, the closing valve push-out portion 74a of the irrigation path internal joining member 74 pushes the irrigation path internal joining member contact portion 83 of the closing valve 80 from then on.
(102) Upon the irrigation path internal joining member contact portion 83 being pushed, the closing portion 81 of the closing valve 80, the closing portion 81 closing the irrigation path 710, is moved away from a position at which the closing portion 81 closes the irrigation path 710.
(103) Upon the irrigation path internal joining member contact portion 83 being further pushed, the open side surfaces 82 of the closing valve 80, the open side surfaces 82 having been in close contact with the inside of the irrigation path 710 with no gap, are exposed inside the irrigation path 710.
(104) Upon the open side surfaces 82 of the closing valve 80 being exposed inside the irrigation path 710, the open side surfaces 82 communicate with both of the upstream side and the downstream side with reference to the closing portion 81 of the irrigation path 710.
(105) As a result, liquid can flow from the upstream side of the irrigation path 710 toward the downstream side of the irrigation path 710 through the open side surfaces 82 of the closing valve 80.
(106) With the above-described operation, the surgeon can start irrigation via the flexible tube 30.
(107) Upon the irrigation path internal joining member contact portion 83 being further pushed, a ratio of an exposed part of the open side surfaces 82 of the closing valve 80 in the irrigation path 710 increases, enabling increase in volume of the liquid flowing in the irrigation path 710.
(108) On the other hand, upon the force pressing the rotation lever 20 being lessened, the rotation lever 20 and the suction device body 10 are opened from each other by means of an action of the elastic repulsive means 15 (see
(109) Upon the reverse rotation of the rotation drum 71, the closing portion 81 of the closing valve 80 is pressed by the elastic repulsive means 90 such as a spring and thereby moves to the downstream side of the irrigation path 710.
(110) The annular elastic body 84 such as an O-ring formed of, e.g., rubber or silicone is provided on the closing portion 81 of the closing valve 80.
(111) Upon the closing portion 81 of the closing valve 80 closing the inside of the irrigation path 710, the closing valve pull-back portion 74b of the irrigation path internal joining member 74 causes the irrigation path internal joining member contact portion 83 of the closing valve 80 to be pulled and thereby deforms the annular elastic body 84. Here, the open side surfaces 82 of the closing valve 80 are housed on the downstream side of the irrigation path 710, and the gap between the closing portion 81 of the closing valve 80 and the irrigation path 710 is thereby eliminated.
(112) When the gap between the closing portion 81 of the closing valve 80 and the irrigation path 710 has been eliminated, the liquid flowing into the suction device body 10 is completely blocked on the upstream side.
(113) Consequently, supply of the liquid to the flexible tube 30 can be stopped. Also, liquid pressure is prevented from being applied to both the first switch mechanism and the conversion mechanism located downstream of the closing portion 81 of the closing valve 80.
(114) A conventional irrigation function-equipped suction device has a structure that shuts off a liquid flow via a rotation valve, a piston valve or the like. In the case of this structure, liquid pressure is directly applied to movable parts, and thus, it is extremely difficult to achieve both a smooth operation of the rotation valve, the piston valve or the like and prevention of liquid leakage from a gap at an interface with the rotation valve or the piston valve.
(115) On the other hand, in the case of the irrigation function-equipped suction device 100 according to Embodiment 1, no liquid pressure is applied to both the first switch mechanism and the conversion mechanism located downstream of the closing portion 81 of the closing valve 80, enabling prevention of liquid leakage from a gap at an interface with the first switch mechanism and a gap at an interface with the conversion mechanism.
(116) As described above, even if the irrigation path internal joining member 74 moves toward the upstream side of the irrigation path 710, the closing portion 81 does not immediately start moving. Until the closing valve push-out portion 74a of the irrigation path internal joining member 74 and the irrigation path internal joining member contact portion 83 of the closing valve 80 come into contact with each other, the closing portion 81 keeps closing the irrigation path 710.
(117) Adjustment of the gap between the closing valve push-out portion 74a of the irrigation path internal joining member 74 and the irrigation path internal joining member contact portion 83 of the closing valve 80 enables control of an operation of starting communication of the irrigation path 710 upon the suction path 610 being closed, and closing the irrigation path 710 upon the suction path 610 being brought into communication.
(118) As a material of the suction device body 10, for example, a metal material such as stainless steel, titanium, aluminum or any of alloys thereof, an organic material such as engineering plastic or a thermosetting resin, or an inorganic material such as ceramic can be used.
(119) From the perspective of operability and durability, the material of the suction device body 10 is preferably a metal, more preferably stainless steel. The same applies to materials of parts other than the suction device body 10 except flexible parts.
(120) Also, a material of the flexible tube 30 is preferably flexible stainless steel.
(121) As illustrated in
(122) The irrigation path 710 is flexed in an L-shape on the downstream side relative to the hollow cavity 720 (see reference sign 710a in
(123) A second opening/closing joining member insertion hole 730 for inserting the second opening/closing joining member 70 from the upper side in
(124) Also, a second opening/closing joining member insertion groove 731 for movably housing the second rotation joining member 73 is provided in the suction device body 10.
(125) The hollow cavity 720, the second opening/closing joining member insertion hole 730 and the second opening/closing joining member insertion groove 731 form a second section 740.
(126) The second opening/closing joining member 70 is inserted in the second section 740 so as to be movable in the vertical direction in
(127) An annular elastic body 75 such as an O-ring is provided on the rotation drum 71. A cover body 76 (see
(128) Based on a plane perpendicular to the vertical direction in
(129) As a result of the part of the irrigation path 710, the part being in parallel with the suction path 610, being provided on the lower side relative to the suction path 610, upper limit motion of the second opening/closing joining member 70 can more largely be converted to forward/backward motion of the closing valve 80 along the longitudinal direction of the irrigation path 710.
(130) Each of the first section 640 and the second section 740 can be formed by hollowing out the material such as a metal by means of, e.g., a cutting process, and there is a partition wall portion 800 between the hollow cavities 620, 720 of the suction device body 10.
(131) Thus, even if leakage of liquid occurs in the second section 740 that is in contact with the irrigation path 710, the partition wall portion 800 can prevent the leaked liquid from being endlessly sucked to the upstream side of the suction path 610.
(132)
(133) As illustrated in
(134) As described above, as a result of the second rotation joining member 73 and the rotation drum 71 being movably joined at a position on the side opposite to the second opening/closing joining member 70 relative to the straight line connecting the joining axle 70x between the second opening/closing joining member 70 and the second rotation joining member 73 and the center axis 71x of the rotation drum 71, vertical motion of the second opening/closing joining member 70 is smoothly converted into linear motion of the irrigation path internal joining member 74.
(135) The second opening/closing joining member 70 includes an opening/closing joining member body portion 70c, and curve surface portions 70a, 70b provided at opposite ends of the joining member body portion 70c.
(136) Based on a cross-section perpendicular to a longitudinal direction of the opening/closing joining member body portion 70c, that is, the vertical direction in
(137) As observed in the longitudinal direction of the opening/closing joining member body portion 70c, the largest cross-section of the opening/closing joining member body portion 70c is located within each of the respective largest cross-sections of the curve surface portions 70a, 70b.
(138) Provision of the curve surface portions 70a, 70b allows the second opening/closing joining member 70 to smoothly move along the inside of the second opening/closing joining member insertion hole 730 provided inside the suction device body 10.
(139) As described above, the first section 640 and the second section 740 communicate with each other only via the connection portion 711 between the irrigation path 710 and the suction path 610 inside the suction device body 10.
(140) Also, the connection portion 711 constantly communicates with atmosphere through the flexible tube 30.
(141) Therefore, even if the irrigation path 710 is closed, excessive liquid pressure can be prevented from being applied to the respective parts provided in the first section 640 and the second section 740.
(142) Accordingly, liquid pressure can be prevented from being applied to both the first switch mechanism and the conversion mechanism located downstream of the closing portion 81 of the closing valve 80.
(143) The present invention enables achievement of both prevention of liquid leakage and smooth switching between a suction operation and an irrigation operation of the irrigation function-equipped suction device 100.
Embodiment 2 of Invention
(144) Next, Embodiment 2 of the present invention, which is an alteration of Embodiment 1 of the present invention, will be described.
(145) An irrigation function-equipped suction device 110 according to Embodiment 2 is an improvement made so that an amount of liquid supplied from a flexible tube 30 (see
(146)
(147) As in the irrigation function-equipped suction device 100 according to Embodiment 1, a closing valve 80 illustrated in
(148) Upon the rotation lever 20 being pressed by, e.g., a finger of a surgeon, through an operation as in the case of the irrigation function-equipped suction device 100 according to Embodiment 1 described above, the open side surfaces 82 of the closing valve 80, the open side surfaces 82 having been in close contact with the inside of the irrigation path 710 with no gap, are exposed inside the irrigation path 710.
(149) As a result, liquid can flow from the upstream side of the irrigation path 710 toward the downstream side of the irrigation path 710 through the open side surfaces 82 of the closing valve 80. As in Embodiment 1 described above, supply of liquid to the flexible tube 30 can be started.
(150) In the case of the irrigation function-equipped suction device 110 according to Embodiment 2, the open side surfaces 82 of the closing valve 80 are large relative to the open side surfaces of the closing valve used in Embodiment 1 described above.
(151) Also, based on a section perpendicular to a longitudinal direction of the irrigation path 710, a size of a liquid intake chamber portion 91 inside the irrigation path 710 of the irrigation function-equipped suction device 110 is larger than that of the irrigation path 710.
(152) Based on a plane perpendicular to a straight line along the longitudinal direction of the irrigation path 710, the liquid intake chamber portion 91 is provided at a position on the side opposite to the flexible tube 30 relative to each of the rotation valve 61 included in the first switch mechanism 600 and the rotation drum 71 included in the conversion mechanism.
(153) In addition, the liquid intake chamber portion 91 is large in comparison with a liquid intake chamber portion inside the irrigation path of the irrigation function-equipped suction device 100.
(154) In the case of the irrigation function-equipped suction device 110 according to Embodiment 2, a large amount of liquid can smoothly flow through the open side surfaces 82 of the closing valve 80.
(155) On the other hand, upon the surgeon lessening the force pressing the rotation lever 20, as in Embodiment 1 described above, the supply of liquid to the flexible tube 30 can be stopped.
Embodiment 3 of Invention
(156) Next, Embodiment 3 according to the present invention, which is an alteration of Embodiment 1 of the present invention, will be described.
(157)
(158) The rotation valve 900 includes a rotation valve body 910, rotation shafts 920, 930 and a rotation valve disk 940.
(159) In the rotation valve body 910, a circular cylindrical hollow portion 62 extending through the rotation valve body 910 is provided in a direction perpendicular to a center axis of the rotation shafts 920, 930. Gas, liquid, etc., can be sucked through the hollow portion 62.
(160) Also, a void 950 is provided in the rotation valve body 910. The void 950 is located inside the rotation valve body 910 and extends through an outer surface 911 and an inner surface 912 of the rotation valve body 910.
(161) The void 950 only needs to be provided inside the rotation valve body 910 and a shape of the void 950 is not limited.
(162) The void 950 is provided inside the rotation valve body 910 so as to avoid the hollow portion 62. Therefore, none of liquid, gas, etc., can travel between the void 950 and the hollow portion 62.
(163) On the other hand, in the rotation valve body 910, vent holes 960 that lead from the outside of the rotation valve body 910 to the void 950 are provided in a direction perpendicular to the center axis of the rotation shafts 920, 930.
(164) Although in the rotation valve 900 illustrated in
(165) Also, the shape of the vent holes 960 is not limited to a circular cylindrical shape, and may be, for example, a polygonal cylindrical shape or an elliptic cylindrical shape.
(166)
(167) When the rotation lever 20 is closed, the hollow portion 62 of the rotation valve 900 is closed and the hollow portion 62 and the suction path 610 are not connected.
(168) On the other hand, the vent holes 960 are exposed inside the suction path 610. The inside of the suction path 610 is connected to the void 950 through the vent holes 960.
(169) Upon the hollow portion 62 and the suction path 610 being connected as a result of the rotation valve 900 being rotated, all of the vent holes 960 are closed.
(170) Based on the area of a part of the rotation valve 900, the part being exposed inside the suction path 610, in comparison with a case where neither the vent holes 960 nor the void 950 exist, where the vent holes 960 and the void 950 exist, when the suction path 610 is depressurized, the surface area subjected to the depressurization is large.
(171) In other words, if the vent holes 960 and the void 950 exist, surface areas of respective insides of the vent holes 960 and the void 950 are added in comparison with the case where neither the vent holes 960 nor the void 950 exist, and thus, even if the suction path 610 is depressurized, a force applied to each unit area of the rotation valve body 910 is small.
(172) Where the vent holes 960 and the void 950 exist in the rotation valve 900, even if the suction path 610 is strongly depressurized, a force applied to the rotation valve 900 can be dispersed, enabling the rotation valve 900 to be smoothly rotated and thus enables opening/closing motion of the rotation lever to be kept smooth.
INDUSTRIAL APPLICABILITY
(173) A irrigation function-equipped suction device according to the present invention can widely be used as a medical instrument for use in the medical field such as brain surgery.
(174) Also, an irrigation function-equipped suction device according to the present invention can widely be used for restoration work for an archaeological material such as antiquities, stratum analysis work, etc., as well as cleaning work and painting work that need cleaning and suction operation.
REFERENCE SIGNS LIST
(175) 10, 202 suction device body 11 opening/closing connection portion 12, 22 depression portion 13 joining portion 14 joining long pivot shaft pin 15, 90 elastic repulsive means 20, 240 rotation lever 21 adjustment hole 23 conduction tube 24 elongated hole 25 protrusion portion 26 screw 27 groove portion 30 flexible tube 31 proximal end 32 distal end 33 connection tube 40 irrigation tube 40a, 40b irrigation connection portion 50 suction tube 50a, 50b suction connection portion 51 branch tube 52 connection flexible tube 60 first opening/closing joining member 60a, 60b, 70a, 70b curve surface portion 60c, 70c opening/closing joining member body portion 60x, 63x, 70x, 73x joining axle 61, 900 rotation valve 61x, 71x center axis 62 hollow portion 63 first rotation joining member 64, 65 annular elastic body 66, 76 cover body 70 second opening/closing joining member 71 rotation drum 73 second rotation joining member 74 irrigation path internal joining member 74a closing valve push-out portion 74b closing valve pull-back portion 80 closing valve 81 closing portion 82 open side surface 83 irrigation path internal joining member contact portion 84 annular elastic body 90 elastic repulsive means 91 liquid intake chamber portion 100, 110, 120, 200 irrigation function-equipped suction device 210 suction path 212 irrigation path 220 flexible tube 222 distal end 230 rotation valve 232 flexible tube 234 suction pressure fine adjustment hole 600 first switch mechanism 610 suction path 620, 720 hollow cavity 621 screw groove 630 first opening/closing joining member insertion hole 631 first rotation joining member installation groove 640 first section 710 irrigation path 710a L-shaped flexed portion of irrigation path 711 connection portion 730 second opening/closing joining member insertion hole 731 second rotation joining member installation groove 740 second section 800 partition wall portion 910 rotation valve body 911 outer surface 912 inner surface 920, 930 rotation shaft 940 rotation valve disk 950 void 960 vent hole