TABLET CASSETTE
20230157929 · 2023-05-25
Inventors
Cpc classification
G07F17/0092
PHYSICS
International classification
A61J3/00
HUMAN NECESSITIES
Abstract
A tablet cassette includes a tablet container for containing tablets in a random manner and a rotor provided therein and having a plurality of tablet receiving portions, and allows tablets, which have fallen into the tablet receiving portions through axial rotation of the rotor, to successively fall down through a discharge port at the bottom portion of the tablet container. The rotor includes a circumferential expansion-contraction mechanism, a radial expansion-contraction mechanism, and a pressing member externally mounted on a rotary shaft that penetrates a bottom wall portion of the tablet container. The circumferential expansion-contraction mechanism allows the plurality of tablet receiving portions to be expanded and contracted in the circumferential direction in conjunction with each other. The radial expansion-contraction mechanism allows the tablet receiving portions to be individually expanded and contracted by individually moving a plurality of sliding members in the radial direction.
Claims
1. A tablet cassette comprising: a tablet container having a tablet containing space therein for containing a plurality of tablets in a random manner, the tablet container including a bottom wall portion formed with a discharge port to allow the plurality of tablets in the tablet containing space to fall down one by one; a rotary shaft having an axial line extending in a direction orthogonal to the bottom wall portion of the tablet container; and a rotor operable to rotate about the axial line in the tablet containing space of the tablet container along with rotation of the rotary shaft, the rotor including a plurality of tablet receiving portions configured to receive the tablets one by one and allow the tablets to pass therethrough to the discharge port, wherein: the plurality of tablet receiving portions each include a radially opening portion that opens in a radial direction of the rotary shaft, a pair of axially opening portions that open on both sides in an axial direction in which the axial line extends, a facing wall portion that faces the radially opening portion, and a pair of side wall portions that face each other in a circumferential direction of the rotary shaft; and the rotor includes a circumferential expansion-contraction mechanism externally mounted on the rotary shaft to expand and contract the plurality of tablet receiving portions in the circumferential direction in conjunction with each other, a radial expansion-contraction mechanism externally mounted on the rotary shaft and including a plurality of sliding members respectively provided for the plurality of tablet receiving portions, the plurality of sliding members each including the facing wall portion at one end thereof and being slidable in the radial direction of the rotary shaft to individually move the facing wall portion in the radial direction, and a slide allowing holding member configured to hold the plurality of sliding members to be slidable in the radial direction, and a constraining mechanism configured to disable the plurality of sliding members to slide with respect to the slide allowing holding member with the circumferential expansion-contraction mechanism and the radial expansion-contraction mechanism being externally mounted on the rotary shaft.
2. The tablet cassette according to claim 1, wherein the constraining mechanism includes a pressing member to be pressed against the plurality of sliding members to hinder sliding of the plurality of sliding members.
3. The tablet cassette according to claim 1, wherein: the radial expansion-contraction mechanism is disposed on the circumferential expansion-contraction mechanism such that the plurality of facing wall portions are inserted into the plurality of tablet receiving portions; and the constraining mechanism further includes a cap member mounted to the rotary shaft to press the pressing member disposed on the radial expansion-contraction mechanism toward the plurality of sliding members.
4. The tablet cassette according to claim 2, wherein: the slide allowing holding member includes a pair of sandwiching members configured to hold the plurality of sliding members by sandwiching sliding portions of the sliding members at both sides in the axial direction; and one of the pair of sandwiching members located on the pressing member side includes a plurality of through grooves formed to expose a part of the plurality of sliding members to be able to contact the pressing member.
5. The tablet cassette according to claim 4, wherein: a protrusion is provided at the other end of each of the plurality of sliding members, the protrusion being configured to be located in a corresponding one of the through grooves to be pressed by the pressing member; and the through grooves and the protrusions are shaped such that the sliding members are slidable only in the radial direction when the protrusions are not pressed by the pressing member.
6. The tablet cassette according to claim 5, wherein the through grooves extend in the radial direction to a position on an inner side with respect to an outer peripheral edge of the one of the sandwiching members.
7. The tablet cassette according to claim 6, wherein a scale is provided on respective surfaces of the sliding members that face the one of the sandwiching members to indicate an amount of projection from the outer peripheral edge of the one of the sandwiching members.
8. The tablet cassette according to claim 1, wherein: the circumferential expansion-contraction mechanism includes a first turning member including one side wall portion of the pairs of side wall portions disposed at predetermined intervals in the circumferential direction, and operable to relatively turn about the axial line within a predetermined angular range, a second turning member including the other side wall portion of the pairs of side wall portions disposed at predetermined intervals in the circumferential direction, and operable to relatively turn about the axial line within the predetermined angular range, and a link mechanism configured to couple the first turning member and the second turning member in an interlocking manner; and the link mechanism is configured such that, when one of the second turning member and the first turning member is turned toward one side in the circumferential direction by a predetermined angle through a manual operation, the other of the second turning member and the first turning member is turned toward the other side in the circumferential direction by an angle equal to the predetermined angle.
9. The tablet cassette according to claim 8, wherein: the link mechanism includes a stationary link member provided to be non-rotatable in the circumferential direction with respect to the rotary shaft, a first link member, one end of which is coupled to the first turning member by a first turning pair, a second link member, one end of which is coupled to the second turning member by a second turning pair, a third turning pair configured to couple the other end of the first link member and the other end of the second link member, a first sliding pair provided between the stationary link member and the third turning pair to allow the third turning pair to slide over a predetermined range in the radial direction of the rotary shaft, a second sliding pair provided between the first turning pair and the second turning member, and a third sliding pair provided between the second turning pair and the first turning member; and the stationary link member, the first link member, the second link member, and the first to third sliding pairs are configured such that, when one of the first turning member and the second turning member is turned over a predetermined angle in one direction about the axial line of the rotary shaft, the other of the first turning member and the second turning member is turned over the predetermined angle in the other direction opposite to the one direction.
10. The tablet cassette according to claim 3, wherein a lid portion of the tablet container is provided with a suspended member suspended from the lid portion to contact the tablets on the rotor to move the tablets.
11. The tablet cassette according to claim 10, wherein a tablet moving mechanism is constituted from the suspended member, a support structure provided on a lower surface of the lid portion to swingably support the suspended member, and a weight portion provided at a free end portion of the suspended member.
12. The tablet cassette according to claim 11, wherein: the cap member is shaped to stir tablets in the tablet containing space; the cap member is provided with a plurality of overhanging portions extending in the radial direction except for areas above the plurality of tablet receiving portions; and the support structure is structured such that the suspended member is suspended to a position at which the suspended member contacts the tablets remaining on the overhanging portions to cause the tablets to fall into the tablet receiving portions.
13. The tablet cassette according to claim 12, wherein the suspended member is structured to be elastically deformed according to displacement of the weight portion.
14. The tablet cassette according to claim 13, wherein the suspended member includes a flexible tubular member and an elongated elastic member housed in a cavity of the tubular member.
15. The tablet cassette according to claim 14, wherein the elastic member is a coil spring, and the weight portion is coupled to the coil spring but is not coupled to the tubular member.
16. The tablet cassette according to claim 13, wherein: a retaining portion on which at least one of the suspended member and the weight portion is retained is provided on the lower surface of the lid portion; and the support structure is configured such that the suspended member which has been released from the retaining portion is gradually brought into a suspended state as the tablets in the tablet containing space are decreased.
17. The tablet cassette according to claim 11, wherein the weight portion is suspended over a movement path of the plurality of tablet receiving portions when the suspended member is suspended by only a weight of the weight portion.
18. The tablet cassette according to claim 14, wherein: a retaining portion on which at least one of the suspended member and the weight portion is retained is provided on the lower surface of the lid portion; and the support structure is configured such that the suspended member which has been released from the retaining portion is gradually brought into a suspended state as the tablets in the tablet containing space are decreased.
19. The tablet cassette according to claim 15, wherein: a retaining portion on which at least one of the suspended member and the weight portion is retained is provided on the lower surface of the lid portion; and the support structure is configured such that the suspended member which has been released from the retaining portion is gradually brought into a suspended state as the tablets in the tablet containing space are decreased.
Description
BRIEF DESCRIPTION OF DRAWINGS
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DESCRIPTION OF EMBODIMENTS
[0053] Tablet cassettes according to embodiments of the present invention will be described in detail below with reference to the drawings.
First Embodiment
[0054]
[0055]
[0056]
[0057] As illustrated in
[0058] The tablet container 20 includes a discharge port 28 formed to penetrate one location (left side in
[0059] The tablet container 20 is configured such that a belt holding portion 33 can be mounted or removably mounted to the container body 21 from the outside. The belt holding portion 33 holds an elastic endless belt 34, which is made of rubber in a round string shape, for example, in a tense state. When the partition unit 30 is mounted to the container body 21 and the endless belt 34 is inserted into the tablet containing space 22 through the slit in the container body 21, the endless belt 34 is positioned above the discharge port 28 and the partitioning portion 32.
[0060] The rotor 40 (see
[0061] The rotary shaft 41 (see
[0062] The rotor 40 is mounted to and removed from the tablet container 20 in an integrated state in which the rotor 40 is totally assembled (see
[0063] The circumferential expansion-contraction mechanism 59 (see
[0064] Next, the circumferential expansion-contraction mechanism 59 with the remaining members 83 to 88 of the link mechanism 80 being attached thereto is mounted to the rotary shaft 41 (see the lower half of
[0065] In contrast, the radial expansion-contraction mechanism 90 (see
[Circumferential Expansion-Contraction Mechanism]
[0066] The second turning member 60 (see the upper half of
[0067] The first turning member 70 (see
[0068] The link mechanism 80 (see
[0069] As illustrated in
[0070] As illustrated in
[0071] One end of the first link member 86 is coupled to the first turning member 70 by a first turning pair (pin 76 and through hole 88). One end of the second link member 83 is coupled to the second turning member 60 by a second turning pair (pin 66 and through hole 84 in
[0072] The stationary link member 81, the first link member 86, the second link member 83, and the first sliding pair (elongated through hole 81A and pin 85) to the third sliding pair (pin 66 and arcuate elongated through hole 77) are configured such that, when one of the first turning member 70 and the second turning member 60 is turned by a predetermined angle in one direction about the axial line of the rotary shaft 41, the other of the first turning member 70 and the second turning member 60 is turned by the predetermined angle in the other direction opposite to the one direction. When the link mechanism 80 is configured in this manner, it is possible to inexpensively implement the link mechanism 80 and the circumferential expansion-contraction mechanism 59 with a small number of components.
[0073] In the link mechanism 80, the elongated through hole 81A formed in the stationary link member 81 and extending in the radial direction regulates motion of the pin 85 of the first sliding pair to the radial direction, and the arcuate through hole 77 formed in the first turning member 70 and the arcuate through hole 68 formed in the second turning member 60 regulate motion of the pin 76 of the second sliding pair and the pin 66 of the third sliding pair to the circumferential direction. As a result, when one of the first turning member 70 and the second turning member 60 is moved in the circumferential direction, the other can be moved in the opposite circumferential direction in an interlocking manner.
[0074] Consequently, the circumferential dimensions of the plurality of tablet receiving portions 67 can be adjusted in an interlocking manner without changing the center positions of the tablet receiving portions 67.
[Radial Expansion-Contraction Mechanism]
[0075] As illustrated in
[0076] The constraining mechanism (47, 48, 50) includes the pressing member 47 to be pressed against the plurality of sliding members 94 to hinder sliding of the plurality of sliding members 94. The state of expansion and contraction of the tablet receiving portions is fixed by simply pressing the pressing member 47 against the radial expansion-contraction mechanism. Therefore, the plurality of sliding members 94 can be collectively fixed, even if the plurality of sliding members 94 are individually adjusted.
[0077] The radial expansion-contraction mechanism 90 is disposed on the circumferential expansion-contraction mechanism 59 such that the plurality of facing wall portions 94A are inserted into the plurality of tablet receiving portions 67. The constraining mechanism (47, 48, 50) further includes a cap member 50 mounted to the rotary shaft to press the pressing member 47 disposed on the radial expansion-contraction mechanism 90 toward the plurality of sliding members 94. With this configuration, the pressing member 47 can be pressed against the plurality of sliding members 94 by mounting the cap member 50, and thus the constraining mechanism can be easily mounted through the rotor assembly work.
[0078] The slide allowing holding member (91, 97) includes the upper sandwiching member 91 and the lower sandwiching member 97 (a pair of sandwiching members) that hold the plurality of sliding members 94 by sandwiching the sliding portions 94B of the sliding members 94 at both sides in the axial direction. In the present embodiment, the upper sandwiching member 91 and the lower sandwiching member 97 are unitized by engaging the engaging portions 93 of the upper sandwiching member 91 and the engaged portions 99 of the lower sandwiching member 97 with each other (see
[0079] The sliding members 94 (see
[0080] The radial expansion-contraction mechanism 90 is completed by placing the sliding portions 94B of the sliding members 94 in the guide paths 98 of the lower sandwiching member 97 with the facing wall portions 94A of the sliding members 94 projecting from the outer edge of the lower sandwiching member 97, and then placing the upper sandwiching member 91 on top of the lower sandwiching member 97 to engage the members 91 and 97 with each other (see
[0081] In the thus configured radial expansion-contraction mechanism 90, the sliding portions of the sliding members 94 are sandwiched from the upper and lower sides by the upper sandwiching member 91 and the lower sandwiching member 97 to be held in the guide paths 98, and the protrusions 95 of the sliding members 94 are inserted into the through grooves 92 from below to slightly project upward. Therefore, the sliding members 94 can be individually drawn outward in the radial direction (see
[0082] In this manner, the radial expansion-contraction mechanism 90 allows the tablet receiving portions 67 to be individually expanded and contracted in the radial direction by individually moving the sliding members 94 into and out of the slide allowing holding member (91, 97) using a finger etc. A scale 96 is provided on respective surfaces of the sliding members 94 that face the upper sandwiching member 91 to indicate an amount of projection from the outer peripheral edge of the upper sandwiching member 91. The plurality of sliding members 94 can be individually adjusted easily and immediately by setting a value on the scale of the plurality of sliding members to be adjusted to a measured dimension value or a scale value after radial expansion-contraction adjustment, after the dimension of the relevant portion of the tablet to be handled is measured or after radial expansion and contraction of any one of the plurality of sliding members 94 has been adjusted. The plurality of sliding members 94 can be aligned in radial position easily and adequately by comparing the scale 96 and the outer peripheral surface of the upper sandwiching member 91 (see
[0083] When the pressing member 47 and the cap member 50 are placed on the radial expansion-contraction mechanism 90 fitted at the upper end portion 44 of the rotary shaft 41 and fastened using the setscrew 48 as illustrated in
[0084] In the present embodiment, the radial expansion-contraction mechanism 90 which includes the plurality of sliding members 94 can be handled as a single unit, even when the radial expansion-contraction mechanism 90 is separated from the rotary shaft and the circumferential expansion-contraction mechanism 59. As a result, radial expansion and contraction can be easily individually adjusted by sliding the plurality of sliding members 94.
[Operation According to First Embodiment]
[0085] The use and operation of the tablet cassette 10 will be described below with reference to the drawings etc. discussed above.
[0086] It is necessary to adapt the size of the tablet receiving portions 67 of the tablet cassette 10 to the size of tablets prior to the use of the tablets. The size of the tablet receiving portions 67 is manually adjusted. The adjustment is basically performed on the rotor 40 in the state of being removed from the tablet container 20 (see
[0087] To adjust the circumferential width of the tablet receiving portions 67 using the circumferential expansion-contraction mechanism 59 (see
[0088] To adjust the radial circumferential width of the tablet receiving portions 67 using the radial expansion-contraction mechanism 90 (see
[0089] Next, the radial expansion-contraction mechanism 90, the pressing member 47, and the cap member 50 (see
[0090] In the case where the tablets are of a small type among tablets that can be handled by the tablet cassette 10, the side wall portions 61, 71 approach the sliding members 94 with the facing clearance between the side wall portions 61, 71 being reduced, and appear under slits 53 of the cap member 50 (see
[0091] In the case where the width of the tablets is slightly larger, the side wall portions 61, 71 are accordingly moved away through adjustment, and thus the side wall portions 61, 71 are slightly moved away from the sliding members 94, and partially hidden under overhanging portions 52 of the cap member 50. However, the side wall portions 61, 71 are moved in opposite directions over the same distance, and thus the circumferential position of the tablet receiving portions 67 is maintained at the center position with respect to the slits 53 between the overhanging portions 52 of the cap member 50, and the circumferential position of the sliding members 94 in the tablet receiving portions 67 is also maintained at the center position. As a result, an undesired occurrence of the tablets falling into a gap between the side wall portions 61, 71 and the sliding member 94 is avoided, even if such a gap is widened, and the tablets fall into the tablet receiving portions 67.
[0092] In the case where the width of the tablets is still larger, the side wall portions 61, 71 are accordingly significantly moved away through adjustment, and thus the side wall portions 61, 71 are mostly or entirely hidden under the overhanging portions 52 of the cap member 50. In this case, the circumferential width of the upper end portion of the tablet receiving portions 67 is regulated to the upper limit or less of an appropriate range by the slits 53 of the cap member 50, both the positional relationship between the circumferential centers of the tablet receiving portions 67 and the slits 53 and the positional relationship between the circumferential centers of the tablet receiving portions 67 and the sliding members 94 are maintained, and thus the tablets fall into the tablet receiving portions 67.
[0093] In the case where the tablets are slightly larger also in the thickness direction, further, the sliding members 94 are retracted toward the rotary shaft 41 through adjustment made according to the thickness of the tablets. The sliding members 94 are moved away from the inner peripheral surface 27 of the container body 21, and a part of a bent portion of the sliding members 94 is hidden under the center portion 51 of the cap member 50. In the case where the thickness of the tablets is much larger, most of the sliding members 94 is hidden under the center portion 51 of the cap member 50 through adjustment made according to the thickness. In any case, the tablets fall into only the tablet receiving portions 67.
[0094] In the cap member 50 of the tablet cassette 10 (see
[0095] In the present embodiment, the link member is not used for the radial expansion-contraction mechanism 90. In the circumferential expansion-contraction mechanism 59, the link mechanism 80 is constituted from three link members, namely the second link member 83, the first link member 86, and the stationary link member 81 (see
[0096] In the present embodiment, the members that constitute the rotor 40 are disposed with little gap therebetween (see
[Others]
[0097] In the embodiment described above, a row of lines are indicated as the scale 96 on the upper surface of the sliding portions 94B of the sliding members 94 (see
[0098] In the embodiment described above, four tablet receiving portions 67 are provided. However, the number of the tablet receiving portions 67 is not limited to four, and may be more or less than four. In the embodiment described above, the pressing member 47 is provided as a single independent object. However, the pressing member 47 may be provided as bonded etc. to the lower surface of the cap member 50.
[0099] In the embodiment described above, the partitioning portion 32 is described as a thin plate-like body. However, the partitioning portion 32 is not limited to a plate-like body, and an elastic endless belt similar to the endless belt 34 can be adopted as the partitioning portion 32, although the partition holding portion 31 is complicated. That allows upper and lower tablets to be adequately partitioned, even if size adjustment of the tablet receiving portions 67 is more or less rough, thereby facilitating size adjustment of the tablet receiving portions 67. The condition for forming the grooves 63, 73 for avoiding interference between the partitioning portion 32 and the side wall portions 61, 71 is also relaxed.
Second Embodiment
[0100] In a second embodiment illustrated in
[0101] As illustrated in
[0102] The suspended member 104 has a straight bar structure obtained by combining an elastic member 105 formed from a coil spring with a suitable resilient force and a tubular member 106 formed from a flexible member such as a plastic tube that is as long as or slightly shorter than the elastic member 105. The elastic member 105 is received inside the tubular member 106, with one end portion of the elastic member 105 being coupled to the support shaft 103 and with the other end portion of the elastic member 105 being coupled to the weight portion 107. In contrast, the tubular member 106 is not coupled to the support shaft 103 or the weight portion 107. The inside diameter of the tubular member 106 is smaller than the length of the support shaft 103 and the radial dimension of the weight portion 107. Thus, the tubular member 106 continuously stays between the support shaft 103 and the weight portion 107 without slipping off from the elastic member 105.
[0103] The weight portion 107 is a spherical body all made of rubber with soft touch, or a spherical body with its weight being increased by containing a weight member made of metal etc. as a core portion. Such a weight portion 107 and the suspended member 104 discussed above are coupled to the support structure 101 by inserting the support shaft 103 into the shaft support portion 102, assembling the tablet moving mechanism 100 (see
[0104] The support structure 101 of such a tablet moving mechanism 100 is attached to the lower surface of the lid portion 29 of the tablet container 20 with the shaft support portion 102 being positioned over a path through which the tablet receiving portions 67 are moved during rotation of the rotor 40, or over a movement path of the overhanging portions 52 which is slightly higher. When the suspended member 104 and the weight portion 107 are brought into the free state, both the weight portion 107 and the suspended member 104 are suspended over the movement path of the tablet receiving portions 67 and, further, over the movement path of the overhanging portions 52. The size of the weight portion 107 is preferably larger than the opening size of the tablet receiving portions 67 that have been expanded or the size of the overhanging portions 52, in order to prevent the weight portion 107 from falling into the tablet receiving portions 67 even if the weight portion 107 is detached.
[0105] The use and operation of the tablet cassette 10 according to the second embodiment will be described next with reference to the drawings discussed above. It is assumed that the rotor 40 has already been inserted into the tablet container 20, whereby adjustment has been finished to adapt the size of all the tablet receiving portions 67 to the tablets by manually operating the first turning member 70 and the second turning member 60, and the partition unit 30 also has been adjusted to align the partitioning portion 32 etc. In this state, the tablet cassette 10 can be used to contain desired tablets in a random manner and successively discharge the tablets, and thus the tablet containing space 22 of the tablet cassette 10 is replenished with an appropriate amount of tablets by opening the lid portion 29 and inputting the tablets.
[0106] When the suspended member 104 is placed on the retaining portion 108 (see
[0107] When the tablet cassette 10 is driven by the drive portion, the rotor 40 is rotated, the first turning member 70 and the second turning member 60 are rotated, and as a result the tablet receiving portions 67 are moved forward with respect to the discharge port 28. The tablets received in the tablet receiving portions 67 and carried under the partitioning portion 32 fall downward one by one through the discharge port 28. In that event, the tablets placed on the rotor 40 roll down from the top of the cap member 50 or the top of the overhanging portions 52 to be received in the tablet receiving portions 67, and the tablets placed on the tablets falling down into the tablet receiving portions 67 are brought closer to the top of the cap member 50 or the top of the overhanging portions 52. All the tablets tend to be moved along a circular or annular path through rotational motion of the rotor 40, although the degree may vary.
[0108] With such a tendency, in the case where a large number of tablets are placed on the rotor 40, the tablets may be collectively moved as if the tablets formed a cluster. In the present embodiment, however, the weight portion 107 is positioned over the movement path of the tablets. Therefore, even if a cluster of a plurality of tablets is formed, the cluster of tablets collides against the weight portion 107 to be disentangled quickly and smoothly. As a result, the plurality of tablets successively fall and are then moved onto the rotor 40, rather than staying as a cluster in the space above the rotor 40. The tablets placed on the cap member 50 are moved into the tablet receiving portions 67 or onto the overhanging portions 52 by the slope on the surface of the cap member 50.
[0109] When the tablets are successively discharged and there are fewer tablets remaining on the rotor 40, the tablets that have failed to be received in the tablet receiving portions 67 remain on the upper surface of the overhanging portions 52, since the tablets cannot stay on the sloping surface on the cap member 50 or the sloping surface on the inner wall of the tablet container 20. However, the tablets remaining on the overhanging portions 52 pass through the location at which the weight portion 107 of the suspended member 104 is positioned along with rotation of the rotor 40, and thus collide against the weight portion 107 and quickly fall into the tablet receiving portions 67, rather than remaining on the overhanging portions 52. In this manner, the tablets on the overhanging portions 52 of the rotor 40 are tossed by the direct colliding action of the weight portion 107 of the tablet moving mechanism 100 to be reliably moved, thereby efficiently feeding the tablets into the tablet receiving portions 67.
[Modification of Tablet Moving Mechanism 100]
[0110]
[0111] The tablet moving mechanism 100′ is different from the tablet moving mechanism 100 according to the second embodiment discussed above in that the weight portion 107 which is a spherical body made of rubber is replaced with a weight portion 107′ which is a short circular column made of metal and with a circular truncated cone. In this case, the weight portion 107′ has an increased weight, and thus provides an increased force to move the tablets.
[0112] In the case where the lid portion 29 of the tablet cassette 10 includes the pair of engaging portions 29A, the tablet moving mechanism 100′ can be mounted to and removed from the lid portion 29 by retaining and releasing the end portions 109A and 109B of the support structure 101 on and from the engaging portions 29A, and thus the tablet moving mechanism 100′ can be readily replaced. Moreover, the lid portion 29 of the container body 21 can be easily replaced, and thus a tablet cassette not equipped with the tablet moving mechanism 100, 100′ can be conveniently upgraded to the tablet cassette 10 equipped with the tablet moving mechanism 100, 100′.
[0113] In the embodiment described above, the tablet moving mechanism 100 is disposed such that the weight portion 107 is suspended at a location closer to the grip 23 of the tablet container 20 from the position of the axial center of the rotor 40 (see
[0114] While a location at which the endless belt 34 and the weight portion 107 would interfere with each other, such as a location over the discharge port 28, must be avoided, a wide range of movement of the weight portion 107 can be easily secured on the side upstream of such a location (e.g. the front side of the drawing sheet of
[0115] In
[0116] The tablet moving mechanism 100, 100′ is considered as a direct tablet moving mechanism configured to directly abut against the tablets to be moved, and can be used in combination with the indirect tablet moving mechanism discussed earlier, since the direct and indirect tablet moving mechanisms are different from each other in the location at which the mechanisms are mounted, the position at which the mechanisms act on the tablets, and the swing motion thereof for the tablets.
INDUSTRIAL APPLICABILITY
[0117] The tablet cassette according to the present invention may be used in a device in which a large number of drive portions are incorporated in a storage portion such as the medicine dispensing apparatus discussed earlier, and in a device on which only one drive portion is mounted such as a tablet splitting apparatus. A single tablet cassette may be used as attached to a number of drive portions in an interchangeable manner, or a number of tablet cassettes may be used as attached to a single drive portion in an interchangeable manner. A typical example of the tablets to be handled by the tablet cassette according to the present invention is relatively large, vertically long capsules in a round tube shape. However, the tablets that can be handled are not limited thereto, and a large variety of tablets can be handled, such as tablets in other shapes such as a fusiform shape or a disk shape and tablets of other sizes.
DESCRIPTION OF REFERENCE NUMERALS
[0118] 10 tablet cassette [0119] 20 tablet container [0120] 21 container body [0121] 22 tablet containing space [0122] 23 grip [0123] 24 mount-unmount portion [0124] 25 bottom wall portion [0125] 26 through hole [0126] 27 inner peripheral surface [0127] 28 discharge port [0128] 29 lid portion [0129] 30 partition unit [0130] 31 partition holding portion [0131] 32 partitioning portion [0132] 33 belt holding portion [0133] 34 endless belt [0134] 40 rotor [0135] 41 rotary shaft [0136] 42 lower end portion [0137] 43 intermediate portion [0138] 44 overhanging portion [0139] 46 spacer [0140] 47 pressing member [0141] 48 setscrew [0142] 50 cap member [0143] 51 center portion [0144] 52 overhanging portion [0145] 53 slit [0146] 59 circumferential expansion-contraction mechanism [0147] 60 second turning member [0148] 61 side wall portion [0149] 63 groove [0150] 64 base portion [0151] 65 through hole [0152] 66 pin [0153] 67 tablet receiving portion [0154] 68 through hole [0155] 70 first turning member [0156] 71 side wall portion [0157] 73 groove [0158] 74 base portion [0159] 75 through hole [0160] 76 pin [0161] 77 through hole [0162] 80 link mechanism [0163] 81 stationary link member [0164] 82 hook member [0165] 83 second link member [0166] 84 through hole [0167] 85 coupling pin [0168] 86 first link member [0169] 87 through hole [0170] 88 through hole [0171] 90 radial expansion-contraction mechanism [0172] 91 upper sandwiching member (slide allowing holding member) [0173] 92 through groove [0174] 93 engaging portion [0175] 94 sliding member [0176] 95 protrusion [0177] 96 scale [0178] 97 lower sandwiching member (slide allowing holding member) [0179] 98 guide path [0180] 99 engaging portion [0181] 100 tablet moving mechanism [0182] 101 support structure [0183] 102 shaft support portion [0184] 103 support shaft [0185] 104 suspended member [0186] 105 elastic member (coil spring) [0187] 106 tubular member [0188] 107, 107′ weight portion [0189] 108 retaining portion [0190] 109A, 109B end portion