TABLET MEASURING APPARATUS AND TABLET MEASURING METHOD
20200278290 ยท 2020-09-03
Inventors
- Kiyoshi Imai (Tokyo, JP)
- Shigemi ISOBE (Tokyo, JP)
- Takuya NAKAMURA (Tokyo, JP)
- Hayato MISONO (Tokyo, JP)
- Masaki TAKEUCHI (Tokyo, JP)
- Shohei YAMADA (Tokyo, JP)
Cpc classification
International classification
Abstract
A tablet measuring apparatus has a stainless steel housing, which contains a measuring section having a conveyance disk and an optical sensor, a tablet feeding section for feeding a tablet to the measuring section, and a recovery section for returning the tablet having undergone a measurement process to a tablet coating apparatus. The optical sensor can be adjusted in its height position by a height adjusting mechanism so that the optical sensor and the tablet can be separated from each other at a predetermined distance. The tablet is sucked to and conveyed by the conveyance disk and, during the conveyance, physical properties of the tablet are measured in a non-contact manner by the optical sensor. Out-of-spec tablets are discharged from a defective product discharging section, while in-spec tablets are fed back to the tablet coating apparatus through the recovery section.
Claims
1. A tablet measuring apparatus for measuring the physical properties of a tablet ejected from a tablet coating apparatus, the tablet measuring apparatus comprising: a tablet receiving section to which a tablet is introduced; a measuring section for measuring physical properties of the tablet while conveying the tablet; a tablet feeding section for feeding the tablet introduced to the tablet receiving section to the measuring section; and a recovery section for returning the tablet whose physical properties have been measured to the tablet coating apparatus, wherein the measuring section has an optical sensor capable of measuring the physical properties of the tablet in a non-contact manner.
2. The tablet measuring apparatus according to claim 1, wherein the measuring section has a sensor positioning mechanism capable of adjusting the distance between the optical sensor and the tablet.
3. The tablet measuring apparatus according to claim 1, wherein the optical sensor is an NIR sensor.
4. The tablet measuring apparatus according to claim 1, wherein the measuring section includes a conveying unit configured to suck/support the tablet while conveying the tablet.
5. The tablet measuring apparatus according to claim 4, wherein the conveying unit is a conveyance disk, and the conveyance disk includes sucking portions formed at an end face thereof along the circumferential direction so as to suck the side face of the tablet, wherein the disk can suck/support the side face of the tablet in such a manner that the front and back faces of the tablet are fully exposed.
6. The tablet measuring apparatus according to claim 4, wherein the conveyance unit is a belt conveyor configured to convey the tablet being sucked thereto.
7. A tablet measuring method for measuring physical properties of a tablet ejected from a tablet coating apparatus, comprising: conveying the tablet and, at the same time, measuring the absorbance of the tablet using an optical sensor; and calculating physical properties of the tablet from calibration curves concerning the physical properties and the measured value of absorbance, and returning the tablet after the measurement to the tablet coating apparatus.
8. The tablet measuring method according to claim 7, wherein the calculation of the physical properties is carried out under the condition of the tablet being hermetically sealed off from the exterior environment.
9. The tablet measuring apparatus according to claim 2, wherein the optical sensor is an NIR sensor.
10. The tablet measuring apparatus according to claim 2, wherein the measuring section includes a conveying unit configured to suck/support the tablet while conveying the tablet.
11. The tablet measuring apparatus according to claim 3, wherein the measuring section includes a conveying unit configured to suck/support the tablet while conveying the tablet.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0016]
[0017]
[0018]
MODE FOR CARRYING OUT THE INVENTION
[0019] Hereinafter, an embodiment of the present invention will be described. The embodiment described below aims to provide a tablet measuring apparatus and a tablet measuring method that can sequentially take accurate measurements of physical properties of individual tablets using an optical sensor.
[0020] As shown in
[0021] On the housing 21, a computer (PC) 4 is disposed as control/measurement equipment. The computer 4 controls over the operation of the tablet measuring apparatus 10, fetches physical property data of each tablet 3 in real time from the optical sensor 2, and displays the fetched data as needed. Casters 22 are attached to the lower surface of the housing 21, so that the tablet measuring apparatus 10 can be moved according to the needs. A tablet charging port 23, as a tablet receiving section 20, is opened in an upper surface 21a of the housing 21. Any tablets 3 ejected from the coating apparatus are introduced into the tablet charging port 23. A tablet recovery port 24 of the recovery section 50 is opened in a side surface 21b of the housing 21.
[0022] The tablet feeding section 40 has a rotary feeder 41. Into the rotary feeder 41, the tablets 3 ejected from the not-shown coating apparatus are supplied through the tablet charging port 23. A hopper may be provided between the tablet charging port 23 and the rotary feeder 41 to retain the tablets 3 therein and feed them to the rotary feeder 41. The tablets 3 fed to the rotary feeder 41 are passed over to the conveyance disk 1 of the measuring section 30. The conveyance disk 1 sucks the tablets 3 onto an end face la thereof and conveys them. Each tablet 3 being conveyed is measured by the optical sensor 2 in terms of the film-coating thickness and physical properties thereof including the contents of active ingredients. The measured data is sent to the computer 4. The measured tablet 3 is collected at the recovery section 50 arranged in the position following the measuring section 30 and fed back to the not-shown coating apparatus through the tablet recovery port 24.
[0023] In the tablet measuring apparatus 10, as illustrated in
[0024] The end face la of the conveyance disk 1 has suction holes (sucking portions) 31 connected with a suction device (not shown) such as a vacuum pump. A side face 3c of the tablet 3 is sucked to the suction hole 31 and hence the tablet 3 is held on to the end face la of the conveyance disk 1. The tablet 3 is sucked to the end face la in a horizontal posture (that is, a state of a front face 3a and a back face 3b of the tablet 3 facing upward and downward in a perpendicular direction, respectively), and is conveyed in the circumferential direction without changing the posture, as rotation of the conveyance disk 1.
[0025] Due to the rotation of the conveyance disk 1, the tablet 3 sucked to the conveyance disk 1 is conveyed to the position of optical sensor 2 while keeping the horizontal posture, where physical properties of the tablet 3 such as the film-coating thickness and contents of active ingredients are measured. The optical sensor 2 is a NIR sensor that uses near-infrared rays as inspection light and takes the measurements of physical properties of the tablet 3 non-destructively in real time. The optical sensor 2 irradiates a near-infrared ray in a prescribed wavelength region (for example, about 800-3000 nm) and receives a light reflected from the tablet 3. The data of the reflective light is sent to the computer 4, where chemical properties of the tablet 3 such as the absorbance and transmittance of light are calculated. In the computer 4, calibration curves concerning physical properties of the tablet 3, including the absorbance, is stored in advance. The computer 4 calculates physical properties of the tablet 3 such as the film-coating thickness thereof, from the calibration curves and the measured values of e.g., absorbance. Alternatively, it is also possible that the optical sensor measures the surface of a tablet which is yet to be coated (uncoated tablet) and the data of reflected light on the tablet surface is stored in advance in the computer. Then, the data thus stored is compared with the data of reflected light measured by the optical sensor on the surface of the tablet having gone through the coating process, and through this comparison, the film-coating thickness of the tablet 3 can be predicted.
[0026] The tablet measuring apparatus 10 is provided with a height adjusting mechanism (sensor positioning mechanism) 32 which makes the height level of the optical sensor 2 adjustable in accordance with the thickness of the tablet 3 so that physical properties of various types of tablets 3 can be precisely measured. The height adjusting mechanism 32 causes the optical sensor 2 to move along X-direction (the direction perpendicular to the surfaces of the tablet) as indicated in
[0027] In the tablet measuring apparatus 10, the tablet 3 is fully exposed to the optical sensor 2 with the front face 3a or back face 3b thereof positioned vis--vis the optical sensor 2. The apparatus 10, therefore, can thoroughly measure the entire surface of the tablet 3, allowing every corner of the tablet region to be measurable without fail. Therefore, in this respect as well, accurate and highly reliable measured data concerning the tablet 3 can be obtained. While
[0028] The tablet 3 whose physical properties have been measured by the optical sensor 2 is sent to the recovery section 50 arranged in a position following the measuring section 30. In a position preceding the recovery section 50, a defective product discharging section 60 is provided so as to eliminate the tablets 3 which are determined to be off-spec products (defective products) as a result of physical property measurement. In the defective product discharging section 60, an excluder 61 is provided so as to remove defective products from the conveyance disk 1. The excluder 61 is formed like a gear having a plurality of engaging projections 62 radially extending on the circumference thereof. Once a tablet 3 determined to be an out-of-spec product in terms of film-coating thickness or the like arrives at the defective product discharging section 60, the excluder 61 starts rotating, causing the tablet 3 to fall off the conveyance disk 1 by the engaging projection 62. The tablet 3 that fell off the conveyance disk 1 is excluded from the production line, while the tablet 3 which is non-defective is sent to the recovery section 50.
[0029] The tablet 3 determined to be within the scope of a standard (non-defective product) is conveyed to a tablet dislodging part 34, where the tablet 3 is released from the sucked state. Namely, the sucking action of the suction hole 31 is stopped, and hence the tablet 3 breaks away from the end face la of the conveyance disk 1. The tablet 3 separated from the conveyance disk 1 is held within a recovery pipe 51 of the recovery section 50. The recovery section 50 has a main body 52 connected with a not-shown ejector. The upstream side of the main body 52 is linked to the recovery pipe 51 and the downstream side thereof to the tablet recovery port 24. The tablet 3 at the tablet dislodging part 34 is attracted to and sucked into the recovery pipe 51 and runs through the main body 52 to reach the tablet recovery port 24. The tablet 3 having been brought to the tablet recovery port 24 is then returned to the coating apparatus by way of a not-shown conduit.
[0030] As described above, the tablet measuring apparatus 10 of the present invention uses the conveyance disk 1 to suck the tablets 3, arranging the respective tablets 3 in a coordinated manner to send them to the measuring section 30. At the measuring section 30, the optical sensor 2 measures physical properties of each tablet 3 in a non-contact manner. At this time, the height adjusting mechanism 32 adjusts the position of the optical sensor 2 to the optimum height level that meets the size of the tablet, before the execution of the measurement. Accordingly, in the tablet measuring apparatus 10, the entire surface of the tablet 3 can be measured at an equal distance constantly, which enables to make a reliable physical property measurement. In consequence, it is possible to sequentially and accurately measure the physical properties of each tablet, grasping the accurate film-coating thickness and the like of the tablet in real time, and hence improve the product quality.
[0031] Further, with respect to the tablets 3 measured in terms of physical properties, any defective products are eliminated at the defective product discharging section 60 and any non-defective products are returned from the recovery section 50 to the coating apparatus. Thus, the defective products are removed without fail, while the non-defective products are promptly returned to the processing apparatus. The tablet measuring apparatus 10 of the present invention is designed to perform speedy inspections of tablets and, therefore, it is possible to subject all of the tablets to inspection as well as picking up some of the tablets in process as samples for physical property measurement. Hence, the product quality can more reliably be improved without increasing the process time and the number of processes.
[0032] The present invention is by no means limited to the above embodiment and can be modified in various ways without departing from the scope of the invention.
[0033] In the above embodiment, for example, the processing target of the tablet measuring apparatus 10 is a circular tablet; however, the tablet measuring apparatus of the present invention can process various types of tablets such as oblong tablets, caplets and polygon-shaped tablets. Further, while, in the above embodiment, the non-vibratory rotary feeder 41 is arranged in the tablet feeding section 40, a vibratory rotary feeder can also be applied. Further, the height adjusting mechanism 32 can take any alternative configuration other than the configuration of motor and ball screw; for instance, it is possible to adopt a pneumatic actuator or hydraulic actuator as the drive source, and a rack-and-pinion system as the power transmission mechanism. Note that not only the above-described rotary motor but also a linear motor is applicable as a motor. Moreover, for the optical sensor to be employed in the above-described 100% inspection, Raman scattered light or THz (terahertz) waves can be used in place of NIR.
[0034] Additionally, although the conveyance disk 1 is used to suck/convey the tablets 3 in the measuring section 30, the conveyance unit for the tablets is not limited to this, and may be a conveyance unit using belt-conveyor system with suction holes which function to suck tablets during conveyance. Also, as illustrated in
INDUSTRIAL APPLICABILITY
[0035] The present invention is applicable not only to pharmaceutical tablets, but also to food products such as confectionary having a tablet shape.
REFERENCE SIGNS LIST
[0036] 1: Conveyance disk (conveyance unit) [0037] 1a: End face [0038] 2: Optical sensor [0039] 3: Tablet [0040] 3a: Front face [0041] 3b: Back face [0042] 3c: Side face [0043] 4: Computer [0044] 10: Tablet measuring apparatus [0045] 20: Tablet receiving section [0046] 21: Housing [0047] 21a: Upper face [0048] 21b: Side face [0049] 22: Caster [0050] 23: Tablet charging port [0051] 24: Tablet recovery port [0052] 30: Measuring section [0053] 31: Suction hole [0054] 32: Height adjusting mechanism (sensor positioning mechanism) [0055] 33: Connection cable [0056] 34: Tablet dislodging part [0057] 40: Tablet feeding section [0058] 41: Rotary feeder [0059] 42: Casing [0060] 43: Rotary disk [0061] 44: Annular rotary plate [0062] 45: Tablet acquiring part [0063] 50: Recovery section [0064] 51: Recovery pipe [0065] 52: Main body [0066] 60: Defective product discharging section [0067] 61: Excluder [0068] 62: Engaging projection [0069] 63: Defective product discharge port [0070] 71: Tablet feeding disk