CONTINUOUS DECONTAMINATION DEVICE
20230211026 · 2023-07-06
Inventors
- Koji Kawasaki (Nagoya-shi, Aichi, JP)
- Daisuke Kakuda (Nagoya-shi, Aichi, JP)
- Yoshitaka OGATA (Nagoya-shi, Aichi, JP)
Cpc classification
A61J1/00
HUMAN NECESSITIES
B65B55/04
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A continuous decontamination device capable of achieving short-term operations to provide uniform decontamination levels at each part by employing decontamination agents such as hydrogen peroxide without using expensive electron accelerators and of treating articles to be decontaminated in large quantities.
The device includes a device body composed of a decontamination region and an aeration region, a conveyance means configured to convey an article, a mist supply means, and an aeration means. The conveyance means changes a part for supporting the article inside the decontamination region when the conveyance means supports the article carried from an inlet and conveys the article to an outlet, thereby decontaminating all external surfaces of the article. The mist supply means includes an ultrasonic atomizer configured to convert a decontamination agent into a decontamination agent mist to concentrate the decontamination agent mist on external surfaces of the article conveyed inside the decontamination region. The aeration means removes with clean gas a residue of the decontamination agent mist on the external surfaces of the article.
Claims
1. A continuous decontamination device configured to be connected to a sterile working chamber for decontaminating external surfaces of an article with a decontamination agent mist and configured to convey the article to an inside of the sterile working chamber, the continuous decontamination device comprising: a device body including a decontamination region and an aeration region; a conveyance means configured to convey the article; a mist supply means; and an aeration means, wherein: the device body includes an inlet dimensioned to carry the article before decontamination in the decontamination region and an outlet dimensioned to carry a decontaminated article out of the aeration region, the conveyance means is configured to decontaminate all external surfaces of the article by changing a part for supporting the article inside the decontamination region when the conveyance means supports the article carried from the inlet and conveys the article to the outlet through an inside of the decontamination region and the aeration region, the mist supply means includes an ultrasonic atomizer configured to convert a decontamination agent into the decontamination agent mist and to supply said mist to the inside of the decontamination region to concentrate the decontamination agent mist on external surfaces of the article conveyed through the inside of the decontamination region by the conveyance means, and the aeration means is configured to remove with clean gas the decontamination agent mist that is residual on the external surfaces of the article conveyed by the conveyance means from the decontamination region.
2. The continuous decontamination device according to claim 1, wherein: the conveyance means includes an article conveyance device configured to convey the article inside the decontamination region and the aeration region and a support changing device configured to change a part for supporting the article, wherein: the article conveyance device, in operation, continuously conveys a plurality of articles carried from the inlet in either an elevated or a lowered direction inside the decontamination region and the aeration region to carry the articles out of the outlet, and the support changing device, in operation, removes the plurality of articles from the article conveyance device inside the decontamination region and supports the articles on the article conveyance device again.
3. The continuous decontamination device according to claim 1, wherein: the conveyance means includes an article conveyance device configured to convey the article inside the decontamination region and the aeration region and a support changing device configured to change for changing a part for supporting the article, wherein: the article conveyance device, in operation, continuously conveys a plurality of articles carried from the inlet in the horizontal direction inside the decontamination region and the aeration region to carry the articles out of the outlet, and the support changing device, in operation, removes the plurality of articles from the article conveyance device inside the decontamination region and supports the articles on the article conveyance device again.
4. The continuous decontamination device according to claim 1, configured to decontaminate an article that is dimensioned to accommodate a medial appliance therein.
5. The continuous decontamination device according to claim 2, configured to decontaminate an article that is dimensioned to accommodate a medial appliance therein.
6. The continuous decontamination device according to claim 3, configured to decontaminate an article that is dimensioned to accommodate a medial appliance therein.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0041]
[0042]
[0043]
[0044]
[0045]
[0046]
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[0048]
[0049]
DETAILED DESCRIPTION
[0050] In the present invention, the term “mist” is broadly interpreted as the state of a liquid droplet of a decontamination agent refined and floating in the air, the state of a gas and a liquid agent of a decontamination agent in mixture, the state of the decontamination agent to repeat the change in phase between condensation and evaporation of a gas and a droplet, and the like. In terms of particle size as well, the mist is also broadly interpreted to include mists (the size may be defined as 10 μm or less), fogs (the size may be defined as 5 μm or less), and liquid droplets, which can be subclassified. In the present invention, an ultrasonic atomizer converts a mist, a fog or a liquid droplet into an equalized ultrafine particle to provide high-level decontamination effects even in a short period of time.
[0051] A continuous decontamination device according to the present invention will be described with reference to each embodiment. The present invention is not restricted to each of the following embodiments. In the continuous decontamination device according to each of the following embodiments, a decontamination agent used is hydrogen peroxide. First, an article to be decontaminated by hydrogen peroxide will be described. In each embodiment, such an article to be decontaminated is an accommodated body (package) for accommodating a medical appliance such as a syringe and a vial. In this invention, the article to be decontaminated is not restricted to such an accommodated body (package), and it may be used so long as it is continuously decontaminated and conveyed to a sterile working chamber.
First Embodiment
[0052]
[0053] Herein, the continuous decontamination device of this first embodiment will be described.
[0054] In
[0055] In this first embodiment, a portion of the decontamination region body 11a of the device body 10a and a portion of the aeration region body 12a are allowed to change the device volume (region's length). Specifically, in
[0056] Thus, the reason for a larger device volume of the decontamination region body 11a than the aeration region body 12a is as follows. In the present invention, while fine hydrogen peroxide solution mists are efficiently utilized to assuredly achieve uniform decontamination levels, the use of hydrogen peroxide solution mists in small amounts improves the aeration efficiency. Thus, despite the resulting larger device volume of the decontamination region body 11a than the aeration region body 12a, an article to be decontaminated can be treated in large quantities even if the total volume is equivalent to or less than those of conventional devices.
[0057] A conveyance device 30 for conveying a package P is disposed inside the device body 10a. The conveyance device 30 is configured by an article conveyance device 31 and a support changing device 32. The article conveyance device 31 includes a rolling conveyor 31a for conveying a package P in an elevated direction (from a bottom portion to a top portion) from the decontamination region first portion 11a(1) to the decontamination region second portion 11a(2) and a rolling conveyor 31b for conveying the package P in a lowered direction (from the top portion to the bottom portion) inside the aeration region body 12a from the decontamination region second portion 11a(2) through the decontamination region third portion 11a(3).
[0058] Furthermore, the article conveyance device 31 includes a roller conveyor 31c for conveying a package P from the inlet 13 of the introduction region 11b to the bottom portion of the decontamination region first portion 11a (1) and a roller conveyor 31d for conveying the package P from the bottom portion of the aeration region body 12a to the outlet 14 of the delivery region 12b. Meanwhile, the support changing device 32 is provided at the decontamination region second portion 11a (2) to remove the package P from the top portion of the rolling conveyor 31a and support the package P at the top portion of the rolling conveyor 31b. In the present invention, the operational mechanism of the support changing device 32 is not particularly restricted. For example, such an operational mechanism may be a pusher for pushing a package P or a gripper for gripping the package P for replacement. In this first embodiment, a pusher 32 is employed. The operation of the pusher 32 will be described later.
[0059] The type of a conveyance device for conveying a package P is not particularly restricted. Such a conveyance device may be a combination of a roller conveyor for conveying an article on which a bottom wall surface thereof is placed, a conveyor device such as a mesh conveyor, and a support device such as a timing belt for conveying by supporting a side surface portion, a timing lift, a rolling conveyor and a shuttle conveyor.
[0060] Herein, the structure and operation of a rolling conveyor employed in this first embodiment will be described. The rolling conveyors 31a, 31b have the same structure, and here the structure of the rolling conveyor 31a will be described. In
[0061] Each of the carriers is configured by two drive shafts 33a and a plurality of support bars 34a arranged over these drive shafts (see
[0062] In rotation, the plurality of support bars 34a conveys the package P in the elevated direction (from the bottom portion to the top portion) inside the decontamination region first portion 11a (1) by supporting the package P on both side surfaces. The rolling conveyor 31b having the same structure conveys the package P in the lowered direction (from the top portion to the bottom portion) inside the decontamination region third portion 11a (3) and the aeration region body 12a by allowing the drive mechanism to rotate the package P in the reverse direction.
[0063] Subsequently, the state where the support bar 34a supports the package P on both side surfaces will be described.
[0064] In such a configuration, the inside of the continuous decontamination device 10 and decontamination operations will be described. In
[0065] Subsequently, the packages P are carried to the inside of the decontamination region first portion 11a (1) and supported by the rolling conveyor 31a. Herein, the roller conveyor 31c and the rolling conveyor 31a are alternately operated in an intermittent manner. Specifically, the roller conveyor 31c is operated with the rolling conveyor 31a stopped to convey and stop the packages P to the bottom portion of the rolling conveyor 31a. Subsequently, the rolling conveyor 31a is operated with the roller conveyor 31c stopped, and the packages P are conveyed by one step in the elevated direction inside the decontamination region first portion 11a (1) and stopped while the first shoulder portion P3a is supported on both side surfaces by the support bar 34a of the rolling conveyor 31a. Thus, the roller conveyor 31c and the rolling conveyor 31a are alternately operated in an intermittent manner to convey the packages P from the bottom portion to the top portion of the decontamination region first portion 11a (1).
[0066] A plurality of mist supply devices 40 (6 devices in
[0067] Accordingly, the packages P decontaminated inside the decontamination region body 11a are carried to the inside of the decontamination region second portion 11a (2) through the top portion of the decontamination region first portion 11a (1). Herein, the pusher 32 is operated to remove the packages P from the top portion of the rolling conveyor 31a and support the packages P at the top portion of the rolling conveyor 31b.
[0068] Herein, the operation of the pusher 32 will be described. In
[0069]
[0070] Herein, the reason for changing a part for allowing the support bar to support the packages P from the first shoulder portion P3a to the second shoulder portion P3b will be described. The package P in contact with the rolling conveyor 31a has the first shoulder portion P3a that is in contact with the support bar 34a. The resulting insufficient contact with a hydrogen peroxide solution mist during a decontamination process achieves no uniform condensation of a hydrogen peroxide thin film, thereby reducing decontamination effects. Then, all external surfaces of the packages P can completely be decontaminated by changing the support portion from the first shoulder portion P3a to the second shoulder portion P3b.
[0071] Subsequently, the packages P supported at the top portion of the rolling conveyor 31b are conveyed in the lowered direction (from the top portion to the bottom portion) inside the decontamination region third portion 11a (3) as the rolling conveyor 31b is operated in an intermittent manner. In this state, a uniform hydrogen peroxide thin film is condensed on the external surfaces of the packages P to be decontaminated. Accordingly, the packages P are uniformly decontaminated entirely on external surfaces thereof by staying for a predetermined period inside the decontamination region body 11a while being conveyed by the rolling conveyors 31a, 31b.
[0072] Subsequently, the packages P are conveyed in the lowered direction while they are supported by the rolling conveyor 31b, and carried to the inside of the aeration region body 12a. The packages P carried to the inside of the aeration region body 12a are conveyed in the lowered direction inside the aeration region body 12a for aeration. Specifically, an air supply device 50 of the aeration device supplies clean air to the inside of the aeration region body 12a. In addition, the air inside the aeration region body 12a (incl. evaporated hydrogen peroxide and hydrogen peroxide solution mist) is forcibly discharged by an air exhaust device (not shown) of the aeration device. Also, the hydrogen peroxide in the forcibly discharged air is resolved into oxygen and water by a hydrogen peroxide decomposition unit 51.
[0073] The air supply and exhaust amount of clean air and aeration time in the aeration operation are predetermined conditions. Accordingly, the packages P are conveyed inside the aeration region body 12a for aeration to remove the hydrogen peroxide thin film condensed on the surface and then completely decontaminated.
[0074] Subsequently, the packages P are placed from the rolling conveyor 31b to the roller conveyor 31d at the bottom portion of the aeration region body 12a. Herein, the rolling conveyor 31b and the roller conveyor 31d are alternately operated in an intermittent manner. Specifically, the rolling conveyor 31b is operated with the roller conveyor 31d stopped to convey and stop the packages P to the bottom portion of the roller conveyor 31b. Subsequently, the roller conveyor 31d is operated with the rolling conveyor 31b stopped, the packages P are removed from the support bar 34b of the rolling conveyor 31b and placed on the roller conveyor 31d, and carried to the inside of the isolator 20 through the outlet 14 of the delivery region 12b.
[0075] Accordingly, in the packages P carried to the inside of the isolator 20 after decontamination, the upper surface seal P2 is peeled open from the package P in the isolator 20 and the packages are filled with syringes or vials sterilized therein.
[0076] Subsequently, the mist supply device 40 will be described. In this first embodiment, the mist supply device 40 used is an ultrasonic atomizer 40. The ultrasonic atomizer 40 is disposed on a side wall surface of the decontamination region body 11a to discharge from the side surface a hydrogen peroxide solution mist 41 toward the packages P conveyed by the rolling conveyor 31a (see
[0077] The structure of the ultrasonic atomizer 40 is not particularly restricted. For example, an immersion-type ultrasonic atomizer for atomizing a hydrogen peroxide solution with a piezoelectric vibrator placed therein can be employed. The ultrasonic atomizer may be a disk mesh type atomizer including a piezoelectric vibrator and a perforated vibration plate provided with a plurality of micropores for atomizing a hydrogen peroxide solution by vibration of the piezoelectric vibrator, the micropores passing through the perforated vibration plate between the front surface and the back surface thereof. In this first embodiment, a disk mesh type atomizer employed supplies a hydrogen peroxide solution from one surface of a perforated vibration plate and supplies a hydrogen peroxide solution mist discharged from the other surface to the inside of the decontamination region body 11a.
[0078] The hydrogen peroxide solution mist generated by the ultrasonic atomizer 40 is converted into a fine particle containing mists, fogs and fine liquid droplets as described above and uniformly floats inside the decontamination region body 11a. Accordingly, a uniform and thin hydrogen peroxide solution film that is condensed entirely on the external surfaces of the packages P that move up and down inside the decontamination region body 11a is formed. The thin hydrogen peroxide solution film is subjected to repeated phase change of condensation and evaporation between a hydrogen peroxide solution and a hydrogen peroxide gas to provide advanced decontamination effects of the packages P.
[0079] Also, by repeated re-evaporation and condensation of the uniformly and thinly formed hydrogen peroxide solution film condensed entirely on the external surfaces of the packages P, the concentration of a hydrogen peroxide solution in a hydrogen peroxide solution mist can be increased and efficient decontamination can be performed with a small amount of hydrogen peroxide solution. Such an efficient decontamination with a small amount of hydrogen peroxide solution can improve the efficiency of aeration for the hydrogen peroxide solution film that is residual on the surface of the packages P and reduce the duration of decontamination operations.
[0080] Thus, the above first embodiment can provide a continuous decontamination device capable of achieving short-term operations to provide uniform decontamination levels at each part by employing decontamination agents such as hydrogen peroxide that have recently been widely used without using expensive electron accelerators and of treating articles to be decontaminated in large quantities.
Second Embodiment
[0081] This second embodiment relates to a horizontal continuous decontamination device while the above first embodiment relates to a vertical continuous decontamination device. An accommodated body (package) to be decontaminated is the same package P as in the above first embodiment.
[0082] The continuous decontamination device of this second embodiment will be described.
[0083] In
[0084] A conveyance device 130 for conveying a package P is disposed inside the device body 110a. The conveyance device 130 is configured by an article conveyance device 131 and a support changing device 132. The article conveyance device 131 includes a hanging conveyor 131a for conveying a package P in the horizontal direction inside the decontamination region body 111a, a roller conveyor 131b for conveying the package P in the horizontal direction from the inlet 113 of the introduction region 111b to an introduction portion of the decontamination region body 111a, and a roller conveyor 131c for conveying the package P in the horizontal direction from the inside of the aeration region 112 to the outlet 114. Meanwhile, the support changing device 132, which is provided in a middle area of the decontamination region body 111a, removes the package P from the hanging conveyor 131a and changes the support portion to allow the hanging conveyor 131a to support the package again.
[0085] The type of a conveyance device for conveying a package P is not particularly restricted. Such a conveyance device may be a combination of a roller conveyor for conveying an article on which a bottom wall surface thereof is placed, a conveyor device such as a mesh conveyor, and a support device such as a timing belt for conveying by supporting a side surface portion, a timing lift, a rolling conveyor and a shuttle conveyor.
[0086] Herein, the structure and operation of a hanging conveyor employed in this second embodiment will be described. In
[0087] Each of the carriers is configured by two drive shafts 133a and a plurality of support bars 134a arranged under these drive shafts (see
[0088] Subsequently, the state where the support bar 134a supports the package P on both side surfaces will be described.
[0089] In such a configuration, the inside of the continuous decontamination device 110 and decontamination operations will be described. In
[0090] Subsequently, the packages P are carried to the inside of the decontamination region body 111a and the support of the packages P is changed from the roller conveyor 131b to the hanging conveyor 131a. The support changing operation from the roller conveyor 131b to the hanging conveyor 131a is alternately performed in an intermittent manner by the roller conveyor 131b and the hanging conveyor 131a as in the above first embodiment. The packages P supported by the hanging conveyor 131a are conveyed in the horizontal direction inside the decontamination region body 111a. A plurality of mist supply devices 140 (3 devices in
[0091] As a result, the hydrogen peroxide solution mist 141 is uniformly filled inside the decontamination region body 111a to continuously decontaminate the plurality of packages P being conveyed. The mist supply device 140 will be described later. Accordingly, the packages P are uniformly decontaminated entirely on external surfaces thereof by staying for a predetermined period inside the decontamination region body 111a while being conveyed by the hanging conveyor 131a.
[0092] Accordingly, the support of the packages P decontaminated inside the decontamination region body 111a is changed by the hanging conveyor 131a as the support changing device 132 is operated in the middle area of the decontamination region body 111a. Herein, the structure of the support changing device 132 is not restricted at all. In this second embodiment, the same pusher 132 as in the above first embodiment is used.
[0093]
[0094] Subsequently, the packages P that have reached an end portion of the decontamination region body 111a are carried to the inside of the aeration region body 112a and the support is changed from the hanging conveyor 131a to the roller conveyor 131c. In this state, a hydrogen peroxide thin film is still condensed on external surfaces of the packages P conveyed to the introduction portion of the aeration region 112 by the hanging conveyor 131a.
[0095] Subsequently, the packages P carried to the inside of the aeration region 112 are conveyed in the horizontal direction inside the aeration region 112 for aeration. Specifically, an air supply device 150 of the aeration device supplies clean air to the inside of the aeration region 112. In addition, the air inside the aeration region 112 (incl. evaporated hydrogen peroxide and hydrogen peroxide solution mist) is forcibly discharged by an air exhaust device (not shown) of the aeration device. Also, the hydrogen peroxide in the forcibly discharged air is resolved into oxygen and water by a hydrogen peroxide decomposition unit 151.
[0096] The air supply and exhaust amount of clean air and aeration time in the aeration operation are predetermined conditions. Accordingly, the packages P are conveyed inside the aeration region 112 for aeration to remove the hydrogen peroxide thin film condensed on the surface and then completely decontaminated.
[0097] Subsequently, the packages P are carried to the inside of the isolator 120 through the outlet 114 of the aeration region 112, while being placed on the roller conveyor 131c.
[0098] Accordingly, in the packages P carried to the inside of the isolator 120 after decontamination, the upper surface seal P2 is peeled open from the package P in the isolator 120 and the packages are filled with syringes or vials sterilized therein.
[0099] Subsequently, the mist supply device 140 will be described. In this second embodiment, the mist supply device 140 used is the same ultrasonic atomizer 140 as in the above first embodiment. The ultrasonic atomizer 140 is disposed on an upper wall surface of the decontamination region body 111a to discharge from the upper surface the hydrogen peroxide solution mist 141 toward the packages P conveyed by the hanging conveyor 131a (see
[0100] The structure of the ultrasonic atomizer 140 is not particularly restricted. In this second embodiment, the same disk mesh type atomizer as in the above first embodiment is employed.
[0101] The hydrogen peroxide solution mist generated by the ultrasonic atomizer 140 is converted into a fine particle containing mists, fogs and fine liquid droplets as described above and uniformly floats inside the decontamination region body 111a. Accordingly, a uniform and thin hydrogen peroxide solution film that is condensed entirely on the external surfaces of the packages P that move horizontally inside the decontamination region body 111a is formed. The thin hydrogen peroxide solution film is subjected to repeated phase change of condensation and evaporation between a hydrogen peroxide solution and a hydrogen peroxide gas to provide advanced decontamination effects of the packages P.
[0102] Also, by repeated re-evaporation and condensation of the uniformly and thinly formed hydrogen peroxide solution film condensed entirely on the external surfaces of the packages P, the concentration of a hydrogen peroxide solution in a hydrogen peroxide solution mist can be increased and efficient decontamination can be performed with a small amount of hydrogen peroxide solution. Such an efficient decontamination with a small amount of hydrogen peroxide solution can improve the efficiency of aeration for the hydrogen peroxide solution film that is residual on the surface of the package P and reduce the duration of decontamination operations.
[0103] Thus, the above second embodiment can provide a continuous decontamination device capable of achieving short-term operations to provide uniform decontamination levels at each part by employing decontamination agents such as hydrogen peroxide that have recently been widely used without using expensive electron accelerators and of treating articles to be decontaminated in large quantities.
[0104] The present invention is achieved by not only each of the above embodiments, but also by the following various alternatives.
[0105] (1) In each of the above embodiments, a package P is supported by a support bar on a rolling conveyor or a hanging conveyor. However, the configuration is not restricted to that, and a package P may be supported by a support catch in place of a support bar. The state is shown in
[0106] (2) In each of the above embodiments, the mechanism for changing the support of the package P used is a pusher. However, the configuration is not restricted to that, and a gripper may be employed to change the support to grip the package P with a gripper. When a gripper is employed, the support can be changed by rotating the package P by 90°.
[0107] (3) In each of the above embodiments, the support of the package P is changed by a pusher in the middle of a decontamination region body. However, the configuration is not restricted to that, and a mechanism of alternately changing the support by one step by a rolling conveyor that rises as it is operated in an intermittent manner may be employed. In addition, a mechanism of alternately changing the support by one step by a hanging conveyor may be employed.
[0108] (4) In each of the above embodiments, the support of the package P is changed at between a first shoulder portion and a second shoulder portion on the same side surface of the package P. However, the configuration is not restricted to that, and the support of the package P may be changed at between a first shoulder portion or a second shoulder portion on other surface of the package P.
[0109] (5) In each of the above embodiments, the support of the package P is changed at between a first shoulder portion and a second shoulder portion on the same side surface of the package P. However, the configuration is not restricted to that, and the support of the package P may be changed at between a shoulder portion and a bottom surface portion of the package P.
LIST OF REFERENCE NUMERALS
[0110] 10, 110 . . . Continuous decontamination device, 10a, [0111] 110a . . . Device body, 11, 111 . . . Decontamination region, 11a (11a [0112] (1), 11a (2), 11a (3)), 111a . . . Decontamination region body, [0113] 11b, 111b . . . Introduction region, 12, 112 . . . Aeration region, [0114] 12a, 112a . . . Aeration region body, 12b . . . Delivery region, [0115] 13, 113 . . . Inlet, 14, 114 . . . Outlet, [0116] 20, 120 . . . Isolator, 21, 121 . . . Side wall, 30, 130 . . . Conveyance device, [0117] 31a, 31b . . . Rolling conveyor, 131a . . . Hanging conveyor, [0118] 31c, 31d, 131b, 131c . . . Roller conveyor, [0119] 32, 132 . . . Support changing device (Pusher), 32a . . . Cylinder, [0120] 33a, 33b, 133a, 133b . . . Drive shaft, [0121] 34a, 34b, 134a, 134b, 234a . . . Support bar, [0122] 234c . . . Support catch, [0123] 40, 140 . . . Mist discharging device, 41, 141 . . . Hydrogen peroxide solution mist, [0124] 42, 142 . . . Hydrogen peroxide solution tank, 50, 150 . . . Air supply device, [0125] 51, 151 . . . Hydrogen peroxide decomposition unit, P . . . Package, [0126] P1 . . . tab, [0127] P2 . . . Upper surface seal, P3 . . . Side surface shoulder portion, [0128] P3a . . . First shoulder portion, P3b . . . Second shoulder portion.