The disclosed concept relates to dispenser assemblies for solid units, e.g., tablets. More particularly, the disclosed concept relates to simple, two-piece moisture tight designs for rotatably actuated tablet dispensers.
Tablet dispensers are typically employed in the nutritional and candy industries in order to retain and dispense tablets. These dispensers may be designed for specific tablets, such as the PEZ brand dispenser for PEZ candy. Such conventional tablet dispensers require multiple components, which can add to the cost and complexity of manufacturing, assembly and filling. For example, conventional dispensers often require springs and separate interacting components, etc., to function. The multiple components and the operation of conventional tablet dispensers typically render them unfit to maintain moisture tightness. Conventional tablet dispensers are therefore unfit for housing and dispensing moisture sensitive products, such as solid pharmaceutical, nutriceutical or biological dosage units. Accordingly, there is a need for a simple tablet dispenser design. There is also a need for a simple tablet dispenser design that provides moisture tightness to the contents of the dispenser.
As one optional aspect of the disclosed concept, a dispenser assembly is provided for solid units. The dispenser assembly includes an outer sleeve having an end, a first sidewall extending from the end of the outer sleeve, and a second sidewall extending from the end of the outer sleeve. The first sidewall has a window proximate to the end of the outer sleeve. The second sidewall is located inboard of the first sidewall. The dispenser assembly further includes an inner housing inserted into the outer sleeve. The inner housing has an end with an opening therein leading to a compartment configured for storing the solid units. The inner housing further has a housing sealing surface. The dispenser assembly is configured to rotate between a SEALED position corresponding to the second sidewall forming a moisture tight seal with the housing sealing surface, and a DISPENSING position corresponding to the second sidewall being disengaged with the housing sealing surface in order to allow at least one of the solid units to be dispensed through the window.
As another optional aspect of the disclosed concept, a dispenser assembly is provided for solid units. The dispenser assembly consists of only the following two components: an outer sleeve and an inner housing. The outer sleeve includes an end, a first sidewall extending from the end of the outer sleeve, and a sleeve sealing surface located at or proximate to the end of the outer sleeve. The first sidewall has a window proximate to the end of the outer sleeve. The inner housing is inserted into the outer sleeve and includes an end with an opening therein leading to a compartment configured for storing the solid units, the inner housing further having a housing sealing surface. The dispenser assembly is configured to rotate between a SEALED position corresponding to the sleeve sealing surface forming a moisture tight seal with the housing sealing surface, and a DISPENSING position corresponding to the sleeve sealing surface being disengaged with the housing sealing surface in order to allow at least one of the solid units to be dispensed through the window.
As another optional aspect of the disclosed concept, a dispenser assembly is provided for solid units. The dispenser assembly includes an outer sleeve having an end and a first sidewall extending from the end of the outer sleeve, the first sidewall having a window proximate to the end of the outer sleeve; and an inner housing inserted into the outer sleeve, the inner housing including an end with an opening therein leading to a compartment configured for storing the solid units. The dispenser assembly is configured to rotate between a CLOSED position corresponding to the window being blocked by a portion of the inner housing, and an OPEN position corresponding to the window not being blocked by the inner housing in order to allow at least one of the solid units to be dispensed through the window.
Exemplary embodiments of the present disclosed concept are shown in the enclosed drawings as follows:
As employed herein, the term “component” shall mean a single unitary piece or element that does not require separate assembly steps. For example and without limitation, a molded piece is a “component.” Additionally, a piece that is manufactured by overmolding or co-molding one element onto another element is a “component.” Additionally, a piece or element that includes a body and an O-ring applied thereto through a multi-shot injection molding process or overmolding is a “component.” However, a piece that comprises several elements that must be separately assembled together is not a “component.”
As employed herein, the statement that two or more parts or components “engage” one another shall mean that the parts exert a force against one another either directly or through one or more intermediate parts or components.
As employed herein, the term “number” shall mean one or an integer greater than one.
Referring to
The functionality of dispenser assembly 2 will now be discussed in greater detail. It will be appreciated that dispenser assembly 2 is structured to rotate between a first position (
Referring to
In order to provide additional protection to moisture tight contents, e.g., solid units 4, inner housing 50 further includes an active agent such as, for example and without limitation, a desiccant entrained polymer portion 80. It will be appreciated that body portion 52 and desiccant entrained polymer portion 80 are preferably formed together as a single component (rather than separately assembled) by any suitable known manufacturing process (e.g., without limitation, overmolding, co-molding, two-shot injection molding). While the disclosed concept has been discussed thus far with dispenser assembly providing a sealed, moisture tight environment for solid units in the first position, it will be appreciated that alternative embodiments of the disclosed concept are contemplated wherein a moisture tight seal is not formed between the inner housing and the outer sleeve when the dispenser assembly is in the first position.
In order to move dispenser assembly 2 from the first position to the second position, tabs 72,74 need to be deflected radially inwardly by a user. That is, when dispenser assembly 2 rotates from the first position (e.g., without limitation, the SEALED position) toward the second position (e.g., without limitation, a DISPENSING position), each corresponding tab 72,74 moves radially inwardly with respect to outer sleeve 10. As such, when dispenser assembly 2 is in the first position, tabs 72,74 lock or maintain inner housing 50 within outer sleeve 10 via the engagement with grooved regions 24,26. When a user squeezes each of tabs 72,74 radially inwardly toward each other, inner housing 50 is free to rotate with respect to outer sleeve 10, thereby allowing dispenser assembly 2 to rotate to the second position. Accordingly, when dispenser assembly 2 rotates between the first position (e.g., without limitation, the SEALED position) and the second position (e.g., without limitation, the DISPENSING position), button portions 60,64 rotate within grooves 20,22, and outer sleeve 10 translates axially with respect to inner housing 50.
Furthermore, it will be appreciated that assembly of dispenser assembly 2 is relatively simple. More specifically, as stated above, tabs 59,63 of inner housing 50 are deflectable. Accordingly, a user simply needs to deflect tabs 59,63 of inner housing 50 radially inwardly, and insert inner housing 50 into outer sleeve 10 until button portions 60,64 are received by, or pop-out within, one of grooves 20,22. At that time, inner housing 50 is free to rotate with respect to outer sleeve 10 by deflecting tabs 72,74 into and out of grooved regions 24,26, as discussed above.
More specifically, dispenser assembly 2 further has an ejection mechanism formed between inner housing 50 and outer sleeve 10. When dispenser assembly 2 rotates from the first position (e.g., without limitation, the SEALED position) toward the second position (e.g., without limitation, the DISPENSING position), the ejection mechanism ejects one of solid units 4 (see, for example, the top most solid unit 4 in
As discussed above, in one embodiment, when dispenser assembly 2 is in the first position, sleeve sealing surface 18 of outer sleeve 10 forms a moisture tight seal with housing sealing surface 56 of inner housing 50. Accordingly, as shown in
Although the disclosed concept has been described in association with dispenser assemblies 2,102 including only respective outer sleeves 10,110 and respective inner housings 50,150, it is within the scope of the disclosed concept for a suitable alternative dispenser assembly to have components in addition to or as an alternative to respective outer sleeves 10,110 and respective inner housings 50,150. Additionally, although the disclosed concept has been described in association with sleeve sealing surface 18 being located proximate to end 12 of outer sleeve 10, it is within the scope of the disclosed concept for a suitable alternative outer sleeve to have a sleeve sealing surface located at an end of the outer sleeve. It is also within the scope of the disclosed concept for a suitable alternative dispenser assembly to employ an O-ring (e.g., made from a thermoplastic elastomer) bonded at an outer sleeve in order to form a moisture tight seal with an inner housing when the dispenser assembly is in the first position.
The present disclosed concept has been described above with the aid of functional building blocks illustrating the implementation of specified functions and relationships thereof. The boundaries of these functional building blocks have been arbitrarily defined herein for the convenience of the description. Alternate boundaries can be defined so long as the specified functions and relationships thereof are appropriately performed.
The foregoing description of the specific embodiments will so fully reveal the general nature of the disclosed concept that others can, by applying knowledge within the skill of the art, readily modify and/or adapt for various applications such specific embodiments, without undue experimentation, without departing from the general concept of the present disclosed concept. Therefore, such adaptations and modifications are intended to be within the meaning and range of equivalents of the disclosed embodiments, based on the teaching and guidance presented herein, it is to be understood that the phraseology or terminology herein is for the purpose of description and not of limitation, such that the terminology or phraseology of the present specification is to be interpreted by the skilled artisan in light of the teachings and guidance.
The breadth and scope of the present disclosed concept should not be limited by any of the above-described exemplary embodiments, but should be defined only in accordance with the following claims and their equivalents.
This application is a U.S. National Phase of International Application No. PCT/US2017/033912 filed May 23, 2017, which claims priority to U.S. Provisional Patent Application No. 62/340,413 filed May 23, 2016, which are incorporated herein by reference in their entirety.
Filing Document | Filing Date | Country | Kind |
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PCT/US2017/033912 | 5/23/2017 | WO | 00 |
Publishing Document | Publishing Date | Country | Kind |
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WO2017/205316 | 11/30/2017 | WO | A |
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