Apparatus and method for sealing with a liquid sealant
10131474 ยท 2018-11-20
Assignee
Inventors
Cpc classification
B29C2949/3032
PERFORMING OPERATIONS; TRANSPORTING
B29C2949/072
PERFORMING OPERATIONS; TRANSPORTING
B29K2067/00
PERFORMING OPERATIONS; TRANSPORTING
B29C2949/3024
PERFORMING OPERATIONS; TRANSPORTING
B65D51/002
PERFORMING OPERATIONS; TRANSPORTING
B29C2949/3034
PERFORMING OPERATIONS; TRANSPORTING
B05B11/047
PERFORMING OPERATIONS; TRANSPORTING
F16K15/147
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B29C2949/3026
PERFORMING OPERATIONS; TRANSPORTING
Y10T137/7837
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
B65D83/0061
PERFORMING OPERATIONS; TRANSPORTING
B29B11/14
PERFORMING OPERATIONS; TRANSPORTING
B29C2049/023
PERFORMING OPERATIONS; TRANSPORTING
B29C49/071
PERFORMING OPERATIONS; TRANSPORTING
B29C2949/0778
PERFORMING OPERATIONS; TRANSPORTING
B65D47/2081
PERFORMING OPERATIONS; TRANSPORTING
International classification
B65D47/20
PERFORMING OPERATIONS; TRANSPORTING
B05B11/04
PERFORMING OPERATIONS; TRANSPORTING
B65D83/00
PERFORMING OPERATIONS; TRANSPORTING
F16K15/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B65D51/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A device includes a first part having a co-molded first support, valve cover and elastic actuator, and a second part having an injection molded second support, valve seat, and variable-volume storage chamber pre-form. The pre-form is blow molded into a flexible pouch defining the variable-volume storage chamber. The one-way valve includes a semi-annular, curvilinear, relatively rigid valve seat defining axially-extending, opposing first marginal portions, and an axially-extending first mid-portion angularly extending between the opposing first marginal portions. A flexible valve member is superimposed on the valve seat and defines axially-extending, opposing second marginal portions fixedly secured on or adjacent to respective first marginal portions of the valve seat, and an axially-extending second mid-portion angularly extending between the opposing first marginal portions and superimposed onto the first mid-portion of the valve seat. The flexible valve cover and valve seat form a normally closed axially and angularly extending valve seam therebetween.
Claims
1. A method, comprising: filling a device with a substance, the device including a first piece comprising a penetrable portion and a first surface and a second piece defining a chamber for containing substance therein and comprising a second surface, said first piece securedly attached to the second piece and at least a portion of the first surface in sealing engagement with at least a portion of the second surface to define a seal therebetween to seal the chamber from ambient atmosphere, the sealed chamber in fluid communication with the penetrable portion; wherein the filling step includes penetrating the penetrable portion with a filling or injection member; introducing substance through the filling or injection member and into the chamber; withdrawing the filling or injection member from the penetrable portion; and subsequent to the withdrawing step, dispensing a liquid sealant from a resealing device including, or in fluid communication with, a source of the liquid sealant and onto the penetrable portion, so that liquid sealant dispensed from the resealing device contacts and overlies a resulting penetration aperture formed in the penetrable portion, and hermetically seals the penetration aperture.
2. A method as recited in claim 1, wherein the liquid sealant is at ambient temperature when dispensed.
3. A method as recited in claim 1, further comprising applying oxygen or other gas to the sealant to facilitate curing of the sealant.
4. A method as recited in claim 3, wherein the oxygen or other gas is applied at a substantially predetermined temperature for curing the sealant.
5. A method as recited in claim 1, wherein the dispensing step includes overlying the sealant in a recess defined by the penetrable portion.
6. A method as recited in claim 1, wherein the sealant is a silicone.
7. A method as defined in claim 1, wherein the sealed chamber is sterile and the introducing step includes aseptically introducing substance through (he filling or injection member and into the chamber.
8. A method as defined in claim 1, wherein the dispensing step includes pumping liquid sealant with a pump out of the resealing device.
9. A method as defined in claim 1, wherein the dispensing step includes dispensing a metered or measured volume or amount of liquid sealant.
10. A method as defined in claim 1, wherein the resealing device comprises a dispensing port and the dispensing step includes dispensing the liquid sealant from the dispensing port.
11. A method as defined in claim 10, further comprising aligning the dispensing port with the penetration aperture.
12. A method as defined in claim 1, further comprising mounting the resealing device over the device.
13. A method as defined in claim 1, wherein the penetrable portion contains a recess, and the dispensing step includes dispensing the liquid sealant into the recess.
14. A method as defined in claim 1, wherein the penetrable portion is defined by a portion of the first piece made of an elastomeric material.
15. A method as defined in claim 1, wherein the first piece is formed with a first material and the second piece is formed with a second material that is different than the first material.
16. A method as defined in claim 1, wherein the device further includes a nozzle for dispensing substance.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF CURRENTLY PREFERRED EMBODIMENTS OF THE PRESENT INVENTION
(11) In
(12) The first piece 12 further defines a recess 32, which as described further below in connection with
(13) As described further below, the flexible valve cover 20 and relatively rigid valve seat 24 form a one-way valve 34 defining an axially-elongated, normally closed interface or valve seam 36 therebetween. The first piece 12 and second piece 14 cooperate to define a compression chamber 38 that is connectible in fluid communication between the variable-volume storage chamber 30 and an inlet 40 to the normally closed valve seam 36 of the one-way valve 34. An annular check valve 42 is co-molded with the valve cover and actuator, and formed between the variable-volume storage chamber 30 and the compression chamber 38. As described further below, movement of the actuator 18 draws substantially metered amounts of the substance stored in the variable-volume storage chamber 30 through the check valve 42 and into the compression chamber 38 and, in turn, pressurizes the substance in the compression chamber above a valve opening pressure to dispense the substance through the normally closed valve seam 36 of the one-way valve 34 and out of the device. The first piece 12 further defines a resilient sealing member 44 co-molded with the valve cover, actuator and check valve, and extending about the periphery of the first piece. The second piece 14 defines a peripheral sealing surface 46 that engages the resilient sealing member 44 to form a compression seal therebetween to hermetically seal the interior of the device with respect to ambient atmosphere. The first support 16 defines on an interior surface thereof an annular groove 48 and an annular chamfer 50 formed adjacent to the annular groove. The second support 22 defines an annular flange 52 that is received within the annular recess 48 of the first support to fixedly secure the two supports together. The annular chamfer 50 facilitates movement of the second support 22 into the first support 16 and, in turn, snap fitting the peripheral flange 52 into the recess 48. Upon receiving the flange 52 into the recess 48, the sealing surface 46 compressively engages the sealing member 44 to form a dry, compression seal.
(14) In the illustrated embodiment, the actuator 18 is substantially dome-shaped, and is formed of a resilient and/or elastomeric material. The dome-shaped actuator 18 defines a substantially dome-shaped spring that allows the actuator to be depressed inwardly to compress the compression chamber 38 and, in turn, dispense substantially metered volumes of substance through the one-way valve 34. A second substantially dome-shaped spring 54 is formed integral with the actuator, and is spaced axially and radially inwardly from the interior surface of the actuator 18 to define the compression chamber 38 therebetween. As can be seen, the spring 54 defines a curvilinear, substantially dome-shaped wall providing the spring with a substantial dome shape. The second piece 22 defines a boss 56 forming the inlet and outlet of the variable-volume storage chamber 30. The spring 54 defines an annular base 58 that is axially and radially spaced relative to the boss 56 to form an annular fluid-flow path therebetween. The second support 22 defines an annular recess 60 that receives therein the annular base 58 of the spring 54. The annular recess 60 defines an annular fluid flow path between the variable-volume storage chamber 30 and the one-way check valve 42.
(15) In order to actuate the device 10, the actuator 18 is depressed inwardly to compress the substance within the compression chamber 38 above the valve opening pressure. As the actuator 18 is depressed inwardly, the annular base 58 of the spring 54 is moved axially inwardly, and radially outwardly within the annular recess 60 of the second support 22. This forces the resilient annular check valve 42 radially outwardly against the annular sealing surface of the second support 22 to thereby maintain the check valve in the closed or sealed position, and in turn allow pressurization of the substance within the compression chamber above the valve opening pressure. The annular recess 60 also operates to stop further axial and radial movement of the base 58 with further inward movement of the actuator 18 to thereby progressively decrease the volume of the compression chamber 38 as the actuator 18 is further depressed. When the substance within the compression chamber 38 exceeds the valve opening pressure, the substance is forced through the inlet 40 and normally closed seam 36 of the one-way valve 34 and out of the device. Then, the actuator 18 is released which, in turn, allows the dome-spring of the actuator 18 and dome spring 54 to drive the actuator outwardly and into its ambient or rest position, as shown typically in
(16) As shown best in
(17) In the illustrated embodiment, and as indicated by the broken lines in
(18) In the illustrated embodiment, the flexible valve cover 20 is formed of an elastomeric material that exhibits substantially zero creep. In one currently preferred embodiment, the elastomeric material is a silicone. In another currently preferred embodiment, the elastomeric material includes an antimicrobial additive to further prevent any bacteria, germs or other microbial substances from entering the seam 36 of the valve or otherwise collecting on the dispensing tip of the valve. In another currently preferred embodiment, the elastomeric material is a silicone elastomer including a silver-based or other antimicrobial additive. Exemplary silicone elastomeric compounds for forming the valve cover and/or other features formed integral with the valve cover, including the actuator and sealing member, include any of numerous different liquid silicone rubbers, such as any of the liquid silicon rubbers sold by General Electric Company and/or Momentive Performance Materials under the LIM trademark, including LIM 8040, or other liquid silicone rubbers, silicones or silicone-based elastomers, such as the antimicrobial elastomers sold by General Electric Company and/or Momentive Performance Materials under the StatSil trademark.
(19) As can be seen, in the currently preferred embodiments, the valve cover 20 defines a substantially uniform thickness substantially throughout the mid-portion 68 thereof and substantially throughout the marginal portions 66 thereof. The mid-portion 68 of the valve cover 20 is substantially in tension between the opposing marginal portions 66, 66 thereof. As shown in
(20) As shown typically in
(21) As shown in
(22) As shown in
(23) As shown in
(24) As shown in
(25) In the illustrated embodiment, and as shown in
(26) In an alternative embodiment, rather than sterile filling the device with a needle or other injection member, and resealing the resulting penetration aperture, the device may include a second filling valve formed integral and co-molded with the dispensing valve to allow sterile filling of the variable-volume storage chamber through the filling valve. In this alternative embodiment, the second support of the closure includes co-molded therewith a first integral flexible valve cover and a second integral flexible valve cover. The first support includes a first valve seat and a second valve seat. The first valve cover is superimposed on the first valve seat and forms a first dispensing valve defining a first axially-extending, normally closed dispensing valve seam, and the second valve cover is superimposed on the second valve seat and forms a second filling valve defining a second axially-extending, normally closed filling valve seam. The first support at least partially defines the compression chamber connectible in fluid communication between the variable-volume storage chamber and the inlet to the first dispensing valve seam, and the second support defines an actuator movable between first and second positions for pressurizing fluid within the compression chamber above the valve opening pressure and, in turn, dispensing the pressurized fluid through the dispensing valve. The dome-shaped or other flexible actuator is formed integral and co-molded with the first and second valve covers.
(27) In the method of forming the device of this alternative embodiment, the step of molding the closure includes co-molding the second support with the first integral flexible valve cover and the second integral flexible valve cover. The step of injection molding the support includes injection molding the support with the first integral valve seat and the second integral valve seat. The step of assembling the closure to the support includes (i) superimposing the first valve cover on the first valve seat and forming the first dispensing valve defining the first axially-extending, normally closed valve seam, and (ii) superimposing the second valve cover on the second valve seat and forming the second filling valve defining the second axially-extending, normally closed valve seam. After the sterilizing step, a filling member, such as a hollow cannula coupled in fluid communication with a pump or pressurized source of product to be sterile filled, is placed in fluid communication with the normally closed valve seam of the second filling valve. Then, the substance is sterile filled through the filling member and into the second normally closed valve seam at a pressure at or above a valve opening pressure of the second normally closed valve seam and into the variable-volume storage chamber. After the variable-volume storage chamber is sterile filled with the substance, the filling member is withdrawn from the second valve. The sterile filled substance is maintained hermetically sealed within the variable-volume storage chamber throughout a shelf life and between multiple doses of substance from the variable-volume storage chamber through the first dispensing valve.
(28) One advantage of the device and method of the present invention is that the device may be manufactured in essentially two parts forming a sealed, empty, sterile variable-volume storage chamber that is ready for aseptic filling by needle penetration and resealing by liquid sealant or by any of numerous other sterile filling methods or devices that are currently known, or that later become known. Yet another advantage is that the housing or outer body may be formed of a relatively inexpensive material, such as recycled plastic, cardboard, or other biodegradable materials, that after use may be automatically disassembled into (1) the collapsed plastic bag and closure that can be recycled, and (2) the outer bottle or body which can be biodegradable. Alternatively, the housing can be reusable such that the collapsed pouch and closure can be removed from the housing, and a fresh pouch and enclosure can be inserted into the housing as many times as desired.
(29) A significant advantage of the currently preferred embodiments is that the following features are provided in only two parts: zero possible ingress in a multi-dose delivery system; a non-contamination valve; a sterile filling port; a metering dose pump; a collapsible pouch defining a sealed, variable-volume storage chamber; and a compression chamber in fluid communication between the variable-volume storage chamber and the non-contamination valve and forming part of the metering dose pump. Yet another advantage of the currently preferred embodiments is that they provide the possibility to stay with a two piece collapsible assembly or to add a more rigid container that is completely bio-degradable, re-usable and/or recyclable. A still further advantage is that the unique valve prevents any ingress of any germs, bacteria or other unwanted substances, and thus prevents contamination of the product stored within the interior of the device which, in turn, may significantly increase the stability of the product. A still further advantage is that there is no need to refrigerate the container or other device, even after multiple dose delivery, since the variable-volume storage chamber remains hermetically sealed and each dose is sterile from the first to the last. Another advantage of the currently preferred embodiments is that the package provides a unique means to reduce the carbon foot print of the packaging in comparison to prior art packages. For example, there is no need to re-heat the product after filling (such as with retort processing), and there is no need to refrigerate the product or container after dispensing or between dispensing multiple doses over extended periods of time. Yet another advantage of the currently preferred embodiments is that they can provide a high, and even unmatched, safety level assurance in a very price competitive package.
(30) As may be recognized by those of ordinary skill in the pertinent art based on the teachings herein, numerous changes may be made to the above-described and other embodiments of the present invention without departing from the scope of the invention. For example, the device may be sterile filled in any of numerous different ways, including by needle penetration and laser resealing, or valve-in filling. The actuator, one-way valve, housing and other components of the device may be formed of any of numerous different materials or combinations of materials, may take any of numerous different shapes and/or configurations, and may be manufactured in accordance with any of numerous different methods or techniques, that are currently known or that later become known. In addition, the devices may include few or more components or features than the embodiments described herein. Further, the variable-volume storage chamber may be formed of any of numerous different materials or configurations, in accordance with any of numerous different manufacturing techniques, that are currently known or that later become known. In addition, the term semi-annular is used herein to mean a portion of, or less than 360 of a surface, but does not require that the surface be circular or defined by a portion of a circle. Rather, the semi-annular surface may be curvilinear in part and/or substantially flat in part. Accordingly, this detailed description of currently preferred embodiments is to be taken in an illustrative as opposed to limiting sense.