Method of stabilizing a plastic aerosol container
09745118 ยท 2017-08-29
Assignee
Inventors
- Tapan Y. Patel (Nashua, NH, US)
- Thomas E. Nahill (Amherst, NH, US)
- Stephen R. Guerin (Milford, NH, US)
Cpc classification
B29C2949/3032
PERFORMING OPERATIONS; TRANSPORTING
B29C2949/072
PERFORMING OPERATIONS; TRANSPORTING
B29C2949/0777
PERFORMING OPERATIONS; TRANSPORTING
B29B11/14
PERFORMING OPERATIONS; TRANSPORTING
B29C2949/3024
PERFORMING OPERATIONS; TRANSPORTING
B29C49/071
PERFORMING OPERATIONS; TRANSPORTING
B29C2949/0778
PERFORMING OPERATIONS; TRANSPORTING
B65B31/003
PERFORMING OPERATIONS; TRANSPORTING
International classification
B65B31/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A plastic aerosol container includes a main body portion that is constructed and arranged to withstand aerosol pressurization within a range that is about 50-300 psig. The plastic aerosol container also includes a finish portion that is unitary with the main body portion. The finish portion may be threaded or unthreaded. The finish portion has a side wall, an upper sealing surface, at least one helical thread and a support ledge beneath the helical thread. Reinforcement structure is positioned beneath the support ledge for reinforcing the finish portion against deformation due to the pressurization. A method of stabilizing a plastic aerosol container is also disclosed.
Claims
1. A plastic aerosol container, comprising: a main body portion that is constructed and arranged to withstand aerosol pressurization within a range that is about 50-300 psig; and a finish portion that is unitary with the main body portion and defines a vertical longitudinal axis, the finish portion having a side wall, an upper sealing surface, a securement structure extending outwardly from the side wall, a support ledge separate from and beneath the securement structure, and a reinforcement structure separate from and beneath the support ledge for reinforcing the finish portion against deformation due to the pressurization; wherein the support ledge defines an outer circumference that is noncircular in at least one location; and wherein the support ledge defines a horizontal planar upper surface about a circumference of the finish portion.
2. The plastic aerosol container of claim 1, wherein the reinforcement structure comprises a flange that is unitary with the side wall of the finish portion.
3. The plastic aerosol container of claim 2, wherein the flange is injection molded.
4. The plastic aerosol container of claim 1, wherein the reinforcement structure is blow molded.
5. The plastic aerosol container of claim 1, further comprising an aerosol dispensing closure mounted to the finish portion.
6. The plastic aerosol container of claim 5, wherein the aerosol dispensing closure is secured to the finish portion with the securement structure.
7. The plastic aerosol container of claim 1, wherein the securement structure and the main body portion are fabricated from polyethylene terephthalate.
8. The plastic aerosol container of claim 1, wherein a space is defined between the support ledge and the reinforcement structure, and wherein the space has a minimum vertical dimension that is at least about 1 mm.
9. The plastic aerosol container of claim 1, wherein a space is defined between the support ledge and the reinforcement structure, and wherein the space has a minimum vertical dimension that is at least about 1.5 mm.
10. The plastic aerosol container of claim 1, wherein the main body portion is constructed of polyethylene terephthalate.
11. The plastic aerosol container of claim 1, wherein the main body portion is constructed of plastic.
12. The plastic aerosol container of claim 1, wherein the finish portion and main body portion are fabricated from a material comprising at least one of the following: polyethylene terephthalate, polyethylene naphthalate, acrylonitrile, polycarbonate, polyamide, or a blend thereof.
13. The plastic aerosol container of claim 12, wherein the material has a viscosity ranging from about 0.76 to about 0.95.
14. The plastic aerosol container of claim 1, wherein the container has a wall thickness in the range from about 0.018 inch to about 0.022 inch.
15. The plastic aerosol container of claim 1, wherein the securement structure comprises a threaded portion.
16. The plastic aerosol container of claim 1, further comprising an aerosol mixture within the container.
17. A plastic aerosol container, comprising: a main body portion that is constructed and arranged to withstand aerosol pressurization within a range that is about 50-300 psig; and a finish portion that is unitary with the main body portion and defines a vertical longitudinal axis, the finish portion having a side wall, an upper sealing surface, a securement structure extending outwardly from the side wall, a support ledge separate from and beneath the securement structure, and a reinforcement structure separate from and beneath the support ledge for reinforcing the finish portion against deformation due to the pressurization; wherein the support ledge comprises at least one position-registering recess defined therein; and wherein the support ledge defines a horizontal planar upper surface about a circumference of the finish portion.
18. The plastic aerosol container of claim 17, wherein the reinforcement structure comprises a flange that is unitary with the side wall of the finish portion.
19. The plastic aerosol container of claim 18, wherein the flange is injection molded.
20. The plastic aerosol container of claim 17, wherein the reinforcement structure is blow molded.
21. The plastic aerosol container of claim 17, wherein an aerosol dispensing closure is secured to the finish portion with the securement structure.
22. The plastic aerosol container of claim 17, wherein the securement structure and the main body portion are fabricated from polyethylene terephthalate.
23. The plastic aerosol container of claim 17, wherein a space is defined between the support ledge and the reinforcement structure, and wherein the space has a minimum vertical dimension that is at least about 1 mm.
24. The plastic aerosol container of claim 17, wherein a space is defined between the support ledge and the reinforcement structure, and wherein the space has a minimum vertical dimension that is at least about 1.5 mm.
25. The plastic aerosol container of claim 17, wherein the main body portion is constructed of polyethylene terephthalate.
26. The plastic aerosol container of claim 17, wherein the main body portion is constructed of plastic.
27. The plastic aerosol container of claim 17, wherein the finish portion and main body portion are fabricated from a material comprising at least one of the following: polyethylene terephthalate, polyethylene naphthalate, acrylonitrile, polycarbonate, polyamide, or a blend thereof.
28. The plastic aerosol container of claim 27, wherein the material has a viscosity ranging from about 0.76 to about 0.95.
29. The plastic aerosol container of claim 17, wherein the container has a wall thickness in the range from about 0.018 inch to about 0.022 inch.
30. The plastic aerosol container of claim 17, wherein the securement structure comprises a threaded portion.
31. The plastic aerosol container of claim 17, further comprising an aerosol mixture within the container.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT(S)
(13) Referring now to the drawings, wherein like reference numerals designate corresponding structure throughout the views, and referring in particular to
(14) Plastic aerosol container 10 is preferably fabricated from a plastic material such as polyethylene terephthalate (PET), polyethylene naphthalate (PEN), acrylonitrile (AN), polycarbonate (PC), polyamide (Nylon), or a blend containing some combination of the same from a plastic preform using a conventional blow molding process such as the reheat stretch blow molding process.
(15) In the preferred embodiment, container 10 is fabricated from a high intrinsic viscosity polyethylene terephthalate material, which most preferably has an intrinsic viscosity that is substantially within a range of about 0.76 to about 0.95.
(16) Container 10 preferably has an average wall thickness in the main body portion 12 that is substantially within a range of about 0.018 inch to about 0.022 inch, permitting it to withstand aerosol pressures.
(17) The aerosol container 10 further preferably includes a threaded finish portion 14 that is unitary with the main body portion 12 and that has at least one helical thread 16 defined thereon for receiving an aerosol dispensing closure assembly or a closure that is designed to accept an aerosol fitment. Finish portion 14 further includes a support ledge 18 beneath the helical thread 16, which is used to help convey the container 10 during manufacture and filling. The support ledge 18 has a first maximum outer diameter D.sub.L, as is best shown in
(18) The support ledge 18 is preferably constructed so that it has a substantially circular circumference as viewed in top plan. In the preferred embodiment, the outer circumference of the support ledge 18 includes a pair of small recesses 24, which are used for registering the closure fitment to the finish of the container 10 during the capping process.
(19) The threaded finish portion 14 further includes reinforcement structure that is positioned beneath the support ledge for reinforcing the finish portion 14 against deformation due to the pressurization within the aerosol container 10. In the preferred embodiment, the reinforcement structure includes at least one secondary flange 20, which is positioned beneath the support ledge 18 on the threaded finish portion 14. The secondary flange 20 is preferably constructed so that it has an outer circumference that is noncircular in at least one location, so that it may be engaged during a capping operation to prevent rotation of the container 10 during capping. The secondary flange 20 is preferably unitary with the side wall of the finish portion 14.
(20) The secondary flange 20 in the preferred embodiment is fabricated using an injection molding process together with the rest of a plastic preform 50, shown in
(21) In an alternative embodiment of the invention, shown in
(22) In another alternative embodiment of the invention, anti-rotation features could be incorporated into the support ledge of the finish portion without the provision of a secondary flange. For example, the support ledge could be provided with two or more flat surfaces, grooves or notches on the underside of the support ledge or one or more lugs or notches on the top surface of the support ledge.
(23) The secondary flange 20 is preferably constructed so as to have a second maximum outer diameter D.sub.s, which is not substantially greater than the first maximum outer diameter D.sub.L of the support ledge 18. Preferably, the second maximum outer diameter D.sub.s of the secondary flange 20 is substantially the same as the first maximum outer diameter D.sub.L of the support ledge 18.
(24) Preferably, the secondary flange 20 has at least one substantially flat portion defined thereon that may be engaged by a capping machine in order to prevent relative rotation of the container 10 with respect to the capping machine during the capping process. As is best shown in
(25) As
(26) The aerosol container assembly further includes an aerosol dispensing closure 40, which is diagrammatically shown in
(27) The aerosol dispensing closure 40 preferably includes a metallic insert 44 having a central opening in which an aerosol dispensing valve 46 is positioned.
(28) A method of assembling an aerosol container assembly according to the preferred embodiment of the invention is shown diagrammatically in
(29) The collar 42 of the aerosol dispensing closure 40 is then installed by screwing it onto the threaded finish portion 14, preferably by using a commercial capping machine. During the capping process, the container 10 is secured against rotation relative to the capping machine by engagement of a portion of the capping machine with the noncircular portion of the secondary flange 20. The collar 42 of the aerosol dispensing closure 40 is preferably screwed onto the threaded finish portion at a torque that is substantially within a range of about 15 in-lbs to about 50 in-lbs. The container 10 is then filled with product, after which the metallic insert 44 of the aerosol dispensing closure assembly 40 is applied to the collar and the container is pressurized with an aerosol mixture at a range of pressurization that is substantially between about 50 psig to about 300 psig, and more preferably substantially within a range of about 90 psig to about 180 psig using known aerosol pressurization processes and equipment.
(30) The aerosol mixture preferably includes a propellant, which could be a liquefied gas propellant or a compressed or soluble gas propellant. Liquefied gas propellants that could be used include hydrocarbon propellants such as propane, isobutene, normal butane, isopentane, normal pentane and dimethyl ether, and hydrofluorocarbon propellants such as difluoroethane (HFC-152a) and tetrafluoroethane (HFC-134a). Compressed and soluble gas propellants that could be used include carbon dioxide (C02), nitrous oxide (N20), nitrogen (N2) and compressed air.
(31) A method of stabilizing an aerosol container according to the preferred embodiment of the invention, shown diagrammatically in
(32) An aerosol dispensing container 60 according to a alternative embodiment of the invention is depicted in
(33) It is to be understood, however, that even though numerous characteristics and advantages of the present invention have been set forth in the foregoing description, together with details of the structure and function of the invention, the disclosure is illustrative only, and changes may be made in detail, especially in matters of shape, size and arrangement of parts within the principles of the invention to the full extent indicated by the broad general meaning of the terms in which the appended claims are expressed.