IP Library Patent Application 14733091
Patent Application
App. No. 14/733,091

THERMOFORMED ARTICLES FROM POLYPROPYLENE POLYMER COMPOSITIONS

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Quick Facts
Patent No.
US None
App. No.
14/733,091
Filed
Jun 8, 2015
Art Unit
1782
USPC
428/35.7
Abstract

Thermoformed fluid material container closures, such as reclosable dome-shaped beverage lids, having an inner “plug fit” securement groove for removably securing the fluid material container closure to an upper rim of a beverage cup and which have a drip rate of about 1 g or less per 20 seconds. These closures such as beverage lids are made by a thermoforming process from a thermoformable web (e.g., sheet) to provide a generally dome-shaped upper fluid material-dispensing portion from polypropylene polymers having a flexural modulus of at least about 230,000 kpsi and in which a fluid-dispensing orifice in formed in the fluid material-dispensing portion which is substantially aligned with the machine direction (MD) of the thermoformable web.

Claims (63)

1 . An article in the form of a thermoformed fluid material container closure, the fluid material container closure comprising:

a lower container-securing portion having an inner plug fit securement groove for removably securing the fluid material container closure to an upper rim of a fluid material container; and

an upper generally dome-shaped fluid material-dispensing portion extending generally upwardly from the lower container-securing portion and having a fluid material-dispensing orifice formed therein;

wherein the fluid material container closure comprises a polypropylene polymer composition which includes from about 50 to 100% polypropylene polymer having a flexural modulus of at least about 230,000 kpsi;

wherein the fluid material container closure has a wall thickness in the range of from about 10 to about 30 mils;

wherein when the fluid material container closure is removably secured to the upper rim of the fluid material container, the removably secured fluid material container closure provides a drip rate of about 1 gram or less per 20 seconds.

2 . The article of claim 1 , wherein the wall thickness is in the range of from about 14 to about 24 mills.

3 . The article of claim 1 , wherein the polypropylene polymer has a flexural modulus in the range of from about 230,000 to about 350,000 kpsi.

4 . The article of claim 3 , wherein the polypropylene polymer has a flexural modulus in the range of from about 250,000 to about 300,000 kpsi.

5 . The article of claim 1 , wherein the polypropylene polymer composition includes one or more β-phase polypropylene polymer crystal inducing nucleating agents in an amount effective to induce β-phase crystal formation in the polypropylene polymer composition.

6 . The article of claim 5 , wherein the one or more β-phase polypropylene polymer crystal inducing nucleating agents are one or more of: quinacridones; the bisodium salt of o-phthalic acid; the aluminum salt of 6-quinizarin sulfonic acid; isophthalic acid; terephthalic acid; N′,N′-dicyclohexyl-2,6-naphthalene dicarboxamide; tetraoxaspiro compounds; iron oxide having a nano-scale size; potassium 1,2-hydroxystearate; magnesium benzoate; magnesium succinate; magnesium phthalate; phthalocyanine blue; or a combination of pimelic acid, azelaic acid, o-phthalic acid, terephthalic acid, or isophthalic acid with an oxide, hydroxide or an acid salt of magnesium, calcium, strontium, or barium.

7 . The article of claim 6 , wherein the amount of the one or more β-phase polypropylene polymer crystal inducing nucleating agents is in the range of from about 0.5 to about 10% by weight of the polypropylene polymer composition.

8 . The article of claim 5 , wherein the polypropylene polymer composition includes from about 83 to 100% by weight polypropylene polymer and up to about 17% by weight of a mineral filler.

9 . The article of claim 8 , wherein the polypropylene polymer composition includes from about 90 to 100% by weight polypropylene polymer and from 0 to about 10% by weight mineral filler.

10 . An article in the form of a thermoformed reclosable beverage sip lid, the reclosable beverage sip lid comprising:

a lower generally annular cup rim-securing portion having an inner plug fit annular securement groove for removably securing the fluid material container closure to an upper rim of a beverage cup; and

an upper generally frustoconical-shaped beverage-dispensing portion extending generally upwardly from the lower portion and having a beverage-dispensing sip hole formed therein;

wherein the reclosable beverage sip lid comprises a polypropylene polymer composition which includes from about 50 to 100% polypropylene having a flexural modulus of at least about 230,000 kpsi;

wherein the reclosable beverage sip lid has a wall thickness in the range of from about 10 to about 30 mils;

wherein when the reclosable beverage sip lid is removably secured to the upper rim of the beverage cup, the reclosable beverage lid provides a drip rate of about 1 gram or less per 20 seconds.

11 . The article of claim 10 , wherein the wall thickness is in the range of from about 14 to about 24 mills.

12 . The article of claim 11 , wherein the polypropylene polymer has a flexural modulus in the range of from about 250,000 to about 300,000 kpsi.

13 . The article of claim 11 , wherein the polypropylene polymer composition includes one or more β-phase polypropylene polymer crystal inducing nucleating agents in an amount in the range of from about 1 to about 3% by weight of the polypropylene polymer composition, the one or more β-phase polypropylene polymer crystal inducing nucleating agents are one or more of: quinacridones; the bisodium salt of o-phthalic acid; the aluminum salt of 6-quinizarin sulfonic acid; isophthalic acid; terephthalic acid; N′,N′-dicyclohexyl-2,6-naphthalene dicarboxamide; tetraoxaspiro compounds; iron oxide having a nano-scale size; potassium 1,2-hydroxystearate; magnesium benzoate; magnesium succinate; magnesium phthalate; phthalocyanine blue; or a combination of pimelic acid, azelaic acid, o-phthalic acid, terephthalic acid, or isophthalic acid with an oxide, hydroxide or an acid salt of magnesium, calcium, strontium, or barium.

14 . The article of claim 11 , wherein polypropylene polymer composition includes from about 90 to 100% by weight polypropylene polymer and from 0 to about 10% by weight mineral filler.

15 . A process for preparing a thermoformed fluid material container closure which comprises the following steps of:

(a) providing a thermoformable web comprising from about 50 to 100% polypropylene polymer having a flexural modulus of at least about 230,000 kpsi and having a machine direction (MD) and a cross machine direction (CD) orthogonal to the machine direction (MD) with a web width in the range of from about 20 to about 55 inches in the cross machine direction (CD);

(b) thermoforming the thermoformable web of step (a) with a fluid material closure-forming mold having a lower fluid material container-securing forming mold section which forms an inner plug fit securement groove and a generally dome-shaped upper fluid material-dispensing forming mold section extending generally upwardly from the lower mold section to provide a thermoformed fluid material container closure having a lower container-securing portion having formed therein the inner a plug fit securement groove for removably securing the fluid material container closure to an upper rim of a fluid material container and a generally dome-shaped upper fluid material-dispensing portion extending generally upwardly from the lower container-securing portion; and

(c) forming a fluid-dispensing orifice in the upper fluid material-dispensing portion which is substantially aligned with the machine direction (MD) of the thermoformable web;

wherein the thermoformed article of step (c) has:

a wall thickness in the range of from about 10 to about 30 mils;

when removably secured to the upper rim of the fluid material container, a drip rate of about 1 gram or less per 20 seconds.

16 . The process of claim 15 , wherein the web width in step (a) is in the range of from about 24 to about 50 inches.

17 . The process of claim 15 , wherein the polypropylene polymer composition of step (a) comprises polypropylene polymer having a flexural modulus in the range of from about 230,000 to about 350,000 kpsi.

18 . The process of claim 17 , wherein the polypropylene polymer composition of step (a) includes one or more β-phase polypropylene polymer crystal inducing nucleating agents in an amount effective to induce β-phase crystal formation in the thermoformable web of step (a).

19 . The process of claim 18 , wherein one or more β-phase polypropylene polymer crystal inducing nucleating agents are one or more of: quinacridones; the bisodium salt of o-phthalic acid; the aluminum salt of 6-quinizarin sulfonic acid; isophthalic acid; terephthalic acid; N′,N′-dicyclohexyl-2,6-naphthalene dicarboxamide; tetraoxaspiro compounds; iron oxide having a nano-scale size; potassium 1,2-hydroxystearate; magnesium benzoate; magnesium succinate; magnesium phthalate; phthalocyanine blue; or a combination of pimelic acid, azelaic acid, o-phthalic acid, terephthalic acid, or isophthalic acid with an oxide, hydroxide or an acid salt of magnesium, calcium, strontium, or barium, and wherein the amount of the one or more β-phase polypropylene polymer crystal inducing nucleating agents is in the range of from about 0.5 to about 10% by weight of the polypropylene polymer composition of step (a).

20 . The process of claim 18 , wherein the thermoformable web of step (a) is formed by extruding the polypropylene polymer composition of step (a).

21 . The process of claim 15 , wherein thermoforming step (b) is carried out by vacuum molding.

22 . The process of claim 21 , wherein thermoforming step (b) is carried out with a plurality of molds arranged in a plurality of rows spaced apart in the machine direction (MD), each of the plurality of rows comprising a plurality of male molds spaced apart in the cross-machine direction (C).

23 . The process of claim 22 , wherein the plurality of molds are arranged in from 2 to 18 rows, each of the plurality of rows having from 2 to 14 molds.

24 . The process of claim 23 , wherein the plurality of molds are arranged in from 4 to 14 rows, each of the plurality of rows having from 4 to 12 molds.

25 . The process of claim 15 , wherein thermoforming step (b) is carried out at a temperature in the range of from about 265° to about 450° F.

26 . The process of claim 25 , wherein thermoforming step (b) is carried out at a temperature in the range of from about 270° to about 380° F.

27 . The process of claim 15 , wherein thermoforming step (b) provides a fluid material container closure having a wall thickness in the range of from about 14 to about 24 mils.

28 . The process of claim 15 , wherein the mold of step (b) is a male mold.

29 . A process for preparing a thermoformed reclosable beverage sip lid, which comprise the following steps of:

(a) providing a thermoformable sheet comprising from about 50 to 100% polypropylene polymer having a flexural modulus of at least about 230,000 kpsi and having a machine direction (MD) and a cross machine direction (CD) orthogonal to the machine direction (MD) with a sheet width in the range of from about 20 to about 55 inches in the cross machine direction (CD);

(b) thermoforming the thermoformable sheet of step (b) with a reclosable beverage sip lid forming mold having a generally annular lower cup rim-securing portion forming mold section which forms an inner a plug fit annular securement groove and an upper generally frustoconical-shaped beverage-dispensing portion forming mold section extending generally upwardly from the lower mold section to provide a thermoformed reclosable beverage sip lid having a lower generally annular cup rim-securing portion having formed therein the inner a plug fit annular securement groove for removably securing the beverage sip lid to an upper rim of a beverage cup and an upper generally frustoconical-shaped beverage-dispensing portion extending generally upwardly from the lower cup lip-securing portion; and

(c) forming a beverage dispensing sip hole in the upper beverage-dispensing portion thermoformed reclosable beverage lid of step (b) which is substantially aligned with the machine direction (MD) of the thermoformable sheet;

wherein the thermoformed reclosable beverage sip lid of step (c) has:

a wall thickness in the range of from about 10 to about 30 mils:

when removably secured to the upper lip of the beverage cup, a drip rate of about 1 gram or less per 20 seconds.

30 . The process of claim 29 , wherein the sheet width in step (a) is in the range of from about 24 to about 50 inches.

31 . The process of claim 30 , wherein the polypropylene polymer composition of step (a) comprises polypropylene polymer having a flexural modulus in the range of from about 230,000 to about 350,000 kpsi.

32 . The process of claim 31 , wherein the polypropylene polymer composition of step (a) includes one or more β-phase polypropylene polymer crystal inducing nucleating agents in an amount effective to induce β-phase crystal formation in the thermoformable web of step (a).

33 . The process of claim 32 , wherein one or more β-phase polypropylene polymer crystal inducing nucleating agents are one or more of: quinacridones; the bisodium salt of o-phthalic acid; the aluminum salt of 6-quinizarin sulfonic acid; isophthalic acid; terephthalic acid; N′,N′-dicyclohexyl-2,6-naphthalene dicarboxamide; tetraoxaspiro compounds; iron oxide having a nano-scale size; potassium 1,2-hydroxystearate; magnesium benzoate; magnesium succinate; magnesium phthalate; phthalocyanine blue; or a combination of pimelic acid, azelaic acid, o-phthalic acid, terephthalic acid, or isophthalic acid with an oxide, hydroxide or an acid salt of magnesium, calcium, strontium, or barium, and wherein the amount of the one or more β-phase polypropylene polymer crystal inducing nucleating agents is in the range of from about 1 to about 3% by weight of the polypropylene polymer composition of step (a).

34 . The process of claim 32 , wherein the thermoformable web of step (a) is formed by extruding the polypropylene polymer composition of step (a).

35 . The process of claim 33 , wherein thermoforming step (b) is carried out by vacuum molding.

36 . The process of claim 35 , wherein thermoforming step (b) is carried out with a plurality of molds arranged in a plurality of rows spaced apart in the machine direction (MD), each of the plurality of rows comprising a plurality of molds spaced apart in the cross-machine direction (C).

37 . The process of claim 36 wherein the plurality of molds are arranged in from 4 to 14 rows, each of the plurality of rows having from 4 to 12 molds.

38 . The process of claim 30 , wherein thermoforming step (b) is carried out at a temperature in the range of from about 265° to about 450° F.

39 . The process of claim 38 , wherein thermoforming step (b) is carried out at a temperature in the range of from about 270° to about 380° F.

40 . The process of claim 30 , wherein thermoforming step (b) provides a fluid material container closure having a wall thickness in the range of from about 14 to about 24 mils.

41 . The process of claim 29 , wherein the mold of step (b) is a male mold.

Assignments (8)
RELEASE OF SECURITY INTEREST Recorded Apr 15, 2026
From: U.S. BANK TRUST COMPANY, NATIONAL ASSOCIATION, AS SUCCESSOR‑IN‑INTEREST TO U.S. BANK NATIONAL ASSOCIATION, AS COLLATERAL AGENT
To: GRAPHIC PACKAGING INTERNATIONAL, LLC
Reel/Frame 075415/0575 →
SECURITY INTEREST Recorded Apr 1, 2021
From: GRAPHIC PACKAGING INTERNATIONAL, LLC
To: BANK OF AMERICA, N.A., AS ADMINISTRATIVE AGENT
Reel/Frame 055811/0676 →
SECURITY AGREEMENT Recorded Mar 8, 2021
From: GRAPHIC PACKAGING INTERNATIONAL, LLC
To: U.S. BANK NATIONAL ASSOCIATION
Reel/Frame 055520/0204 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 11, 2018
From: INTERNATIONAL PAPER COMPANY
To: GRAPHIC PACKAGING INTERNATIONAL PARTNERS, LLC
Reel/Frame 044591/0640 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 11, 2018
From: GRAPHIC PACKAGING INTERNATIONAL PARTNERS, LLC
To: GRAPHIC PACKAGING INTERNATIONAL, LLC
Reel/Frame 044591/0681 →
SECURITY AGREEMENT Recorded Jan 8, 2018
From: GRAPHIC PACKAGING INTERNATIONAL, LLC
To: BANK OF AMERICA, N.A., AS ADMINISTRATIVE AGENT
Reel/Frame 045020/0746 →
SECURITY INTEREST Recorded Jan 5, 2018
From: GRAPHIC PACKAGING INTERNATIONAL, LLC (FORMERLY KNOWN AS GRAPHIC PACKAGING INTERNATIONAL, INC.); FIELD CONTAINER QUERETARO (USA), L.L.C.
To: BANK OF AMERICA, N.A., AS ADMINISTRATIVE AGENT
Reel/Frame 045009/0001 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 17, 2015
From: TEDFORD, RICHARD A., JR.
To: INTERNATIONAL PAPER COMPANY
Reel/Frame 036118/0612 →