Vinylidene chloride composition and film with high thermal stability
Abstract
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28 claims: 3 independent, 25 dependent
- 1Claims of equivalent WO 9714554 A2 WHAT IS CLAIMED IS:1. A composition compnsing: a) 100 parts by weight of an extrudable vinylidene chloride polymer or copolymer;b) at least 0.1 parts by weight of an acid acceptor;and c) between 1 and 10 parts by weight of a dienophile.
- 13A thermoplastic film comprising a barrier layer compnsmg:a) 100 parts by weight of an extrudable vinylidene chloride polymer or copolymer;b) at least 0.1 parts by weight of an acid acceptor;and c) between 1 and 10 parts by weight of a dienophile.
- 25A film compnsmg:a) a sealant layer;b) a first intermediate layer comprising a material selected from the group consistmg of polyamide, polyester, and ethylene vinyl alcohol copolymer;c) a barrier layer compnsmg vinylidene chloride copolymer;d) a second intermediate layer comprising a material selected from the group consistmg of polyamide, polyester, and ethylene vinyl alcohol copolymer;and e) an abuse Iayer.
Independent claims3
48 paragraphs in 8 sections, as filed
Description of equivalent WO 9714554 A2
VINYLIDENE CHLORIDE COMPOSITION AND FILM WITH HIGH THERMAL STABILITY
BACKGROUND OF THE INVENTION The present invention relates to a composition and film made from vinylidene chloride polymers or copolymers; more particularly to a composition and film with enhanced thermal stability and oxygen barrier properties for monolayer and multilayer packaging films having a formulated Iayer of vinylidene chloride copolymer. Thermoplastic packaging films made of vinylidene chloride copolymer, typically with methyl acrylate or vinyl chloride comonomers, and here referred to as "saran", have long been used to package food such as cheese, fresh meat, etc. Saran is a good barrier to the transmission of oxygen.
Methods of producing a multilayer film havmg a layer of saran are disclosed in USP 4,112,181 (Baird) and USP 3,741,253 (Brax et al), both incorporated herein by reference.
Saran degrades duπng conventional extrusion operations, producing to some extent hydrogen chloride and conjugated polyenes.
The sequence includes a first reaction in which vinylidene chloride polymer, (CH2CCl )<sub>n</sub>, under heat and shear conditions (typical in extrusion operations) reacts to form (CH=CCl)<sub>n</sub><sup>+</sup> nHCI. This is of course undesirable, since HCl is corrosive, and accelerates the same reaction resulting in even more HCl generation.
A second reaction involves the reaction of (CH=CC1)„ under continued heat and shear conditions, to produce conjugated polyene networks and additional HCl. This is also undesirable, because networks form gels, and gels lead to product defects in the form of pinholes.
Still further reaction results in the undesirable production of carbon. It would be beneficial to provide a composition which prevents or retards the production of hydrogen chloride in the first reaction, and to retard the further degradation of the second reaction. The present invention provides good thermal stability for saran formulations, and reduced degradation during extrusion.
The inventor has found that an acid acceptor such as tetrasodium pyrophosphate reacts with or accepts hydrogen chloride in the system, thereby slowing down further degradation of the vinylidene chloride polymer or copolymer. However, it has also been found that acid acceptors such as tetrasodium pyrophosphate do not disperse well in the vinylidene chloride matrix, and if used alone results in a non- uniform mixture. By also including a dienophile such as ethylene/butyl acrylate/ maleic anhydride terpolymer, which acts both as a dienophile and a wetting agent, the acid acceptor is more uniformly dispersed in the vinylidene chloride matrix. Methods for determining stability are well known, e.g. as described in USP 5,202,188 incorporated herein by reference.
SUMMARY OF THE INVENTION In a first aspect of the invention, a composition comprises 100 parts by weight of an extrudable vinylidene chloride polymer or copolymer; at least 0.1 parts by weight of an acid acceptor; and between 1 and 10 parts by weight of a dienophile.
In a second aspect of the invention, a thermoplastic film comprises a barrier layer comprismg 100 parts by weight of an extrudable vinylidene chloride polymer or copolymer; at least 0.1 parts by weight of an acid acceptor; and between 1 and 10 parts by weight of a dienophile.
In a third aspect, a package comprises a food article; and a bag contammg the food article, the bag made from a thermoplastic film comprising a barrier layer compnsmg 100 parts by weight of an extrudable vinylidene chloride copolymer; at least 0.1 parts by weight of an acid acceptor; and between 1 and 10 parts by weight of a dienophile.
DEFINITIONS "Acid acceptor" herein means a compound that reacts with an acid such as hydrogen chloride and renders it non-reactive for further dehydrochloπnation. "Dienophile" herein means a compound that is capable of reacting with conjugated double bonds and making them nonparticipative in degradation color development associated with the degradation of vinylidene chloride polymer and copolymer.
DESCRIPTION OF THE PREFERRED EMBODIMENTS The present mventive composition preferablv comprises 100 parts by weight of an extrudable vinylidene chloride copolymer; between 1 and 10 parts by weight of an acid acceptor; and between 1 and 10 parts by weight of an dienophile. The composition can thus comprise 1, 2, 3, 4, 5, 6, 7, 8, 9, or 10 parts by weight of each of the acid acceptor and dienophile.
Optionally, the present composition further comprises between 1 and 5 parts by weight of a polymeric lubricating agent. The composition can thus comprise 1, 2, 3, 4, or 5 parts by weight of polymeric lubricating agent.
The acid acceptor can be any material as defined, and is preferably a soap of fatty acid, such as calcium ricinoleate, or a salt of weak inorganic acid, such as tetrasodium pyrophosphate.
The dienophile can be any material as defined, and is preferably a copolymer havmg an anhydride moiety. More preferred is a terpolymer having olefmic, acrylic, and anhydride comonomers, or a grafted copolymer of maleic anhydride. Most preferred is ethylene/alkyl acrylate/maleic anhydπde terpolymer, such as ethylene/butyl acrylate/maleic anhydride terpolymer.
The polymeric lubricating agent can be any polymeric mateπal which reduces the tendency of the composition to stick to metal parts during extrusion and processing, and is preferably a terpolymer having an acrylate comonomer, or calcium ricinoleate. The terpolymer preferably comprises methyl methacrylate/butyl acrylate/ styrene terpolymer; methyl methacrylate/butyl acrylate/butyl methacrylate terpolymer; or blends thereof. The composition can be made into monolayer or multilayer film, oriented or unoriented, cross-linked or not cross-linked, shπnkable or not shπnkable, by means well known in the art.
In a preferred embodiment, a film comprises a four layer film structure: sealant layer/core layer/ barrier layer/abuse layer where: sealant layer = 90% ethylene vinyl acetate copolymer (EVA) (6% vinyl acetate) +
10% Imear low density polyethylene (LLDPE) which is an ethylene/ octene copolymer (6.5% octene); core layer = ethylene vinyl acetate copolymer (EVA) (15% vinyl acetate); barrier layer = (as defmed in the Tables); and abuse layer = 92.5% ethylene vinyl acetate copolymer (EVA) (9% vinyl acetate) and 7.5% Imear low density polyethylene (LLDPE) which is an ethylene/ octene copolymer (6.5% octene).
The sealant and abuse layers can comprise any suitable polymeric material, but preferably comprise an ethylene alpha olefin copolymer, an ethylene unsaturated ester copolymer, an ethylene acid copolymer, other polyolefins, or any combmation or blend thereof. The core layer, which is optional, can also comprise any of these materials. Ethylene alpha olefin copolymers are preferably copolymers of ethylene with one or more comonomers selected from Ci to Cm alpha olefins. Both heterogeneous and homogeneous materials can be used. Examples of heterogeneous materials include LLDPE (linear low density polyethylene), VLDPE (very low density polyethylene), ULDPE (ultra low density polyethylene), and the like. Homogeneous materials can include metallocene catalyzed polymers (MCP) such as those available from Exxon under the EXACT trademark, and available from Dow under the AFFINITY trademark.
Ethylene unsaturated ester copolymer refers to mateπals such as ethylene vinyl acetate copolymer (EVA), ethylene alkyl acrylate copolymers such as ethylene ethyl acrylate copolymer (EEA), ethylene methyl acrylate copolvmer (EMA), and ethylene n- butyl acrylate copolymer (EnBA). It also refers to ethylene methyl methacrylate copolymer (EMMA).
Ethylene acid copolymer refers to materials such as ethylene acrylic acid copolymer (EAA), and ethylene methacrylic acid copolymer (EMAA). Metal salt neutralized or partially neutralized versions of these materials, such as ionomer, are also included herein. In an alternative embodiment, a film comprises a six layer film structure: sealant layer/ tie/ intermediate layer/barrier layer/ intermediate laver/abuse layer where the sealant, barrier, and abuse layers are as descπbed above for the four layer film, and: tie layer = polymeric adhesive such as acid or acid anhydride-grafted polyolefinic adhesives, such as those sold under the trademarks Bynel, Plexar, Admer, and the like; and intermediate layer = polyamide or copolyamide, polyester or copolyester, or ethylene vinyl alcohol copolymer, or blends of any of these materials.
In another alternative embodiment, a film comprises a five layer film structure: sealant layer/ ntermediate layer/barrier layer/ intermediate layer/abuse layer, where the sealant, intermediate, barrier, and abuse layers are as described above for the six layer film. In the five and six layer embodiments, and for similar films with additional layers, the barrier layer can optionally comprise a vmylidene chloride copolymer without the acid acceptor and/or dienophile described above.
EXAMPLES
Table 1 identifies the compositions used in the examples.
Four compositions of the present invention, as well as five comparative compositions, were tested for 0<sub>2</sub> transmission rates. The results are shown in Table 2. Oxygen transmission were measured by ASTM 3985 usmg Mocon equipment.
Table 3 shows the thermal stability (shown as cross-linking time minutes) of two additional examples, compared with two additional comparative examples.
All examples and comparative examples had the overall film structure EVA + LLDPE/ EVA/ Barrier/ EVA+LLDPE as identified above
TABLE 1
<img file="WO9714554A2_D0001.tif" />
where:
VDC, = vinylidene chloride/ methyl acrylate copolymer (8.5 mole % methyl acrylate);
VDC<sub>2</sub> = vmylidene chloride/ methyl acrylate copolymer (6.0 mole % methyl acrylate);
AAi = acid acceptor = tetrasodium pyrophosphate;
DPi = dienophile = ethylene/butyl acrylate/maleic anhydride terpolymer; PLA, = polymeric lubncatmg agent = methyl methacrylate/butyl acrylate/ butyl methacrylate terpolymer;
P, = epoxidized soybean oil; and
P<sub>2</sub> = diglycidyl ether of bisphenol-A.
In the tables, "phr" means pounds per hundred (weight units) of mateπal. For example, in comparative example 1, the equivalent of 100 pounds of saran was blended with 2 pounds of Pi and 2 pounds of PLAi An equivalent to phr is "parts by weight".
TABLE 2
<img file="WO9714554A2_D0002.tif" /> Table 3 contains thermal stability data. Thermal stability was measured by taking the blend components of each example, and blending them in a torque rheometer at a mixing temperature of 335°F and a rotational speed of 63 rpm (for comparative example 6, and example 5) and at a mixing temperature of 365°F and a rotational speed of 63 rpm (for comparative example 7, and example 6). Thermal stability is monitored as a function of mixmg time. Changes in stability are indicated by changes in mixing torque. The crosslinking time corresponds to the maximum torque reached during the test. Crosslinking is related to molecular weight, which increases as a result of the formation of polymeric networks (an undesirable degradation effect).
Thus, the time in minutes until crosslinking occurred is considered a measure of the thermal stability of the blended composition. Those compositions which included both an acid acceptor (tetrasodium pyrophosphate) and a dienophile (ethylene/butyl acrylate/maleic anhydride terpolymer) showed significant improvements in thermal stability as measured by time to crosslmk.
TABLE 3
COMPOSITION CROSSLINKING TIME
EXAMPLE (phr) (minutes)
Comparative 6 100 VDC, + 17
@ 335° F 1 AA,
5 100 VDC, + 31 @ 335° F 1 AA, <sub>+</sub>
2 DP,
Comparative 7 100 VDC, + 9 @ 365° F 1 AA,
6 100 VDC, + 24 @ 365°F 1 AA, <sub>+</sub>
2 DP,
The examples were made by a tubular extrusion coating process, well known in the art. However, other processes, such as blown film extrusion, flat cast extrusion or coextrusion, lamination, extrusion coating, extrusion lamination and the like can be employed. These alternative processes are well known m the art. The examples were made by irradiating a substrate (sealant and core layer) prior to extrusion coating of the barrier and abuse layers, and prior to orientation. Alternatively, films of the invention can be crosslmked by conventional means such as electronic or chemical crosslinking; post-irradiated, i.e. irradiated after orientation; or made without crosslinking, or without orientation.
Orientation is accomplished by conventional means such as blown bubble or tenterframe. Oπentation ratios can be at any suitable range or ratio, including 1:1 to 6:1 m either or both of the machine and transverse direction
Those skilled in the art will understand that modifications to the present mvention can be made after review of the disclosure Such modifications are deemed to be withm the scope of the invention as claimed.
For example, although four, five, and six layer embodiments are specifically disclosed, those in the art will readily understand that one or more layers can be made mto a film having the benefits described. "Copolymer" as used herein includes polymers with at least two dissimilar comonomers, so that terpolymers, etc. are also included
Contents8
Every citation, both ways
| Document | Relation | Office | Cited during |
|---|---|---|---|
| US9828475B2 | Cited by | United States of America | Applicant |
13 members in 9 offices
Priority claims9
| Document | Office | Kind | Date |
|---|---|---|---|
| 19950538755 | United States of America | – | |
| 53875595 | United States of America | A | |
| 53875595 | United States of America | A | |
| 9616808 | United States of America | W | |
| 9616808 | United States of America | W | |
| 538755 | – | – | – |
| US19950538755 | – | – | – |
| US9616808 | – | – | – |
| WO1996US16808 | – | – | – |
Members13
| Document | Office | Kind | |
|---|---|---|---|
| CA2232944A1 | Canada | A1 | |
| WO9714554A2 | World Intellectual Property Organization (WIPO) | A2 | |
| AU7459796A | Australia | A | |
| WO9714554A3 | World Intellectual Property Organization (WIPO) | A3 | |
| US5679465A | United States of America | A | |
| EP0854894A2This record | European Patent Office (EPO) | A2 | |
| AR003780A1 | Argentina | A1 | |
| AU706535B2 | Australia | B2 | |
| BR9611022A | Brazil | A | |
| EP0854894B1 | European Patent Office (EPO) | B1 | |
| AT313594T | Austria | T | |
| DE69635617D1 | Germany | D1 | |
| DE69635617T2 | Germany | T2 |
41 legal events, as 6 offices reported them to INPADOC
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Numbers
- Publication
- 0854894
- Publication, DOCDB
- 0854894
- Publication, EPODOC
- EP0854894
- Application
- 96936754
- Application, DOCDB
- 96936754
- Application, EPODOC
- EP19960936754
Titles3
- German
- VINYLIDENCHLORIDZUSAMMENSETZUNG UND FILM MIT GROSSER THERMISCHER STABILITÄT
- English
- VINYLIDENE CHLORIDE COMPOSITION AND FILM WITH HIGH THERMAL STABILITY
- French
- COMPOSITION ET FILM DE CHLORURE DE VINYLIDENE A STABILITE THERMIQUE ELEVEE
Classification
- CPC, 13
- B32B27/08
- B32B27/304
- C08K5/0008
- B32B2329/06
- Y10T428/31855
- B32B2439/70
- Y10T428/3175
- Y10T428/31909
- Y10T428/31725
- Y10T428/31797
- Y10T428/31786
- Y10T428/31935
- Y10T428/3192
- IPC, 2
- B32B27 08
- C08K5 00
Designated states16
- Contracting states, 16
- Austria
- Belgium
- Switzerland
- Germany
- Denmark
- Spain
- Finland
- France
- United Kingdom
- Greece
- Ireland
- Italy
- Liechtenstein
- Netherlands (Kingdom of the)
- Portugal
- Sweden