Multilayer films and articles containing multilayer films
Multilayer films with a specific polyethylene composition address the issue of high haze in polyethylene films, achieving low surface haze and water vapor barrier properties, thus enhancing their suitability for transparent and packaging applications.
Patent Information
- Application Number
- JP2022522631
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2019-10-17
- Filing Date
- 2020-10-06
- Publication Date
- 2025-05-22
- Estimated Expiration
- 2040-10-06
AI Technical Summary
Existing polyethylene films used in packaging often have high total haze values, limiting their use in transparent applications and requiring a balance of optical, mechanical, and barrier properties.
Development of multilayer films with at least one outer layer comprising a polyethylene composition characterized by a melt index of 0.3 to 3.0 g/10 min, density of 0.950 to 0.965 g/cm^3, and a molecular weight distribution of 2.2 to 3.5, achieving low surface haze and water vapor barrier properties.
The multilayer films exhibit surface haze of 13.5% or less and water vapor transmission rate of 0.5 g-mil/100 in 2/day or less, providing a desirable balance of optical, mechanical, and barrier properties.
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Abstract
Description
[Technical field]
[0001] The present disclosure relates to multilayer films and articles comprising multilayer films.
[0002] Introduction Polyethylene films are widely used in packaging, such as shrink films, bag applications, laminates, pouches, and protective films. In some cases, polyethylene films can have high total haze values, such as over 30% in multilayer blown films. Such high haze values can limit the ability of those films to be used in transparent film applications, such as bags with see-through windows, surface protection films with see-through optics, and high optical shrink films.
[0003] In addition, in some applications it is also important to have good mechanical properties (e.g., stiffness or modulus for stand-alone pouches) and / or low water vapor transmission rates (e.g., applications where barrier properties are important).
[0004] There remains a need for new multilayer films that can provide a desirable balance of optical, mechanical, and / or barrier properties. Summary of the Invention
[0005] The present invention provides, in some embodiments, multilayer films having desirable optical, mechanical, and / or barrier properties. In some embodiments, the multilayer films of the present invention have particularly low surface haze values. In some embodiments, the multilayer films of the present invention have particularly low surface haze values while maintaining desirable mechanical properties. According to some embodiments of the present invention, the multilayer films have particularly low surface haze and / or total haze values while providing desirable water vapor barrier properties.
[0006] In one aspect, the present invention provides a multilayer film comprising at least one outer layer comprising at least 50 wt. % of a polyethylene composition comprising the reaction product of ethylene and, optionally, one or more alpha-olefin comonomers, the polyethylene composition having the following characteristics: a. Melt index (I) of 0.3 to 3.0 g / 10 min 2 ), b.0.950~0.965g / cm 3 density of, c. Melt flow rate (I 10 / I 2 ), and d. characterized by a molecular weight distribution (MWD) of 2.2 to 3.5; The multilayer film has a thickness of at least 2 mils, the multilayer film comprises at least 50 weight percent polyethylene, the multilayer film exhibits a surface haze of 13.5% or less when measured in accordance with ASTM 1003-07, and the multilayer film has a surface haze of 0.7 g-mil / 100 in when measured in accordance with ASTM F1249-06 at a temperature of 38° C. and 100% relative humidity. 2 / day or less water vapor transmission rate.
[0007] In one aspect, the present invention provides a multilayer film comprising at least one outer layer comprising at least 50 wt. % of a polyethylene composition comprising the reaction product of ethylene and, optionally, one or more alpha-olefin comonomers, the polyethylene composition having the following characteristics: a. Melt index (I) of 0.3 to 3.0 g / 10 min 2 ), b.0.950~0.965g / cm 3 density of, c. Melt flow rate (I 10 / I 2 ), and d. characterized by a molecular weight distribution (MWD) of 2.2 to 3.5; The multilayer film has a thickness of at least 2 mils, the multilayer film comprises at least 90% by weight polyethylene, the multilayer film exhibits a surface haze of 13.5% or less when measured in accordance with ASTM 1003-07, and the multilayer film has a surface haze of 0.5 g-mil / 100 in when measured in accordance with ASTM F-1249-06 at a temperature of 38° C. and 100% relative humidity. 2 / day, and the total amount of ethylene vinyl alcohol copolymer and polyamide in the multilayer film is less than 0.5 weight percent based on the total weight of the film.
[0008] In one aspect, the present invention provides a multilayer film comprising at least one outer layer comprising at least 50 wt. % of a polyethylene composition comprising the reaction product of ethylene and, optionally, one or more alpha-olefin comonomers, the polyethylene composition having the following characteristics: a. Melt index (I) of 0.3 to 3.0 g / 10 min 2 ), b.0.950~0.965g / cm 3 density of, c. Melt flow rate (I 10 / I 2 ), and d. characterized by a molecular weight distribution (MWD) of 2.2 to 3.5; The multilayer film has a thickness of at least 2 mils, the multilayer film comprises at least 90% by weight polyethylene, the multilayer film exhibits a total haze of 30% or less when measured in accordance with ASTM 1003-07, and the multilayer film has a total haze of 0.5 g-mil / 100 in when measured in accordance with ASTM F-1249-06 at a temperature of 38° C. and 100% relative humidity. 2 / day, and the total amount of ethylene vinyl alcohol copolymer and polyamide in the multilayer film is less than 0.5 weight percent based on the total weight of the film.
[0009] As discussed below, the present invention also provides articles formed from any of the inventive multilayer films disclosed herein.
[0010] These and other embodiments are described in greater detail in the detailed description. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0011] Unless stated to the contrary, implied by context, or customary in the art, all parts and percentages are by weight, all temperatures are in degrees Celsius, and all test methods are as of the filing date of this disclosure.
[0012] As used herein, the term "composition" refers to a mixture of materials that comprise the composition, as well as reaction products and decomposition products formed from the materials of the composition.
[0013] "Polymer" means a polymeric compound prepared by polymerizing monomers, whether of the same or different types. Thus, the generic term polymer includes the terms homopolymer (used to refer to polymers prepared from only one type of monomer, with the understanding that trace amounts of impurities may be incorporated into the polymer structure), and includes the term interpolymer, as defined below. Trace amounts of impurities (e.g., catalyst residues) may be incorporated into and / or within the polymer. The polymer may be a single polymer, a polymer blend, or a polymer mixture, including a mixture of polymers formed in situ during polymerization.
[0014] As used herein, the term "interpolymer" refers to a polymer prepared by the polymerization of at least two different types of monomers. Thus, the generic term interpolymer includes copolymers (used to refer to polymers prepared from two different types of monomers) and polymers prepared from three or more different types of monomers.
[0015] As used herein, the terms "olefin-based polymer" or "polyolefin" refer to a polymer that contains, in polymerized form (based on the weight of the polymer), a majority amount of olefin monomer, such as ethylene or propylene, and may optionally contain one or more comonomers.
[0016] As used herein, the term "ethylene / α-olefin interpolymer" refers to an interpolymer that contains, in polymerized form, a majority (>50 mol%) of units derived from ethylene monomer and the remainder being derived from one or more α-olefins. Typical α-olefins used to form the ethylene / α-olefin interpolymers are C 3 ~C 10 It is an alkene.
[0017] As used herein, the term "ethylene / α-olefin copolymer" refers to a copolymer that contains, in polymerized form, a majority amount (>50 mol%) of ethylene monomer and an α-olefin as the only two monomers.
[0018] As used herein, the term "α-olefin" refers to an alkene with a double bond in the first or alpha (α) position.
[0019] "Polyethylene" or "ethylene-based polymer" shall mean a polymer containing a majority (>50 mol%) of units derived from ethylene monomers. This includes polyethylene homopolymers, ethylene / α-olefin interpolymers, and ethylene / α-olefin copolymers. Common forms of polyethylene known in the art include low density polyethylene (LDPE), linear low density polyethylene (LLDPE), very low density polyethylene (ULDPE), very low density polyethylene (VLDPE), medium density polyethylene (MDPE), high density polyethylene (HDPE), reinforced polyethylene, polyethylene elastomers, and polyethylene plastomers. These polyethylene materials are generally known in the art, but the following explanation may be helpful in understanding the differences between some of these different polyethylene resins.
[0020] The term "LDPE" may also be referred to as "high pressure ethylene polymer" or "highly branched polyethylene" and is defined to mean that the polymer is partially or fully homopolymerized or copolymerized in an autoclave or tubular reactor at pressures in excess of 14,500 psi (100 MPa) by the use of free radical initiators such as peroxides (see, for example, U.S. Pat. Nos. 8,916,667, 8,871,887, 8,822,601, 9,228,036, and 9,765,160, which are incorporated herein by reference). LDPE resins typically have a viscosity of 0.916 to 0.935 g / cm. 3 It has a density in the range of
[0021] The term "LLDPE" includes both resins made using single-site catalysts including, but not limited to, conventional Ziegler-Natta and chromium catalyst systems, as well as bis-metallocene catalysts (sometimes referred to as "m-LLDPE"), constrained geometry catalysts (CGC), and molecular catalysts. The resins include linear, substantially linear, or non-uniform polyethylene copolymers or homopolymers. LLDPE contains shorter chain branches than LDPE and includes substantially linear ethylene polymers further defined in U.S. Patent Nos. 5,272,236, 5,278,272, 5,582,923, and 5,733,155, homogeneous branched linear ethylene polymer compositions such as those in U.S. Patent No. 3,645,992, non-uniformly branched ethylene polymers such as polymers prepared according to the process disclosed in U.S. Patent No. 4,076,698, and / or blends thereof (such as those disclosed in US3,914,342 or US5,854,045). LLDPE can be made by gas phase, liquid phase, or slurry polymerization, or any combination thereof, using any type of reactor or reactor configuration known in the art.
[0022] The term "MDPE" refers to polyethylene having a density of 0.926 - 0.940 g / cm 3 . "MDPE" is typically made using a chromium or Ziegler-Natta catalyst, or using single-site catalysts including, but not limited to, bis-metallocene catalysts and constrained geometry catalysts, and typically has a molecular weight distribution ("MWD") greater than 2.5.
[0023] The term "HDPE" generally refers to polyethylene having a density greater than about 0.940 g / cm 3 and up to about 0.970 g / cm 3 , prepared using a Ziegler-Natta catalyst, a chromium catalyst, or a single-site catalyst including, but not limited to, bis-metallocene catalysts and constrained geometry catalysts.
[0024] The term "ULDPE" refers to polyethylene that is generally prepared using single-site catalysts, including but not limited to Ziegler-Natta, chromium, or bis-metallocene and constrained geometry catalysts, with a viscosity of 0.880-0.912 g / cm 3 It refers to polyethylene having a density of
[0025] "Polyethylene plastomer / elastomer" refers to a polyethylene plastomer or elastomer that is made up of units derived from ethylene and at least one C 3 -C 10 α-olefin comonomer or at least one C 4 -C 8 α-olefin comonomer or at least one C 6 -C 8 It is a substantially linear or linear ethylene / α-olefin copolymer containing a uniform distribution of short chain branches including units derived from an α-olefin comonomer. The polyethylene plastomer / elastomer has a viscosity of 0.870 g / cm 3 , or 0.880 g / cm 3 , or 0.890 g / cm 3 From 0.900g / cm 3 or 0.902 g / cm 3 , or 0.904 g / cm 3 , or 0.909 g / cm 3 , or 0.910 g / cm 3 , or 0.917 g / cm 3 Non-limiting examples of ethylene plastomers / elastomers include AFFINITY™ plastomers and elastomers (available from The Dow Chemical Company), EXACT Plastomers (available from ExxonMobil Chemical), Tafmer (available from Mitsui), Nexlene™ (available from SK Chemicals Co.), and Lucene (available from LG Chem Ltd.).
[0026] "Blend", "polymer blend" and like terms refer to a composition of two or more polymers. Such blends may or may not be miscible. Such blends may or may not be phase separated. Such blends may or may not contain one or more domain configurations as determined from transmission electron spectroscopy, light scattering, X-ray scattering, and any other method known in the art. Blends are not laminates, although one or more layers of a laminate may contain the blend. Such blends may be prepared as dry blends, formed in situ (e.g., in a reactor), as melt blends, or using other techniques known to those skilled in the art.
[0027] The term "adhesive contact" and similar terms mean that one surface of one layer and one surface of another layer contact and bond to one another such that one layer cannot be removed from the other layer without damaging the interlayer surfaces (i.e., the contacting surfaces) of both layers.
[0028] The terms "comprising," "including," "having," and their derivatives are not intended to exclude the presence of any additional components, steps, or procedures, whether they are specifically disclosed or not. For the avoidance of any doubt, all compositions claimed through the use of the term "comprising" may include any additional additives, adjuvants, or compounds, whether polymeric or otherwise, unless otherwise stated to the contrary. In contrast, the term "consisting essentially of" excludes from the scope of any ensuing description any other components, steps, or procedures, except those that are not essential to operability. The term "consisting of" excludes any components, steps, or procedures not specifically defined or listed.
[0029] In one aspect, the present invention provides a multilayer film comprising at least one outer layer comprising at least 50 wt. % of a polyethylene composition comprising the reaction product of ethylene and, optionally, one or more alpha-olefin comonomers, the polyethylene composition having the following characteristics: a. Melt index (I) of 0.3 to 3.0 g / 10 min 2 ), b.0.950~0.965g / cm 3 density of, c. Melt flow rate (I 10 / I 2 ), and d. characterized by a molecular weight distribution (MWD) of 2.2 to 3.5; The multilayer film has a thickness of at least 2 mils, the multilayer film comprises at least 50 weight percent polyethylene, the multilayer film exhibits a surface haze of 13.5% or less when measured in accordance with ASTM 1003-07, and the multilayer film has a surface haze of 0.7 g-mil / 100 in when measured in accordance with ASTM F1249-06 at a temperature of 38° C. and 100% relative humidity. 2 In some embodiments, the polyethylene composition has a melt index (I 2 ) is 0.5 to 2.5 g / 10 min, and in other embodiments, 1.0 to 2.0 g / 10 min. In some embodiments, the density of the polyethylene composition is 0.950 to 0.960 g / cm 3 and in another embodiment, 0.952 to 0.958 g / cm 3 In some embodiments, the multilayer film has a thickness of at least 3 mils, and in other embodiments, up to 5 mils.
[0030] In some embodiments, the multilayer film further includes an inner layer, and the inner layer includes an ethylene vinyl alcohol copolymer or a polyamide. In some embodiments, the multilayer film includes 30 weight percent or less of an ethylene vinyl alcohol copolymer and a polyamide, based on the total weight of the multilayer film. In some embodiments, the multilayer film includes less than 5 weight percent of an ethylene vinyl alcohol copolymer and a polyamide.
[0031] In another embodiment, the multilayer film of the present invention includes at least one outer layer comprising a polyethylene composition comprising at least 50 weight percent of a reaction product of ethylene and optionally one or more alpha-olefin comonomers, and the polyethylene composition has the following properties: a. A melt index (I 2 ) of 0.3 to 3.0 g / 10 min, b. A density of 0.950 to 0.965 g / cm 3 , c. A melt flow ratio (I 10 / I 2 ) of 6.3 to 7.5, and d. A molecular weight distribution (MWD) of 2.2 to 3.5, The multilayer film has a thickness of at least 2 mils, the multilayer film includes at least 90 weight percent polyethylene, the multilayer film exhibits a surface haze of 13.5% or less when measured according to ASTM 1003-07, and the multilayer film exhibits a water vapor transmission rate of 0.5 g-mil / 100 in 2 / day or less when measured according to ASTM F-1249-06 at a temperature of 38°C and 100% relative humidity. The total amount of ethylene vinyl alcohol copolymer and polyamide in the multilayer film is less than 0.5 weight percent based on the total weight of the film. In some embodiments, the multilayer film does not include an ethylene vinyl alcohol copolymer and a polyamide.
[0032] In another embodiment, the multilayer film of the present invention comprises at least one outer layer comprising at least 50 wt. % of a polyethylene composition comprising the reaction product of ethylene and, optionally, one or more alpha-olefin comonomers, wherein the polyethylene composition has the following characteristics: a. Melt index (I) of 0.3 to 3.0 g / 10 min 2 ), b.0.950~0.965g / cm 3 density of, c. Melt flow rate (I 10 / I 2 ), and d. characterized by a molecular weight distribution (MWD) of 2.2 to 3.5; The multilayer film has a thickness of at least 2 mils, the multilayer film comprises at least 90% by weight polyethylene, the multilayer film exhibits a total haze of 30% or less when measured in accordance with ASTM 1003-07, and the multilayer film has a total haze of 0.5 g-mil / 100 in when measured in accordance with ASTM F-1249-06 at a temperature of 38° C. and 100% relative humidity. 2 In some embodiments, the polyethylene composition exhibits a water vapor transmission rate of less than or equal to 100 / day, and the total amount of ethylene vinyl alcohol copolymer and polyamide in the multilayer film is less than 0.5 weight percent based on the total weight of the film. 2 ) is 0.5 to 2.5 g / 10 min, and in other embodiments, 1.0 to 2.0 g / 10 min. In some embodiments, the density of the polyethylene composition is 0.950 to 0.960 g / cm 3 and in another embodiment, 0.952 to 0.958 g / cm 3 In some embodiments, the multilayer film has a thickness of at least 3 mils, and in other embodiments, up to 5 mils.
[0033] The multilayer film, in some embodiments, comprises at least 95 weight percent polyethylene. In some embodiments, the multilayer film comprises at least 15 weight percent polyethylene composition, based on the total weight of the multilayer film.
[0034] In some embodiments, the polyethylene composition used in the multilayer film of the present invention is formed by solution polymerization in at least one reactor in the presence of a catalyst composition comprising a multi-metallic procatalyst. The solution polymerization, in some such embodiments, occurs in a single reactor.
[0035] Some embodiments of the present invention relate to an article. The article according to the embodiment of the present invention comprises a multilayer film according to any of the embodiments of the present invention disclosed herein. The article of the present invention may comprise a combination of two or more embodiments described herein.
[0036] Polyethylene Composition In embodiments herein, the multilayer film includes an outer layer comprising at least 50 weight percent of the polyethylene composition further described herein. All individual values and subranges are included and disclosed herein. For example, the outer layer of the film may comprise 50 to 100 percent, 55 to 100 percent, 60 to 100 percent, 65 to 100 percent, 70 to 100 percent, 75 to 100 percent, 80 to 100 percent, 85 to 100 percent, 90 to 100 percent, or 95 to 100 percent of the polyethylene composition based on the total weight of the polymers present in the outer layer of the film.
[0037] The polyethylene composition comprises the reaction product of ethylene and, optionally, one or more alpha-olefin comonomers. The polyethylene composition comprises greater than 50 wt.% of units derived from ethylene and less than 30 wt.% of units derived from one or more alpha-olefin comonomers. In some embodiments, the polyethylene composition may be a homopolymer and may comprise 100 wt.% of units derived from ethylene. In some embodiments, the polyethylene composition comprises (a) 75 wt.% or more, 90 wt.% or more, 95 wt.% or more, 99 wt.% or more, 99.5 wt.% or more of units derived from ethylene, and (b) optionally, less than 25 wt.%, less than 10 wt.%, less than 5 wt.%, less than 1 wt.%, or less than 0.5 wt.% of units derived from one or more alpha-olefin comonomers. Comonomer content may be measured using any suitable technique, such as techniques based on nuclear magnetic resonance ("NMR") spectroscopy, for example, by 13C NMR analysis as described in U.S. Pat. No. 7,498,282, which is incorporated herein by reference.
[0038] Suitable comonomers may typically include alpha-olefin comonomers having 20 or fewer carbon atoms. The one or more alpha-olefins may be selected from the group consisting of C3-C20 acetylenically unsaturated monomers and C4-C18 diolefins. For example, the alpha-olefin comonomers may have 3-10 carbon atoms or 3-8 carbon atoms. Exemplary alpha-olefin comonomers include, but are not limited to, propylene, 1-butene, 1-pentene, 1-hexene, 1-heptene, 1-octene, 1-nonene, 1-decene, and 4-methyl-1-pentene. The one or more alpha-olefin comonomers may be selected, for example, from the group consisting of propylene, 1-butene, 1-hexene, and 1-octene, or alternatively, from the group consisting of 1-butene, 1-hexene, and 1-octene.
[0039] In embodiments herein, the polyethylene composition is formed by solution polymerization in at least one reactor in the presence of a catalyst composition comprising a multimetallic procatalyst. In one or more embodiments, the polyethylene composition is formed by solution polymerization in at least one reactor in the presence of a catalyst composition comprising a multimetallic procatalyst comprising three or more transition metals. In some embodiments, the solution polymerization occurs in a single reactor. The multimetallic procatalyst used to produce the reaction product is at least trimetallic, but may also comprise four or more transition metals, which may then be more comprehensively defined as multimetallic. These three or more transition metals are selected prior to the production of the catalyst. In certain embodiments, the multimetallic catalyst comprises titanium as an element.
[0040] The catalyst composition may be prepared by first starting with the preparation of a conditioned magnesium halide support. The preparation of the conditioned magnesium halide support begins with the selection of an organomagnesium compound or a complex containing an organomagnesium compound. Such a compound or complex is desirably soluble in an inert hydrocarbon diluent. The concentration of the components is preferably such that when the active halide, such as a metal halide or non-metal halide, and the magnesium complex are combined, the resulting slurry is about 0.005 to about 0.25 moles of magnesium (moles / liter). Examples of suitable inert organic diluents include liquefied ethane, propane, isobutane, n-butane, n-hexane, various isomeric hexanes, isooctane, paraffinic mixtures of alkanes having 5 to 10 carbon atoms, cyclohexane, methylcyclopentane, dimethylcyclohexane, dodecane, industrial solvents composed of saturated or aromatic hydrocarbons, such as kerosene, naphtha, and combinations thereof, especially when free of any olefinic compounds and other impurities, and especially those having a boiling point in the range of about -50° C. to about 200° C. Ethylbenzene, cumene, decalin, and combinations thereof are also included as suitable inert diluents.
[0041] Suitable organomagnesium compounds and complexes may include, for example, magnesium C2-C8 alkyl and aryl, magnesium alkoxides and aryloxides, carboxylated magnesium alkoxides, and carboxylated magnesium aryloxides. Preferred sources of magnesium moieties may include magnesium C2-C8 alkyl and C1-C4 alkoxides. Such organomagnesium compounds or complexes may be reacted with a metal or nonmetal halide source, such as chloride, bromide, iodide, or fluoride, to make magnesium halide compounds under suitable conditions. Such conditions may include a temperature ranging from -25°C to 100°C, alternatively 0°C to 50°C; a time ranging from 1 to 12 hours, alternatively 4 to 6 hours; or both. The result is a magnesium halide-based support.
[0042] The magnesium halide support is then reacted with a selected coordinating compound containing an element selected from the group consisting of boron, aluminum, gallium, indium, and tellurium under conditions suitable to form a conditioned magnesium halide support. The compound and the magnesium halide support are then contacted under conditions sufficient to obtain a conditioned magnesium halide support. Such conditions may include a temperature ranging from 0° C. to 50° C., or alternatively, from 25° C. to 35° C.; a time ranging from 4 to 24 hours, or alternatively, from 6 to 12 hours; or both. The coordinating compound has a specific molar ratio configuration, which is believed to be an important feature in ensuring desirable catalytic performance. Specifically, the procatalyst desirably exhibits a molar ratio of magnesium to coordinating compound that ranges from 3:1 to 6:1. Without wishing to be bound by any mechanistic theory, it is suggested that this aging serves to promote or enhance the adsorption of additional metals onto the support.
[0043] Once the conditioned support is prepared and suitably aged, it is contacted with a titanium compound, which may be added individually or as a mixture with a "second metal". In certain preferred embodiments, a titanium halide or titanium alkoxide, or a combination thereof, may be selected. Conditions may include a temperature in the range of 0° C. to 50° C., alternatively 25° C. to 35° C.; a time period of 3 hours to 24 hours, alternatively 6 hours to 12 hours; or both. The result of this step is the adsorption of at least a portion of the titanium compound onto the conditioned magnesium halide support.
[0044] Finally, one or two additional metals, conveniently referred to herein as the "second metal" and "third metal", are also adsorbed onto the magnesium-based support. The "second metal" and "third metal" are independently selected from zirconium (Zr), hafnium (Hf), vanadium (V), niobium (Nb), tantalum (Ta), chromium (Cr), molybdenum (Mo), and tungsten (W). These metals may be incorporated in any of a variety of ways known to those skilled in the art, but contacting the titanium-containing conditioned magnesium-based halide support with the selected second and third metals in the liquid phase, such as, for example, a suitable hydrocarbon solvent, will generally be preferred to ensure that the additional metals are precipitated to form what may be referred to herein as a "procatalyst", which is a multimetallic procatalyst.
[0045] The multimetallic procatalysts have specific molar ratio configurations, which are believed to be important features in ensuring the desired polymer properties attributable to catalysts made from the procatalysts. Specifically, the procatalysts desirably exhibit molar ratios of magnesium to titanium and combinations of second and third metals ranging from 30:1 to 5:1 under conditions sufficient to form the multimetallic procatalyst. Thus, the overall molar ratio of magnesium to titanium ranges from 8:1 to 80:1. In some embodiments, the Al:Ti ratio is 6-15, 7-14, 7-13, 8-13, 9-13, or 9-12.
[0046] Once the procatalyst is formed, it can be used to form the final catalyst by combining it with a cocatalyst consisting of at least one organometallic compound such as an alkyl or haloalkyl of aluminum, an alkylaluminum halide, a Grignard reagent, an alkali metal aluminum hydride, an alkali metal borohydride, an alkali metal hydride, or an alkaline earth metal hydride. The formation of the final catalyst from the reaction of the procatalyst with the organometallic cocatalyst can be carried out in situ or immediately prior to entering the polymerization reactor. Thus, the combination of the cocatalyst with the procatalyst can occur under a wide variety of conditions. Such conditions can include, for example, contacting them under an inert atmosphere such as nitrogen, argon or other inert gas at a temperature in the range of 0°C to 250°C, preferably in the range of 15°C to 200°C. In preparing the catalytic reaction product, it is not necessary to separate the hydrocarbon soluble components from the hydrocarbon insoluble components. The contact time between the procatalyst and the cocatalyst can desirably be in the range of, for example, 0 to 240 seconds, preferably 5 to 120 seconds. Various combinations of these conditions can be used.
[0047] In embodiments described herein, the polyethylene composition may have a metal catalyst residue of at least three different metal residues in a combined total amount of 1 part by weight or more per million parts of polyethylene polymer, the at least three metal residues being selected from the group consisting of titanium, zirconium, hafnium, vanadium, niobium, tantalum, chromium, molybdenum, tungsten, and combinations thereof, and each of the at least three metal residues being present at 0.2 ppm or more, e.g., in the range of 0.2 to 5 ppm. All individual values and subranges from 0.2 ppm or more are included herein and disclosed herein, for example, the polyethylene composition may further comprise 2 parts by weight or more per million parts of the polyethylene composition of at least three metal residues remaining from a multi-metal polymerization catalyst.
[0048] In some embodiments, the polyethylene composition comprises at least 0.75 ppm V (vanadium). All individual values and subranges from at least 0.75 ppm V are included and disclosed herein, for example, the lower limit of V in the polyethylene composition can be 0.75, 1, 1.1, 1.2, 1.3, or 1.4 ppm, and the upper limit of V in the polyethylene composition can be 5, 4, 3, 2, 1.9, 1.8, 1.7, 1.6, 1.5, or 1 ppm. The vanadium catalytic metal residual concentration of the polyethylene composition can be measured using the neutron activation method for the metal described below.
[0049] In some embodiments, the polyethylene composition comprises at least 0.3 ppm Zr (zirconium). All individual values and subranges of at least 0.3 ppm Zr are included and disclosed herein. For example, the lower limit of Zr in the polyethylene composition can be 0.3, 0.4, 0.5, 0.6, or 0.7 ppm. In yet another embodiment, the upper limit of Zr in the polyethylene composition can be 5, 4, 3, 2, 1, 0.9, 0.8, or 0.7 ppm. The zirconium catalyst metal residual concentration of the polyethylene composition can be measured using the neutron activation method of the metal described below.
[0050] In one or more embodiments described herein, the polyethylene composition has a viscosity of 0.950 g / cm 3 ~0.965g / cm 3 It has a density of 0.950 g / cm 3 ~0.965g / cm 3 All individual values and subranges are included and disclosed herein. For example, in some embodiments, the polyethylene composition has a viscosity of 0.950, 0.952, 0.955, 0.956, or 0.957 g / cm 3 from the lower limit of 0.965, 0.963, 0.962, or 0.960 g / cm 3 In other embodiments, the polyethylene composition may have a density ranging from 0.950 to 0.965 g / cm 3 , 0.950~0.962g / cm 3, 0.950~0.960g / cm 3 , 0.952~0.965g / cm 3 , 0.952~0.962g / cm 3 , 0.952~0.960g / cm 3 , or 0.952~0.958g / cm 3 The density of the sintered body may be 0.01 to 0.01.
[0051] In addition to density, the polyethylene composition has a melt index (I 2 All individual values and subranges from 0.3 g / 10 min to 3.0 g / 10 min are included and disclosed herein. For example, in some embodiments, the polyethylene composition has a melt index (I) ranging from a lower limit of 0.3, 0.4, 0.5, 0.6, 0.7, 0.8, or 0.9 minutes to an upper limit of 3.0, 2.9, 2.8, 2.7, 2.6, 2.5, 2.4, 2.3, 2.2, 2.1, 2.0, 1.9, 1.8, 1.7, 1.6, 1.5, 1.4, 1.3, 1.2, 1.1, 1.0, or 0.9 g / 10 minutes. 2 In another embodiment, the polyethylene composition may have a melt index (I) of 0.5 g / 10 min to 2.5 g / 10 min. 2 In a further embodiment, the polyethylene composition may have a melt index (I) of from 1.0 g / 10 min to less than 2.0 g / 10 min. 2 ) may have a melt index (I 2 ) can be measured according to ASTM D1238 (190° C. and 2.16 kg).
[0052] Density and Melt Index (I 2 In addition, the polyethylene composition has a melt flow rate (I 10 / I 2All individual values and subranges from 6.3 to 7.5 are included and disclosed herein. For example, in some embodiments, the polyethylene composition has a melt flow rate (I) ranging from a lower limit of 6.3, 6.4, 6.5, 6.6, 6.7, 6.8, or 6.9 to an upper limit of 7.5, 7.4, 7.3, 7.2, 7.1, or 7.0. 10 / I 2 In other embodiments, the polyethylene composition may have a melt flow rate (I) of 6.3 to 7.3, 6.5 to 7.3, or 6.5 to 7.5. 10 / I 2 ) may have a melt index (I 10 ), can be measured according to ASTM D1238 (190° C. and 10.0 kg).
[0053] Density, Melt Index (I 2 ), and melt flow rate (I 10 / I 2 ), the polyethylene composition has a molecular weight distribution (Mw / Mn) of 2.2 to 3.5. All individual values and subranges from 2.2 to 3.5 are included and disclosed herein. For example, the polyethylene composition may have a Mw / Mn ratio from a lower limit of 2.2, 2.3, 2.4, 2.5, 2.6, 2.7, or 2.8 to an upper limit of 3.5, 3.4, 3.3, 3.2, 3.1, 3.0, or 2.9. In some embodiments, the polyethylene composition may have a Mw / Mn ratio of 2.2 to 3.5, 2.3 to 3.5, 2.4 to 3.5, 2.4 to 3.2, 2.5 to 3.2, or 2.6 to 3.1. In other embodiments, the polyethylene composition may have a Mw / Mn ratio of 2.3 to 3.0, 2.4 to 3.0, 2.5 to 3.0, 2.6 to 3.0, or 2.7 to 3.0. The molecular weight distribution is the weight average molecular weight (M w ) logarithm average molecular weight (M n ) ratio (i.e., M w / M n ) and can be measured by gel permeation chromatography techniques.
[0054] Density, Melt Index (I 2), Melt Flow Rate (I 10 / I 2 In addition to the molecular weight distribution (Mw / Mn), the polyethylene composition may have a vinyl unsaturation of greater than 0.12 vinyl per 1000 carbon atoms ("1000C"). All individual values and subranges from greater than 0.12 vinyl per 1000 carbon atoms are included and disclosed herein. In some embodiments, the polyethylene composition may have a vinyl unsaturation of greater than 0.13, 0.14, 0.15, or 0.16 or greater per 1000 carbon atoms. In other embodiments, the polyethylene composition may have a vinyl unsaturation of greater than 0.12, 0.13, 0.14, 0.15, 0.16, or 0.17, ranging from lower limits of greater than 0.12, 0.13, 0.14, 0.15, 0.16, or 0.17, to upper limits of 0.50, 0.45, 0.40, 0.35, 0.30, 0.26, 0.25, 0.24, 0.23, 0.22, 0.21, or 0.20, per 1000 carbon atoms. In further embodiments, the polyethylene composition may have greater than 0.12 to 0.50, 0.13 to 0.45, 0.14 to 0.40, 0.14 to 0.35, 0.14 to 0.30, 0.14 to 0.25, or 0.15 to 0.22 vinyl per 1000 carbon atoms.
[0055] In some embodiments, the outer layer comprising the polyethylene composition described above may further comprise other polymers in addition to the polyethylene composition. For example, in some embodiments, in addition to the first composition described above, the first layer may further comprise LDPE, HDPE, MDPE, LLDPE, and polyolefin plastomer / elastomer. For example, LDPE may be included in the outer layer to facilitate processing. In some embodiments where LDPE is used in the outer layer, the outer layer may comprise 1 to less than 50 weight percent LDPE, based on the total weight of the outer layer. In some embodiments where LDPE is used in the outer layer, the outer layer may comprise 5 to 20 weight percent LDPE, based on the total weight of the outer layer. Examples of commercially available LDPE that may be used in some embodiments of the invention include LDPE available from The Dow Chemical Company, such as AGLITY™ 1021. Examples of commercially available HDPE that may be used in some embodiments of the invention include HDPE from The Dow Chemical Company, such as ELITE™ 5960G1 reinforced polyethylene resin HDPE, and Surpass HPs 167 from Nova Chemicals Company. Examples of commercially available LLDPE that may be used in some embodiments of the present invention include LLDPE available from The Dow Chemical Company, such as ELITE™ 5400 G reinforced polyethylene resin LLDPE and DOWLEX™ GM 8070G LLDPE. Examples of commercially available MDPE that may be used in some embodiments of the present invention include MDPE available from The Dow Chemical Company, such as ELITE™ 5940G reinforced polyethylene resin MDPE and DOWLEX™ 2038.68G. Examples of commercially available polyolefin plastomers / elastomers that may be used in some embodiments of the present invention include polyolefin plastomers / elastomers available from The Dow Chemical Company, such as its AFFINITY™ polyolefin plastomers / elastomers.
[0056] Small amounts of other polymers may also be used in the outer layer in some embodiments, hi some embodiments, such polymers may be provided in amounts less than 5 weight percent.
[0057] The outer layer may be prepared from the components discussed above using techniques known to those skilled in the art based on the teachings herein. In some embodiments, the components of the outer layer may be melt blended and formed into pellets. Such pellets may then be provided to a film converter for use in the outer layer of a multilayer film. In some embodiments, the components may be blended in-line in an extruder or similar film forming equipment to form the outer layer in a multilayer film.
[0058] In some embodiments, the multilayer film comprises at least 15 wt.% of a polyethylene composition disclosed herein (e.g., the polyethylene compositions described above and IE1 and IE2 in the Examples), based on the total weight of the polymers present in the multilayer film. In some embodiments, the multilayer film comprises up to 80 wt.% of a polyethylene composition disclosed herein, based on the total weight of the multilayer film. All individual values and subranges are included and disclosed herein. For example, the film may comprise 10 to 80 percent, 20 to 60 percent, 30 to 70 percent, 20 to 50 percent, 30 to 50 percent of a polyethylene composition, based on the total weight of the polymers present in the film.
[0059] Other layers The multilayer film of the present invention may include various other layers in addition to the first outer layer. The number of layers in the multilayer film may depend on many factors, including, for example, the desired properties of the film, the end use of the film, the desired thickness of the film, and other factors. Examples of such layers are discussed further herein. In some embodiments, the multilayer film of the present invention includes up to 13 layers. In various embodiments, the multilayer film includes 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, or 13 layers.
[0060] In some embodiments, the multilayer film of the present invention comprises a second outer layer that is a sealant layer. The sealant layer can be used to form an article or packaging material by using the sealant layer to adhere the film to another film, a laminate, or to itself. In some embodiments, the sealant layer can comprise any resin known to those skilled in the art to be useful as a sealant layer. Examples of polymers that may be used to form the sealant layer in some embodiments of the present invention include, but are not limited to, LDPE (e.g., DOW™ LDPE and AGILITY™ LDPE, available from The Dow Chemical Company), LLDPE (e.g., DOWLEX™ LLDPE resins, available from The Dow Chemical Company), polyolefin plastomers or elastomers (e.g., AFFINITY™ plastomers and elastomers, available from The Dow Chemical Company), ethylene vinyl acetate copolymers (e.g., ELVAX™ ethylene vinyl acetate copolymers, available from The Dow Chemical Company), and ionomers of ethylene acid copolymers (e.g., SURLYN™ ionomers, available from The Dow Chemical Company).
[0061] In some embodiments, depending on the desired application or requirements of the multilayer film, the film may include other layers, such as barrier layers. For example, for some applications, it may be desirable for the film to provide a barrier against moisture, light, fragrance / odor, and / or oxygen transmission. Such barrier layers may include, for example, polyamide, ethylene vinyl alcohol, and other polymers used in barrier layers known to those skilled in the art. In such embodiments, the inner layer of the multilayer film includes an ethylene vinyl alcohol copolymer or polyamide. In some such embodiments, the multilayer film includes 30 weight percent or less of ethylene vinyl alcohol copolymer and polyamide, based on the total weight of the multilayer film. In some embodiments, the multilayer film includes 20 weight percent or less of ethylene vinyl alcohol copolymer and polyamide, based on the total weight of the multilayer film. In some embodiments, the multilayer film includes 10 weight percent or less of ethylene vinyl alcohol copolymer and polyamide, based on the total weight of the multilayer film. In some embodiments, the multilayer film includes less than 5 weight percent of ethylene vinyl alcohol copolymer and polyamide, based on the total weight of the multilayer film.
[0062] In embodiments including an inner layer having an ethylene vinyl alcohol copolymer or polyamide, one or more tie layers may be included in the film to adhere the barrier layer to the polyethylene-based layer as known to those of skill in the art based on the teachings herein. Generally, a wide variety of tie layer compositions may be used to form the tie layer, as known to those of skill in the art based on the teachings herein.
[0063] In some embodiments, barrier properties may be less important for the multilayer film. In some such embodiments, the multilayer film may comprise less than 0.5 weight percent of ethylene vinyl alcohol copolymer and polyamide, based on the total weight of the film. In some embodiments, the multilayer film comprises less than 0.1 weight percent of ethylene vinyl alcohol copolymer and polyamide, based on the total weight of the film. In some embodiments, the multilayer film does not comprise ethylene vinyl alcohol copolymer and polyamide.
[0064] As discussed further herein, the total amount of polyethylene composition (e.g., the polyethylene compositions above and IE1 and IE2 in the Examples), particularly in the outer layers of the film, can be important and is believed to contribute to certain film properties discussed herein. In some embodiments, the multilayer film comprises at least 15 weight percent polyethylene composition, based on the total weight of the film. In some embodiments, the multilayer film comprises at least 30 weight percent polyethylene composition, based on the total weight of the film. In some embodiments, the multilayer film comprises at least 50 weight percent polyethylene composition, based on the total weight of the film. In some embodiments, the multilayer film comprises at least 60 weight percent polyethylene composition, based on the total weight of the film. In some embodiments, the multilayer film comprises at least 80 weight percent polyethylene composition, based on the total weight of the film.
[0065] In one or more embodiments herein, the film may include one or more additives, such as antioxidants (e.g., hindered phenols such as IRGANOX® 1010 or IRGANOX® 1076, supplied by BASF), phosphites (e.g., IRGAFOS® 168, also supplied by BASF), adhesion additives (e.g., PIB (polyisobutylene)), Standostab PEPQ™ (supplied by Sandoz), pigments, colorants, TiO 2 Additives may include, but are not limited to, antistatic additives, flame retardants, slip agents, anti-blocking additives, biocides, antimicrobial agents, and clarifiers / nucleators (e.g., Hyperform HPN-20E, Hyperform HPN 210 M, Millad 3988, and Millad NX 8000, each available from Milliken Chemical). Additives may be included in the film at levels typically used in the art to achieve their desired purpose. In some examples, one or more additives are included in an amount ranging from 0 to 10% based on the total weight of the polymers in the film, 0 to 5% based on the total weight of the polymers in the film, 0.001 to 5% based on the total weight of the polymers in the film, 0.001 to 3% based on the total weight of the polymers in the film, 0.005 to 2% based on the total weight of the polymers in the film, or 0.005 to 1% based on the total weight of the polymers in the film.
[0066] In some embodiments, the multilayer film is advantageously composed substantially entirely of an ethylene-based polymer. For example, in some embodiments, the multilayer film is composed entirely of an ethylene-based polymer, except for additives. Based on the total weight of the multilayer film, the multilayer film can include, in some embodiments, 90 wt% ethylene-based polymer, or in some embodiments, 95 wt% ethylene-based polymer, or in some embodiments, 99 wt% ethylene-based polymer, or in some embodiments, 99.9 wt% ethylene-based polymer, or in some embodiments, 100 wt% ethylene-based polymer.
[0067] In some embodiments, the multilayer film of the present invention has a total thickness of at least 2 mils (51 microns). The multilayer film has, in some embodiments, a total thickness of at least 3 mils (76 microns). In some embodiments, the multilayer film has a thickness of up to 5 mils (127 microns).
[0068] The multilayer film of the present invention can exhibit one or more desirable properties. For example, in some embodiments, the multilayer film can exhibit low surface haze and / or total haze while still providing good moisture barrier and acceptable mechanical properties.
[0069] In some embodiments, the multilayer film of the present invention exhibits a surface haze of 13.5% or less when measured in accordance with ASTM 1003-07. As described in the section on test methods below, surface haze is the difference between total haze and internal haze. In some embodiments, the multilayer film of the present invention exhibits a surface haze of 10% or less when measured in accordance with ASTM 1003-07.
[0070] In some embodiments, the multilayer film of the present invention exhibits a total haze of 30% or less when measured in accordance with ASTM 1003-07.
[0071] In some embodiments, the multilayer films of the present invention have a modulus of elasticity of 0.7 g-mil / 100 in when measured according to ASTM F1249-06 at a temperature of 38° C. and 100% relative humidity. 2 The multilayer films of the present invention, in some embodiments, exhibit a water vapor transmission rate of 0.5 g-mil / 100 in / day or less when measured according to ASTM F1249-06 at a temperature of 38° C. and 100% relative humidity. 2 / day or less water vapor transmission rate.
[0072] In some embodiments, the multilayer films of the present invention exhibit a surface haze of 13.5% or less when measured according to ASTM 1003-07, and the multilayer films exhibit a surface haze of 0.7 g-mil / 100 in when measured according to ASTM F1249-06 at a temperature of 38° C. and 100% relative humidity. 2 The multilayer film, in some embodiments, exhibits a surface haze of 13.5% or less when measured according to ASTM 1003-07, and the multilayer film exhibits a water vapor transmission rate of 0.5 g-mil / 100 in or less when measured according to ASTM F-1249-06 at a temperature of 38° C. and 100% relative humidity. 2 / day or less water vapor transmission rate.
[0073] In some embodiments, the multilayer films of the present invention exhibit a total haze of 30% or less when measured according to ASTM 1003-07, and the multilayer films exhibit a total haze of 0.7 g-mil / 100 in when measured according to ASTM F1249-06 at a temperature of 38° C. and 100% relative humidity. 2 The multilayer film, in some embodiments, exhibits a total haze of 30% or less when measured according to ASTM 1003-07, and the multilayer film exhibits a water vapor transmission rate of 0.5 g-mil / 100 in or less when measured according to ASTM F-1249-06 at a temperature of 38° C. and 100% relative humidity. 2 / day or less water vapor transmission rate.
[0074] In some embodiments, the multilayer films of the present invention may exhibit a 2% secant modulus of at least 300 MPa in the machine direction, as measured according to ASTM D882. In some embodiments, the multilayer films of the present invention may exhibit a 2% secant modulus of at least 350 MPa, or in other embodiments, at least 400 MPa, in the machine direction, as measured according to ASTM D882.
[0075] Various embodiments of the multilayer films of the present invention may exhibit one or more of the aforementioned properties.
[0076] Various multilayer films according to embodiments of the present invention can be designed based on the teachings of the present specification. For example, a two-layer film (A / B) according to an embodiment can include a sealant layer in layer A and a polyethylene composition disclosed herein (e.g., the polyethylene composition described above and IE1 and IE2 in the examples) in layer B, and the relative thickness of the layers (A / B) is 20% / 80%. As another example, a four-layer film (A / B / C / B) according to an embodiment can include a sealant layer in layer A, a polyethylene composition disclosed herein (e.g., the polyethylene composition described above and IE1 and IE2 in the examples) in layer B, and a linear low-density polyethylene in layer C, and the relative thickness of the layers (A / B / C / B) is 20% / 30% / 30% / 20%. As another example, a seven layer film (A / B / C / D / C / E / B) according to one embodiment may include a sealant layer in layer A, a polyethylene composition disclosed herein (e.g., the polyethylene compositions described above and examples IE1 and IE2) in layer B, a tie layer in layer C, a barrier layer (e.g., an ethylene vinyl alcohol copolymer or polyamide) in layer D, and a linear low density polyethylene in layer E, with the relative thicknesses of the layers (A / B / C / D / C / E / B) being 20% / 25% / 5% / 5% / 5% / 20% / 20%.
[0077] The multilayer films may be coextruded as blown or cast films using techniques known to those of skill in the art based on the teachings herein. In particular, based on the compositions of the different film layers disclosed herein, blown and cast film production lines may be configured to coextrude the multilayer films of the present invention in a single extrusion step using techniques known to those of skill in the art based on the teachings herein.
[0078] Goods Embodiments of the present invention also include articles, such as packaging, formed from or incorporating the multilayer films of the present invention. Such packaging may be formed from any of the multilayer films described herein.
[0079] Examples of such articles include flexible packages, pouches, stand-alone pouches, and pre-formed packages or pouches. In some embodiments, the multilayer films of the present invention can be used in food packages. Examples of food products that can be included in such packages include meat, cheese, cereal, nuts, juice, sauce, and others. Such packages can be formed using techniques known to those skilled in the art based on the teachings herein and based on the particular application of the package (e.g., type of food, amount of food, etc.).
[0080] Test Method Unless otherwise indicated herein, the following analytical methods are used in describing embodiments of the present invention.
[0081] Melt Index Melt Index I 2 (or I2) and I 10 (or I10) were measured according to ASTM D-1238 (Method B) at 190° C. and loads of 2.16 kg and 10 kg, respectively, and the values are reported in g / 10 min.
[0082] density Samples for density measurements were prepared according to ASTM D4703. Measurements were performed according to ASTM D792, Method B, within 1 hour of sample pressing.
[0083] Gel Permeation Chromatography (GPC) The chromatography system consisted of a PolymerChar GPC-IR (Valencia, Spain) high temperature GPC chromatograph equipped with an internal IR5 detector. The autosampler oven compartment was set at 160 degrees Celsius and the column compartment was set at 150 degrees Celsius. The columns used were three Agilent "Mixed B" 30 cm 10-micron linear mixed-bed columns and a 10-μm precolumn. The chromatography solvent used was 1,2,4-trichlorobenzene, which contained 200 ppm of butylated hydroxytoluene (BHT). The solvent source was nitrogen sparged. The injection volume used was 200 microliters and the flow rate was 1.0 milliliters / min.
[0084] Calibration of the GPC column set was performed with 21 narrow molecular weight distribution polystyrene standards with molecular weights ranging from 580 to 8,400,000 g / mol arranged in six "cocktail" mixtures with at least one decade between the individual molecular weights. Standards were purchased from Agilent Technologies. Polystyrene standards were prepared at 0.025 grams in 50 milliliters of solvent for molecular weights equal to or greater than 1,000,000 g / mol, and 0.05 grams in 50 milliliters of solvent for molecular weights less than 1,000,000 g / mol. The polystyrene standards were dissolved at 80 degrees Celsius for 30 minutes with gentle agitation. The peak molecular weights of the polystyrene standards were converted to polyethylene molecular weights using Equation 1 (described in Williams and Ward, J. Polym. Sci., Polym. Let., 6, 621 (1968)): M ポリエチレン =A×(M ポリスチレン ) B (Formula 1) where M is the molecular weight, A has a value of about 0.375 to 0.445 as determined by conventional GPC (see A value for linear homopolymer polyethylene of 120,000 g / mol Mw), and B is equal to 1.0.
[0085] A fifth order polynomial was used to fit each polyethylene equivalent calibration point. Molecular weight distribution and molecular weight moment calculations were calculated using PolymerChar "GPC One" software. Total plate counts of the GPC column set were performed in decane (prepared at 0.04 g in 50 milliliters of TCB and dissolved for 20 minutes with gentle agitation). Plate counts (Equation 2) and symmetry (Equation 3) were measured with a 200 microliter injection according to the following equations:
number
number
[0086] Samples were prepared in a semi-automated fashion using the PolymerChar "Instrument Control" software to target sample weight of 2 mg / ml and add solvent (containing 200 ppm BHT) via the PolymerChar high temperature autosampler to a septa-capped vial that had been pre-nitrogen sparged. Samples were dissolved at 160 degrees Celsius with "slow" shaking for 2 hours.
[0087] Calculations of Mn, Mw, and Mz were based on GPC results using the internal IR5 detector (measurement channel) of the PolymerChar GPC-IR chromatograph according to Equations 4-6 using PolymerChar GPCOne™ software, baseline-subtracted IR chromatograms at each equally spaced data collection point (i), and polyethylene equivalent molecular weights obtained from a narrow standard calibration curve at point (i) from Equation 1.
number
[0088] To monitor deviations over time, a flow marker (decane) was introduced into each sample via a micropump controlled by the PolymerChar GPC-IR system. This flow marker was used to linearly calibrate the flow rate of each sample by aligning each decane peak in the sample with a decane peak within a narrow standard calibration. Any change in time of the decane marker peak is thus assumed to be related to a linear shift in both flow rate and chromatographic gradient. To facilitate the highest accuracy of the RV measurement of the flow marker peak, a least squares fitting routine is used to fit the peaks of the flow marker concentration chromatogram to a quadratic equation. The first derivative of the quadratic equation is then used to determine the true peak position. After calibrating the system based on the flow marker peak, the effective flow rate (as a measure of the calibration gradient) is calculated as in Equation 7. Processing of the flow marker peaks was performed by PolymerChar GPCOne™ software.
number
[0089] Neutron activation of metals Two sets of replicate samples were prepared by transferring approximately 3.5 grams of pellets into pre-cleaned two-drum polyethylene vials. For each metal tested, standards were prepared in two-drum polyethylene vials from NIST-traceable standard solutions (Certi.pure from SPEX). They were diluted to 6 ml using milli-Q pure water and the vials were heat-sealed. Samples and standards for these elements were then analyzed using a Mark I TRIGA reactor. The reactions and experimental conditions used for these elements are summarized in the table below. Prior to performing gamma spectrometry, the samples were transferred to non-irradiated vials. Element concentrations were calculated using CANBERRA software and standard comparison techniques. Table 1 shows the measurement parameters for metal determination.
Table 1
Table 2
[0090] Differential Scanning Calorimetry (DSC) Differential Scanning Calorimetry (DSC) was used to measure the melting and crystallization behavior of the polymers over a wide range of temperatures. For example, this analysis was performed using a TA Instruments Q1000 DSC equipped with an RCS (Refrigerated Cooling System) and an autosampler. During the test, a nitrogen purge gas flow rate of 50 ml / min was used. Each sample was melt-pressed at approximately 175 °C to form a thin film, and then the melted sample was air-cooled to room temperature (about 25 °C). The film samples were formed by pressing a "0.1 - 0.2 gram" sample at 175 °C and 1,500 psi for 30 seconds to form a film with a thickness of "0.1 - 0.2 mil". Test specimens of 3 - 10 mg and 6 mm in diameter were cut from the cooled polymer, weighed, placed in a lightweight aluminum pan (about 50 mg), and crimped shut. Analysis was then performed to determine their thermal properties.
[0091] The thermal behavior of the sample was determined by ramping the temperature of the sample up and down to create a heat flow vs. temperature profile. To remove its thermal history, the sample was first rapidly heated to 180°C and held isothermally for 5 minutes. The sample was then cooled to -40°C at a cooling rate of 10°C / min and held isothermally at -40°C for 5 minutes. The sample was then heated to 150°C at a heating rate of 10°C / min (this is the "second heating" gradient). A cooling curve and a second heating curve were recorded. The cooling curve was analyzed by setting a baseline end point from the onset of crystallization to -20°C. The heating curve was analyzed by setting a baseline end point from -20°C to the end of melting.
[0092] Nuclear magnetic resonance ( 1 H NMR) Approximately 130 mg of sample was ionized in a NORELL 1001-7, 10 mm NMR tube with 0.001 M Cr(AcAc) 3 "3.25 g of 50 / 50 weight ratio tetrachloroethane-d 2 / Perchloroethylene (TCE-d 2 The samples were prepared by adding N to the tube via a pipette inserted into the tube for approximately 5 min to prevent oxidation. 2 The samples were purged by venting through the tubes. Each tube was capped, sealed with TEFLON tape, and then soaked at room temperature overnight to aid in dissolution of the samples. The samples were heated at 115°C and vortexed to ensure homogeneity.
[0093] 1 H NMR was performed on a Bruker AVANCE 400 MHz spectrometer equipped with a Bruker Dual DUL high temperature CryoProbe at a sample temperature of 120 °C. Two experiments were performed to obtain spectra: a control spectrum to quantify total polymer protons, and a double pre-saturation experiment to suppress the strong polymer backbone peaks and allow a highly sensitive spectrum for quantification of the end groups. The control was performed with a ZG pulse, 16 scans, AQ 1.64 s, D1 14 s. The double pre-saturation experiment was performed with a modified pulse sequence, 100 scans, AQ 1.64 s, pre-saturation delay 1 s, relaxation delay 13 s.
[0094] TCE-d 2 Residuals in (6.0 ppm) 1 The signal from H was integrated and set to a value of 100, and the integrals from 3 to −0.5 ppm were used as the signal from the whole polymer in the control experiment. For the presaturation experiment, the TCE signal was also set to 100, and the corresponding integrals of the unsaturations (vinylene at about 5.25–5.60 ppm, trisubstituted at about 5.16–5.25 ppm, vinyl at about 4.95–5.15 ppm, and vinylidene at about 4.70–4.90 ppm) were obtained.
[0095] In the presaturated experimental spectrum, the cis- and trans-vinylene, tri-substituted, vinyl, and vinylidene regions were integrated. The integral for the entire polymer from the control experiment was divided by 2 to obtain a value representing X thousands of carbons (i.e., if the polymer integral = 28,000, which corresponds to 14,000 carbons, then X = 14).
[0096] The unsaturated group integral divided by the corresponding number of protons contributing to that integral represents the number of moles of each type of unsaturation per X thousand carbons. Divide the moles of each type of unsaturation by X to get the moles of unsaturated groups per 1000 moles of carbon.
[0097] Total (overall) haze and internal haze Internal haze and total haze were measured according to ASTM D 1003. Internal haze was obtained by refractive index matching using mineral oil (1-2 tsp) applied as a coating on each surface of the film. Hazegard Plus (BYK-Gardner USA, Columbia, MD) was used for testing. For each test, five samples were examined and the average reported. Sample dimensions were 6 inches by 6 inches.
[0098] Surface Haze Surface haze is the difference between total haze and internal haze. Surface haze is determined by subtracting the average internal haze from the average total haze.
[0099] Water Vapor Transmission Rate (WVTR) Water vapor transmission rate is measured according to ASTM F-1249-06 at a temperature of 38° C. and 100% relative humidity.
[0100] Secant factor (2%) Secant modulus at 2% strain is measured in both the machine direction (MD) and cross direction (CD) using an Instron Universal testing machine according to ASTM D882-12.
[0101] Dirt drop impact The Dart Drop Impact Test determines the energy that will cause failure of a plastic film under specified conditions of impact with a free falling dart. The test result is the energy, expressed as the weight of the projectile dropped from a specified height, that will result in the failure of 50% of the specimens tested.
[0102] After the films were produced, they were conditioned for at least 40 hours at 23°C (+ / -2°C) and 50% RH (+ / -5) according to ASTM standards. Standard test conditions are 23°C (+ / -2°C) and 50% RH (+ / -5) according to ASTM standards.
[0103] Test results were reported by either Method A, using a 1.5 inch diameter dart head and a drop height of 26 inches, or Method B, using a 2 inch diameter dart head and a drop height of 60 inches.
[0104] The thickness of the sample was measured at the center of the sample, and the sample was then clamped by a circular specimen holder with an inside diameter of 5 inches. Darts were loaded above the center of the sample and released by either a pneumatic or electromagnetic mechanism.
[0105] The tests were performed according to the "staircase" method. If a sample failed, a new sample was tested with the weight of the dart reduced by a known fixed amount. If a sample did not fail, a new sample was tested with the weight of the dart increased by a known amount. After testing 20 specimens, the number of failures was determined. If this number was 10, the test was completed. If this number was less than 10, the test was continued until 10 failures were recorded. If this number was more than 10, the test was continued until a total of 10 unbroken pouches were recorded. The dart impact value was determined from these data according to ASTM D1709 and expressed in grams as either Type A or Type B dart drop impact (or Dart Impact Value (Method A) or Dart Impact Value (Method B)). In some cases, the dart impact value of a sample may lie between A and B. In these cases, it is not possible to obtain a quantitative dart value.
[0106] The terms "dart drop impact" and "dart impact" are used interchangeably herein to refer to this test method.
[0107] MD and CD Elmendorf Tear Strength The Elmendorf tear strength in the machine and transverse directions is measured according to ASTM D1922. The force (in grams) required to propagate a tear across a film or sheeting specimen is measured using a precisely calibrated pendulum device. Acting by gravity, the pendulum oscillates in an arc, tearing the specimen from a pre-cut slit. The specimen is held by the pendulum on one side and a fixed member on the other side. The loss of energy by the pendulum is indicated by a pointer or electronic scale. The scale reading is a function of the force required to tear the specimen. The specimens used are of "constant radius geometry" as specified in D1922. Tests are typically performed on specimens that are cut from both the MD and CD directions. Prior to testing, the thickness of the specimen is measured at the center of the specimen. A total of 15 specimens per direction are tested and the average tear strength is reported. Specimens that are torn at an angle of more than 60° from the vertical are described as "diagonal" tears, and although such tears are noted, the strength values are included in the average strength calculation.
[0108] Some embodiments of the present invention will now be described in detail in the following examples. EXAMPLES
[0109] The following examples illustrate the present invention but are not intended to limit the scope of the invention.
[0110] A multimetallic catalyst is prepared (Catalyst 1). Catalyst 1 is then used to prepare a polyethylene composition in solution polymerization for use in the inventive multilayer film according to some embodiments of the present invention. The polyethylene composition is then used to prepare the inventive multilayer film. Testing is performed on both the polyethylene composition and the film.
[0111] General description of catalyst preparation The catalyst composition may be prepared by first starting with the preparation of a conditioned magnesium halide support. The preparation of the conditioned magnesium halide support begins with the selection of an organomagnesium compound or a complex containing an organomagnesium compound. Such a compound or complex is desirably soluble in an inert hydrocarbon diluent. In one embodiment, the concentrations of the components are such that when an active halide, such as a metal halide or non-metal halide, and the magnesium complex are combined, the resulting slurry is about 0.005 to about 0.3 moles of magnesium (moles / liter). Examples of suitable inert organic diluents include liquefied ethane, propane, isobutane, n-butane, n-hexane, various isomeric hexanes, isooctane, paraffinic mixtures of alkanes having 5 to 10 carbon atoms, cyclohexane, methylcyclopentane, dimethylcyclohexane, dodecane, industrial solvents composed of saturated or aromatic hydrocarbons, such as kerosene, naphtha, and combinations thereof, especially when free of any olefinic compounds and other impurities, and especially those having a boiling point in the range of about -50°C to about 200°C. Suitable inert diluents also include ethylbenzene, cumene, decalin, and combinations thereof.
[0112] Suitable organomagnesium compounds and complexes may include, for example, magnesium C2-C8 alkyl and aryl, magnesium alkoxides and aryloxides, carboxylated magnesium alkoxides, and carboxylated magnesium aryloxides. Preferred sources of magnesium moieties may include magnesium C2-C8 alkyl and C1-C4 alkoxides. Such organomagnesium compounds or complexes may be reacted with a metal or nonmetal halide source, such as chloride, bromide, iodide, or fluoride, to make magnesium halide compounds under suitable conditions. Such conditions may include a temperature ranging from -25°C to 100°C, or alternatively 0°C to 50°C; a time ranging from 1 to 12 hours, or alternatively 4 to 6 hours; or both. As a result, a magnesium halide-based support is obtained.
[0113] The magnesium halide support is then reacted with a selected coordinating compound containing an element selected from the group consisting of boron, aluminum, gallium, indium, and tellurium under conditions suitable to form a conditioned magnesium halide support. The compound and the magnesium halide support are then contacted under conditions sufficient to obtain a conditioned magnesium halide support. Such conditions may include a temperature ranging from 0° C. to 50° C., or alternatively, from 25° C. to 35° C.; a time ranging from 4 to 24 hours, or alternatively, from 6 to 12 hours; or both. While not wishing to be bound by any mechanistic theory, it is suggested that this aging serves to promote or enhance the adsorption of additional metals onto the support.
[0114] Once the conditioned support is prepared and suitably aged, it is contacted with a titanium compound. In certain preferred embodiments, a titanium halide or titanium alkoxide, or a combination thereof, may be selected. Conditions may include a temperature in the range of 0° C. to 50° C., or alternatively, 25° C. to 35° C.; a time period of 3 hours to 24 hours, or alternatively, 6 hours to 12 hours; or both. The result of this step is the adsorption of at least a portion of the titanium compound onto the conditioned magnesium halide support.
[0115] Additional steps in the preparation of the multimetallic catalyst used to make the polyethylene composition for use in the outer layer of the multilayer film of the present invention For those catalysts used to make the polyethylene compositions used in the multilayer films of the present invention, i.e., the multimetallic catalysts herein, two additional metals, conveniently referred to herein as the "second metal" and the "third metal", are also adsorbed onto the magnesium-based support. The "second metal" and the "third metal" are independently selected from zirconium (Zr), hafnium (Hf), vanadium (V), niobium (Nb), tantalum (Ta), chromium (Cr), molybdenum (Mo), and tungsten (W). These metals may be incorporated in any of a variety of ways known to those skilled in the art, but contacting the prepared magnesium-based halide support containing titanium with the selected second and third metals in the liquid phase, such as, for example, a suitable hydrocarbon solvent, will generally be preferred to ensure that the additional metals precipitate to form what may be referred to herein as the "procatalyst", which is the multimetallic procatalyst.
[0116] In certain embodiments, the multimetallic procatalyst exhibits a molar ratio of magnesium to titanium in combination with the second and third metals ranging from 30:1 to 5:1 under conditions sufficient to form the multimetallic procatalyst, and thus the overall molar ratio of magnesium to titanium ranges from 8:1 to 80:1.
[0117] Once the procatalyst is formed, it may be used to form the final catalyst by combining it with a cocatalyst consisting of at least one organometallic compound, such as an alkyl or haloalkyl of aluminum, an alkylaluminum halide, a Grignard reagent, an alkali metal aluminum hydride, an alkali metal borohydride, an alkali metal hydride, or an alkaline earth metal hydride. The formation of the final catalyst from the reaction of the procatalyst with the organometallic cocatalyst may be carried out in situ or immediately prior to entering the polymerization reactor. Thus, the combination of the cocatalyst with the procatalyst may occur under a wide variety of conditions. Such conditions may include, for example, contacting them under an inert atmosphere, such as nitrogen, argon, or other inert gas, at a temperature ranging from 0° C. to 250° C., or alternatively, from 15° C. to 200° C. In the preparation of the catalytic reaction product, it is not necessary to separate the hydrocarbon-soluble components from the hydrocarbon-insoluble components. The contact time between the procatalyst and the cocatalyst may range, for example, from 0 to 240 seconds, or alternatively, from 5 to 120 seconds. Various combinations of these conditions may be used.
[0118] Preparation of catalyst 1 Approximately 109 kg of 0.20M MgCl 2 The slurry was added with 7.76 kg of (C 2 H 5 )AlCl 2 (EADC) solution (15 wt % in heptane) was added followed by stirring for 8 hours. 4 / VOCl 3 (85 mL and 146 mL, respectively), followed by Zr(TMHD) 4 A solution of (zirconium tetrakis(2,2,6,6-tetramethyl-3,5-heptanedionate) (0.320 kg of a 0.30 M solution in Isopar E) was added. These two additions were carried out successively within 1 hour of each other. The resulting catalyst premix was allowed to age with stirring for a further 8 hours before use.
[0119] Each of the catalysts prepared above is then used to prepare a polyethylene composition as follows.
[0120] Preparation of Polyethylene Compositions for Use in the Multilayer Films of the Present Invention Polyethylene resin is produced by solution polymerization according to the following exemplary process: All raw materials (monomers) and process solvents (high purity narrow boiling range isoparaffinic solvent, Isopar-E) are purified with molecular sieves prior to introduction into the reaction environment. Hydrogen is supplied in pressurized cylinders as a high purity grade and is not further purified. The reactor monomer feed stream is pressurized to a pressure above the reaction pressure by a mechanical compressor. The solvent feed is pressurized to a pressure above the reaction pressure by a pump. The individual catalyst components are manually batch diluted with purified solvent to the specified component concentrations and pressurized to a pressure above the reaction pressure. All reaction feed streams are metered with mass flow meters and independently controlled by computer automated valve control systems.
[0121] The continuous solution polymerization reactor consists of a liquid-filled, non-adiabatic, isothermal circulating loop reactor similar to a continuous stirred tank reactor (CSTR) with heat removal. Independent control of all fresh solvent, monomer, hydrogen, and catalyst component feeds is possible. The total fresh feed stream (solvent, monomer, and hydrogen) to the reactor is temperature controlled by passing the feed streams through heat exchangers. Catalyst components are injected into the polymerization reactor by specially designed injection needles and combined with one mixed catalyst / cocatalyst feed stream before injection into the reactor. The feed of the primary catalyst component is computer controlled to maintain the reactor monomer conversion at a specified target. Cocatalyst components are fed to the primary catalyst component based on a calculated specified molar ratio. Immediately after each fresh injection point (either feed or catalyst), the feed stream is mixed with the circulating polymerization reactor contents by a static mixing element. The reactor contents are continuously circulated through heat exchangers that serve to remove the majority of the reaction heat, with the coolant side serving to maintain an isothermal reaction environment at a specified temperature. Circulation around the reactor loop is accomplished by a positive displacement pump.
[0122] The final reactor effluent enters a zone where it is inactivated by addition and reaction with water. At this same reactor exit location, other additives may also be added (such as acid scavengers and antioxidants). The stream then passes through a static mixer to disperse the post-reactor additive components.
[0123] Following catalyst deactivation and additive addition, the reactor effluent enters a devolatilization system where polymer is removed from the non-polymer stream. The isolated polymer melt is pelletized and collected. The non-polymer stream passes through various equipment that separates most of the ethylene removed from the system. Most of the solvent and unreacted monomers are recycled to the reactor after passing through a purification system. Small amounts of solvent and monomers are purged from the process.
[0124] Table 2 summarizes the polymerization conditions for polyethylene composition 1 (IE1) used in the multilayer film of the present invention. The additives used in the polymerization of IE1 were 1000 ppm IRGAFOS® 168 (which is tris(2,4 di-tert-butylphenyl) phosphite), 250 ppm IRGANOX® 1076 (which is octadecyl-3-(3,5-di-tert-butyl-4-hydroxyphenyl) phosphite), and 200 ppm IRGANOX® 1010 (tetrakis(methylene(3,5-di-tert-butyl-4-hydroxyhydrocinnamate))methane). IRGAFOS® 168 and IRGANOX® 1076 are commercially available from BASF. IRGANOX® 1010 is available from BASF. [Table 3]
[0125] For use in the comparative examples, certain comparative polyethylene compositions are used: Comparative polyethylene composition A (Comp. A) is ELITE™ 5960G available from The Dow Chemical Company.
[0126] A second polyethylene composition (IE2) is prepared for use in the inventive multilayer films according to some embodiments of the present invention. IE2 has an IE2 of 0.956 g / cm 3 Density of 1.5g / 10min, melt index (I 2 ), and 6.8 I 10 / I 2 Prepared using the same catalyst system and equivalent reactor conditions as IE1, except that IE2 had: In addition, the additive used in the polymerization of IE2 was 1000 ppm IRGAFOS™ 168, which is tris(2,4 di-tert-butylphenyl) phosphite.
[0127] Certain properties of polyethylene composition 1 (IE1), polyethylene composition 2 (IE2), and comparative composition A (Comp. A) were measured and are shown in Tables 3-7. [Table 4] [Table 5] [Table 6] [Table 7] [Table 8]
[0128] Film 1 of the present invention and Comparative Film A The inventive and comparative multilayer films are prepared using an Alpine 7-layer coextrusion blown film line. Each multilayer film is a 7-layer film with the structure A / B / C / D / E / F / G. The blown film line was equipped with an annular die with a diameter of 9.84 inches and a die gap of 78.7 mils. The blow-up ratio (BUR) is 2.5:1. The output rate is 310 lbs / hr with a die specific speed of 10 lbs / hr / inch. The films had a nominal width of 30 inches and a nominal thickness of 3.5 mils. The melt temperature is 450-490°F.
[0129] The structures of Inventive Film 1 and Comparative Film A are shown in Table 8, with the amounts of the components in each layer provided as weight percent of the total weight of the layer. [Table 9]
[0130] IE2 is prepared as described above. AGILITY™ 1021 is commercially available from The Dow Chemical Company and has a viscosity of 0.919 g / cm 3 The density and melt index (I 2 DOWLEX™ GM 8070G is a low density polyethylene having a viscosity of 0.917 g / cm, available from The Dow Chemical Company. 3 The density and melt index (I 2 AFFINITY™ PF 1146G is a linear low density polyethylene having a viscosity of 0.899 g / cm 3 The density and melt index (I 2 ). Slip and anti-blocking agents are commercially available and are not critical to this embodiment.
[0131] Various properties of the films were measured and are listed in Table 9. The methods used to measure these properties are described in the Test Methods section above. [Table 10]
[0132] As can be seen from the above data, the use of the polyethylene composition (IE2) in the inventive film 1 provides significantly improved haze values compared to the comparative film A, while at the same time IE2 provides a lower density (0.956 g / cm) than Comp. A. 3 0.962g / cm 3 ) yet provide comparable water vapor transmission rates and secant modulus.
[0133] Films 2 and 3 of the present invention and comparative films B to E Additional inventive and comparative multilayer films are prepared using an Alpine 7-layer coextrusion blown film line. Each multilayer film is a 7-layer film having the structure A / B / C / D / E / F / G. The blown film line was equipped with an annular die having a diameter of 9.84 inches and a die gap of 78.7 mils. The blow-up ratio (BUR) is 2.5:1. The output rate is 325 lbs / hr with a die specific speed of 10.5 lbs / hr / inch. The films had a nominal width of 38 inches and a nominal thickness of 3.5 mils. The melt temperature is 440-460°F.
[0134] The structures of Inventive Films 2-3 and Comparative Films B-E are shown in Tables 10A-10C, with the amounts of the components in each layer provided as weight percent of the total weight of the layer. [Table 11] [Table 12] [Table 13]
[0135] IE2 is prepared as described above. AGILITY™ 1021 is commercially available from The Dow Chemical Company and has a viscosity of 0.919 g / cm 3 The density and melt index (I 2 INNATE™ ST50 is a low density polyethylene having a viscosity of 0.918 g / cm, available from The Dow Chemical Company. 3 The density and melt index (I 2 DOWLEX™ GM 8070G is a polyethylene having a viscosity of 0.917 g / cm, available from The Dow Chemical Company. 3 The density and melt index (I 2 AFFINITY™ PL 1850G is a linear low density polyethylene having a viscosity of 0.902 g / cm, available from The Dow Chemical Company. 3 The density and melt index (I 2 INNATE™ ST50 is a polyolefin plastomer having a viscosity of 0.918 g / cm, available from The Dow Chemical Company. 3 The density and melt index (I 2 ELITE™ 5960G1 is a polyethylene having a viscosity of 0.962 g / cm, available from The Dow Chemical Company. 3 The density and melt index (I 2 DMDA-6400 NT7 is a reinforced polyethylene having a viscosity of 0.961 g / cm, available from The Dow Chemical Company. 3 The density and melt index (I 2 HDPE is a high density polyethylene having a viscosity of 0.962 g / cm, commercially available from The Dow Chemical Company. 3The density and melt index (I 2 ) and also contains a nucleating agent.
[0136] Various properties of the films were measured and are listed in Table 11. The methods used to measure these properties are described in the Test Methods section above. [Table 14]
[0137] The data in Table 11 show that inventive Films 2 and 3 provide lower surface haze, higher gloss, comparable moisture vapor transmission rate, and a better dart and tear balance compared to the comparative films.
[0138] Films 4 to 5 of the present invention and comparative films F to G Additional inventive and comparative multilayer films are prepared using an Alpine 7-layer coextrusion blown film line. Each multilayer film is a 7-layer film having the structure A / B / C / D / E / F / G. The blown film line was equipped with an annular die having a diameter of 9.84 inches and a die gap of 78.7 mils. The blow-up ratio (BUR) is 2.5:1. The output rate is 324-375 lbs / hr with a die specific speed of 10.5-12.1 lbs / hr / in. The films had a nominal width of 38.5 inches and a nominal thickness of 3.5 mils. The melt temperature is 435-460°F.
[0139] All of these examples include ethylene vinyl alcohol copolymer in some layers for applications where improved oxygen barrier performance is desired. The previous examples focus on films that are essentially entirely polyethylene, with the exception of slip agents and anti-blocking additives. The structures of Inventive Films 4-5 and Comparative Films F-G are shown in Tables 12A and 12B, with the amounts of components in each layer provided as weight percent of the total weight of the layer. [Table 15] [Table 16]
[0140] IE2 is prepared as described above. AGILITY™ 1021 is commercially available from The Dow Chemical Company and has a viscosity of 0.919 g / cm 3 The density and melt index (I 2 INNATE™ ST50 is a low density polyethylene having a viscosity of 0.918 g / cm, available from The Dow Chemical Company. 3 The density and melt index (I 2 DOWLEX™ GM 8070G is a polyethylene having a viscosity of 0.917 g / cm, available from The Dow Chemical Company. 3 The density and melt index (I 2 AFFINITY™ PL 1850G is a linear low density polyethylene having a viscosity of 0.902 g / cm, available from The Dow Chemical Company. 3 The density and melt index (I 2 INNATE™ ST50 is a polyolefin plastomer having a viscosity of 0.918 g / cm, available from The Dow Chemical Company. 3 The density and melt index (I 2 ELITE™ 5960G1 is a polyethylene having a viscosity of 0.962 g / cm, available from The Dow Chemical Company. 3 The density and melt index (I 2 DMDA-6400 NT7 is a reinforced polyethylene having a viscosity of 0.961 g / cm, available from The Dow Chemical Company. 3The density and melt index (I 2 AMPLIFY™ TY 1057H is a high density polyethylene having a viscosity of 0.912 g / cm, available from The Dow Chemical Company. 3 The density and melt index (I 2 RETAIN™ 3000 is a maleic anhydride grafted polymer having a viscosity of 0.870 g / cm, available from The Dow Chemical Company. 3 The density and melt index (I 2 ), which promotes compatibilization between polyolefins and polar polymers (e.g., ethylene vinyl alcohol copolymers and polyamides). Soarnol ET3803RB is commercially available from Mitsubishi Chemical Corporation and has an ethylene content of 38 mol%, a melt flow rate of 4.0 g / 10 min (210° C., 2.16 kg), and a viscosity of 1.17 g / cm 3 The slip and anti-blocking agents are commercially available and are not particularly critical to this embodiment.
[0141] Various properties of the films were measured and are listed in Table 13. The methods used to measure these properties are described in the Test Methods section above. [Table 17]
[0142] The data in Table 13 show that inventive Films 4 and 5 provide lower surface haze, higher gloss, and a better balance of dart and tear properties compared to the comparative films. The present application also relates to the following aspects: (1) A multilayer film, at least one outer layer comprising at least 50% by weight of a polyethylene composition comprising the reaction product of ethylene and, optionally, one or more alpha-olefin comonomers, said polyethylene composition having the following characteristics: a. Melt index (I) of 0.3 to 3.0 g / 10 min2 )、 b.0.950~0.965g / cm 3 density of, c. Melt flow rate (I 10 / I 2 ), and d. characterized by a molecular weight distribution (MWD) of 2.2 to 3.5; The multilayer film has a thickness of at least 2 mils, the multilayer film comprises at least 50 weight percent polyethylene, the multilayer film exhibits a surface haze of 13.5% or less when measured in accordance with ASTM 1003-07, and a surface haze of 0.7 g-mil / 100 in when measured in accordance with ASTM F1249-06 at a temperature of 38° C. and 100% relative humidity. 2 A multi-layer film that exhibits a water vapor transmission rate of less than 100 / day. (2) The multilayer film according to (1) above, further comprising an inner layer, the inner layer comprising an ethylene-vinyl alcohol copolymer or a polyamide. (3) The multilayer film of (2), wherein the multilayer film contains 30 weight percent or less of ethylene-vinyl alcohol copolymer and polyamide, based on the total weight of the multilayer film. (4) 13. The multilayer film of any preceding claim, wherein the multilayer film comprises less than 5% by weight of ethylene vinyl alcohol copolymer and polyamide. (5) A multilayer film, at least one outer layer comprising at least 50% by weight of a polyethylene composition comprising the reaction product of ethylene and, optionally, one or more alpha-olefin comonomers, said polyethylene composition having the following characteristics: a. Melt index (I) of 0.3 to 3.0 g / 10 min 2 )、 b.0.950~0.965g / cm 3 density of, c. Melt flow rate (I 10 / I 2 ), and d. characterized by a molecular weight distribution (MWD) of 2.2 to 3.5; The multilayer film has a thickness of at least 2 mils, the multilayer film comprises at least 90 weight percent polyethylene, the multilayer film exhibits a surface haze of 13.5% or less when measured in accordance with ASTM 1003-07, and a surface haze of 0.5 g-mil / 100 in when measured in accordance with ASTM F-1249-06 at a temperature of 38° C. and 100% relative humidity. 2 1. A multilayer film having a water vapor transmission rate of 100 / day or less, and wherein the total amount of ethylene vinyl alcohol copolymer and polyamide in the multilayer film is less than 0.5 weight percent, based on the total weight of the film. (6) The multilayer film according to (5) above, wherein the multilayer film exhibits a total haze of 30% or less when measured according to ASTM 1003-07. (7) 13. The multilayer film of any preceding claim, wherein the multilayer film comprises at least 15 weight percent of the polyethylene composition, based on a total weight of the multilayer film. (8) 13. The multilayer film of any preceding claim, wherein the multilayer film comprises at least 95% by weight of polyethylene. (9) The multilayer film of any preceding claim, wherein the polyethylene composition is formed by solution polymerization in at least one reactor in the presence of a catalyst composition comprising a multimetallic procatalyst. (10) The multilayer film according to (9) above, wherein the solution polymerization occurs in a single reactor. (11) An article comprising the multilayer film of any preceding claim.
Claims
1. A multilayer film, comprising: at least one outer layer comprising at least 50% by weight of a polyethylene composition comprising the reaction product of ethylene and, optionally, one or more alpha-olefin comonomers, said polyethylene composition having the following characteristics: a. Melt index (I) of 0.3 to 3.0 g / 10 min 2 ), b. 0.950-0.965g / cm 3 density of, c. Melt flow rate (I 10 / I 2 ), and d. characterized by a molecular weight distribution (MWD) of 2.2 to 3.5; The multilayer film has a thickness of at least 2 mils (0.0508 mm), the multilayer film comprises at least 50 weight percent polyethylene, the multilayer film exhibits a surface haze of 13.5% or less when measured in accordance with ASTM 1003-07, and a surface haze of 0.7 g-mil / 100 in when measured in accordance with ASTM F1249-06 at a temperature of 38° C. and 100% relative humidity. 2 A multilayer film exhibiting a water vapor transmission rate of 10.85 g / m 2 / day (10.85 g / m 2 / day per mil (0.0254 mm)) or less.
2. 10. The multilayer film of claim 1, further comprising an inner layer, said inner layer comprising an ethylene vinyl alcohol copolymer or a polyamide.
3. 3. The multilayer film of claim 2, wherein the multilayer film comprises no more than 30 weight percent of ethylene vinyl alcohol copolymer and polyamide, based on the total weight of the multilayer film.
4. The multilayer film of any one of claims 1 to 3, wherein the multilayer film comprises less than 5% by weight of ethylene vinyl alcohol copolymer and polyamide.
5. A multilayer film, comprising: at least one outer layer comprising at least 50% by weight of a polyethylene composition comprising the reaction product of ethylene and, optionally, one or more alpha-olefin comonomers, said polyethylene composition having the following characteristics: a. Melt index (I) of 0.3 to 3.0 g / 10 min 2 ), b. 0.950-0.965g / cm 3 density of, c. Melt flow rate (I 10 / I 2 ), and d. characterized by a molecular weight distribution (MWD) of 2.2 to 3.5; The multilayer film has a thickness of at least 2 mils (0.0508 mm), the multilayer film comprises at least 90 weight percent polyethylene, the multilayer film exhibits a surface haze of 13.5% or less when measured in accordance with ASTM 1003-07, and a surface haze of 0.5 g-mil / 100 in when measured in accordance with ASTM F-1249-06 at a temperature of 38° C. and 100% relative humidity. 2 1. A multilayer film having a water vapor transmission rate of no more than 7.75 g / m 2 / day (7.75 g / m 2 / day per mil (0.0254 mm)), wherein the total amount of ethylene vinyl alcohol copolymer and polyamide in the multilayer film is less than 0.5 weight percent, based on the total weight of the film.
6. 6. The multilayer film of claim 5, wherein the multilayer film exhibits a total haze of 30% or less when measured according to ASTM 1003-07.
7. The multilayer film of any one of claims 1 to 6, wherein the multilayer film comprises at least 15 weight percent of the polyethylene composition, based on a total weight of the multilayer film.
8. The multilayer film according to any one of claims 1 to 7, wherein the multilayer film comprises at least 95% by weight of polyethylene.
9. A method for producing a multilayer film as claimed in any one of claims 1 to 8, wherein the polyethylene composition is formed by solution polymerization in at least one reactor in the presence of a catalyst composition comprising a multi-metallic procatalyst.
10. 10. The method of claim 9, wherein the solution polymerization occurs in a single reactor.
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