Paste-processed ultra-high molecular weight polyethylene expanded into high-density articles

The paste-processing of UHMWPE polymers through tape formation and controlled stretching yields high-density films with improved mechanical and optical properties, addressing inefficiencies in conventional UHMWPE processing.

JP7813892B2Active Publication Date: 2026-02-13WL GORE & ASSOC INC
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Patent Information

Application Number
JP2024535861
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2021-12-16
Filing Date
2022-12-08
Publication Date
2026-02-13
Estimated Expiration
2042-12-08

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Abstract

A method for forming a high density UHMWPE film from a paste processed ultra-high molecular weight polyethylene (UHMWPE) polymer and a highly crystalline ultra-high molecular weight polyethylene polymer is provided. The UHMWPE film described herein can be produced by 1) compressing a dry porous UHMWPE tape and then stretching it above the melting temperature of the UHMWPE polymer, 2) expanding the dry porous UHMWPE tape above the melting point of the UHMWPE polymer without compression, or 3) expanding the dry porous UHMWPE tape below the melting point of the UHMWPE polymer to form a porous film, and then compressing the porous film above the melting point of the UHMWPE polymer to form a high density film. The high density film can be further biaxially stretched to enhance the properties of the high density film.
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Description

[Technical Field]

[0001] CROSS-REFERENCE TO RELATED APPLICATIONS This application claims the benefit of Provisional Application No. 63 / 290,154, filed December 16, 2021, which is incorporated herein by reference in its entirety for all purposes.

[0002] Field The present disclosure relates generally to paste-processed ultra-high molecular weight polyethylene (UHMWPE) polymers, and more particularly to methods for forming high density films from highly crystalline ultra-high molecular weight polyethylene polymers. [Background technology]

[0003] background Ultra-high molecular weight polyethylene is well known in the art. Articles made from it possess properties such as toughness, impact strength, abrasion resistance, a low coefficient of friction, gamma resistance, and resistance to attack by solvents and corrosive chemicals. Due to its favorable properties, ultra-high molecular weight polyethylene is utilized in a variety of applications, including load-bearing components in joint prostheses, vibration-damping pads, hydraulic cylinders, skis, ski poles, goggle frames, protective helmets, sports equipment including, but not limited to, mountaineering equipment, and specialty aerospace applications.

[0004] UHMWPE polymer can be processed by compression molding, ram extrusion, gel spinning, and sintering. However, some conventional processes have one or more undesirable characteristics or properties, such as requiring high levels of solvents and / or being expensive or time-consuming to process due to the high viscosity of UHMWPE polymer. Therefore, there is a need in the art for paste processing to create UHMWPE intermediates (e.g., tapes or films) that are then processed into high-density films with excellent mechanical properties and optional properties, such as high strength, excellent barrier properties, optical uniformity, low haze, and transparency. Summary of the Invention

[0005] Abstract Provided herein are high density films formed from pasted ultra-high molecular weight polyethylene (UHMWPE) polymers, and methods for forming these films from highly crystalline ultra-high molecular weight polyethylene polymers.

[0006] According to a first embodiment ("Embodiment 1"), there is provided a high-density ultra-high molecular weight polyethylene (UHMWPE) film having a first endotherm at about 135°C to about 143°C, a second endotherm at about 145°C to about 155°C, and a total light transmittance of at least about 90% measured from 360 nm to 780 nm.

[0007] Embodiment 2 is the high density UHMWPE film of embodiment 1, wherein the UHMWPE film has a machine direction (MD) matrix tensile strength of at least 200 MPa.

[0008] Embodiment 3 is the high-density UHMWPE film of embodiment 1 or 2, wherein the UHMWPE film has a matrix tensile strength in the transverse direction (TD) of at least 400 MPa.

[0009] Embodiment 4 is the high density UHMWPE film of any of Embodiments 1 to 3, having a matrix tensile strength MD:TD ratio of about 1:5 to about 5:1.

[0010] Embodiment 5 is the high-density UHMWPE film of any of Embodiments 1-4, wherein the UHMWPE film has a CO 2 permeability or O 2 permeability or N 2 permeability of less than 10 barrels.

[0011] Embodiment 6 is the high-density UHMWPE film of any one of Embodiments 1 to 5, wherein the thickness of the UHMWPE film is 0.0005 mm to 1 mm.

[0012] Embodiment 7 is the high-density UHMWPE film of any of Embodiments 1-6, wherein the high-density UHMWPE film is formed from a UHMWPE polymer having a molecular weight of about 2,000,000 g / mol to about 10,000,000 g / mol and a melting enthalpy of greater than 190 J / g.

[0013] Embodiment 8 is a composite material comprising the high density UHMWPE film of any of Embodiments 1-7.

[0014] Embodiment 9 is an article comprising the high density UHMWPE film of any of embodiments 1-8.

[0015] According to a tenth embodiment ("Embodiment 10"), there is provided a method for forming a high-density UHMWPE film, comprising: forming a dried porous UHMWPE tape from a UHMWPE polymer having a molecular weight of at least 2,000,000 g / mol and a melting enthalpy of at least 190 J / g; compressing the dried porous UHMWPE tape at a temperature below the melting temperature of the UHMWPE polymer; and stretching the UHMWPE tape in at least two directions at a temperature above the melting temperature of the UHMWPE polymer to form a high-density UHMWPE film. The high-density UHMWPE film comprises a first detectable endotherm at about 135°C to about 143°C and a second detectable endotherm at about 145°C to about 155°C.

[0016] Embodiment 11 is the method of embodiment 10, wherein the high density UHMWPE film has a total light transmittance measured from 250 nm to 800 nm of at least about 98%.

[0017] Embodiment 12 is the method of embodiment 10 or 11, wherein the forming step includes providing a paste including the UHMWPE polymer as a powder and a lubricant, forming the paste into a tape, removing the lubricant to form a dried porous UHMWPE tape, and stretching the tape to form a high-density UHMWPE film.

[0018] Embodiment 13 is the method of embodiments 10-12, wherein the step of stretching the compressed UHMWPE tape is carried out at a temperature of 140°C to 170°C and at a rate of about 0.1% to 20,000% per second.

[0019] Embodiment 14 is a high density UHMWPE film further comprising a machine direction matrix tensile strength / transverse direction matrix tensile strength ratio of about 1:5 to about 5:1, a matrix tensile strength of at least 500 x 500 (MD x TD) MPa, a CO, O, or N permeability of 0.01 to 10 barrels, and a water vapor permeability of 0.02 g-mm / m 2 14. The method of embodiments 10 to 13, wherein the daily intake of the blood is less than 1000 mg / day.

[0020] According to a fifteenth embodiment ("Embodiment 15"), there is provided a method of forming a high-density UHMWPE film, the method comprising: forming a dried porous UHMWPE tape from a UHMWPE polymer having a molecular weight of at least 2,000,000 g / mol and a melting enthalpy of at least 190 J / g; and stretching the dried porous UHMWPE tape in at least two directions at a temperature above the melting temperature of the UHMWPE polymer to form a high-density UHMWPE film, wherein the high-density UHMWPE film has a first detectable endotherm at about 135°C to about 143°C and a second detectable endotherm at about 145°C to about 155°C.

[0021] Embodiment 16 is the method of embodiment 15, wherein the forming step includes providing a paste including the UHMWPE polymer as a powder and a lubricant, forming the paste into a tape, removing the lubricant to form a dry porous UHMWPE tape, and stretching the tape to form a high-density UHMWPE film.

[0022] Embodiment 17 is the method of embodiment 15 or 16, wherein the step of stretching the dried UHMWPE tape is carried out at a temperature of 140° C. to 170° C. and at a rate of about 0.1% to 20,000% per second.

[0023] Embodiment 18 is the method of embodiments 15-17, wherein the high density UHMWPE film further has a machine direction matrix tensile strength / transverse direction matrix tensile strength ratio of about 1:5 to about 5:1, a matrix tensile strength of at least 200 x 200 (MD x TD) MPa, and a CO, O, or N permeability of 0.01 to 10 barrels.

[0024] According to a nineteenth embodiment ("Embodiment 19"), there is provided a method of forming a high density UHMWPE film, comprising: (a) forming a porous UHMWPE tape from a UHMWPE polymer having a molecular weight of at least 2,000,000 g / mol and a melting enthalpy of at least 190 J / g, wherein the porous UHMWPE tape, (b) expanding (expanding, inflating, stretching, or foaming) the porous UHMWPE tape at a temperature below the melting temperature of the porous UHMWPE tape to form a porous membrane; and (c) compressing the porous UHMWPE membrane at a pressure of at least 1 MPa to form a high density UHMWPE film with a first detectable endotherm between about 135°C and about 143°C and a second detectable endotherm between about 145°C and about 155°C.

[0025] Embodiment 20 is the method of embodiment 19, further comprising: (d) stretching the high density UHMWPE film at a temperature above the melting temperature of the UHMWPE polymer.

[0026] Embodiment 21 is the method of embodiment 19 or 20, wherein the stretching and compressing steps are performed simultaneously.

[0027] Embodiment 22 is the method of embodiments 19-21, wherein the stretching step after compression is carried out at a temperature of about 140°C to about 170°C.

[0028] Embodiment 23 is the method of embodiments 19-22, wherein the high density UHMWPE film further has a machine direction matrix tensile strength / cross direction matrix tensile strength ratio of about 1:5 to about 5:1, a matrix tensile strength of at least 200 x 200 (MD x TD) MPa, and a water vapor permeability coefficient of less than 0.21 g-mm / m2 / day.

[0029] Embodiment 24 is the method of embodiments 10-23, wherein the stretching step comprises biaxial stretching or radial stretching.

[0030] The foregoing embodiments are merely embodiments and should not be construed as limiting or narrowing the scope of any of the inventive concepts otherwise provided by this disclosure. While multiple examples are disclosed, still other embodiments will become apparent to those skilled in the art from the following detailed description, which shows and describes illustrative examples. Accordingly, the drawings and detailed description are to be regarded as illustrative in nature and not restrictive. [Brief explanation of the drawings]

[0031] BRIEF DESCRIPTION OF THE DRAWINGS Advantages of the present invention will become apparent upon consideration of the following detailed disclosure of the invention, particularly when considered in conjunction with the accompanying drawings.

[0032] [Figure 1] FIG. 1 is a differential scanning calorimetry (DSC) thermogram of the UHMWPE powder of all examples described herein, showing an enthalpy of fusion of 232.9 J / g.

[0033] [Figure 2] FIG. 2 is a differential scanning calorimetry (DSC) thermogram showing two distinct melting points associated with the UHMWPE high density film of Example 1.

[0034] [Figure 3] FIG. 3 is a differential scanning calorimetry (DSC) thermogram showing two distinct melting points associated with the UHMWPE high density film of Example 2.

[0035] [Figure 4] FIG. 4 is a differential scanning calorimetry (DSC) thermogram showing two distinct melting points associated with the UHMWPE high density film of Example 3a.

[0036] [Figure 5] FIG. 5 is a plot of the comparative permeability to nitrogen, oxygen, and carbon dioxide gases of the UHMWPE dense films described in Examples 1, 2, and 4b. DETAILED DESCRIPTION OF THE INVENTION

[0037] Detailed Description Definitions and Terminology The present disclosure is not to be construed in a limiting sense. For example, the terms used in this application should be interpreted broadly in accordance with the meanings that would be ascribed to such terms by one of ordinary skill in the art.

[0038] With respect to imprecise terms, the terms "about" and "approximately" can be used interchangeably to refer to measurements that include the stated measurement and also measurements that are reasonably close to the stated measurement. A measurement that is reasonably close to the stated measurement deviates from the stated measurement by a reasonably small amount, as understood and easily ascertained by one of ordinary skill in the relevant art. Such deviations can result from, for example, measurement error, differences in calibration of measuring and / or manufacturing equipment, human error in reading and / or setting measurements, small adjustments made to optimize performance and / or structural parameters to account for variations in measurements associated with other components, specific implementation scenarios, imprecise adjustment and / or manipulation of objects by humans or machines, and / or the like. If it is determined that the value of such a reasonably small difference would not be easily ascertainable by one of ordinary skill in the relevant art, the terms "about" and "approximately" can be understood to mean + or -10% of the stated value.

[0039] Description of Various Embodiments Those skilled in the art will readily appreciate that the various aspects of the present disclosure may be implemented by any number of methods and apparatus configured to perform the intended functions. It should also be noted that the accompanying drawings referred to herein are not necessarily drawn to scale and may be exaggerated to illustrate various aspects of the present disclosure, and in that regard, the drawings should not be construed as limiting.

[0040] The present disclosure relates to high density ultra-high molecular weight polyethylene (UHMWPE) films, articles and composites containing these films, and methods for making high density UHMWPE articles by paste processing of UHMWPE polymer to produce tapes or membranes, which are then subjected to processing conditions suitable for forming high density films (e.g., heat compression or biaxial stretching, or heat compression in combination with biaxial stretching).

[0041] The UHMWPE film can be formed from an ultra-high molecular weight polyethylene polymer having an average molecular weight (Mw) of at least about 2,000,000 g / mol and a high degree of crystallinity. In exemplary embodiments, the UHMWPE polymer can have an average molecular weight ranging from about 2,000,000 g / mol to about 10,000,000 g / mol, from about 4,000,000 g / mol to about 10,000,000 g / mol, from about 4,000,000 g / mol to about 8,000,000 g / mol, or any other range of average molecular weights included within these endpoints.

[0042] UHMWPE polymers can have a high degree of crystallinity. The crystallinity of UHMWPE polymers can be measured by differential scanning calorimetry (DSC). As used herein, the phrases "highly crystalline" or "highly crystalline" are intended to refer to UHMWPE polymers having a first enthalpy of melting greater than 190 J / g as measured by DSC. In another embodiment, the UHMWPE polymer has a first enthalpy of melting greater than 195 J / g, 200 J / g, 205 J / g, 210 J / g, 215 J / g, 220 J / g, 225 J / g, or 230 J / g.

[0043] Furthermore, the UHMWPE polymer can be a homopolymer of ethylene or a copolymer of ethylene and at least one comonomer. Suitable comonomers that can be used to form the UHMWPE copolymer include, but are not limited to, alpha-olefins or cyclic olefins having 3 to 20 carbon atoms. Non-limiting examples of suitable comonomers include 1-butene, 1-pentene, 1-hexene, 1-heptene, 1-octene, cyclohexene, and dienes having 20 or fewer carbon atoms (e.g., butadiene or 1,4-hexadiene). The comonomer can be present in the UHMWPE copolymer in an amount ranging from about 0.001 mol% to about 10 mol%, from about 0.01 mol% to about 5 mol%, from about 0.1 mol% to about 1 mol%, or any other amount included within these endpoints.

[0044] Additionally, the UHMWPE film may have a first endotherm associated with the UHMWPE polymer used at about 135°C to about 143°C. Note that the terms "melting temperature," "melting temperature," and "melting point" can be used interchangeably herein. In at least one exemplary embodiment, the UHMWPE polymer has a melting point of approximately 140°C. Subsequent remelting of the UHMWPE polymer occurs at a temperature of about 127°C to about 137°C.

[0045] As previously mentioned, UHMWPE polymer particles are first mixed with a suitable lubricant (e.g., an isoparaffinic hydrocarbon) according to the general method described in U.S. Pat. No. 9,926,416 B2. The lubricated polymer particles are then processed into a tape containing a fibril structure (i.e., fibrils). The tape can be dried (to remove the lubricant) before forming a high-density UHMWPE film using heat compression, biaxial stretching, or a combination thereof. Densification conditions can be controlled to maintain a detectable DSC endothermic peak indicating the presence of residual fibril structure. Furthermore, the UHMWPE film can have an endotherm at about 145°C to about 155°C, or about 150°C, associated with fibrils within the film. Differential scanning calorimetry (DSC) can be used to identify the melting point (crystalline phase) of UHMWPE polymer. This peak (or endotherm) at approximately 150°C indicates the presence of fibrils within the high-density UHMWPE film. 2-4 show DSC thermograms of UHMWPE films according to the present invention, showing two distinct peaks. It should be noted that the endothermic peak at about 150°C is not present in conventionally processed porous UHMWPE membranes, tapes, or films.

[0046] The high-density UHMWPE films provided herein can have excellent optical properties. For example, the films can have a total light transmittance of at least about 90%, at least about 92%, at least about 94%, at least about 96%, or at least about 98%, measured from 360 nm to 780 nm. In some exemplary embodiments, the films can have a total light transmittance of about 90% to about 98%, measured from 360 nm to 780 nm, or any light transmittance between these endpoints.

[0047] Similarly, high density films can have an average haze of less than 5%, less than 4%, less than 3%, less than 2%, or less than 1%, measured from 360 nm to 780 nm. In some exemplary embodiments, the films can have an average haze of about 1% to about 5%, measured from 360 nm to 780 nm, or any average haze between these endpoints.

[0048] High-density films formed from UHMWPE polymers can have a machine direction (MD) matrix tensile strength (MTS) of at least about 100 MPa, at least about 200 MPa, at least about 300 MPa, at least about 400 MPa, at least about 600 MPa, or at least about 800 MPa. In exemplary embodiments, the membranes can have a machine direction matrix tensile strength of from about 200 MPa to about 800 MPa, from about 400 MPa to about 800 MPa, or from about 600 MPa to about 800 MPa.

[0049] High density UHMWPE films have a matrix tensile strength (MTS) in the transverse direction (TD) of at least about 100 MPa, at least about 200 MPa, at least about 400 MPa, at least about 500 MPa, at least about 600 MPa, or at least about 800 MPa. In exemplary embodiments, the films have a matrix tensile strength in the transverse direction of from about 400 MPa to about 800 MPa, or from about 400 MPa to about 600 MPa.

[0050] High density UHMWPE films have an average matrix tensile strength ratio, measured as MD:TD, of about 1:5 to about 5:1, about 1:3 to about 3:1, or about 1:2 to about 2:1.

[0051] High density UHMWPE films according to one embodiment of the present invention can be utilized as barrier films or membranes that exhibit low CO, O, or N permeability. For example, the high density UHMWPE film may have a CO permeability of less than 10.0 barrels, less than 5 barrels, less than 1.0 barrels, or less than 0.1, where 1.0 barrel is 3.35×10-16 mole m / (s m 2 ·Pa). Similarly, the high-density UHMWPE film can have an N2 permeability of less than 10.0 barrels, less than 5.0 barrels, less than 1.0 barrels, less than 0.1, or less than 0.05 barrels. Furthermore, the high-density UHMWPE film can have an O2 permeability of less than 10.0 barrels, less than 5.0 barrels, less than 1.0 barrels, less than 0.1, or less than 0.01 barrels. It is understood that the CO2, O2, or N2 permeability can be within any range formed from the above values; for example, the high-density film can have a CO2, O2, or N2 permeability of 0.01 to 10 barrels, 0.1 to 8 barrels, or 0.1 to 6 barrels.

[0052] The high density UHMWPE film according to the embodiment of the present invention has a density of 0.01 to 1 g-mm / m 2 / day, 0.01~0.5g-mm / m 2 / day, or 0.01 to 0.25 g-mm / m 2 It can have a water vapor permeability of 1 / day.

[0053] High density films formed from UHMWPE polymers can have an average thickness of less than about 1 mm, less than about 0.1 mm, less than about 0.01 mm, less than about 0.001 mm, or less than 0.0005 mm. In exemplary embodiments, the high density films can have a thickness of about 0.0005 to about 1 mm, about 0.001 to about 1 mm, about 0.001 to about 0.1 mm, about 0.001 to about 0.01 mm, or any thickness within these ranges.

[0054] The present disclosure further relates to articles and composites comprising high-density UHMWPE films. The articles can be in the form of films, fibers, tubes, or three-dimensional free-standing structures. In an exemplary embodiment, the article is a film. The composites can have two or more layers. The composites can include multiple layers of the high-density UHMWPE films of the present invention, or can include one or more other polymer layers (e.g., high-density plastic sheets, woven fabrics, nonwoven fabrics, electrospun membranes, or other porous membranes), which can be porous or non-porous, made from materials including, but not limited to, high-density polyethylene (HDPE), UHMWPE, polyester, polyurethane, fluoropolymer, polytetrafluoroethylene, polypropylene, glass fiber, and any combination thereof.

[0055] The UHMWPE resin can be provided in particulate form, such as a powder. The UHMWPE powder can be formed from individual particles having a particle size of less than about 100 nm. Typically, the powder is provided as clusters of particles having a size of about 5 to about 250 microns, or about 10 to about 200 microns. In exemplary embodiments, the clusters can be as small as possible, down to and including individual particles.

[0056] The UHMWPE films described herein can be produced by at least the following methods: (1) tape compression followed by stretching at about 140°C to about 170°C or about 150°C to about 160°C above the melting temperature of the UHMWPE polymer, (2) expanding a porous dry tape without compression at about 140°C to about 170°C or about 150°C to about 160°C above the melting temperature of the UHMWPE polymer, and (3) compressing a porous UHMWPE film at about 140°C to about 170°C or about 150°C to about 160°C above the melting temperature of the UHMWPE polymer, or in combination with expansion at about 140°C to about 170°C or about 150°C to about 160°C above the melting temperature of the UHMWPE polymer.

[0057] In a method that goes beyond tape compression and melt expansion, a high-density UHMWPE film can be produced from UHMWPE polymer by forming a lubricated wet tape and drying the wet tape to form a dried porous UHMWPE tape from an UHMWPE polymer having a molecular weight of at least 2,000,000 g / mol and a melting enthalpy of at least 190 J / g. This dried porous UHMWPE tape is compressed at a temperature below the melting temperature of the UHMWPE polymer, about 120°C to about 135°C or about 125°C to about 130°C, to form a high-density UHMWPE tape. This high-density tape is then stretched at a temperature above the melting temperature of the UHMWPE polymer, about 140°C to about 170°C or about 150°C to about 160°C.

[0058] To form a dry porous UHMWPE tape from the UHMWPE polymer, a paste containing the UHMWPE polymer as a powder and a lubricant is prepared, the paste is then cast into a tape, and the lubricant is removed to form a dry porous UHMWPE tape.

[0059] To form a paste, the powdered UHMWPE polymer is first mixed with a lubricant, such as light mineral oil. Other suitable lubricants include aliphatic hydrocarbons, aromatic hydrocarbons, and halogenated hydrocarbons, selected according to flammability, evaporation rate, and economic considerations. It is understood that the term "lubricant," as used herein, is intended to refer to a processing aid consisting of an incompressible fluid that is not a solvent for the polymer at process conditions. The interaction between the fluid and the polymer surface is such that a homogeneous mixture can be formed. It should also be noted that the choice of lubricant is not particularly limited and is primarily a matter of safety and convenience. The lubricant can be added to the UHMWPE polymer at a rate of 1 ml / 100 g to about 100 ml / 100 g or about 10 ml / 100 g to about 70 ml / 100 g. In one embodiment, the lubricant is added, and the mixture is maintained at a temperature below the melting temperature of the UHMWPE polymer for a time (i.e., residence time) sufficient to wet the interior of the polymer clusters with the lubricant. "Sufficient time" can be described as time sufficient for the particles to revert to a free-flowing powder. In another embodiment, a lubricant is added and mixed with the UHMWPE polymer, and the mixture is free-flowing and does not require a residence time.

[0060] After the lubricant is uniformly distributed on the surface of the particles (e.g., after wetting the interior of the clusters), the mixture returns to a free-flowing, powder-like state. In an exemplary embodiment, the mixture is heated to a temperature below the melting temperature of the UHMWPE polymer or the boiling point of the lubricant, whichever is lower. It should be understood that various times and temperatures can be used to wet the polymer, as long as there is enough time for the lubricant to adequately wet the interior of the clusters.

[0061] Once lubricated, the paste can be processed into a solid shape or preform without exceeding the melting temperature of the polymer. In exemplary embodiments, the preform can be a fiber, tube, tape, sheet, or three-dimensional free-standing structure. The lubricated particles are heated to a temperature below the melting temperature of the polymer and subjected to sufficient pressure and shear to form connections between the particles and create a solid shape. Non-limiting examples of methods for applying pressure and shear include ram extrusion, paste extrusion, or paste processing, typically in the presence of a lubricant, and optional calendering.

[0062] In an exemplary embodiment, the lubricated UHMWPE polymer is calendered to produce a cohesive, flexible tape. As used herein, the term "cohesive" is intended to describe a tape that is strong enough for further processing. Calendering is performed at about 115°C to about 135°C, or about 125°C to about 130°C. The formed tape is of variable length and less than about 1 mm thick. The tape can be about 0.01 mm to about 1 mm thick, about 0.08 mm to about 0.5 mm thick, or 0.05 mm to 0.2 mm thick, or even thinner. In an exemplary embodiment, the tape is about 0.05 mm to about 0.2 mm thick.

[0063] In the next step, the lubricant can be removed to form a dry porous tape. In examples where mineral oil is used as the lubricant, the lubricant can be removed by washing the tape in hexane or other suitable solvent. The washing solvent is selected to have good solubility for the lubricant and to be sufficiently volatile to be removed below the melting point of the resin. If the lubricant is sufficiently volatile, the lubricant can be removed without a washing step, or it can be removed by heat and / or vacuum. The tape is then dried, if necessary, typically by air drying. However, any conventional drying method can be used as long as the sample is heated to a temperature below the melting point of the UHMWPE polymer.

[0064] The dried porous UHMWPE tape or high-density UHMWPE film can be cut to a size suitable for expansion and then stretched in at least two directions at a temperature above the melting temperature of the UHMWPE polymer, from about 140°C to about 170°C, or from about 150°C to about 160°C, to form a high-density UHMWPE film, wherein the high-density UHMWPE film has a first detectable endotherm of from about 135°C to about 143°C and a second detectable endotherm of from about 145°C to about 155°C. The stretching can be carried out at a rate of 20,000% / sec, or from about 0.1% to 20,000% / sec.

[0065] In another alternative, a high density UHMWPE film can be formed without compression by forming a porous UHMWPE tape from a UHMWPE polymer having a molecular weight of at least 2,000,000 g / mol and a melting enthalpy of at least 190 J / g.

[0066] The porous UHMWPE tape can then be stretched at a temperature above the melting temperature of the porous UHMWPE tape, from about 140°C to about 170°C, or from about 150°C to about 160°C, to form a high-density UHMWPE film with a first detectable endotherm at about 135°C to about 143°C and a second detectable endotherm at about 145°C to about 155°C.

[0067] In yet another alternative, a high-density UHMWPE film can be formed by compressing a porous UHMWPE membrane, with or without subsequent stretching at a temperature above the melting temperature of the UHMWPE polymer. The porous UHMWPE membrane can be formed as described in U.S. Pat. No. 9,926,416 (B2).

[0068] In another embodiment, a porous UHMWPE tape can be stretched at a temperature below the melting temperature of the porous UHMWPE tape, from about 100° C. to about 135° C., or from about 120° C. to about 130° C., and then or simultaneously compressed at a pressure of at least 1 MPa, thereby forming a high-density UHMWPE film with a first detectable endotherm at about 135° C. to about 143° C. and a second detectable endotherm at about 145° C. to about 155° C. This high-density film can be combined with stretching at a temperature above the melting temperature of the UHMWPE polymer, from about 140° C. to about 170° C., or from about 150° C. to about 160° C.

[0069] Stretching can be either uniaxial or biaxial, and can be performed at rates up to 20,000% / sec, or from about 0.1% to 20,000% / sec.

[0070] The high density UHMWPE film obtained by the above method exhibits excellent mechanical properties and optional properties such as high strength, optical uniformity, low haze, and transparency.

[0071] Test Method Although particular methods and apparatus are described below, other methods or apparatus may be substituted as deemed appropriate by those skilled in the art.

[0072] Contact Thickness Measurement Thickness was measured by placing the sample flat on a granite block and using a manual Mitutoyo thickness gauge (Mitutoyo Corporation, Kawasaki, Japan) with a 6.35 mm metal plate.

[0073] Mass per area measurement Mass per area measurements were made by weighing the dogbone samples used for mechanical property evaluation and dividing this mass (in grams) by the known area (in square meters) of the dogbone.

[0074] DSC measurement DSC data were collected over a temperature range of -50°C to 200°C using a TA Instruments Discovery DSC at a heating rate of 10°C / min. For resin samples, approximately 5 mg of powder was placed in a standard pan and lid combination available from TA Instruments. Membrane samples were prepared by punching 4 mm disks. The 4 mm disks were placed flat in the pan, and the lid was folded over to sandwich the membrane disk between the pan and lid. A linear integration scheme from 80°C to 180°C was used to integrate the melting enthalpy data. Subsequent deconvolution of the melting region was performed using SeaSolve Software's PeakFit software (PeakFit v4.12 for Windows, Copyright 2003, SeaSolve Software Inc.). Standard conditions were used to fit the baseline (after inverting the data to generate "positive" peaks), and the observed data were then resolved into individual melting components.

[0075] Tensile testing and calculation of matrix tensile strength (MTS), modulus and toughness Tensile tests were performed in the machine direction (MD) and transverse direction (TD) using an Instron® Universal Tensile Tester (Instron Corporation, Norwood, Massachusetts, USA). ASTM D638-V dogbone tensile specimens were clamped in grips spaced 25 mm apart and tested at a crosshead displacement rate of 1.27 mm / s. Matrix tensile strength (MTS) is used to represent the tensile strength of highly porous articles and is calculated using the following formula:

number

[0076] The modulus of elasticity was calculated as the maximum slope drawn through five consecutive points on the stress versus strain plot after a load was detected during the test.

[0077] Toughness was calculated by integrating the area under the stress versus strain plot.

[0078] Gas permeability measurement Permeability was measured according to ASTM method D1434-82 (Standard Test Method for Determining Gas Permeability Properties of Plastic Films and Sheeting) using a Lab Think Perme VacV2 permeability tester (Labthink International, Inc., Boston, MA). Samples were tested by inserting the film into the tester and allowing the film to pass through various individual gases (CO 2 , N 2 and O 2 The measured gas permeability (GTR) was calculated as the permeability coefficient (cm) of each gas. 3 -cm / cm 2 -s-cmHg x 10 -10 or Barrer) and represents the velocity of gas through a volume of material of a given thickness at a given pressure.

[0079] Water vapor transmission rate measurement Measurement of the water vapor transmission rate of materials was performed according to ASTM method F-1249. The instrument used to test the water vapor transmission rate of materials was a MOCON Permatran W 3 / 34 (MOCON / Modern Controls, Inc., Minneapolis, MN). The permeant used was 100% RH water vapor (49.157 mmHg), the carrier gas was 100% nitrogen, dry, at atmospheric pressure, and the test was performed at 37.8°C. Samples were measured over a test area of ​​approximately 0.1287 cm. 2 The sample was cut to fit the diffusion cell of the instrument, masked, and fitted into the diffusion cell of the instrument, and adjusted according to the MOCON Permatran W 3 / 34 instructions. The water vapor transmission rate or water vapor transmission rate was measured by the instrument in g / m 2The water vapor transmission coefficient for each sample was calculated by multiplying the water vapor transmission rate by the thickness of the test sample. The results were reported in g-mm / m 2 Reported per day.

[0080] Optical property measurement Total light transmittance and haze % were determined according to ASTM D1003-13 (Standard Test Method for Haze and Light Transmittance of Transparent Plastics). Incident light (T1), total light transmitted through the sample (T2), light scattered by the instrument (T3), and light scattered by the instrument and sample (T4) were measured in 1 nm steps over the wavelength range of 360-780 nm using a Jasco V-670 UV-Vis-NIR spectrophotometer (JASCO Deutschland GmbH, Pfungstadt, Germany) equipped with a Jasco ILN-725 integrating sphere. Diffuse light transmittance (Td), total light transmittance (Tt), and haze % were calculated according to ASTM D1003-13. [Example]

[0081] example The following examples were carried out on a laboratory scale, but it will be understood that they can be readily adapted to a continuous or semi-continuous process.

[0082] Example 1 powder preparation 300 g of ultra-high molecular weight polyethylene (UHMWPE) powder (manufactured by Mitsui Chemicals, Inc., as described in WO2012053261) with a molecular weight of approximately 7,000,000 g / mol and a melting enthalpy of greater than 190 J / g as measured by DSC was placed in a 2-liter screw-cap jar. Figure 1 shows a typical DCS thermogram of the UHMWPE powder used. 180 mL of isoparaffinic hydrocarbon lubricant (ISOPAR™ V, ExxonMobil Chemical Company, Spring, Texas) was added and mixed at 30 rpm for 15 minutes at room temperature using a tumbler. The mixture was preheated to 60°C prior to calendering.

[0083] Tape calendering Calender rolls, 20.3 cm in diameter, with a 0.2 mm gap between the rolls were preheated to 121°C. Lubricated polymer was introduced into the gap with a feeder, producing a continuous tape 15.2 cm wide at a line speed of 2.0 mpm. The tape was opaque, flexible, and approximately 0.21 mm thick.

[0084] Lubricant removal The tape was passed roll-to-roll through a large bath containing a low aromatic hydrocarbon solvent (ISOPAR™ G, ExxonMobil Chemical Company, Spring, TX) to replace the Isopar V™ with Isopar™ G, and then dried at 50°C.

[0085] Heat compression After removing the lubricant, the dried tape was recalendered between 30.5 cm diameter rolls preheated to 130° C. at a line speed of 0.3 mpm with a roll gap set to 0.09 mm. The resulting compressed tape was translucent and flexible.

[0086] Biaxial stretching Samples were cut from the tape and placed in a Karo IV biaxial stretcher (commercially available from Bruckner Group GmbH, Siegsdorf, Germany) and simultaneously stretched according to the following steps. 1. Preheat the sample to 145°C for 120 seconds. 2. At 145°C, 9.5 times at 37.5% / sec in the calendering direction and 9.5 times at 37.5% / sec in the transverse direction (perpendicular to the calendering direction)

[0087] A differential scanning calorimetry (DSC) thermogram showing the two distinct melting points associated with the stretched high density UHMWPE film is included in Figure 2. The physical, mechanical, gas permeation, water vapor permeation and optical properties of Example 1 are shown in Figure 5 and Table 1.

[0088] Example 2 powder preparation Powder preparation was carried out according to the method described in Example 1.

[0089] Tape calendering method Calender rolls, 30.5 cm in diameter, with a gap between the rolls set at 0.16 mm were preheated to 124°C. Lubricated polymer was introduced into the gap with a feeder, producing a continuous tape 15.2 cm wide at a line speed of 2.1 mpm. The tape was opaque, flexible, and approximately 0.17 mm thick.

[0090] Lubricant removal Lubricant removal was carried out according to the method described in Example 1.

[0091] Biaxial stretching: The samples were biaxially stretched as described in Example 1, but following the steps below. 1. Preheat the sample to 160°C for 30 seconds. 2. At 160°C, using constant speed mode, 2.5 times at 28% / sec in the calender direction and 9.5 times at 70% / sec in the transverse direction (perpendicular to the calender direction).

[0092] A differential scanning calorimetry (DSC) thermogram showing the two distinct melting points associated with the stretched high density UHMWPE film is included in Figure 3. The physical, mechanical and gas permeation properties of Example 2 are shown in Figure 5 and Table 1.

[0093] Example 3 Creation of porous membranes A porous polyethylene membrane was prepared according to US Patent No. 9,926,416 (B2). The membrane had a mass per area of ​​14.7 g / m. 2 , bubble point pressure 324kPa, ATEQ air flow 2.2cm 2 area at 7 l / hr at 1.2 kPa, with a calender MTS of 189 MPa and a transverse MTS of 183 MPa. This membrane was used in all subsequent treatments.

[0094] Heat compression The membrane was cut and two layers were cross-laminated, then placed on a steel autoclave plate between two layers of polymethylpentene film (TPX™, Mitsui Chemicals, Tokyo, Japan) and sealed with tape. A vacuum was applied to the sample, and then the temperature and pressure were increased over a 45-minute period. Two samples were produced with different compression temperatures and subsequent treatments.

[0095] Example 3a was prepared at a temperature of 155°C using a pressure of 1.7 MPa.

[0096] Example 3b was prepared at a temperature of 160°C using a pressure of 1.7 MPa.

[0097] The resulting dense film was clear with no detectable airflow. The DSC thermogram of Example 3a is shown in Figure 4, and the mechanical properties of Example 3a are listed in Table 1.

[0098] Example 4 The high density films formed as Examples 3a and 3b were further subjected to biaxial stretching. Biaxial stretching Sections of Examples 3a and 3b were cut and placed in a Karo IV biaxial orienter as described in Example 1 and stretched according to these steps. Example 4a a. Preheat the sample (Example 3a) to 155°C for 30 seconds b. At 155°C, 3.0x at 3% / sec in the calendering direction and 3.0x at 3% / sec in the transverse direction 2. Example 4b a. Preheat the sample (Example 3b) to 155°C for 30 seconds b. At 155°C, 2.0× at 3% / sec in the calender direction and 2.0× at 3% / sec in the transverse direction.

[0099] Gas and water vapor transmission data for Example 4b are shown in FIG.

[0100] [Table 1]

[0101] The invention of this application has been described above both generically and with respect to specific embodiments. While the invention has been shown in what are considered to be preferred embodiments, a wide variety of alternatives known to those skilled in the art may be selected within the scope of the generic disclosure. The invention is not otherwise limited, except as set forth in the claims below. (Aspect) (Aspect 1) A high density ultra-high molecular weight polyethylene (UHMWPE) film, A first endotherm at about 135°C to about 143°C, a second endotherm at about 145°C to about 155°C, and At least approximately 90% total light transmittance measured from 360nm to 780nm A high density ultra-high molecular weight polyethylene (UHMWPE) film comprising: (Aspect 2) 2. The high-density UHMWPE film of embodiment 1, wherein the UHMWPE film has a machine direction (MD) matrix tensile strength of at least 200 MPa. (Aspect 3) 3. The high density UHMWPE film of claim 1 or claim 2, wherein the UHMWPE film has a matrix tensile strength in the transverse direction (TD) of at least 400 MPa. (Aspect 4) The high-density UHMWPE film according to any one of embodiments 1 to 3, wherein the ratio of matrix tensile strengths MD:TD is from about 1:5 to about 5:1. (Aspect 5) The UHMWPE film is 2 Transparency, O 2 Permeability or N 2 5. The high-density UHMWPE film of any one of embodiments 1 to 4, having a permeability of less than 10 barrels. (Aspect 6) 6. The high-density UHMWPE film according to any one of aspects 1 to 5, wherein the UHMWPE film has a thickness of 0.0005 mm to 1 mm. (Aspect 7) 7. The high-density UHMWPE film according to any one of aspects 1 to 6, wherein the high-density UHMWPE film is formed from a UHMWPE polymer having a molecular weight of about 2,000,000 g / mol to about 10,000,000 g / mol and a melting enthalpy of greater than 190 J / g. (Aspect 8) A composite comprising the high-density UHMWPE film according to any one of embodiments 1 to 7. (Aspect 9) An article comprising the high density UHMWPE film of any one of embodiments 1 to 8. (Aspect 10) 1. A method for forming a high density UHMWPE film, comprising: forming a dried porous UHMWPE tape from a UHMWPE polymer having a molecular weight of at least 2,000,000 g / mol and a melting enthalpy of at least 190 J / g; compressing the dried porous UHMWPE tape at a temperature below the melting temperature of the UHMWPE polymer; and stretching the UHMWPE tape in at least two directions at a temperature above the melting temperature of the UHMWPE polymer to form a high density UHMWPE film; The high density UHMWPE film comprises: a detectable first endotherm at about 135°C to about 143°C; and a detectable second endotherm at about 145°C to about 155°C; The method comprises: (Aspect 11) 11. The method of embodiment 10, wherein the high-density UHMWPE film has a total light transmittance measured from 250 nm to 800 nm of at least about 98%. (Aspect 12) The forming process is providing a paste comprising a UHMWPE polymer as a powder and a lubricant; forming the paste into a tape; removing the lubricant to form a dry porous UHMWPE tape; and stretching the tape to form a high density UHMWPE film; 12. The method of embodiment 10 or 11, comprising: (Aspect 13) 13. The method of any one of aspects 10 to 12, wherein the step of stretching the compressed UHMWPE tape is carried out at a temperature of 140°C to 170°C and at a rate of about 0.1% to 20,000% / sec. (Aspect 14) The high density UHMWPE film further has a machine direction matrix tensile strength to transverse direction matrix tensile strength ratio of about 1:5 to about 5:1, a matrix tensile strength of at least 500 x 500 (MD x TD) MPa, and 2 、O 2 or N 2 The permeability is 0.01 to 10 barrels, and the water vapor permeability coefficient is 0.02 g·mm / m 2 14. The method according to any one of aspects 10 to 13, wherein the daily intake of the patient is less than 1000 mg / day. (Aspect 15) 1. A method for forming a high density UHMWPE film, comprising: forming a dried porous UHMWPE tape from a UHMWPE polymer having a molecular weight of at least 2,000,000 g / mol and a melting enthalpy of at least 190 J / g; and stretching the dried porous UHMWPE tape in at least two directions at a temperature above the melting temperature of the UHMWPE polymer to form a high density UHMWPE film; The high density UHMWPE film comprises: a first detectable endotherm at about 135°C to about 143°C; and a second detectable endotherm at about 145°C to about 155°C; A method comprising: (Aspect 16) The forming process is providing a paste comprising a UHMWPE polymer as a powder and a lubricant; forming the paste into a tape; removing the lubricant to form a dry porous UHMWPE tape; and stretching the tape to form a high density UHMWPE film; 16. The method of embodiment 15, comprising: (Aspect 17) 17. The method according to claim 15 or 16, wherein the step of stretching the dried UHMWPE tape is carried out at a temperature of 140°C to 170°C and at a speed of about 0.1% to 20,000% / sec. (Aspect 18) The high density UHMWPE film further has a machine direction matrix tensile strength to transverse direction matrix tensile strength ratio of about 1:5 to about 5:1, a matrix tensile strength of at least 200 x 200 (MD x TD) MPa, and 2 、O 2 or N 2 18. The method according to any one of embodiments 15 to 17, wherein the permeability is 0.01 to 10 barrels. (Aspect 19) 1. A method for forming a high density UHMWPE film, comprising: (a) forming a porous UHMWPE tape from a UHMWPE polymer having a molecular weight of at least 2,000,000 g / mol and a melting enthalpy of at least 190 J / g; (b) expanding the porous UHMWPE tape at a temperature below the melting temperature of the porous UHMWPE tape to form a porous membrane; and (c) compressing the porous UHMWPE membrane at a pressure of at least 1 MPa to form a high-density UHMWPE film; The high density UHMWPE film comprises: A first endotherm at about 135°C to about 143°C, a second detectable endotherm at about 145°C to about 155°C; A method comprising: (Aspect 20) 20. The method of embodiment 19, further comprising: (d) stretching the high density UHMWPE film at a temperature above the melting temperature of the UHMWPE polymer. (Aspect 21) 21. The method of embodiment 19 or embodiment 20, wherein the stretching and compressing steps are performed simultaneously. (Aspect 22) The method according to any one of embodiments 19 to 21, wherein the stretching step after compression is carried out at a temperature of about 140°C to about 170°C. (Aspect 23) The high density UHMWPE film further has a machine direction matrix tensile strength to transverse direction matrix tensile strength ratio of about 1:5 to about 5:1, a matrix tensile strength of at least 200 x 200 (MD x TD) MPa, and a water vapor permeability coefficient of 0.21 g-mm / m 2 23. The method of any one of aspects 19 to 22, wherein the daily dose is less than 100 mg / day. (Aspect 24) 24. The method of any one of embodiments 10 to 23, wherein the stretching step comprises biaxial or radial stretching.

Claims

1. A high density ultra-high molecular weight polyethylene (UHMWPE) film, a first endotherm at 135°C to 143°C; A second endotherm at 145°C to 155°C, and At least 90% total light transmittance measured from 360 nm to 780 nm A high density ultra-high molecular weight polyethylene (UHMWPE) film comprising:

2. 2. The high density UHMWPE film of claim 1, wherein the UHMWPE film has a machine direction (MD) matrix tensile strength of at least 200 MPa.

3. 3. The high density UHMWPE film of claim 1 or claim 2, wherein the UHMWPE film has a matrix tensile strength in the transverse direction (TD) of at least 400 MPa.

4. 3. The high density UHMWPE film according to claim 1, wherein the ratio of matrix tensile strength MD:TD is from 1:5 to 5:

1.

5. The UHMWPE film is 2 Transparency, O 2 Permeability or N 2 3. The high-density UHMWPE film according to claim 1, having a permeability of less than 33.5×10 −16 (mol·m / (s·m 2 ·Pa)) (10 barrels).

6. The high density UHMWPE film according to any one of claims 1 to 2, wherein the UHMWPE film has a thickness of 0.0005 mm to 1 mm.

7. The high-density UHMWPE film according to any one of claims 1 to 2, wherein the high-density UHMWPE film is formed from a UHMWPE polymer having a molecular weight of 2,000,000 g / mol to 10,000,000 g / mol and a melting enthalpy of greater than 190 J / g.

8. A composite material comprising the high density UHMWPE film according to any one of claims 1 to 2.

9. An article comprising the high density UHMWPE film according to any one of claims 1 to 2.

10. 1. A method for forming a high density UHMWPE film, comprising: forming a dried porous UHMWPE tape from an UHMWPE polymer having a molecular weight of at least 2,000,000 g / mol and a melting enthalpy of at least 190 J / g; compressing the dried porous UHMWPE tape at a temperature below the melting temperature of the UHMWPE polymer; and stretching the UHMWPE tape in at least two directions at a temperature above the melting temperature of the UHMWPE polymer to form a high density UHMWPE film; The high density UHMWPE film comprises: a first detectable endotherm between 135°C and 143°C; and a detectable second endotherm between 145°C and 155°C; The method comprises:

11. The method of claim 10, wherein the high density UHMWPE film has a total light transmittance measured from 250 nm to 800 nm of at least 98%.

12. The forming process is providing a paste comprising a UHMWPE polymer as a powder and a lubricant; forming the paste into a tape; removing the lubricant to form a dry porous UHMWPE tape; and stretching the tape to form a high density UHMWPE film; 12. The method of claim 10 or 11, comprising:

13. The method according to any one of claims 10 to 11, wherein the step of stretching the compressed UHMWPE tape is carried out at a temperature of 140°C to 170°C and at a speed of 0.1% to 20,000% / sec.

14. The high density UHMWPE film further has a ratio of machine direction matrix tensile strength to transverse direction matrix tensile strength of 1:5 to 5:1, a matrix tensile strength of at least 500 x 500 (MD x TD) MPa, and 2 , O 2 or N 2 The permeability is 0.0335×10 −16 (0.01) to 33.5×10 −16 (mol·m / (s·m 2 ·Pa)) (10 barrels), and the water vapor permeability coefficient is 0.02 g·mm / m 2 The method according to any one of claims 10 to 11, wherein the daily dose is less than 100 mg / day.

15. 1. A method for forming a high density UHMWPE film, comprising: forming a dried porous UHMWPE tape from an UHMWPE polymer having a molecular weight of at least 2,000,000 g / mol and a melting enthalpy of at least 190 J / g; and stretching the dried porous UHMWPE tape in at least two directions at a temperature above the melting temperature of the UHMWPE polymer to form a high density UHMWPE film; The high density UHMWPE film comprises: a first detectable endotherm between 135°C and 143°C; and a second detectable endotherm at 145°C to 155°C; A method comprising:

16. The forming process is providing a paste comprising a UHMWPE polymer as a powder and a lubricant; forming the paste into a tape; removing the lubricant to form a dry porous UHMWPE tape; and stretching the tape to form a high density UHMWPE film; 16. The method of claim 15, comprising:

17. 17. The method according to claim 15 or 16, wherein the step of stretching the dried UHMWPE tape is carried out at a temperature of 140°C to 170°C and at a speed of 0.1% to 20,000% / sec.

18. The high density UHMWPE film further has a ratio of machine direction matrix tensile strength to transverse direction matrix tensile strength of 1:5 to 5:1, a matrix tensile strength of at least 200 x 200 (MD x TD) MPa, and 2 , O 2 or N 2 17. The method of any one of claims 15 to 16, wherein the permeability is from 0.0335 x 10 -16 (0.01) to 33.5 x 10 -16 (mol·m / (s·m 2 ·Pa)) (10 barrels).

19. 1. A method for forming a high density UHMWPE film, comprising: (a) forming a porous UHMWPE tape from an UHMWPE polymer having a molecular weight of at least 2,000,000 g / mol and a melting enthalpy of at least 190 J / g; (b) expanding the porous UHMWPE tape at a temperature below the melting temperature of the porous UHMWPE tape to form a porous membrane; and (c) compressing the porous UHMWPE membrane at a pressure of at least 1 MPa to form a high density UHMWPE film; The high density UHMWPE film comprises: a first endotherm at 135°C to 143°C; a second detectable endotherm at 145°C to 155°C; A method comprising:

20. 20. The method of claim 19, further comprising: (d) stretching the high density UHMWPE film at a temperature above the melting temperature of the UHMWPE polymer.

21. 21. The method of claim 19 or claim 20, wherein the stretching and compressing steps are performed simultaneously.

22. A method according to any one of claims 19 to 20, wherein the stretching step after compaction is carried out at a temperature of from 140°C to 170°C.

23. The high density UHMWPE film further has a machine direction matrix tensile strength to transverse direction matrix tensile strength ratio of 1:5 to 5:1, a matrix tensile strength of at least 200 x 200 (MD x TD) MPa, and a water vapor permeability of 0.21 g-mm / m 2 The method of any one of claims 19 to 20, wherein the daily dose is less than 100 mg / day.

24. 21. The method of claim 10, 11, 19 or 20, wherein the stretching step comprises biaxial or radial stretching.

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