Azeotropic and azeotrope-like compositions comprising dichloromethane and trans-1h,2h-octafluorocyclopentane and use of the compositions as flash spinning agents

Azeotropic compositions of dichloromethane and trans-1H,2H-octafluorocyclopentane address the high GWP and recovery challenges in flash spinning, enabling efficient production of plexifilamentary fibrils with reduced environmental impact and operational costs.

WO2025144674A1PCT designated stage expired Publication Date: 2025-07-03DUPONT SAFETY & CONSTRUCTION INC
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Patent Information

Application Number
PCT/US2024/060982
Authority / Receiving Office
WO · WO
Patent Type
Applications
Current Assignee / Owner
Priority Date
2023-12-27
Filing Date
2024-12-19
Publication Date
2025-07-03

AI Technical Summary

Technical Problem

Existing flash spinning processes using dichloromethane as a solvent face challenges with high global warming potential (GWP) and complex recovery processes due to the use of linear hydrofluorocarbons, leading to increased costs and operational complexity, especially when forming heterogeneous liquid phases.

Method used

Development of azeotropic and azeotrope-like compositions comprising dichloromethane and trans-1H,2H-octafluorocyclopentane, which form a homogeneous phase, have low GWP, and facilitate efficient spin agent recovery, suitable for a broad range of polymers and blends.

Benefits of technology

The compositions enable efficient flash spinning with reduced GWP, simplified recovery processes, and consistent solvent properties, allowing for the production of plexifilamentary fibrils with improved operational efficiency and cost-effectiveness.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to (i) an azeotropic or azeotrope-like composition comprising dichloromethane and trans-1H,2H-octafluorocyclopentane, (ii) a spin fluid for flash spinning comprising this azeotropic or azeotrope-like composition and a polymer, and (iii) a process for the preparation of plexifilamentary fibrils of polymers using the spin fluid.
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Description

[0001] TITLE

[0002] AZEOTROPIC AND AZEOTROPE-LIKE COMPOSITIONS COMPRISING DICHLOROMETHANE AND TRANS-1 H.2H-OCTAFLUOROCYCLOPENTANE AND USE OF THE COMPOSITIONS AS FLASH SPINNING AGENTS

[0003] FIELD OF THE INVENTION

[0004] The present invention relates to (i) an azeotropic or azeotrope-like composition comprising dichloromethane and trans- 1 H,2H-octafluorocyclopentane, (ii) a spin fluid for flash spinning comprising this azeotropic or azeotrope-like composition and a polymer, and (iii) a process for the preparation of plexifilamentary fibrils of polymers using the spin fluid.

[0005] BACKGROUND

[0006] Flash spinning is a process for producing fibrils that involves the following steps: (i) dissolving a polymer in a composition comprising one or more solvents (often called a spin agent), at elevated temperature and pressure to form a homogeneous solution (often called a spin fluid), (ii) reducing the pressure sufficiently below the spin fluid’s cloud point pressure (i.e. , the pressure at which the spin fluid transitions from a clear solution to a cloudy, two- phase dispersion), while still maintaining sufficient pressure to prevent the spin fluid from reaching its bubble point pressure (i.e., the pressure at which the spin agent in the spin fluid begins to boil), (iii) releasing the resulting dispersion continuously through one or more orifices into a lower pressure region at or near atmospheric temperature and pressure so that the spin agent flash evaporates as it emerges from the one or more orifices, (iv) collecting the polymer which remains as a stream of fibrils, e.g., plexifilamentary fibrils, and (v) recovering the evaporated spin agent for re-use. Examples of flash spinning processes are disclosed in US 3,081 ,519 and US 3,227,794.

[0007] In a commercial flash spinning process, the spin agent’s solvent properties and physical properties are critical. In particular, the solvent properties of the spin agent determine whether and under what conditions fibrils are produced in the flash spinning process, and the spin agent’s physical properties impact the process for recovering and re-using the spin agent. The process for recovering spin agents typically involves a step in which the spin agent is condensed from the gas state to the liquid state. During this step, it is preferred that the composition of the spin agent remains essentially constant. This is inherent when spin agents comprise only one solvent but not when spin agents comprise two or more solvents, which are often required to provide the necessary solvent properties for flash spinning the desired polymer. Accordingly, when using a spin agent that comprises two or more solvents, it is advantageous to use a composition that is azeotropic or azeotrope-like which behaves similarly to a spin agent with only one solvent.

[0008] One example of a commonly used solvent for polymers such as polyolefins is dichloromethane (DCM). DCM, however, is too strong of a solvent and cannot be used as the only component in a spin agent composition for flash spinning because it dissolves polymers at relatively low pressures. Weaker solvents such as hydrofluorocarbons can be mixed with DCM to reduce the solvent strength of the spin agent and increase the spin fluid’s cloud point pressure such that flash spinning can be readily accomplished. WO 2016 / 200873 A1 suggests spin agent compositions of dichloromethane with 1 H,6H-perfluorohexane, 1 H- perfluorohexane, or 1 H-perfluoroheptane. However, use of such linear hydrofluorocarbons in combination with DCM results in spin agents that often exhibit undesirably high global warming potential (GWP). In view of the growing concerns regarding climate change and increasing regulatory requirements, there is a need to find suitable low GWP replacements for currently used spin agent compositions. Such spin agent composition should also form a homogeneous liquid phase at ambient temperatures and pressures, rather than a heterogeneous liquid phase where, due to low miscibility of the components of the spin agent composition, a liquid phase separation occurs. Compositions forming heterogeneous liquid phases are usually undesired since processes involving such compositions are more complex and expensive due to the liquid phase separation.

[0009] US 5,672,307 reports a flash spinning process using spin agent compositions of dichloromethane with cyclic perfluorocarbons, such as perfluoro-1 ,2-dimethylcyclobutane, and perfluoro-N-methylmorpholine. US 5,874,036, and US 5,977,237 report a flash spinning process using spin agent compositions of dichloromethane with cyclic partially fluorinated hydrocarbons, such as 1 ,1 ,2,2,3,3-hexafluorocyclopentane, and cis-1 , 1 ,2,2,3,3,4,5- octafluorocyclopentane (having a boiling point of 79 °C). However, the disclosed compositions complicate the spin agent recovery process since (i) many of the disclosed non-DCM components are not miscible with DCM at ambient temperatures and pressures, which results in a heterogeneous liquid phase of the non-DCM component and the DCM after condensation of the spin agent, i.e. , to a liquid phase separation of the two components, and / or (ii) the disclosed compositions do not form an azeotropic or azeotrope-like composition at a ratio that is ideal for flash spinning (this applies inter alia to spin agent compositions of dichloromethane and cis-1 ,1 ,2,2,3,3,4,5-octafluorocyclopentane). Where an azeotrope forms between DCM and the non-DCM component in the spin agent, it is beneficial if this is a positive azeotrope because the boiling point of the azeotrope is then lower than that of either individual component of the spin agent composition. This allows the low-pressure region into which flash spinning takes place (i.e., the spin-cell) to be maintained at a lower temperature without risking the spin agent condensing inside it. This also reduces the need for spin-cell heating and provides a more comfortable environment for operators working near the spin-cell. On the other hand, a negative azeotrope, which has a higher boiling point than that of either individual component of the spin agent composition, could require spin-cell heating which would lead to increased equipment and operating costs.

[0010] Accordingly, there is a need for, and the present inventors have discovered, low GWP azeotropic and azeotrope-like compositions of dichloromethane and a low GWP hydrofluorocarbon that (i) form a positive homogenous azeotrope with a boiling temperature below 60 °C, (ii) simplify the spin agent recovery and re-use process, and (iii) provide suitable cloud point pressures for flash spinning a broad range of different polymers and blends / mixtures thereof.

[0011] SUMMARY OF THE INVENTION

[0012] In one embodiment, the invention is directed to an azeotropic or azeotrope-like composition comprising dichloromethane and trans-1 H,2H-octafluorocyclopentane.

[0013] In a further embodiment, the invention is directed to a spin fluid for flash spinning comprising (a) from about 5 to about 35 weight percent of a polymer, based on the total amount of the spin fluid, and (b) a spin agent, wherein the spin agent comprises an azeotropic or azeotrope-like composition comprising dichloromethane and trans-1 H,2H- octafluorocyclopentane.

[0014] In a further embodiment, the invention is directed to a process for the preparation of plexifilamentary fibrils of polymer. The process comprises the steps of:

[0015] (i) generating a spin fluid comprising

[0016] (a) about 5 to about 35 weight percent of a polymer, based on the total amount of the spin fluid, and

[0017] (b) a spin agent, and

[0018] (ii) flash spinning the spin fluid at a pressure that is above the vapor pressure of the spin fluid into a region of essentially atmospheric pressure to form plexifilamentary fibrils of the polymer, wherein the spin agent comprises an azeotropic or azeotrope-like composition comprising dichloromethane and trans-1 H,2H-octafluorocyclopentane. BRIEF DESCRIPTION OF THE FIGURES

[0019] Fig. 1 shows the calculated vapor-liquid equilibrium (VLE) for the compositions of dichloromethane and trans- 1 H,2H-octafluorocyclopentane at 40 °C.

[0020] Fig. 2 shows the cloud point pressure curve of a spin fluid comprising 15 wt% polyethylene (PE) and a spin agent of DCM and trans-1 H,2H-octafluorocyclopentane in a 66:34 ratio by weight.

[0021] Fig. 3 shows the cloud point pressure curve of a spin fluid comprising 15 wt% polypropylene (PP) and a spin agent of DCM and trans-1 H,2H-octafluorocyclopentane in a 47:53 ratio by weight.

[0022] Fig. 4 shows the cloud point pressure curve of a spin fluid comprising 26 wt% polyvinylidene fluoride (PVDF) and a spin agent of DCM and trans-1 H,2H- octafluorocyclopentane in a 47:53 ratio by weight.

[0023] Fig. 5 shows the cloud point pressure curve of a spin fluid comprising 26 wt% ethylenetetrafluoroethylene (ETFE) and a spin agent of DCM and trans-1 H,2H-octafluorocyclopentane in a 47:53 ratio by weight.

[0024] DETAILED DESCRIPTION

[0025] Definitions and Clarification of Terms

[0026] Before addressing details of embodiments, some terms and test methods are defined or clarified. Unless otherwise mentioned, all tests were carried out without preconditioning of the samples. When average values are indicated herein, this refers to the arithmetic average.

[0027] Density is determined according to the method described in ISO 1 183 (Plastics - Methods for determining the density of non-cellular plastics).

[0028] Melting temperature is determined by differential scanning calorimetry, following the guidance provided in ASTM D3418 (Standard Test Method for Transition Temperatures and Enthalpies of Fusion and Crystallization of Polymers by Differential Scanning Calorimetry) and ASTM Standard F2625 (Standard Test Method for Measurement of Enthalpy of Fusion, Percent Crystallinity and Melting Point of Ultra-High-Molecular weight polyethylene by means of differential scanning calorimetry). For polyethylene, heating and cooling is performed under inert gas at a rate of 10 °C / minute, heating the sample first from room temperature to 210 °C, then cooling the sample back to room temperature and subsequently heating the sample a second time to 210 °C. The melting point reported herein is the peak temperature of the endotherm of the second heating cycle. For polypropylene, the same procedure applies - where the maximum temperature is 230 °C.

[0029] The melt flow rate is determined according to the method described in ISO 1 133 (Plastics - Determination of the melt mass-flow rate (MFR) and the melt volume-flow rate (MVR) of thermoplastics). The melt flow rate for polyethylene is determined at a temperature of 190 °C and using a mass of 2160 grams, 5000 grams (5kg) or 21 ,600 gram (21.6kg). The melt flow rate for polypropylene is determined at a temperature of 230 °C and using a mass of 2160 grams. The melt flow rates of other polyolefins are performed at different temperatures as specified in ISO 1133.

[0030] The melt flow rate forethylene-tetrafluoroethylene copolymers is determined according to the method described in ASTM D3159 (Standard Specification for Modified ETFE Fluoropolymer Molding and Extrusion Materials).

[0031] The term “polymer” is intended to embrace, without limitation, homopolymers, copolymers (such as for example, block, graft, random, and alternating copolymers), terpolymers, etc., and blends and modifications thereof. Furthermore, unless otherwise specifically limited, the term “polymer” shall include all possible geometrical configurations of the material. These configurations include, but are not limited to, isotactic, syndiotactic, and random symmetries.

[0032] The term “polyethylene” is intended to embrace not only homopolymers of ethylene, but also copolymers and terpolymers wherein at least 85% of the recurring units are ethylene units, and the comonomer unit is for example propylene, butylene, hexene or octene. One useful polyethylene is a high-density polyethylene that has a melting temperature of about 123 °C to about 140 °C, a density in the range of 0.94 to 0.98 grams per cubic centimeter, and a melt flow rate (ISO 1 133, 190 °C / 2160 grams) of between 0.05 g / 10min and 30 g / 10min, preferably less than 4 g / 10min, and / or a melt flow rate (ISO 1133, 190 °C / 21 ,600 grams) of between 1 g / 10min and 15 g / 10min.

[0033] The term “polypropylene” is intended to embrace not only homopolymers of propylene but also copolymers and terpolymers where at least 85% of the recurring units are propylene units. Furthermore, unless otherwise specifically limited, the term “polypropylene” shall include all possible geometrical configurations of the material. These configurations include, but are not limited to, isotactic, syndiotactic, and random symmetries.

[0034] The term “polyvinylidene fluoride” (PVDF) is intended to embrace not only homopolymers of vinylidene fluoride but also copolymers where at least 70% of the recurring units are vinylidene fluoride units.

[0035] The term “ethylene-tetrafluoroethylene” (ETFE”) is intended to embrace not only copolymers of ethylene and tetrafluoroethylene but also copolymers where at least 70% of the recurring units are ethylene and tetrafluoroethylene units. The ratio of ethylene to tetrafluoroethylene units in the copolymer may vary over wide limits. For example, the mole ratio of tetrafluoroethylene to ethylene units may be from about 40 / 60 to about 70 / 30. The term “polymer type” refers to the chemical class into which the polymer falls, for example, polyethylene, polypropylene, polyvinylidene fluoride, polyethylene tetrafluoroethylene) copolymer, etc.

[0036] The term “plexifilamentary” refers to a three-dimensional integral network or web of a multitude of thin, ribbon-like, fibrils of random length and a median fibril width of less than about 25 microns. In plexifilamentary structures, the fibrils are generally coextensively aligned with the longitudinal axis of the structure, and they intermittently unite and separate at irregular intervals in various places throughout the length, width, and thickness of the structure to form a continuous three-dimensional network or web.

[0037] The terms “spin agent” or “spin agent composition” refers to a composition comprising one or more solvents and any additives that are used to initially dissolve the polymer(s) to form the spin fluid. Suitable additives include stabilizers, such as antioxidants or acid scavengers.

[0038] The term “spin fluid” refers to a solution for spinning in a flash spinning process comprising a polymer and a spin agent. The solution may also include one or more additives.

[0039] The term “dew point pressure” refers to the pressure at which, at constant temperature, liquid starts condensing from a vapor, vapor mixture, or vapor-gas mixture.

[0040] The term “bubble point pressure” refers to the pressure at which, at constant temperature, a liquid, liquid mixture, or liquid-solution begins to boil.

[0041] The term “azeotropic composition” refers to a composition comprising two or more fluids wherein the bubble point pressure equals the dew point pressure. An azeotropic composition boils without change of the composition and behaves as a single substance. The azeotropic compositions described herein are determined in a temperature range of -20 °C to 100 °C and expressed in mass fractions.

[0042] The term “azeotrope-like composition” refers to a composition comprising two or more fluids which exhibit only small differences between the dew point pressure and the bubble point pressure, i.e., the dew point pressure is different by 5% or less from the bubble point pressure (both expressed in absolute pressure). An azeotrope-like composition boils without substantial change of the composition and behaves substantially as a single substance. The azeotrope-like compositions described herein are determined in a temperature range of -20 °C to 100 °C and expressed in mass fractions.

[0043] The term “cloud point pressure” refers to the pressure at which, at constant temperature, a clear single phase spin fluid transitions from a clear solution to a cloudy, two- phase dispersion. At the cloud point pressure, a clear spin fluid becomes turbid.

[0044] Atmospheric pressure means 101.325 kPa. Essentially atmospheric pressure means 101.325 kPa ± 5 %. As used herein, the singular forms "a," "an," and "the" include the plural, and reference to a particular numerical value includes at least that particular value, unless the context clearly dictates otherwise. When a range of values is expressed, another embodiment includes from the one particular value and / or to the other particular value. Similarly, when values are expressed as approximations, by use of the antecedent "about," it will be understood that the particular value forms another embodiment. All ranges are inclusive and combinable.

[0045] Azeotropic or Azeotrope-like Compositions

[0046] Provided herein are azeotropic or azeotrope-like compositions comprising dichloromethane and trans-1 H,2H-octafluorocyclopentane.

[0047] In some embodiments, the azeotropic or azeotrope-like compositions comprise from about 23 to about 99 weight percent dichloromethane and from about 77 to about 1 weight percent trans-1 H,2H-octafluorocyclopentane. These azeotropic or azeotrope-like compositions boil at a temperature of about -20 °C to about 100 °C and at a boiling pressure of about 7 kPa to about 681 kPa. In other embodiments, the azeotropic or azeotrope-like compositions comprise from about 30 to about 68 weight percent dichloromethane and from about 70 to about 32 weight percent trans-1 H,2H-octafluorocyclopentane. These azeotropic or azeotrope-like compositions boil at a temperature of about -20 °C to about 60 °C and at a boiling pressure of about 7 kPa to about 238 kPa. In other embodiments, the azeotropic or azeotrope-like compositions comprise from about 34 to about 66 weight percent dichloromethane and from about 66 to about 34 weight percent trans-1 H,2H- octafluorocyclopentane. These azeotropic or azeotrope-like compositions boil at a temperature of about -20 °C to about 40 °C and at a boiling pressure of about 7 kPa to about 125 kPa.

[0048] In some embodiments, the azeotropic or azeotrope-like compositions consist essentially of from about 23 to about 99 weight percent dichloromethane and from about 77 to about 1 weight percent trans-1 H,2H-octafluorocyclopentane. These azeotropic or azeotrope-like compositions boil at a temperature of about -20 °C to about 100 °C and at a boiling pressure of about 7 kPa to about 681 kPa. In other embodiments, the azeotropic or azeotrope-like compositions consist essentially of from about 30 to about 68 weight percent dichloromethane and from about 70 to about 32 weight percent trans-1 H,2H- octafluorocyclopentane. These azeotropic or azeotrope-like compositions boil at a temperature of about -20 °C to about 60 °C and at a boiling pressure of about 7 kPa to about 238 kPa. In other embodiments, the azeotropic or azeotrope-like compositions consist essentially of from about 34 to about 66 weight percent dichloromethane and from about 66 to about 34 weight percent trans-1 H,2H-octafluorocyclopentane. These azeotropic or azeotrope-like compositions boil at a temperature of about -20 °C to about 40 °C and at a boiling pressure of about 7 kPa to about 125 kPa. In some embodiments, the azeotropic or azeotrope-like compositions consist of from about 23 to about 99 weight percent dichloromethane and from about 77 to about 1 weight percent trans-1 H,2H- octafluorocyclopentane. These azeotropic or azeotrope-like compositions boil at a temperature of about -20 °C to about 100 °C and at a boiling pressure of about 7 kPa to about 681 kPa. In other embodiments, the azeotropic or azeotrope-like compositions consist of from about 30 to about 68 weight percent dichloromethane and from about 70 to about 32 weight percent trans-1 H,2H-octafluorocyclopentane. These azeotropic or azeotrope-like compositions boil at a temperature of about -20 °C to about 60 °C and at a boiling pressure of about 7 kPa to about 238 kPa. In other embodiments, the azeotropic or azeotrope-like compositions consist of from about 34 to about 66 weight percent dichloromethane and from about 66 to about 34 weight percent trans-1 H,2H-octafluorocyclopentane. These azeotropic or azeotrope-like compositions boil at a temperature of about -20 °C to about 40 °C and at a boiling pressure of about 7 kPa to about 125 kPa. The compound 1 H,2H- octafluorocyclopentane has a reported GWP-100 (global warming potential over a 100-year period) of 258 (IPCC 2021 report), and dichloromethane (DCM) has a reported GWP-100 of 11.2 according to the same source. Accordingly, the azeotropic or azeotrope-like compositions combining the two compounds have a low global warming potential (GWP). In some embodiments, the azeotropic or azeotrope-like compositions have a GWP-100 (global warming potential over a 100-year period) of less than 210, in other embodiments of less than 190, in other embodiments of less than 180, and in other embodiments of less than 100.

[0049] In some embodiments, the composition comprising dichloromethane and trans-1 H,2H- octafluorocyclopentane is azeotropic. In some embodiments, the azeotropic composition consists essentially of from about 42 to about 51 weight percent dichloromethane and from about 58 to about 49 weight percent trans-1 H,2H-octafluorocyclopentane. These azeotropic compositions boil at a temperature of about -20 °C to about 100 °C and at a boiling pressure of about 8 kPa to about 681 kPa. In some embodiments, the azeotropic composition consists of from about 42 to about 51 weight percent dichloromethane and from about 58 to about 49 weight percent trans-1 H,2H-octafluorocyclopentane. These azeotropic compositions boil at a temperature of about -20 °C to about 100 °C and at a boiling pressure of about 8 kPa to about 681 kPa.

[0050] In some embodiments, the azeotropic composition consists essentially of about 51.0 weight percent dichloromethane and about 49.0 weight percent trans-1 H,2H- octafluorocyclopentane at a pressure of about 8.0 kPa and at a boiling temperature of about -20 °C. In some embodiments, the azeotropic composition consists of about 51.0 weight percent dichloromethane and about 49.0 weight percent trans- 1 H,2H-octafluorocyclopentane at a pressure of about 8.0 kPa and at a boiling temperature of about -20 °C. In some embodiments, the azeotropic composition consists essentially of about 48.0 weight percent dichloromethane and about 52.0 weight percent trans-1 H,2H-octafluorocyclopentane at a pressure of about 58.2 kPa and at a boiling temperature of about 20 °C. In some embodiments, the azeotropic composition consists of about 48.0 weight percent dichloromethane and about 52.0 weight percent trans-1 H,2H-octafluorocyclopentane at a pressure of about 58.2 kPa and at a boiling temperature of about 20 °C. In some embodiments, the azeotropic composition consists essentially of about 47.0 weight percent dichloromethane and about 53.0 weight percent trans-1 H,2H-octafluorocyclopentane at a pressure of about 124.2 kPa and at a boiling temperature of about 40 °C. In some embodiments, the azeotropic composition consists of about 47.0 weight percent dichloromethane and about 53.0 weight percent trans-1 H,2H- octafluorocyclopentane at a pressure of about 124.2 kPa and at a boiling temperature of about 40 °C. In some embodiments, the azeotropic composition consists essentially of about 45.1 weight percent dichloromethane and about 54.9 weight percent trans-1 H,2H- octafluorocyclopentane at a pressure of about 237.2 kPa and at a boiling temperature of about 60 °C. In some embodiments, the azeotropic composition consists of about 45.1 weight percent dichloromethane and about 54.9 weight percent trans-1 H,2H-octafluorocyclopentane at a pressure of about 237.2 kPa and at a boiling temperature of about 60 °C. In some embodiments, the azeotropic composition consists essentially of about 42.0 weight percent dichloromethane and about 58.0 weight percent trans-1 H,2H-octafluorocyclopentane at a pressure of about 680.8 kPa and at a boiling temperature of about 100 °C. In some embodiments, the azeotropic composition consists of about 42.0 weight percent dichloromethane and about 58.0 weight percent trans-1 H,2H-octafluorocyclopentane at a pressure of about 680.8 kPa and at a boiling temperature of about 100 °C. In some embodiments, the azeotropic composition consists essentially of about 46.9 weight percent dichloromethane and about 53.1 weight percent trans-1 H,2H-octafluorocyclopentane at a pressure of about 101.3 kPa and at a boiling temperature of about 34.3 °C. In some embodiments, the azeotropic composition consists of about 46.9 weight percent dichloromethane and about 53.1 weight percent trans-1 H,2H-octafluorocyclopentane at a pressure of about 101 .3 kPa and at a boiling temperature of about 34.3 °C.

[0051] The azeotropic or azeotrope-like compositions as described herein have the advantage of being homogeneous azeotropic or azeotrope-like compositions. For homogenous azeotropic or azeotrope-like compositions, the components of the composition at ambient temperatures and pressures form a single liquid phase. This is to be contrasted with heterogeneous azeotropic or azeotrope-like compositions, where, due to low miscibility of the components of the composition, the components of the composition undergo phase separation in the liquid phase. Phase separation is usually undesired since processes involving the composition are more complex and expensive. The homogeneous nature of the azeotropic or azeotrope-like compositions is achievable over a broad range of practical conditions including ambient pressure and temperature.

[0052] The azeotropic or azeotrope- like compositions are useful in a wide range of applications. In some embodiments, the azeotropic or azeotrope-like compositions are used as spin agents for flash spinning, in other embodiments as cleaning agents, and in other embodiments as solvents.

[0053] Spin Agents and Spin Fluids for Flash Spinning

[0054] In some embodiments, the azeotropic or azeotrope-like compositions are spin agents within spin fluids for flash spinning. In some embodiments, the spin fluid comprises (a) from about 5 to about 35 weight percent of a polymer, based on the total amount of the spin fluid, and (b) a spin agent, wherein the spin agent comprises or consists essentially of the azeotropic or azeotrope-like composition comprising dichloromethane and trans-1 H,2H- octafluorocyclopentane. In other embodiments, the spin fluid comprises (a) from about 6 to about 24 weight percent of a polymer, based on the total amount of the spin fluid, and (b) a spin agent, wherein the spin agent comprises or consists essentially of the azeotropic or azeotrope-like composition comprising dichloromethane and trans-1 H,2H- octafluorocyclopentane. In other embodiments, the spin fluid comprises (a) from about 6 to about 20 weight percent of a polymer, based on the total amount of the spin fluid, and (b) a spin agent, wherein the spin agent comprises or consists essentially of the azeotropic or azeotrope-like composition comprising dichloromethane and trans-1 H,2H- octafluorocyclopentane. In other embodiments, the spin fluid comprises (a) from about 8 to about 20 weight percent of a polymer, based on the total amount of the spin fluid, and (b) a spin agent, wherein the spin agent comprises or consists essentially of the azeotropic or azeotrope-like composition comprising dichloromethane and trans-1 H,2H- octafluorocyclopentane. In other embodiments, the spin fluid comprises (a) from about 8 to about 16 weight percent of a polymer, based on the total amount of the spin fluid, and (b) a spin agent, wherein the spin agent comprises or consists essentially of the azeotropic or azeotrope-like composition comprising dichloromethane and trans-1 H,2H- octafluorocyclopentane. In other embodiments, the spin fluid comprises (a) from about 8 to about 14 weight percent of a polymer, based on the total amount of the spin fluid, and (b) a spin agent, wherein the spin agent comprises or consists essentially of the azeotropic or azeotrope-like composition comprising dichloromethane and trans-1 H,2H- octafluorocyclopentane. In some embodiments, the spin fluid comprises from about 65 to about 95 weight percent of a spin agent, based on the total amount of the spin fluid, and in other embodiments from about 76 to about 94 weight percent of a spin agent, based on the total amount of the spin fluid. In some embodiments, the spin fluid comprises from about 80 to about 94 weight percent of a spin agent, based on the total amount of the spin fluid, in other embodiments from about 80 to about 92 weight percent, based on the total amount of the spin fluid, in other embodiments from about 84 to about 92 weight percent, based on the total amount of the spin fluid, and in other embodiments from about 86 to about 92 weight percent, based on the total amount of the spin fluid. In some embodiments, the spin fluid comprises from about 65 to about 80 weight percent of a spin agent, based on the total amount of the spin fluid.

[0055] In some embodiments, the spin agent consists essentially of from about 35 to about 85 weight percent dichloromethane and from about 65 to about 15 weight percent trans- 1 H,2H-octafluorocyclopentane, in other embodiments from about 70 to about 85 weight percent dichloromethane and from about 30 to about 15 weight percent trans-1 H,2H- octafluorocyclopentane, in other embodiments from about 35 to about 55 weight percent dichloromethane and from about 65 to about 45 weight percent trans-1 H,2H- octafluorocyclopentane, and in other embodiments from about 40 to about 80 weight percent dichloromethane and from about 60 to about 20 weight percent trans-1 H,2H- octafluorocyclopentane.

[0056] The spin fluid may include additives, such as antioxidants or acid scavengers in minor amounts, provided that their presence does not interfere with the azeotropic or azeotrope-like nature of the compositions of dichloromethane and trans- 1 H,2H-octafluorocyclopentane described herein. In some embodiments, the spin fluid comprises additives in an amount of about 1.5 weight percent or less of the total amount of the spin agent, and in other embodiments in an amount of about 0.1 weight percent or less of the total amount of the spin agent.

[0057] In some embodiments, the spin agent consists of from about 35 to about 85 weight percent dichloromethane and from about 65 to about 15 weight percent trans-1 H,2H- octafluorocyclopentane, in other embodiments from about 70 to about 85 weight percent dichloromethane and from about 30 to about 15 weight percent trans-1 H,2H- octafluorocyclopentane, in other embodiments from about 35 to about 55 weight percent dichloromethane and from about 65 to about 45 weight percent trans-1 H,2H- octafluorocyclopentane, and in other embodiments from about 40 to about 80 weight percent dichloromethane and from about 60 to about 20 weight percent trans-1 H,2H- octafluorocyclopentane.

[0058] In some embodiments, the spin fluid comprises about 6 to about 24 weight percent of a polymer, based on the total amount of the spin fluid, and a spin agent, wherein the spin agent consists essentially of from about 35 to about 85 weight percent dichloromethane and from about 65 to about 15 weight percent trans-1 H,2H-octafluorocyclopentane.

[0059] The spin agent can be used for a broad range of different polymers and blends / mixtures thereof. In some embodiments, the polymer is selected from polyolefins, fluoropolymers, and blends / mixtures thereof.

[0060] In some embodiments, polyolefins are polyethylene (PE), polypropylene (PP), polybutene-1 , poly(4-methyl-1 -pentene), and blends / mixtures thereof. Particularly preferred polyolefins are polyethylene (PE), in particular high-density polyethylene (HDPE), and blends / mixtures of high-density polyethylene (HDPE) and low-density polyethylene (LDPE), in particular linear low-density polyethylene (LLDPE). In some embodiments, the polyolefin is a high-density polyethylene (HDPE).

[0061] In some embodiments, the spin fluid comprises from about 6 to about 24 weight percent of polyolefin and from about 76 to about 94 weight percent of the spin agent, each based on the total amount of the spin fluid. In some embodiments, the spin fluid comprises from about 6 to about 20 weight percent of polyolefin and from about 80 to about 94 weight percent of the spin agent, each based on the total amount of the spin fluid. In some embodiments, the spin fluid comprises from about 8 to about 20 weight percent of polyolefin and from about 80 to about 92 weight percent of the spin agent, each based on the total amount of the spin fluid. In some embodiments, the spin fluid comprises from about 8 to about 16 weight percent of polyolefin and from about 84 to about 92 weight percent of the spin agent, each based on the total amount of the spin fluid. In some embodiments, the spin fluid comprises from about 8 to about 14 weight percent of polyolefin and from about 86 to about 92 weight percent of the spin agent, each based on the total amount of the spin fluid. In some embodiments, the spin fluid comprises about 6 to about 24 weight percent, or about 6 to about 20 weight percent, or about 8 to about 20 weight percent, or about 8 to about 16 weight percent, or about 8 to about 14 weight percent of a polyethylene, or a blend comprising polyethylene, based on the total amount of the spin fluid, and a spin agent, wherein the spin agent consists essentially of from about 70 to about 85 weight percent dichloromethane and from about 65 to about 15 weight percent trans-1 H,2H-octafluorocyclopentane. In some embodiments, the spin fluid comprises about 6 to about 24 weight percent, or about 6 to about 20 weight percent, or about 8 to about 20 weight percent, or about 8 to about 16 weight percent, or about 8 to about 14 weight percent of a polypropylene, a polybutene-1 , or a poly(4- methyl-1-pentene), based on the total amount of the spin fluid, and a spin agent, wherein the spin agent consists essentially of from about 35 to about 55 weight percent dichloromethane and from about 65 to about 45 weight percent trans-1H,2H-octafluorocyclopentane.

[0062] In some embodiments, fluoropolymers are polyvinylidene fluoride, ethylenetetrafluoroethylene copolymers, or blends / mixtures thereof.

[0063] In some embodiments, the spin fluid comprises from about 20 to about 35 weight percent of a fluoropolymer and from about 65 to about 80 weight percent of the spin agent, each based on the total amount of the spin fluid. In some embodiments, the spin fluid comprises about 20 to about 35 weight percent of a fluoropolymer, based on the total amount of the spin fluid, and a spin agent, wherein the spin agent consists essentially of from about 40 to about 80 weight percent dichloromethane and from about 60 to about 20 weight percent trans- 1 H,2H-octafluorocyclopentane.

[0064] In some embodiments, the spin fluid comprising the azeotropic or azeotrope-like composition as described herein exhibits a cloud point pressure in the range of about 45 to about 300 bar, in other embodiments in the range of about 50 to about 300 bar, and in other embodiments in the range of about 70 to about 300 bar. In some embodiments, the spin fluid comprising the azeotropic or azeotrope-like composition as described herein exhibits a cloud point pressure in the range of about 45 to about 250 bar, in other embodiments in the range of about 50 to about 250 bar, and in other embodiments in the range of about 70 to about 250 bar. In some embodiments, the spin fluid comprising the azeotropic or azeotrope-like composition as described herein exhibits a cloud point pressure in the range of about 45 to about 200 bar, in other embodiments in the range of about 50 to about 200 bar, and in other embodiments in the range of about 70 to about 200 bar. The flash spinning process must take place at an operating pressure below the spin fluid’s cloud point pressure but above the spin fluid’s bubble point pressure. If the cloud point pressure is above about 300 bar, the flash spinning equipment must be built to withstand very high pressure which increases costs and operational constraints.

[0065] When used as a spin agent, the homogeneous azeotropic or azeotrope-like compositions have the advantage that in the spin agent recovery process, upon condensation of the spin agent, no phase separation occurs. Furthermore, the azeotropic or azeotrope-like compositions described herein result in spin fluids with a cloud point pressures at or close to the azeotrope. This then makes it easy to condense the used spin agent into a liquid with the same or substantially the same composition so that it can be re-used. Preparation of Plexifilamentary Fibrils of Polymer

[0066] In some embodiments, there is provided a process for the preparation of plexifilamentary fibrils of polymer. The process comprises the steps of:

[0067] (i) generating a spin fluid comprising

[0068] (a) about 5 to about 35 weight percent of a polymer, based on the total amount of the spin fluid, and

[0069] (b) a spin agent, and

[0070] (ii) flash spinning the spin fluid at a pressure that is above the vapor pressure of the spin fluid into a region of essentially atmospheric pressure to form plexifilamentary fibrils of the polymer; wherein the spin agent comprises or consists essentially of an azeotropic or azeotrope- like composition comprising dichloromethane and trans- 1 H ,2H-octafluorocyclopentane.

[0071] In some embodiments, the flash-spinning is performed at a pressure in the range of about 45 to about 300 bar, or in the range of about 50 to about 300 bar, or in the range of about 70 to about 300 bar. In some embodiments, the flash-spinning is performed at a pressure in the range of about 45 to about 250 bar, in other embodiments in the range of about 50 to about 250 bar, and in other embodiments in the range of about 70 to about 250 bar. In some embodiments, the flash-spinning is performed at a pressure in the range of about 45 to about 200 bar, in other embodiments in the range of about 50 to about 200 bar, and in other embodiments in the range of about 70 to about 200 bar. The region of lower pressure into which flash spinning occurs is usually at or around atmospheric pressure.

[0072] In other embodiments, the spin fluid comprises (a) from about 6 to about 24 weight percent of a polymer, based on the total amount of the spin fluid, and (b) a spin agent, wherein the spin agent comprises or consists essentially of the azeotropic or azeotrope-like composition comprising dichloromethane and trans-1 H,2H-octafluorocyclopentane. In other embodiments, the spin fluid comprises (a) from about 6 to about 20 weight percent of a polymer, based on the total amount of the spin fluid, and (b) a spin agent, wherein the spin agent comprises or consists essentially the azeotropic or azeotrope-like composition comprising dichloromethane and trans-1 H,2H-octafluorocyclopentane. In other embodiments, the spin fluid comprises (a) from about 8 to about 20 weight percent of a polymer, based on the total amount of the spin fluid, and (b) a spin agent, wherein the spin agent comprises or consists essentially the azeotropic or azeotrope-like composition comprising dichloromethane and trans-1 H,2H-octafluorocyclopentane. In other embodiments, the spin fluid comprises (a) from about 8 to about 16 weight percent of a polymer, based on the total amount of the spin fluid, and (b) a spin agent, wherein the spin agent comprises or consists essentially the azeotropic or azeotrope-like composition comprising dichloromethane and trans-1H,2H-octafluorocyclopentane. In other embodiments, the spin fluid comprises (a) from about 8 to about 14 weight percent of a polymer, based on the total amount of the spin fluid, and (b) a spin agent, wherein the spin agent comprises or consists essentially the azeotropic or azeotrope-like composition comprising dichloromethane and trans-1 H,2H- octafluorocyclopentane. In some embodiments, the spin agent is present in the spin fluid in an amount of from about 65 to about 95 weight percent, based on the total amount of the spin fluid, and in other embodiments from about 76 to about 94 weight percent, based on the total amount of the spin fluid. In some embodiments, the spin agent is present in the spin fluid in an amount of from about 80 to about 94 weight percent, based on the total amount of the spin fluid, in other embodiments from about 80 to about 92 weight percent, based on the total amount of the spin fluid, in other embodiments from about 84 to about 92 weight percent, based on the total amount of the spin fluid, and in other embodiments from about 86 to about 92 weight percent, based on the total amount of the spin fluid. In some embodiments, the spin agent is present in the spin fluid in an amount of from about 65 to about 80 weight percent, based on the total amount of the spin fluid.

[0073] In some embodiments, the spin agent consists essentially of from about 35 to about 85 weight percent dichloromethane and from about 65 to about 15 weight percent trans- 1H,2H-octafluorocyclopentane, in other embodiments from about 70 to about 85 weight percent dichloromethane and from about 30 to about 15 weight percent trans-1 H,2H- octafluorocyclopentane, in other embodiments from about 35 to about 55 weight percent dichloromethane and from about 65 to about 45 weight percent trans-1 H,2H- octafluorocyclopentane, and in other embodiments from about 40 to about 80 weight percent dichloromethane and from about 60 to about 20 weight percent trans-1 H,2H- octafluorocyclopentane.

[0074] The spin fluid may include additives, such as antioxidants or acid scavengers in minor amounts, provided that their presence does not interfere with the azeotropic or azeotrope-like nature of the compositions of dichloromethane and trans- 1 H,2H-octafluorocyclopentane described herein. In some embodiments, the spin fluid comprises additives in an amount of about 1.5 weight percent or less, based on the total amount of the spin fluid, and in other embodiments in an amount of about 0.1 weight percent or less, based on the total amount of the spin fluid.

[0075] In some embodiments, the spin agent consists of from about 35 to about 85 weight percent dichloromethane and from about 65 to about 15 weight percent trans-1 H,2H- octafluorocyclopentane, in other embodiments from about 70 to about 85 weight percent dichloromethane and from about 30 to about 15 weight percent trans-1 H,2H- octafluorocyclopentane, in other embodiments from about 35 to about 55 weight percent dichloromethane and from about 65 to about 45 weight percent trans-1 H,2H- octafluorocyclopentane, and in other embodiments from about 40 to about 80 weight percent dichloromethane and from about 60 to about 20 weight percent trans- 1 H,2H- octafluorocyclopentane.

[0076] In some embodiments, the spin fluid comprises about 6 to about 24 weight percent of a polymer, based on the total amount of the spin fluid, and a spin agent, wherein the spin agent consists essentially of from about 35 to about 85 weight percent dichloromethane and from about 65 to about 15 weight percent trans-1 H,2H-octafluorocyclopentane.

[0077] A broad range of different polymers and blends / mixtures thereof can be used in the process. In some embodiments, the polymer is selected from polyolefins, fluoropolymers, and blends / mixtures thereof.

[0078] In some embodiments, polyolefins are polyethylene (PE), polypropylene (PP), polybutene-1 , poly(4-methyl-1 -pentene), and blends / mixtures thereof. Particularly preferred polyolefins are polyethylene (PE), in particular high-density polyethylene (HDPE), and blends / mixtures of high-density polyethylene (HDPE) and low-density polyethylene (LDPE), in particular linear low-density polyethylene (LLDPE). In some embodiments, the polyolefin is a high-density polyethylene (HDPE).

[0079] In some embodiments, the spin fluid comprises from about 6 to about 24 weight percent of polyolefin and from about 76 to about 94 weight percent of the spin agent, each based on the total amount of the spin fluid. In some embodiments, the spin fluid comprises from about 6 to about 20 weight percent of polyolefin and from about 80 to about 94 weight percent of the spin agent, each based on the total amount of the spin fluid. In some embodiments, the spin fluid comprises from about 8 to about 20 weight percent of polyolefin and from about 80 to about 92 weight percent of the spin agent, each based on the total amount of the spin fluid. In some embodiments, the spin fluid comprises from about 8 to about 16 weight percent of polyolefin and from about 84 to about 92 weight percent of the spin agent, each based on the total amount of the spin fluid. In some embodiments, the spin fluid comprises from about 8 to about 14 weight percent of polyolefin and from about 86 to about 92 weight percent of the spin agent, each based on the total amount of the spin fluid. In some embodiments, the spin fluid comprises about 6 to about 24 weight percent, or about 6 to about 20 weight percent, or about 8 to about 20 weight percent, or about 8 to about 16 weight percent, or about 8 to about 14 weight percent of a polyethylene, or a blend comprising polyethylene, based on the total amount of the spin fluid, and a spin agent, wherein the spin agent consists essentially of from about 70 to about 85 weight percent dichloromethane and from about 65 to about 15 weight percent trans-1 H,2H-octafluorocyclopentane. In some embodiments, the spin fluid comprises about 6 to about 24 weight percent, or about 6 to about 20 weight percent, or about 8 to about 20 weight percent, or about 8 to about 16 weight percent, or about 8 to about 14 weight percent of a polypropylene, a polybutene- 1 , or a poly(4- methyl-1-pentene), based on the total amount of the spin fluid, and a spin agent, wherein the spin agent consists essentially of from about 35 to about 55 weight percent dichloromethane and from about 65 to about 45 weight percent trans-1 H,2H-octafluorocyclopentane.

[0080] In some embodiments, fluoropolymers are polyvinylidene fluoride, ethylenetetrafluoroethylene copolymers, or blends / mixtures thereof.

[0081] In some embodiments, the spin fluid comprises from about 20 to about 35 weight percent of a fluoropolymer and from about 65 to about 80 weight percent of the spin agent, each based on the total amount of the spin fluid. In some embodiments, the spin fluid comprises about 20 to about 35 weight percent of a fluoropolymer, based on the total amount of the spin fluid, and a spin agent, wherein the spin agent consists essentially of from about 40 to about 80 weight percent dichloromethane and from about 60 to about 20 weight percent trans- 1 H,2H-octafluorocyclopentane.

[0082] In some embodiments, there is provided plexifilamentary fibrils of polymer obtainable by the process described herein.

[0083] The shape of the assembly of plexifilamentary fibrils of polymer discharged from each spin orifice may be modified by any methods known in the art. In some embodiments, the plexifilamentary fibrils of polymer discharged from each spin orifice may be modified by passing into a shroud such as described on US 3,387,326, in other embodiments by passing into a slotted outlet such as described in US 3,467,744 or US 5,788,993, and in other embodiments passing into a slot fan jet as described in US 8,1 14,325. In some embodiments, streams of fibrils from multiple orifices may exit via a common slot as described in US 3,564,088.

[0084] Preparation of Sheets of Nonwoven Flash-spun Plexifilamentary Fibrils by Collection, Consolidation, Bonding, Softening, and Articles Made from Sheets of Nonwoven Flash-spun Plexifilamentary Fibrils

[0085] Sheets comprising plexifilamentary fibrils of polymer can be formed by any method known in the art. In some embodiments, the stream of fibrils discharged from each spin orifice is directed towards a deflector device which alternately directs the stream of fibrils to the left and right onto a moving collecting device such that the fibrils accumulate in the form of a collected sheet of nonwoven flash-spun plexifilamentary fibrils, formed from fibrils oriented in an overlapping, multi-directional configuration. Deflection of the stream of fibrils may be achieved by any suitable means known in the art, including, but not limited to, those described in US 3,277,526 and US 3,387,326, US 3,169,899, US 3,497,918, US 3,456,156, US 3,593,074, US 3,851 ,023 and US 3,860,369, US 4,148,595, US 5,045,258, US 5,643,524, US 5,731 ,01 1 , US 5,750,152 and WO92 / 2051 1. The stream of fibrils may also be laid down to form a collected sheet of nonwoven flash-spun plexifilamentary fibrils without deflection as described in US 5,788,993 and US 8, 114,325. The method of forming a collected sheet of nonwoven flash-spun plexifilamentary fibrils may further utilize structures in the spin cell such as those described in US 5,123,983, US 5,296,172, and WO92 / 20511 .

[0086] In some embodiments, the streams of fibrils are discharged from spin orifices located on a rotating support, and the fibrils are collected on a collecting belt which surrounds the rotating arrangement circumferentially as described in US 7,118,698, US 7,621 ,731 , US 7,786,034, and US 7,998,388.

[0087] In some embodiments, the collected sheet of nonwoven flash-spun plexifilamentary fibrils formed by flash-spinning as described herein may be consolidated by applying a small amount of pressure to the sheet to form a consolidated sheet of nonwoven flash-spun plexifilamentary fibrils. In some embodiments, the sheet may be passed under a roller which applies pressure to the sheet to form a consolidated sheet.

[0088] In some embodiments, a consolidated sheet as described herein is subjected to thermal or mechanical bonding as known in the art to form a thermally or mechanically bonded sheet. Bonding may also be achieved by impregnation of a consolidated sheet with a chemical bonding agent, either throughout the entire sheet, or at isolated points distributed over the sheet, or pattern-wise.

[0089] In some embodiments, the bonded sheet is subjected to a mechanical softening process to obtain a softened sheet of nonwoven flash-spun plexifilamentary fibrils.

[0090] In some embodiments, an antistatic treatment is applied to the bonded or softened sheet. In some embodiments, the antistatic treatment is applied by applying a coating composition comprising an antistatic compound.

[0091] Further embodiments relate to a multilayer structure comprising at least one sheet of nonwoven flash-spun plexifilamentary fibrils as described herein, and at least one further sheet or a film. In some embodiments, the sheet of nonwoven flash-spun plexifilamentary fibrils as described herein is a collected sheet, a consolidated sheet, a bonded sheet, or a softened sheet.

[0092] The sheet of nonwoven flash-spun plexifilamentary fibrils as described herein has many uses and may be used in a variety of articles and applications, including, but not limited to, multilayer structures, garments (including, but not limited to, protective apparel), house wrap, roof lining, car covers, medical and non-medical packaging, filtration media, print media, tags and labels, and accessories. EXAMPLES

[0093] A study has been performed for the phase behavior and flash spinning of polyethylene, polypropylene, polyvinylidene fluoride, and polyethylene tetrafluoroethylene) for azeotropic and azeotrope-like compositions. The experimental procedure and results are provided below. These examples are given to illustrate exemplary embodiments of the invention and should not be interpreted as limiting in any way.

[0094] Materials Used

[0095] Dichloromethane (DCM), CAS Nr. 75-09-2 has an atmospheric boiling point of 39.6 °C and a molecular weight of 84.93 g / mol. The dichloromethane used had a purity level above 99.5 percent by weight.

[0096] Trans-1 H,2H-octafluorocyclopentane, CAS Nr. 158389-18-5 has an atmospheric boiling point of 48.5 °C and a molecular weight of 214 g / mol. The trans-1 H,2H- octafluorocyclopentane used had a purity level of above 98 percent by weight.

[0097] The polyethylene used was a polyethylene having a density of 0.957 g / cm3(ISO 1183), and melt flow rates of 0.3 g / 10min (ISO 1133 condition D, 190 °C / 2.16 kg) and 22 g / 10min (ISO 1 133 condition G, 190 °C / 21.6 kg).

[0098] The polypropylene (PP) used was an isotactic polypropylene with a melt peak temperature of 163 °C and a melt flow rate is 4.2 g / 10 min (ISO 1 133, 2.16 kg-230 °C).

[0099] The polyvinylidene fluoride (PVDF) used was either Kynar® 720 or Kynar® 740 grades from Arkema. The Kynar® 720 has a specific gravity of 1 .77-1 .79 g / cm3(ASTM D792 23 °C), melting point of 165-172 °C, and melt flow rate of 5.0-29.0 g / 10 min (ASTM D1238, 450 °F, 3.8 kg load). The Kynar® 740 has a specific gravity of 1.77-1.79 g / cm3(ASTM D792 23 °C), melting point of 165-172 °C, and melt flow rate of 1 .5-3.0 g / 10 min (ASTM D1238, 450 °F, 3.8 kg load).

[0100] The ethylene tetrafluoroethylene used was a commercial grade Tefzel™ 2183 from DuPont de Nemours, Inc. Ethylene tetrafluoroethylene is also known as poly(ethene-co- tetrafluoroethene) or polyethylene tetrafluoroethylene). Reported technical properties are a nominal melting point of 255-280 °C (ASTM D3418), melt flow rate of 6 g / 10 min (ASTM D3159), and a specific gravity 1 .7 g / cm3(ASTM D792).

[0101] All polymers were dried during a minimum of 8 hours in a vacuum oven at about 45- 50 °C before use.

[0102] Spinning Equipment

[0103] The apparatus used consisted of two high pressure cylindrical chambers, each equipped with a piston which was adapted to apply pressure to the contents of the vessel. The cylinders had an inside diameter of 1.0 inch (25.4 mm) and each had an internal capacity of 50 cubic centimeters. The cylinders were connected to each other at one end through a 3 / 32 inch (2.3 mm) diameter channel and a mixing chamber containing a series of fine mesh screens was used as a static mixer. In the channel, a Type J thermocouple was in contact with the spin fluid to record the temperature. Mixing was accomplished by forcing the contents of the vessel back and forth between the two cylinders through the static mixer. A spinneret assembly with a quick-acting means for opening the orifice was attached to the channel through a tee. The spinneret assembly consisted of a lead hole with a diameter of 0.25 inch (6.3 mm) and a length of about 2.0 inch (50.8 mm), and a spinneret orifice with a diameter of 0.030 inch (0.762 mm) and a length of 0.030 inch (0.762 mm). A pressure transmitter calibrated at the spin temperature was mounted in the lead hole to measure the pressure of the spin fluid. The pistons were driven by a high-pressure hydraulic system.

[0104] In operation, the apparatus was charged with polymer pellets and spin agent and a pressure of at least 50 bar was applied to the pistons to compress the charge and avoid the spin fluid from boiling during subsequent heating. The contents were then heated to mixing temperature and held at that temperature for about 30 to 45 minutes during which time a differential pressure was alternatively established between the two cylinders to repeatedly force the contents through the mixing channel from one cylinder to the other to provide mixing and effective formation of a spin fluid. The spin fluid temperature was then increased to the final spin temperature and held there for about 10 to 20 minutes to equilibrate. The pressure of the spin fluid was kept above the cloud point pressure during mixing and during the increase in temperature from the mixing temperature to the spin temperature. Mixing was continued throughout this period. At the end of the mixing cycle, the accumulator was set to the pressure desired for spinning. Next, the valve between the accumulator and the twin piston assembly was opened to reduce the pressure of the spin fluid to the desired spin pressure, and about two to five seconds later, the spinneret orifice was opened to release the spin fluid into conditions of atmospheric pressure. The delay of about two to five seconds corresponds to the residence time in the letdown chamber in a continuous spinning process. The resultant stream of flash-spun fibrils was collected in a stainless-steel open mesh screen basket. During spinning, the spin pressure was recorded just upstream of the spinneret.

[0105] For cloud point pressure determination, the spinneret assembly was replaced with a view cell assembly containing a 1 / 2 inch (12.3 mm) diameter high-pressure sight glass, through which the contents of the cell could be viewed as they flow through the channel. The window was lit by means of a fiber optic light guide, while the view through the sight glass was displayed using a digital camera. In the cell, a Type J thermocouple was located about 5 mm behind the high-pressure sight glass. The Type J thermocouple and a pressure measuring device located in close proximity to the window measured the pressure and temperature inside the view cell behind the sight glass and the pressure and temperature were continuously monitored by a computer. When, after a period of mixing, a clear, homogeneous spin fluid was established, the temperature was held constant and the differential pressure applied to the pistons was equalized so that the pistons stopped moving. Then, the pressure applied to the spin fluid in the view cell was gradually decreased until phase separation was observed through the sight glass, as the initially clear, homogeneous spin fluid became cloudy in appearance. The temperature and pressure were recorded when the thermocouple became no longer visible. This pressure was the phase separation pressure or cloud point pressure for that spin fluid at that temperature. The pressure was then increased until the spin fluid returned to its transparent state, i.e., until the insoluble phase redissolved, and in this way, two or three repeat cloud point measurements could be made at an approximately constant temperature. Once this data was recorded, mixing was resumed while the spin fluid was heated to the next temperature at which the cloud point pressure was to be measured.

[0106] Results

[0107] Example 1 : Vapor liquid equilibrium for the composition of dichloromethane: trans-1H,2H -octafluorocyclopentane

[0108] Figure 1 shows the calculated vapor liquid equilibrium for the composition of dichloromethane and trans- 1 H,2H-octafluorocyclopentane at 40 °C. The azeotropic composition of dichloromethane and trans- 1 H,2H-octafluorocyclopentane at 40 °C corresponds to about 47.0 wt% dichloromethane and about 53.0 wt% trans-1 H,2H- octafluorocyclopentane. The bubble point pressure for the azeotropic composition is equal to about 124.2 kPa. The azeotrope-like composition of dichloromethane and trans-1 H,2H- octafluorocyclopentane at a 5% deviation from the azeotrope point is from about 34:66 wt% to about 66:34 wt%.

[0109] Example 2: Cloud point pressure study of polyethylene

[0110] Figure 2 shows the cloud point pressure curve of a spin fluid comprising 15 wt% polyethylene and a spin agent of DCM and trans-1 H,2H-octafluorocyclopentane in a 66:34 ratio by weight. This spin fluid comprising 15 wt% polyethylene shows a cloud point pressure curve suitable for flash spinning. Example 3: Flash spinning performance of polyethylene

[0111] Flash spinning was performed on the equipment described in the above for a spin fluid comprising 15 wt% polyethylene and a spin agent of DCM and trans-1 H,2H- octafluorocyclopentane in a 66:34 ratio by weight at a spin temperature of about 210 °C and a spin pressure of about 165 bar.

[0112] Example 4: Cloud point pressure study of polypropylene

[0113] Figure 3 shows the cloud point pressure curve of a spin fluid comprising 15 wt% polypropylene and a spin agent of DCM and trans-1 H,2H-octafluorocyclopentane in a 47:53 ratio by weight. This spin fluid comprising 15 wt% polypropylene shows a cloud point pressure curve suitable for flash spinning.

[0114] Example 5: Flash spinning performance of polypropylene

[0115] Flash spinning was performed on the equipment described in the above for a spin fluid comprising 15 wt% polypropylene and a spin agent of DCM and trans-1 H,2H- octafluorocyclopentane in a 47:53 ratio by weight at a spin temperature of about 190 °C and a spin pressure of about 72 bar.

[0116] Example 6: Cloud point pressure study of polyvinylidene fluoride

[0117] Figure 4 shows the cloud point pressure curve of a spin fluid comprising 26 wt% polyvinylidene fluoride (PVDF - Kynar® 740) and a spin agent of DCM and trans-1 H,2H- octafluorocyclopentane in a 47:53 ratio by weight. This spin fluid comprising 26 wt% PVDF shows a cloud point pressure curve suitable for flash spinning.

[0118] Example 7: Flash spinning performance of polyvinylidene fluoride

[0119] Flash spinning was performed on the equipment described in the above for a spin fluid comprising 26 wt% polyvinylidene fluoride (PVDF - Kynar® 720) and a spin agent of DCM and trans-1 H,2H-octafluorocyclopentane in a 47:53 ratio by weight at a spin temperature of about 190 °C and a spin pressure of about 128 bar.

[0120] Example 8: Flash spinning performance of polyvinylidene fluoride

[0121] Flash spinning was performed on the equipment described in the above for a spin fluid comprising 26 wt% polyvinylidene fluoride (PVDF - Kynar® 720) and a spin agent of DCM and trans-1 H,2H-octafluorocyclopentane in a 47:53 ratio by weight at a spin temperature of about 205 °C and a spin pressure of about 157 bar.

[0122] Example 9: Cloud point pressure study of ethylene-tetrafluoroethylene copolymer

[0123] Figure 5 shows the cloud point pressure curve of a spin fluid comprising 26 wt% ethylene-tetrafluoroethylene copolymer (ETFE - Tefzel™ 2183) and a spin agent of DCM and trans-1 H,2H-octafluorocyclopentane in a 47:53 ratio by weight. This spin fluid comprising 26 wt% EFTE shows a cloud point pressure curve suitable for flash spinning.

[0124] Example 10: Flash spinning performance of ethylene-tetrafluoroethylene copolymer

[0125] Flash spinning was performed on the equipment described in the above for a spin fluid comprising 26 wt% ethylene-tetrafluoroethylene (ETFE - Tefzel™ 2183) and a spin agent of DCM and trans-1 H,2H-octafluorocyclopentane in a 47:53 ratio by weight at a spin temperature of about 220 °C and a spin pressure of about 55 bar.

[0126] Table 1 : Summary of the flash spinning experiments of Examples 3, 5, 7, 8 and 10.

[0127] * calculated based on the IPCC 2021 report (global warming potential over a 100-year period) The above examples illustrate that the azeotropic or azeotrope-like compositions can be used as a spin agent for the flash spinning process of a range of polymers for different polymer concentrations, spin temperatures, and spin pressures. This allows an efficient preparation of plexifilamentary fibrils of polymer.

[0128] In addition, the azeotropic or azeotrope-like compositions exhibit a desirably low GWP value of below 1000. This makes these compositions suitable as replacement for currently used spin agents.

[0129] Furthermore, the azeotropic or azeotrope-like compositions form a positive homogenous azeotrope with an advantageously low boiling temperature of about 40 °C. Such low boiling temperature correlates to a pressure at or around atmospheric pressure.

[0130] The azeotrope-like compositions which are centered around the azeotrope point exhibit only small differences between the bubble point pressure and the dew point pressure. This has the advantage that the azeotropic or azeotrope-like compositions do not change significantly during the different steps of the spin agent recovery process and thus allow the spin agent to be re-used / recycled in a commercial process.

[0131] OTHER EMBODIMENTS

[0132] 1. In some embodiments, the present application provides an azeotropic or azeotropelike composition comprising dichloromethane and trans- 1 H,2H-octafluorocyclopentane.

[0133] 2. The azeotropic or azeotrope-like composition of embodiment 1 comprising from about 23 to about 99 weight percent dichloromethane and from about 77 to about 1 weight percent trans- 1 H,2H-octafluorocyclopentane.

[0134] 3. The azeotropic or azeotrope-like composition of embodiment 2 consisting essentially of or consisting of from about 23 to about 99 weight percent dichloromethane and from about 77 to about 1 weight percent trans-1 H,2H-octafluorocyclopentane.

[0135] 4. The azeotropic or azeotrope-like composition of any one of embodiments 1 to 3 boiling at a temperature of from about -20 °C to about 100 °C at a pressure of from about 7 kPa to about 681 kPa.

[0136] 5. The azeotropic or azeotrope-like composition of any one of the preceding embodiments comprising from about 30 to about 68 weight percent dichloromethane and from about 70 to about 32 weight percent trans- 1 H,2H-octafluorocyclopentane. 6. The azeotropic or azeotrope-like composition of embodiment 5 consisting essentially of or consisting of from about 30 to about 68 weight percent dichloromethane and from about 70 to about 32 weight percent trans-1 H,2H-octafluorocyclopentane.

[0137] 7. The azeotropic or azeotrope-like composition of embodiment 5 or 6 boiling at a temperature of from about -20 °C to about 60 °C at a pressure of from about 7 kPa to about 238 kPa.

[0138] 8. The azeotropic or azeotrope-like composition of any of the preceding embodiments comprising from about 34 to about 66 weight percent dichloromethane and from about 66 to about 34 weight percent trans-1 H,2H-octafluorocyclopentane.

[0139] 9. The azeotropic or azeotrope-like composition of embodiment 8 consisting essentially of or consisting of from about 34 to about 66 weight percent dichloromethane and from about 66 to about 34 weight percent trans-1 H,2H-octafluorocyclopentane.

[0140] 10. The azeotropic or azeotrope-like composition of embodiment 8 or 9 boiling at a temperature of from about -20 °C to about 40 °C at a pressure of from about 7 kPa to about 125 kPa.

[0141] 11. The azeotropic composition of any of the preceding embodiments consisting essentially of or consisting of from about 42 to about 51 weight percent dichloromethane and from about 58 to about 49 weight percent trans-1 H,2H-octafluorocyclopentane.

[0142] 12. The azeotropic composition of embodiment 12 boiling at a temperature of from about -20 °C to about 100 °C at a pressure of from about 8 kPa to about 682 kPa.

[0143] 13. The azeotropic composition of any of embodiments 1 to 12 consisting essentially of or consisting of about 51 .0 weight percent dichloromethane and about 49.0 weight percent trans- 1 H,2H-octafluorocyclopentane.

[0144] 14. The azeotropic composition of embodiment 13 boiling at a temperature of about -20 °C at a pressure of about 8.0 kPa. 15. The azeotropic composition of any of embodiments 1 to 12 consisting essentially of or consisting of about 48.0 weight percent dichloromethane and about 52.0 weight percent trans- 1 H,2H-octafluorocyclopentane.

[0145] 16. The azeotropic composition of embodiment 15 boiling at a temperature of about 20 °C at a pressure of about 58.2 kPa.

[0146] 17. The azeotropic composition of any of embodiments 1 to 12 consisting essentially of or consisting of about 47.0 weight percent dichloromethane and about 53.0 weight percent trans- 1 H,2H-octafluorocyclopentane.

[0147] 18. The azeotropic composition of embodiment 17 boiling at a temperature of about 40 °C at a pressure of about 124.2 kPa.

[0148] 19. The azeotropic composition of any of embodiments 1 to 12 consisting essentially of or consisting of about 45.1 weight percent dichloromethane and about 54.9 weight percent trans- 1 H,2H-octafluorocyclopentane.

[0149] 20. The azeotropic composition of embodiment 19 boiling at a temperature of about 60 °C at a pressure of about 237.2 kPa.

[0150] 21. The azeotropic composition of any of the preceding embodiments consisting essentially of or consisting of about 42.0 weight percent dichloromethane and about 58.0 weight percent trans-1 H,2H-octafluorocyclopentane.

[0151] 22. The azeotropic composition of embodiment 21 boiling at a temperature of about 100 °C at a pressure of about 680.8 kPa.

[0152] 23. The azeotropic composition of any of embodiments 1 to 12 consisting essentially of or consisting of about 46.9 weight percent dichloromethane and about 53.1 weight percent trans- 1 H,2H-octafluorocyclopentane.

[0153] 24. The azeotropic composition of embodiment 23 boiling at a temperature of 34.3 °C at a pressure of 101 .3 kPa. 25. In some embodiments, the present application provides a spin fluid for flash spinning comprising

[0154] (a) from about 5 to about 35 weight percent weight percent of a polymer, based on the total amount of the spin fluid, and

[0155] (b) a spin agent, wherein the spin agent comprises an azeotropic or azeotrope-like composition comprising dichloromethane and trans-1 H,2H-octafluorocyclopentane.

[0156] 26. The spin fluid of embodiment 25 comprising from about 6 to about 24 weight percent of a polymer, based on the total amount of the spin fluid, or from about 6 to about 20 weight percent of a polymer, based on the total amount of the spin fluid, or from about 8 to about 20 weight percent of a polymer, based on the total amount of the spin fluid, or from about 8 to about 16 weight percent of a polymer, based on the total amount of the spin fluid, or from about 8 to about 14 weight percent of a polymer, based on the total amount of the spin fluid.

[0157] 27. The spin fluid of embodiment 25 or 26 comprising from about 65 to about 95 weight percent of the spin agent, based on the total amount of the spin fluid, orfrom about 76 to about 94 weight percent of the spin agent, based on the total amount of the spin fluid, or from about 80 to about 94 weight percent of the spin agent, based on the total amount of the spin fluid, or from about 80 to about 92 weight percent of the spin agent, based on the total amount of the spin fluid, or from about 84 to about 92 weight percent of the spin agent, based on the total amount of the spin fluid, or from about 86 to about 92 weight percent of the spin agent, based on the total amount of the spin fluid.

[0158] 28. The spin fluid of embodiment 25 comprising from about 20 to about 35 weight percent of a polymer, based on the total amount of the spin fluid.

[0159] 29. The spin fluid of embodiment 28 comprising from about 65 to about 80 weight percent of the spin agent, based on the total amount of the spin fluid.

[0160] 30. The spin fluid of any of the preceding embodiments 25 to 29, wherein the polymer is selected from polyolefins, fluoropolymers, and blends / mixtures thereof.

[0161] 31 . The spin fluid of embodiment 30, wherein the polyolefins are selected from the group consisting of polyethylene, polypropylene, polybutene-1 , poly(4-methyl-1 -pentene), and blends / mixtures thereof, or wherein the polyolefins are selected from the group consisting of polypropylene, polybutene-1 , poly(4-methyl-1 -pentene), and blends / mixtures thereof. 32. The spin fluid of embodiment 30 or 31 , wherein the polyolefins are selected from the group consisting of polyethylene (PE), polypropylene (PP), and blends / mixtures thereof.

[0162] 33. The spin fluid of any of embodiments 30 to 32, wherein the polyethylene is a high- density polyethylene (HDPE), a blend of a high-density polyethylene (HDPE) with a low- density polyethylene (LDPE), or a blend of a high-density polyethylene (HDPE) with a linear low-density polyethylene (LLDPE).

[0163] 34. The spin fluid of any one of embodiments 30 to 33 comprising from about 6 to about 24 weight percent of a polyolefin, based on the total amount of the spin fluid, or from about 6 to about 20 weight percent of a polyolefin, based on the total amount of the spin fluid, or from about 8 to about 20 weight percent of a polyolefin, based on the total amount of the spin fluid, or from about 8 to about 16 weight percent of a polyolefin, based on the total amount of the spin fluid, or from about 8 to about 14 weight percent of a polyolefin, based on the total amount of the spin fluid.

[0164] 35. The spin fluid of any of embodiments 30 to 34, wherein the fluoropolymers are selected from polyvinylidene fluoride, ethylene-tetrafluoroethylene copolymers, or blends / mixtures thereof.

[0165] 36. The spin fluid of any one of embodiments 30 or 35 comprising from about 20 to about 35 weight percent of a fluoropolymer, based on the total amount of the spin fluid.

[0166] 37. The spin fluid of any of embodiments 25 to 36, wherein the spin agent additionally comprises an additive, selected from antioxidants, acid scavengers, and blends thereof.

[0167] 38. The spin fluid of any of embodiments 25 to 37, wherein the spin agent comprises an azeotropic or azeotrope-like composition consisting essentially or consisting of from about 35 to about 85 weight percent dichloromethane and from about 65 to about 15 weight percent trans-1 H,2H-octafluorocyclopentane.

[0168] 39. The spin fluid of embodiment 38, wherein the azeotropic or azeotrope-like composition consists essentially of or consists of from 70 to 85 weight percent dichloromethane and from about 30 to about 15 weight percent trans- 1 H,2H-octafluorocyclopentane. 40. The spin fluid of embodiment 38, wherein the azeotropic or azeotrope-like composition consists essentially of or consists of from about 35 to about 55 weight percent dichloromethane and from about 65 to about 45 weight percent trans-1 H,2H- octafluorocyclopentane.

[0169] 41 . The spin fluid of embodiment 38, wherein the azeotropic or azeotrope-like composition consists essentially of or consists of from about 40 to about 80 weight percent dichloromethane and from about 60 to about 20 weight percent trans-1 H,2H- octafluorocyclopentane.

[0170] 42. In some embodiments, the present application provides a process for the preparation of plexifilamentary fibrils of polymer which comprises the steps of:

[0171] (i) generating a spin fluid comprising

[0172] (a) from about 5 to about 35 weight percent of a polymer, based on the total amount of the spin fluid, and

[0173] (b) a spin agent, and

[0174] (ii) flash spinning the spin fluid at a pressure that is above the vapor pressure of the spin fluid into a region of essentially atmospheric pressure to form plexifilamentary fibrils of the polymer, wherein the spin agent comprises an azeotropic or azeotrope-like composition of dichloromethane and trans- 1 H,2H-octafluorocyclopentane.

[0175] 43. The process of embodiment 42, wherein the spin fluid comprises from about 6 to about 24 weight percent of a polymer, based on the total amount of the spin fluid, or from about 6 to about 20 weight percent of a polymer, based on the total amount of the spin fluid, or from about 8 to about 20 weight percent of a polymer, based on the total amount of the spin fluid, or from about 8 to about 16 weight percent of a polymer, based on the total amount of the spin fluid, or from about 8 to about 14 weight percent of a polymer, based on the total amount of the spin fluid.

[0176] 44. The process of embodiment 42 or 43, wherein the spin fluid comprises from about 65 to about 95 weight percent of the spin agent, based on the total amount of the spin fluid, or from about 76 to about 94 weight percent of the spin agent, based on the total amount of the spin fluid, or from about 80 to about 94 weight percent of the spin agent, based on the total amount of the spin fluid, or from about 80 to about 92 weight percent of the spin agent, based on the total amount of the spin fluid, or from about 84 to about 92 weight percent of the spin agent, based on the total amount of the spin fluid, or from about 86 to about 92 weight percent of the spin agent, based on the total amount of the spin fluid.

[0177] 45. The process of embodiment 42, wherein the spin fluid comprises from about 20 to about 35 weight percent of a polymer, based on the total amount of the spin fluid.

[0178] 46. The process of embodiment 42 or 45, wherein the spin fluid comprises from about 65 to about 80 weight percent of the spin agent, based on the total amount of the spin fluid.

[0179] 47. The process of any of the preceding embodiments 42 to 46, wherein the polymer is selected from polyolefins, fluoropolymers, and blends / mixtures thereof.

[0180] 48. The process of embodiment 47, wherein the polyolefins are selected from the group consisting of polyethylene, polypropylene, polybutene-1 , poly(4-methyl-1 -pentene), and blends / mixtures thereof, or wherein the polyolefins are selected from the group consisting of, polypropylene, polybutene-1 , poly(4-methyl-1 -pentene), and blends / mixtures thereof.

[0181] 49. The process of any of embodiments 47 or 48, wherein the polyolefins are selected from the group consisting of polyethylene (PE), polypropylene (PP), and blends / mixtures thereof.

[0182] 50. The process of any of embodiments 47 to 49, wherein the polyethylene is a high- density polyethylene (HDPE), a blend of a high-density polyethylene (HDPE) with a low- density polyethylene (LDPE), or a blend of a high-density polyethylene (HDPE) with a linear low-density polyethylene (LLDPE).

[0183] 51. The process of any one of embodiments 47 to 50, wherein the spin fluid comprises from about 6 to about 24 weight percent of a polyolefin, based on the total amount of the spin fluid, or from about 6 to about 20 weight percent of a polyolefin, based on the total amount of the spin fluid, or from about 8 to about 20 weight percent of a polyolefin, based on the total amount of the spin fluid, or from about 8 to about 16 weight percent of a polyolefin, based on the total amount of the spin fluid, or from about 8 to about 14 weight percent of a polyolefin, based on the total amount of the spin fluid. 52. The process of any of embodiments 47 to 50, wherein the fluoropolymers are selected from polyvinylidene fluoride, ethylene-tetrafluoroethylene copolymers, or blends / mixtures thereof.

[0184] 53. The process of any of embodiments 47 or 52, wherein the spin fluid comprises from about 20 to about 35 weight percent of a fluoropolymer, based on the total amount of the spin fluid.

[0185] 54. The process of any of embodiments 42 to 53, wherein the spin agent additionally comprises an additive, selected from antioxidants, acid scavengers, and blends thereof.

[0186] 55. The process of any of embodiments 42 to 54, wherein the spin agent comprises an azeotropic or azeotrope-like composition consisting essentially or consisting of from about 35 to about 85 weight percent dichloromethane and from about 65 to about 15 weight percent trans- 1 H,2H-octafluorocyclopentane.

[0187] 56. The process of embodiment 55, wherein the azeotropic or azeotrope-like composition consists essentially of or consists of from about 70 to about 85 weight percent dichloromethane and from about 30 to about 15 weight percent trans-1 H,2H- octafluorocyclopentane.

[0188] 57. The process of embodiment 55, wherein the azeotropic or azeotrope-like composition consists essentially of or consists of from about 35 to about 55 weight percent dichloromethane and from about 65 to about 45 weight percent trans-1 H,2H- octafluorocyclopentane.

[0189] 58. The process of embodiment 55, wherein the azeotropic or azeotrope-like composition consists essentially of or consists of from about 40 to about 80 weight percent dichloromethane and from about 60 to about 20 weight percent trans-1 H,2H- octafluorocyclopentane.

[0190] 59. In some embodiments, the present application provides a use of the spin fluid of any of embodiments 25 to 41 for preparing of plexifilamentary fibrils of polymer by flash spinning.

[0191] 60. The plexifilamentary fibrils of polymer obtainable by the process of any one of embodiments 42 to 58. 61 . A sheet of nonwoven flash-spun plexifilamentary fibrils comprising plexifilamentary fibrils of polymer of embodiment 60.

[0192] 62. The sheet of embodiment 61 , wherein the sheet is a collected sheet, a consolidated sheet, a bonded sheet, or a softened sheet.

[0193] 63. A bonded sheet obtainable by thermally or mechanically bonding the consolidated sheet of embodiment 62.

[0194] 64. A softened sheet obtainable by softening the consolidated sheet of embodiment 62 or by softening the bonded sheet of embodiment 63.

[0195] 65. A multilayer sheet comprising two or more sheets wherein at least one sheet is a sheet according to any one of embodiments 61 to 64.

[0196] 66. An article comprising plexifilamentary fibrils of polymer of embodiment 60 and / or a sheet of any one of embodiments 61 to 64 and / or a multilayer sheet of embodiment 65.

[0197] 67. The article of embodiment 66 which is selected from garment, packaging material, house wrap, roof lining, car covers, medical and non-medical packaging, filtration media, print media, tags and labels, and accessories.

[0198] 68. The article of embodiment 67 wherein the garment is protective apparel.

[0199] While various embodiments of the present invention have been described above, it should be understood that they have been presented by way of example, and not limitation. It will be apparent to persons skilled in the relevant art(s) that various changes in form and detail can be made therein without departing from the spirit and scope of the present invention. Thus, it should be appreciated that, while the invention has been described with reference to the above exemplary embodiments, other embodiments are within the scope of the claims. Moreover, it should be understood that the exemplary embodiments described herein may be combined to form other embodiments. After reading the above description, it will be apparent to one skilled in the relevant art(s) how to implement the invention in alternative embodiments. Thus, the present invention should not be limited by any of the above-described exemplary embodiments.

Claims

CLAIMS1. An azeotropic or azeotrope-like composition comprising dichloromethane and trans- 1 H,2H-octafluorocyclopentane.

2. The azeotropic or azeotrope-like composition of claim 1 comprising from about 23 to about 99 weight percent dichloromethane and from about 77 to about 1 weight percent trans- 1 H,2H-octafluorocyclopentane.

3. The azeotropic composition of claim 1 or 2 consisting essentially of from about 42 to about 51 weight percent dichloromethane and from about 58 to about 49 weight percent trans- 1 H,2H-octafluorocyclopentane.

4. The azeotropic composition of claim 3 boiling at a temperature of from about -20 °C to about 100 °C at a pressure of about 8 kPa to about 681 kPa.

5. A spin fluid for flash spinning comprising(a) from about 5 to about 35 weight percent of a polymer, based on the total amount of the spin fluid, and(b) a spin agent, wherein the spin agent comprises an azeotropic or azeotrope-like composition comprising dichloromethane and trans-1 H,2H-octafluorocyclopentane.

6. The spin fluid of claim 5 comprising from about 65 to about 95 weight percent of the spin agent, based on the total amount of the spin fluid, or from about 76 to about 94 weight percent of the spin agent, based on the total amount of the spin fluid.

7. The spin fluid of claims 5 or 6, wherein the polymer is selected from the group consisting of polyolefins, fluoropolymers, and blends / mixtures thereof, or selected from the group consisting of polyethylene, polypropylene, polybutene-1 , poly(4-methyl-1-pentene), polyvinylidene fluoride, ethylene-tetrafluoroethylene copolymers, and blends / mixtures thereof.

8. The spin fluid of any one of claims 5 to 7, wherein the spin agent additionally comprises an additive, selected from antioxidants, acid scavengers, and blends thereof.

9. The spin fluid of any one of claims 5 to 8, wherein the spin agent comprises an azeotropic or azeotrope-like composition consisting essentially of from about 35 to about 85weight percent dichloromethane and from about 65 to about 15 weight percent trans-1 H,2H- octafluorocyclopentane.

10. A process for the preparation of plexifilamentary fibrils of polymer which comprises the steps of:(i) generating a spin fluid comprising(a) from about 5 to about 35 weight percent of a polymer, based on the total amount of the spin fluid, and(b) a spin agent, and(ii) flash spinning the spin fluid at a pressure that is above the vapor pressure of the spin fluid into a region of essentially atmospheric pressure to form plexifilamentary fibrils of the polymer, wherein the spin agent comprises an azeotropic or azeotrope-like composition of dichloromethane and trans-1 H,2H-octafluorocyclopentane.11 . The process of claim 10, wherein the spin fluid comprises from about 65 to about 95 weight percent of the spin agent, based on the total amount of the spin fluid, or from about 76 to about 94 weight percent of the spin agent, based on the total amount of the spin fluid.

12. The process of claims 10 or 11 , wherein the polymer is selected from the group consisting of polyolefins, fluoropolymers, and blends / mixtures thereof, or selected from the group consisting of polyethylene, polypropylene, polybutene-1 , poly(4-methyl-1-pentene), polyvinylidene fluoride, ethylene-tetrafluoroethylene copolymers, and blends / mixtures thereof.

13. The process of any one of claims 10 to 12 wherein the spin agent comprises an azeotropic or azeotrope-like composition consisting essentially of from about 35 to about 85 weight percent dichloromethane and from about 65 to about 15 weight percent trans-1 H,2H- octafluorocyclopentane.

14. Use of the spin fluid of any one of claims 5 to 9 for preparing of plexifilamentary fibrils of polymer by flash spinning.

15. Plexifilamentary fibrils of polymer obtainable by the process of any one of claims 10 to 13.

16. A sheet of nonwoven flash-spun plexifilamentary fibrils comprising plexifilamentary fibrils of polymer of claim 15.

17. The sheet of claim 16, wherein the sheet is a collected sheet, a consolidated sheet, a bonded sheet, or a softened sheet.

18. An article comprising the plexifilamentary fibrils of polymer of claim 15 and / or the sheet of claim 16 or claim 17.

19. The article of claim 18 which is selected from garment, protective apparel, packaging material, house wrap, roof lining, car covers, medical and non-medical packaging, filtration media, print media, tags and labels, and accessories.

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