Bronsted acid catalyzed polymer compositions

JP2024520433A5Pending Publication Date: 2025-06-02DOW GLOBAL TECHNOLOGIES LLC
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Patent Information

Application Number
JP2023572820
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Priority Date
2021-06-07
Filing Date
2022-06-06
Publication Date
2025-06-02

AI Technical Summary

Technical Problem

Conventional polymer compositions containing ethylene-silane copolymers with Bronsted acid catalysts experience significant reductions in cure rates when fillers like carbon black or flame retardants are incorporated, leading to unacceptably long curing times at ambient conditions.

Method used

Incorporating a Bronsted acid catalyst with ethylene-silane copolymers having a silane content of 0.48 mol% to 1.00 mol% and a filler-to-catalyst weight ratio of 75-1000, which maintains or enhances cure rates despite the presence of fillers.

Benefits of technology

This combination allows for accelerated curing at ambient conditions, reducing costs and maintaining the effectiveness of the polymer composition's properties, even with the inclusion of fillers.

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Abstract

The polymer composition includes an ethylene-silane copolymer including units derived from ethylene monomers and silane monomers, the ethylene-silane copolymer having a copolymerized silane content of 0.48 mol% to 1.00 mol%, a Bronsted acid catalyst, and a filler including one or more of a flame retardant and carbon black. The filler to catalyst weight ratio is 75 to 1000.
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Description

[Technical field]

[0001] The present disclosure relates to polymer compositions, and more particularly to polymer compositions comprising a Bronsted acid catalyst. [Background technology]

[0002] Introduction Ethylene-silane copolymers are used in the formation of moisture crosslinkable polymer compositions. Such polymer compositions are used to fabricate wire and cable, including low voltage cable construction, and may be utilized as either cable jackets or electrical insulation. The silane comonomer, which is copolymerized with ethylene to create the ethylene-silane copolymer, facilitates crosslinking of the polymer composition. Crosslinking of the polymer composition is often referred to as "curing." The copolymerized silane content of the copolymer can be adjusted depending on the desired level of cure of the polymer composition. For example, U.S. Patent No. 8,460,770 ("the '770 patent") discloses that ethylene-silane copolymers may include 0.5 weight percent to 5 weight percent of the silane comonomer.

[0003] Polymer compositions that include ethylene-silane copolymers typically use a catalyst to accelerate the curing (crosslinking) of the polymer composition. One option for the type of catalyst that can be utilized is a condensation curing catalyst. Conventional condensation curing catalysts used in polymer compositions include Lewis acids or Bronsted acids. It is desirable for polymer compositions made with ethylene-silane copolymers to cure as quickly as possible under ambient conditions (i.e., 23°C and 50% relative humidity). For this reason, Bronsted acids are preferred because they are much more effective than Lewis acids in promoting curing (crosslinking) in ambient environments. A commonly used measure of how quickly curing occurs is to measure the number of days it takes for the polymer composition to reach a fixed hot creep level, such as 60% hot creep, when cured at ambient conditions. Hot creep is measured at a specific temperature (either 200°C or 150°C) under a fixed stress (e.g., 0.2 MPa) by the aforementioned test method based on the Insulated Cable Engineers Association (ICEA) standard for power cable insulating materials, ICEA-T-28-562-2003. By increasing the copolymerized silane content and / or the amount of catalyst, the time taken to reach 60% hot creep can be decreased, but this may not be economical or may lead to extrusion processability problems.

[0004] The polymer composition may include one or more filler materials to modify the properties of the polymer composition. For example, the filler materials may include flame retardants to make the polymer composition flame retardant, and carbon black to provide ultraviolet ("ultraviolet, UV") resistance properties to the polymer composition. In polymer compositions that do not contain flame retardants and fillers such as carbon black, Bronsted acid catalysts are known to produce much faster crosslinking under ambient conditions than Lewis acids. However, polymer compositions that contain fillers exhibit the opposite effect. While Lewis acid catalysts are compatible with flame retardants and carbon black fillers, Bronsted acid catalysts exhibit a rapid decrease in crosslinking performance with the incorporation of fillers, resulting in unacceptably long cure times at ambient conditions. For example, the '770 patent explains that "when a filler is present, the filler is coated with a material that prevents or retards any tendency of the filler that might otherwise interfere with the silane cure reaction." However, even if the filler is coated, there is no guarantee that the coating will necessarily alleviate the problem.

[0005] In view of the apparent incompatibility of Bronsted acid catalysts and fillers (especially uncoated ones), it would be surprising to discover a polymer composition that exhibits enhanced cure rates that contains both a filler and a Bronsted acid catalyst. Summary of the Invention

[0006] The inventors of the present application have surprisingly discovered polymer compositions that contain both a filler and a Bronsted acid catalyst, which exhibit enhanced cure rates at ambient conditions.

[0007] The present invention is a result of the discovery that utilizing an ethylene-silane copolymer having a copolymerized silane content of 0.48 mol% to 1.00 mol% allows for the use of Bronsted acid catalysts and fillers with little or no decrease in cure rate. Surprisingly, using a filler to catalyst weight ratio of 75 to 1000 in combination with an ethylene-silane copolymer having a copolymerized silane content of 0.48 mol% to 1.00 mol% results in accelerated cure despite the incorporation of fillers. Such results are advantageous in that they allow for shorter ambient cure times, reducing costs associated with the curing process, while also allowing for the imparting of various additional properties to the polymer composition.

[0008] The present invention is particularly useful in wire and cable manufacture.

[0009] According to a first aspect of the present disclosure, a polymer composition includes an ethylene-silane copolymer including units derived from ethylene monomers and silane monomers, the ethylene-silane copolymer including a copolymerized silane content of 0.48 mol% to 1.00 mol%, a Bronsted acid catalyst, and a filler including one or more of a flame retardant and carbon black. The filler to catalyst weight ratio is 75 to 1000.

[0010] According to a second aspect of the present disclosure, the filler includes both a flame retardant and carbon black.

[0011] According to a third feature of the present disclosure, the Bronsted acid catalyst is a sulfonic acid.

[0012] According to a fourth feature of the present disclosure, the Bronsted acid catalyst is an arylsulfonic acid.

[0013] According to a fifth aspect of the present disclosure, the polymer composition comprises 0.01 wt % to 0.50 wt % of a Bronsted acid catalyst, based on the total weight of the polymer composition.

[0014] According to a sixth feature of the present disclosure, the silane is vinyltrimethylsiloxane.

[0015] According to a seventh feature of the present disclosure, the ethylene-silane copolymer has a copolymerized silane content of 0.55 mol % to 0.80 mol %.

[0016] According to an eighth feature of the present disclosure, the filler to catalyst weight ratio is 100-700.

[0017] According to a ninth feature of the present disclosure, the filler to catalyst weight ratio is 100-500.

[0018] According to a tenth aspect of the present disclosure, a cable includes a conductor and the polymer composition of the present disclosure disposed about the conductor. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0019] As used herein, the term "and / or," when used with a list of two or more items, means that any one of the listed items can be used by itself, or any combination of two or more of the listed items can be used. For example, if a composition is described as containing components A, B, and / or C, the composition can contain A alone, B alone, C alone, A and B in combination, A and C in combination, B and C in combination, or A, B, and C in combination.

[0020] Unless otherwise stated, all ranges are inclusive of the endpoints.

[0021] Test methods refer to the most current test method as of the priority date of this document unless a date is indicated with a two-digit number with a hyphen in the test method number. References to test methods include both a reference to the testing society and the test method number. Test method organizations are referred to by one of the following abbreviations: ASTM refers to ASTM International (formerly known as the American Society for Testing and Materials), EN refers to European Norm, DIN refers to the Deutsches Institut fur Normung, and ISO refers to the International Organization for Standards.

[0022] As used herein, the term weight percent ("wt %"), unless otherwise specified, refers to the weight percentage that a component represents of the total weight of the polymer composition.

[0023] As used herein, "CAS Number" is the Chemical Service Registry Number assigned by the Chemical Abstracts Service.

[0024] As used herein, the term "ambient conditions" refers to an air atmosphere having a temperature between 5°C and 50°C and a relative humidity between 5% and 100%.

[0025] Polymer Composition The polymer composition includes an ethylene-silane copolymer, a Bronsted acid catalyst, and a filler. The polymer composition has a filler to catalyst weight ratio of 75 to 1000.

[0026] Ethylene-silane copolymer Ethylene-silane copolymers contain units derived from ethylene monomers and silane monomers. "Copolymer" means a polymeric compound prepared by reacting (i.e., polymerizing) different types of monomers. Ethylene-silane copolymers are prepared by copolymerization of ethylene and silane monomers.

[0027] The polymer composition may comprise 10 wt% or more, or 15 wt% or more, or 20 wt% or more, or 25 wt% or more, or 30 wt% or more, or 35 wt% or more, or 40 wt% or more, or 45 wt% or more, or 50 wt% or more, or 55 wt% or more, or 60 wt% or more, or 65 wt% or more, or 70 wt% or more, or 75 wt% or more, or 80 wt% or more, or 85 wt% or more, while simultaneously 98 wt% or less, or 95 wt% or less, or 90 wt% or less, or 85 wt% or less, or 80 wt% or less, or 75 wt% or less, or 70 wt% or less, or 65 wt% or less, or 60 wt% or less, or 55 wt% or less, or 50 wt% or less, or 45 wt% or less of the ethylene-silane copolymer, based on the total weight of the polymer composition.

[0028] The ethylene-silane copolymer has a density, as measured by ASTM D792, of 0.910 grams per cubic centimeter ("g / cc") or more, or 0.915 g / cc or more, or 0.920 g / cc or more, or 0.921 g / cc or more, or 0.922 g / cc or more, or 0.925 g / cc to 0.930 g / cc or more, or 0.935 g / cc or more, while simultaneously being 0.940 g / cc or less, or 0.935 g / cc or less, or 0.930 g / cc or less, or 0.925 g / cc or less, or 0.920 g / cc or less, or 0.915 g / cc or less.

[0029] The ethylene-silane copolymer comprises 90% by weight or more, or 91% by weight or more, or 92% by weight or more, or 93% by weight or more, or 94% by weight or more, or 95% by weight or more, or 96% by weight or more, or 96.5% by weight or more, or 97% by weight or more, or 97.5% by weight or more, or 98% by weight or more, or 99% by weight or more, while at the same time comprising 99.5% by weight or less, or 99% by weight or less, or 98% by weight or less, or 97% by weight or less, or 96% by weight or less, or 95% by weight or less, or 94% by weight or less, or 93% by weight or less, or 92% by weight or less, or 91% by weight or less of α-olefins as measured using Fourier-Transform Infrared (FTIR) spectroscopy. 10 , or C 12 , or C 16 , or C 18 , or C 20 The α-olefins may include, for example, ethylene, propylene, 1-butene, 1-hexene, 4-methyl-1-pentene, and 1-octene. Other units of the silane-functionalized polyolefin may be derived from one or more polymerizable monomers, including, but not limited to, unsaturated esters. The unsaturated esters may be alkyl acrylates, alkyl methacrylates, or vinyl carboxylates. The alkyl groups may have 1-8 carbon atoms or 1-4 carbon atoms. The carboxylate groups may have 2-8 carbon atoms or 2-5 carbon atoms. Examples of acrylates and methacrylates include, but are not limited to, ethyl acrylate, methyl acrylate, methyl methacrylate, t-butyl acrylate, n-butyl acrylate, n-butyl methacrylate, and 2-ethylhexyl acrylate. Examples of vinyl carboxylates include, but are not limited to, vinyl acetate, vinyl propionate, and vinyl butanoate.

[0030] The ethylene-silane copolymer may contain from 0.48 mol % to 1.00 mol % of the copolymerized silane. For example, the ethylene-silane copolymer may contain 0.48 mol% or more, or 0.50 mol% or more, or 0.55 mol% or more, or 0.60 mol% or more, or 0.65 mol% or more, or 0.70 mol% or more, or 0.75 mol% or more, or 0.80 mol% or more, or 0.85 mol% or more, or 0.90 mol% or more, or 0.95 mol% or more, while simultaneously containing 1.00 mol% or less, or 0.95 mol% or less, or 0.90 mol% or less, or 0.85 mol% or less, or 0.80 mol% or less, or 0.75 mol% or less, or 0.70 mol% or less, or 0.65 mol% or less, or 0.60 mol% or less, or 0.55 mol% or less, or 0.50 mol% or less of copolymerized silane, based on the total moles of the ethylene-silane copolymer. The content of copolymerized silane present in the ethylene-silane copolymer is determined by the Silane Test, which is described in more detail below.

[0031] The silane comonomer used to make the ethylene-silane copolymer can be a hydrolyzable silane monomer. A "hydrolyzable silane monomer" is a silane-containing monomer that can be usefully copolymerized with an α-olefin (e.g., ethylene) to form an α-olefin / silane copolymer (such as an ethylene / silane reactor copolymer). The hydrolyzable silane monomer has the following structure (I):

[0032] [ka] In the formula, R 1 is a hydrogen atom or a methyl group, x is 0 or 1, n is an integer from 1 to 4, or 6, or 8, or 10, or 12, and each R 2are independently a hydrolyzable organic group, for example, an alkoxy group having 1 to 12 carbon atoms (e.g., methoxy, ethoxy, butoxy), an aryloxy group (e.g., phenoxy), an aroxy group (e.g., benzyloxy), an aliphatic acyloxy group having 1 to 12 carbon atoms (e.g., formyloxy, acetyloxy, propanoyloxy), an amino group or a substituted amino group (e.g., alkylamino, arylamino), or a lower alkyl group having 1 to 6 carbon atoms, provided that three R 2 Provided that not more than one of the groups is alkyl. The hydrolyzable silane monomers can be copolymerized with an α-olefin (such as ethylene) in a reactor, such as a high pressure process, to form an α-olefin-silane reactor copolymer. In examples where the α-olefin is ethylene, such copolymers are referred to herein as ethylene-silane copolymers.

[0033] The hydrolyzable silane monomer may include silane monomers that include an ethylenically unsaturated hydrocarbyl group, such as a vinyl, allyl, isopropenyl, butenyl, cyclohexenyl, or gamma (meth)acryloxyallyl group, and a hydrolyzable group, such as, for example, a hydrocarbyloxy, hydrocarbonyloxy, or hydrocarbylamino group. The hydrolyzable group may include methoxy, ethoxy, formyloxy, acetoxy, proprionyloxy, and alkyl or arylamino groups. In a particular example, the hydrolyzable silane monomer is an unsaturated alkoxysilane, which can be grafted onto a polyolefin or copolymerized with an α-olefin (such as ethylene) in the reactor. Examples of hydrolyzable silane monomers include vinyltrimethoxysilane ("VTMS"), vinyltriethoxysilane ("VTES"), vinyltriacetoxysilane, and gamma-(meth)acryloxypropyltrimethoxysilane. For structure (I), x=0, R 1 = hydrogen, and R 2 = methoxy, for VTES, x = 0, R 1= hydrogen, and R 2 For ethoxy and vinyltriacetoxysilane, x=0, R 1 =H and R 2 = Acetoxy.

[0034] Ethylene-Based Polymers The polymer composition may include one or more ethylene-based polymers. As used herein, an "ethylene-based" polymer is one in which no units are derived from silane monomers and in which greater than 50% by weight of the monomers are ethylene, although other comonomers may be used. Ethylene-based polymers are polymers that are made up of ethylene and one or more C3-C6 olefins, such as propylene, 1-butene, 1-pentene, 4-methyl-1-pentene, 1-hexene, and 1-octene. 20 and an α-olefin comonomer. The ethylene-based polymer can have a monomodal or polymodal molecular weight distribution and can be used alone or in combination with one or more other types of ethylene-based polymers (e.g., a blend of two or more ethylene-based polymers differing in monomer composition and content, catalyst preparation, molecular weight, molecular weight distribution, density, etc.). When a blend of ethylene-based polymers is used, the polymers can be blended by any in-reactor or post-reactor process.

[0035] The ethylene-based polymer has an ethylene content of 50% or more, 60% or more, 70% or more, 80% or more, 85% or more, 90% or more, or 91% or more, or 92% or more, or 93% or more, or 94% or more, or 95% or more, or 96% or more, or 97% or more, or 97.5% or more, or 98% or more by weight, as measured using Nuclear Magnetic Resonance (NMR) or Fourier Transform Infrared (FTIR) spectroscopy. % or more, while at the same time comprising 100% or less, 99.5% or less, 99% or less, 98% or less, 97% or less, 96% or less, 95% or less, 94% or less, 93% or less, 92% or less, 91% or less, 90% or less, 85% or less, 80% or less, 70% or less, or 60% or less by weight of ethylene. Other units of ethylene-based polymers include C3, C4, C6, C8, or C9, such as propylene, 1-butene, 1-hexene, 4-methyl-1-pentene, and 1-octene. 10 , or C 12 , or C 16 , or C 18 , or C 20 Alpha-olefins may be mentioned.

[0036] The polymer composition may comprise 0 wt% to 60 wt% of an ethylene-based polymer. For example, the polymer composition comprises 0 wt% or more, or 5 wt% or more, or 10 wt% or more, or 15 wt% or more, or 20 wt% or more, or 25 wt% or more, or 30 wt% or more, or 35 wt% or more, or 40 wt% or more, or 45 wt% or more, or 50 wt% or more, or 55 wt% or more, while simultaneously comprising 60 wt% or less, or 55 wt% or less, or 50 wt% or less, or 45 wt% or less, or 40 wt% or less, or 35 wt% or less, or 30 wt% or less, or 25 wt% or less, or 20 wt% or less, or 15 wt% or less, or 10 wt% or less, or 5 wt% or less of an ethylene-based polymer.

[0037] Filler The polymer composition includes a filler. The filler is a solid that cannot melt or decompose at a temperature up to 150° C. The filler includes (but is not limited to) one or more of flame retardants (e.g., halogenated or halogen-free), antimony trioxide, zinc borate, zinc carbonate, zinc carbonate hydroxide, zinc borate hydrate, zinc phosphate, zinc stannate, zinc hydrostannate, zinc sulfide, zinc oxide, carbon black, organoclay, aluminum trihydroxide, magnesium hydroxide, calcium carbonate, hydromagnesite, huntite, hydrotalcite, boehmite, magnesium carbonate, magnesium phosphate, calcium hydroxide, calcium sulfate, silica, talc, and combinations thereof. The polymer composition may comprise 1 wt.% or more, or 3 wt.% or more, or 5 wt.% or more, or 10 wt.% or more, or 15 wt.% or more, or 20 wt.% or more, or 25 wt.% or more, or 30 wt.% or more, or 35 wt.% or more, or 40 wt.% or more, or 45 wt.% or more, or 50 wt.% or more, or 55 wt.% or more, or 60 wt.% or more, or 65 wt.% or more, or 70 wt.% or more, or 75 wt.% or more, while simultaneously It may comprise a filler content (i.e. the total weight % of all fillers mentioned above) of 80% or less, or 75% or less, or 70% or less, or 65% or less, or 60% or less, or 55% or less, or 50% or less, or 45% or less, or 40% or less, or 35% or less, or 30% or less, or 25% or less, or 20% or less, or 15% or less, or 10% or less, or 5% or less, or 3% or less by weight.

[0038] Examples of halogenated flame retardants include, but are not limited to, hexahalodiphenyl ether, tetrabromobisphenol A bis(2,3-dibromopropyl ether)octahalodiphenyl ether, decahalodiphenyl ether, decahalobiphenyl ethane, 1,2-bis(trihalophenoxy)ethane, 1,2-bis(pentahalophenoxy)ethane, hexahalocyclododecane, tetrahalobisphenol-A, ethylene(N,N')-bis-tetrahalophthalimide, tetrahalophthalic anhydride, hexahalobenzene, halogenated indan, halogenated phosphate ester, halogenated paraffin, halogenated polymer, halogenated polystyrene, and polymer of halogenated bisphenol-A and epichlorohydrin, or mixtures thereof. Particularly desirable halogenated flame retardants are brominated aromatic compounds having a bromine content of more than 50 weight percent, or more than 60 weight percent, or more than 70 weight percent. In a very useful embodiment, the halogenated flame retardant is decabromodiphenyl ether or decabromodiphenyl ethane or ethylene bis-tetrabromophthalimide. Examples of halogen-free flame retardants include, but are not limited to, metal hydrates, metal carbonates, red phosphorus, silica, alumina, aluminum hydroxide, magnesium hydroxide, titanium oxide, carbon nanotubes, talc, clay, organically modified clay, calcium carbonate, wollastonite, mica, ammonium octamolybdate, frits, hollow glass microspheres, expandable compounds, expanded graphite, and combinations thereof.

[0039] Bronsted Acid Catalyst The polymer composition includes a Bronsted acid catalyst. The Bronsted acid catalyst reacts with hydrogen cations (protons, H +The Bronsted acid catalyst may have a pKa of 6 or less. Exemplary Bronsted acid catalysts include sulfonic acids, carboxylic acids, and phosphoric acids. The sulfonic acids may be alkylsulfonic acids, arylsulfonic acids, alkylarylsulfonic acids, or arylalkylsulfonic acids. The sulfonic acids may be of the formula RSO3H, where R is (C1-C 10 ) Alkyl, (C6-C 10 ) Aryl, (C1-C 10 ) Alkyl substituted (C6-C 10 ) aryl, or (C6-C 10 )Aryl substituted (C1-C 10) alkyl. The sulfonic acid may be a hydrophobic sulfonic acid and may have a solubility in pH 7.0 distilled water of 0 to less than 0.1 g / mL after 24 hours at 23° C. Exemplary sulfonic acids include alkylbenzenesulfonic acids (e.g., 4-methylbenzenesulfonic acid, dodecylbenzenesulfonic acid, or dialkylbenzenesulfonic acid), naphthalenesulfonic acid, alkylnaphthalenesulfonic acid, dinonylnaphthalenedisulfonic acid, methanesulfonic acid, and benzenesulfonic acid. The sulfonic acid may consist of carbon atoms, hydrogen atoms, one sulfur atom, and three oxygen atoms. In one embodiment, the sulfonic acid may be a blocked sulfonic acid as defined in U.S. Patent Application Publication No. 2016 / 0251535(A1), which is a compound that generates in situ a sulfonic acid of formula RSO3H, where R is as defined above, when it is heated, optionally in the presence of moisture or alcohol. Examples of blocked sulfonic acids include amine-sulfonates and sulfonic acid alkyl esters. Blocked sulfonic acids can consist of carbon, hydrogen, one sulfur, and three oxygen atoms, and optionally nitrogen. Exemplary carboxylic acids include benzoic acid and formic acid. Exemplary acid catalysts are available from King Industries Specialty Chemicals under the trade name NACURE™ acid catalyst. Commercially available examples of such acid catalysts include NACURE™ 155 sulfonic acid catalyst, NACURE™ 1051 sulfonic acid catalyst, NACURE™ CD-2120 hydrophobic sulfonic acid catalyst, and NACURE™ CD-2180 hydrophobic sulfonic acid catalyst. Additionally, the NACURE™ materials disclosed in US Patent Application Publication No. 2011 / 0171570 (all products of King Industries) are examples of blocked sulfonic acids with various dissociation temperatures.Examples of commercially available blocked sulfonic acids include NACURE® 1419 (a product of King Industries), which is a 30% solution of covalently blocked dinonylnaphthalene sulfonic acid in xylene / 4-methyl-2-pentanone, and NACURE® 5414 (a product of King Industries), which is a 25% solution of covalently blocked dodecylbenzene sulfonic acid in xylene.

[0040] The Bronsted acid catalyst is typically added to the polymer composition in the extruder (such as during cable manufacture) such that the Bronsted acid catalyst is present during the final melt extrusion process. Thus, the polymer composition may undergo some crosslinking before the polymer composition exits the extruder, and crosslinking is completed after the polymer composition exits the extruder when it is exposed to moisture (e.g., a sauna, hot or cold bath) and / or humidity typically present in the environment in which the polymer composition is stored, transported, or used.

[0041] The Bronsted acid catalyst may be included in the catalyst masterbatch blend, with the catalyst masterbatch being included in the composition. Non-limiting examples of suitable catalyst masterbatches include those sold under the trade name SI-LINK™ by The Dow Chemical Company, including SI-LINK™ AC DFDA-5488 NT and SI-LINK™ AC DFDB-5418 BK.

[0042] The polymer composition may have a carboxylic acid content of 0.01 wt.% or more, or 0.02 wt.% or more, or 0.04 wt.% or more, or 0.06 wt.% or more, or 0.08 wt.% or more, or 0.10 wt.% or more, or 0.12 wt.% or more, or 0.14 wt.% or more, or 0.16 wt.% or more, or 0.18 wt.% or more, or 0.20 wt.% or more, or 0.22 wt.% or more, or 0.24 wt.% or more, or 0.26 wt.% or more, or 0.28 wt.% or more, while simultaneously having a carboxylic acid content of 1.0 wt.% or less, or 0.80 wt.% or less, based on the weight of the polymer composition. contains 0.60 wt% or less, or 0.50 wt% or less, or 0.40 wt% or less, or 0.30 wt% or less, or 0.28 wt% or less, or 0.26 wt% or less, or 0.24 wt% or less, or 0.22 wt% or less, or 0.20 wt% or less, or 0.18 wt% or less, or 0.16 wt% or less, or 0.14 wt% or less, or 0.12 wt% or less, or 0.10 wt% or less, or 0.08 wt% or less, or 0.06 wt% or less, or 0.04 wt% or less, or 0.02 wt% or less.

[0043] Filler to Catalyst Weight Ratio The polymer composition has a filler to catalyst weight ratio of 75 to 1000. The filler to catalyst weight ratio is calculated by dividing the total weight percent of all combined fillers present in the polymer composition by the total weight percent of Bronsted acid catalysts in the polymer composition. The filler to catalyst weight ratio is 75 or more, or 100 or more, or 150 or more, or 200 or more, or 250 or more, or 300 or more, or 350 or more, or 400 or more, or 450 or more, or 500 or more, or 550 or more, or 600 or more, or 650 or more, or 700 or more, or 750 or more, or 800 or more, or 850 or more, or 900 or more, or 950 or more, while simultaneously being 1000 or less, or 950 or less, or 900 or less, or 850 or less, or 800 or less, or 750 or less, or 700 or less, or 650 or less, or 600 or less, or 550 or less, or 500 or less, or 450 or less, or 400 or less, or 350 or less, or 300 or less, or 250 or less, or 200 or less, or 150 or less, or 100 or less.

[0044] Additives The polymer composition may include one or more additives. Non-limiting examples of suitable additives include antioxidants, moisture scavengers (including hydrolyzable silane monomers), colorants (other than carbon black already included as a filler), corrosion inhibitors, lubricants, ultraviolet (UV) absorbers or stabilizers, antiblocking agents, compatibilizers, plasticizers, processing aids, and combinations thereof.

[0045] The polymer composition may include an antioxidant. Non-limiting examples of suitable antioxidants include phenolic antioxidants, thio antioxidants, phosphate antioxidants, and hydrazine metal deactivators. Suitable phenolic antioxidants include polyfunctional phenols such as high molecular weight hindered phenols, methyl-substituted phenols, phenols with substituents having primary or secondary carbonyls, and sulfur- and phosphorus-containing phenols. Representative hindered phenols include 1,3,5-trimethyl-2,4,6-tris-(3,5-di-tert-butyl-4-hydroxybenzyl)benzene, pentaerythrityl tetrakis-3(3,5-di-tert-butyl-4-hydroxyphenyl)-propionate, n-octadecyl-3(3,5-di-tert-butyl-4-hydroxyphenyl)propionate, 4,4'-methylenebis(2,6-tert-butyl-phenoxy)benzene, and the like. Examples of suitable methyl-substituted phenols include pentaerythritol tetrakis(3-(3,5-di-tert-butyl-4-hydroxyphenyl)propionate), available commercially as Irganox™ 1010 from BASF. A non-limiting example of a suitable methyl-substituted phenol is isobutylidenebis(4,6-dimethylphenol). A non-limiting example of a suitable hydrazine-based metal deactivator is oxalyl bis(benzylidene hydrazide). In one embodiment, the composition contains 0 wt%, or 0.001 wt%, or 0.01 wt%, or 0.02 wt%, or 0.05 wt%, or 0.1 wt%, or 0.2 wt%, or 0.3 wt%, or 0.4 wt% to 0.5 wt%, or 0.6 wt%, or 0.7 wt%, or 0.8 wt%, or 1.0 wt%, or 2.0 wt%, or 2.5 wt%, or 3.0 wt% of an antioxidant based on the total weight of the composition.

[0046] The polymer composition may include an ultraviolet (UV) absorber or stabilizer. A non-limiting example of a suitable UV stabilizer is a hindered amine light stabilizer (HALS). A non-limiting example of a suitable HALS is 1,3,5-triazine-2,4,6-triamine, N,N-1,2-ethanediylbis-N-3-4,6-bisbutyl(1,2,2,6,6-pentamethyl-4-piperidinyl)amino-1,3,5-triazin-2-ylaminopropyl-N,N-dibutyl-N,N-bis(1,2,2,6,6-pentamethyl-4-piperidinyl)-1,5,8,12-tetrakis[4,6-bis(n-butyl-n-1,2,2,6,6-pentamethyl-4-piperidylamino)-1,3,5-triazin-2-yl]-1,5,8,12-tetraazadodecane, available as SABO™ STAB UV-119 from SABO SpA, Levate, Italy. In one embodiment, the composition contains 0 wt%, or 0.001 wt%, or 0.002 wt%, or 0.005 wt%, or 0.006 wt% to 0.007 wt%, or 0.008 wt%, or 0.009 wt%, or 0.01 wt%, or 0.2 wt%, or 0.3 wt%, or 0.4 wt%, or 0.5 wt%, 1.0 wt%, or 2.0 wt%, or 2.5 wt%, or 3.0 wt% of a UV absorber or stabilizer, based on the total weight of the polymer composition.

[0047] The polymer composition may include a processing aid. Non-limiting examples of suitable processing aids include oils, polydimethylsiloxanes, organic acids (such as stearic acid), and metal salts of organic acids (such as zinc stearate). In one embodiment, the polymer composition contains 0 wt%, or 0.01 wt%, or 0.02 wt%, or 0.05 wt%, or 0.07 wt%, or 0.1 wt%, or 0.2 wt%, or 0.3 wt%, 0.4 wt% to 0.5 wt%, or 0.6 wt%, or 0.7 wt%, or 0.8 wt%, or 1.0 wt%, or 2.0 wt%, or 2.5 wt%, or 3.0 wt%, or 5.0 wt%, or up to 10.0 wt% of the processing aid based on the total weight of the polymer composition.

[0048] In one embodiment, the polymer composition contains 0 wt%, or greater than 0 wt%, or 0.001 wt%, or 0.002 wt%, or 0.005 wt%, or 0.006 wt% to 0.007 wt%, or 0.008 wt%, or 0.009 wt%, or 0.01 wt%, or 0.2 wt%, or 0.3 wt%, or 0.4 wt%, or 0.5 wt%, 1.0 wt%, or 2.0 wt%, or 2.5 wt%, or 3.0 wt%, or 4.0 wt%, or 5.0 wt% to 6.0 wt%, or 7.0 wt%, or 8.0 wt%, or 9.0 wt%, or 10.0 wt%, or 15.0 wt%, or 20.0 wt%, or 30 wt%, or 40 wt%, or 50 wt%, of the additive, based on the total weight of the polymer composition.

[0049] To reduce or eliminate the possibility of scorching that may be caused by moisture present in or associated with the components, such as fillers, one or more of the components or masterbatches may be dried prior to compounding or extrusion, or a mixture of the components or masterbatches may be dried after compounding or extrusion. The composition may be prepared in the absence of a catalyst for long shelf life, and a catalyst may be added as a final step in the preparation of the cable structure by extrusion process. Alternatively, the catalyst may be combined with one or more other components in the form of a masterbatch.

[0050] Coated Conductor The present disclosure also provides a coated conductor, the coated conductor including a conductor and a coating on the conductor, the coating including a polymer composition, the polymer composition being at least partially disposed around the conductor to produce the coated conductor.

[0051] The process for producing a coated conductor includes mixing a polymer composition in an extruder and heating to at least the melting temperature of the ethylene-silane copolymer, and then coating the polymer melt blend onto a conductor. The term "on" includes direct or indirect contact between the polymer melt blend and the conductor. The polymer melt blend is in an extrudable state.

[0052] The polymer composition is disposed over and / or around the conductor to form a coating. The coating may be one or more inner layers, such as an insulating layer. The coating may entirely or partially cover or otherwise surround or encase the conductor. The coating may be the only component surrounding the conductor. Alternatively, the coating may be one layer of a multi-layer jacket or sheath that encases the metal conductor. The coating may be in direct contact with the conductor. The coating may be in direct contact with an insulating layer that surrounds the conductor.

[0053] The resulting coated conductor (cable) is cured in moist conditions for a sufficient length of time to allow the coating to reach the desired degree of cross-linking. The temperature during curing is generally above 0° C. In one embodiment, the cable is cured (aged) in a 90° C. water bath for at least 4 hours. In one embodiment, the cable is cured (aged) for up to 30 days in ambient conditions, including an air atmosphere, where ambient conditions are as defined above.

[0054] In one embodiment, the polymer composition is coated at a thickness of 0.762 mm onto a 14 AWG conductor (diameter: 1.63 mm) and achieves 60% hot creep within 14 days (or within 12 days, or within 10 days, or within 8 days, or within 7 days, or within 6 days, or within 5 days, or within 4 days, or within 3 days, or within 2 days, or within 1 day) when the coated conductor is cured at ambient conditions of 23° C. and 50% relative humidity. EXAMPLES

[0055] Test Method Density: Density is measured according to ASTM D792, Method B. Results are reported in g / cc.

[0056] Melt index: Melt index (MI) was measured according to ASTM D1238, condition 190° C. / 2.16 kilogram (kg) weight, and is reported in grams dissolved per 10 minutes (g / 10 min).

[0057] Silane Testing: X-ray fluorescence spectroscopy ("XRF") is used to determine the weight percent (wt%) silicon atom (Si) content of a test sample of an ethylene-silane copolymer, and then the silane comonomer unit wt% in the test sample of an ethylene-silane copolymer is calculated. The test sample in powder form is pressed at 8.3 megapascals (MPa; 1,200 pounds per square inch, psi) for 1 minute using a Buehler SimpliMet 300 automatic mounting press that has been preheated at 115.6°C (240°F) for 3 minutes to form a plaque having a thickness of about 6 mm, and the plaque is cooled to 25°C. The Si atom content of the plaque is analyzed by wavelength dispersive XRF using a wavelength dispersive X-ray fluorescence spectrometer from PANalytical Axios. The Si atom content is determined by comparing the line intensities of the XRF spectrum with a calibration curve of Si atom content established using polymer standards of known Si atom concentration measured individually using Neutron Activation Analysis (NAA) or Inductively Coupled Plasma (ICP) methods. The Si atom weight percent value measured by XRF and the molecular weight of at least one silane comonomer from which the hydrolyzable silyl group is derived are used to calculate the hydrolyzable silyl group comonomer unit weight percent (i.e., weight percent of hydrolyzable silyl groups) in the ethylene-silane copolymer. For the hydrolyzable silyl group derived from vinyltrimethoxysilane (VTMS), a VTMS molecular weight of 148.23 g / mol is used.To calculate the hydrolyzable silyl group content (wt % of hydrolyzable silyl group comonomer units) in ethylene-silane copolymers, use the Si atomic weight % ("C") obtained by XRF and the formula p=C*(m / 28.086)(1 / 10000 ppmw), where * means multiplication, / means division, p is the weight % of hydrolyzable silyl groups in the ethylene-silane copolymer, C is the Si atomic weight (XFR) in weight parts per million (ppmw), m is the molecular weight in g / mol of the silane comonomer from which the hydrolyzable silyl groups are derived, 28.086 is the atomic weight of the silicon atom, and 10000 ppmw is the number of parts by weight that are one millionth in 1.00 wt %. For example, if XRF shows 379 ppmw Si atoms in an ethylene-silane copolymer and the comonomer used to make the ethylene-silane copolymer is VTMS with a molecular weight of 148.23 g / mol, the comonomer content is 0.20 wt%. To calculate the hydrolyzable silyl group comonomer units in the ethylene-silane copolymer of the silane comonomer used, use the calculated weight percent of the hydrolyzable silyl group comonomer units in the ethylene-silane copolymer and the formula G=100*(p / m) / [(p / m)+(100.00wt%-p) / 28.05g / mol], where * means multiplication, G means the mole percent (mol%) of the hydrolyzable silyl groups in the ethylene-silane copolymer, p is the weight percent of the hydrolyzable silyl groups in the ethylene-silane copolymer, m is the molecular weight in g / mol of the silane comonomer from which the hydrolyzable silyl groups are derived, and 28.05g / mol is the molecular weight of the monomer ethylene (H2C=CH2). For example, if the comonomer content is 2.0wt% and the comonomer is VTMS, then p=2.0wt% and m=148.23g / mol, and G=0.38mol%. When the comonomer content is 5.0 wt. % and the comonomer is VTMS, p=5.0 wt. % and m=148.23 g / mol, and G=0.99 mol. %.When two or more silane comonomers with different molecular weights are used to make an ethylene-silane copolymer, the molecular weight used to calculate the total mol% of all hydrolyzable silyl groups in the ethylene-silane copolymer is the weighted average molecular weight of the comonomers. The weighting can be determined by the ratio of the amount of comonomer fed to the reactor, or alternatively, NMR spectroscopy on the ethylene-silane copolymer determines the relative amounts of different comonomer units in the ethylene-silane copolymer when each hydrolyzable silyl group is attached to a different type of carbon atom (e.g., tertiary carbon atom vs. secondary carbon atom), or alternatively, calibrated Fourier Transform Infrared (FT-IR) spectroscopy provides quantification of different types of comonomers.

[0058] Hot Creep Test Method: The degree of crosslinking, and therefore the degree of cure, is measured in test specimens of polymeric compositions prepared by the moisture cure method outlined below. The test is based on the Insulated Cable Engineers Association (ICEA) standard for power cable insulation materials, ICEA-T-28-562-2003. Test specimens are taken along the extrusion direction from coated conductors having insulation layers with thickness values ​​ranging from 0.736 to 3.048 mm (29 to 120 mils). The test specimens are subjected to the Hot Creep Test Method under load Wt and at 200°C in accordance with UL 2556, Wire and Cable Test Methods, Section 7.9. Load weight = CA * 200 kilopascals (kPa; 29.0 pounds per square inch), where CA is the cross-sectional area of ​​the insulation layer specimen cut from the coated conductor sample prepared according to the coated conductor preparation method. Three test specimens are prepared for each test material. Make two marks on the specimen at the original distance H apart, where H=25+ / -2 mm. Place in the upper grip of the hot creep test assembly. Apply a hanging load of 0.2 megapascals (MPa) from the gripped specimen. Heat the test assembly including the specimen in a preheated circulating air oven at 200°C+ / -2°C or 150°C+ / -2°C for 15 minutes, then measure the final length D between the marks on the specimen with the load still attached. e Measure the HCE value. Formula 1: HCE = [100*(D e Calculate the hot creep elongation (HCE) percent according to [(H-H) / H(1)] / H(1). Dividing the amount of elongation by the initial length provides a measure of hot creep as a percentage. The lower the HCE (also called hot creep), the less the specimen will elongate under load, which in turn indicates a greater degree of crosslinking and therefore a greater degree of hardening. Lower hot creep values ​​indicate a greater degree of crosslinking.

[0059] material The materials used in the examples are described below.

[0060] ESC1 is an ethylene-silane copolymer containing a moisture scavenger and characterized by a melt index (I2) of 1.5 g / 10 min, a density of 0.921 g / cc, a copolymerized VTMS content of 0.31 mol%, and a crystallinity of 46.8 wt% at 23° C. ESC1 is available from The Dow Chemical Company, Midland, Michigan.

[0061] ESC2 is an ethylene-silane copolymer characterized by a melt index (I2) of 2.0 g / 10 min, a density of 0.922 g / cc, a copolymerized VTMS content of 0.65 mol%, and a crystallinity of 44.6 wt% at 23° C. ESC2 is available from The Dow Chemical Company, Midland, Michigan.

[0062] FRMB is a flame retardant masterbatch that is a blend of thermoplastic ethylene polymers, antioxidants, hindered amine stabilizers, and approximately 60% by weight of fillers (brominated flame retardants and antimony trioxide). FRMB is available from The Dow Chemical Company, Midland, Michigan.

[0063] CBMB is a carbon black masterbatch that includes a blend of thermoplastic ethylene polymer, antioxidant, and about 40% by weight carbon black (filler). CBMB is available from The Dow Chemical Company, Midland, Michigan.

[0064] CAMB is a catalyst masterbatch that includes a blend of thermoplastic ethylene polymer, antioxidant, and about 3% by weight of an aryl sulfonic acid. CAMB is available from The Dow Chemical Company, Midland, Michigan.

[0065] CCMB is a combined catalyst and carbon black masterbatch that includes a blend of thermoplastic ethylene polymer, moisture scavenger, antioxidant, stabilizer, about 31% by weight carbon black (filler), and about 1.5% by weight aryl sulfonic acid. CCMB is available from The Dow Chemical Company, Midland, Michigan.

[0066] Method for preparing coated conductor Inventive examples ("IE") 1 and 2 and comparative examples ("CE") 1-4 were prepared by mixing pellets of the ingredients in Table 1 in a fiber drum. The samples were then melt mixed during extrusion to produce coated conductors having a 0.762 mm thick coating of the polymer composition on a US Wire Gauge 14 solid copper conductor ("wire"). The coated conductors were fabricated using a 63.5 mm Davis Standard extruder with a double start Maddock screw and a 20 / 40 / 60 / 20 mesh screen across Zone 1 / Zone 2 / Zone 3 / Zone 4 / Zone 5 / Head / Die with temperature settings (°C) of 129.4 / 135.0 / 143.3 / 148.9 / 151.7 / 165.6 / 165.6. The length-to-diameter (L / D) ratio of the screw was 26 (measured from the start of the screw flight to the tip of the screw), or 24 (measured from the screw position corresponding to the end of the feed casing to the tip of the screw). The coated conductors were produced at a line speed of 91.44 meters per minute using screw speeds of 38 revolutions per minute ("rpm") for IE1 and CE1, 37 rpm for IE2 and CE2, and 39 rpm for CE3 and CE4.

[0067] Moisture curing method The coated conductors were aged at 23°C and 50% relative humidity (RH) and hot creep measurements were performed after various time intervals using the Hot Creep Test Method to calculate the number of days required to achieve 60% hot creep at ambient conditions.

[0068] result Table 1 provides both the composition and cure performance of IE1, IE2, and CE1-CE4.

[0069] [Table 1] * After 140 days at ambient conditions, CE2 only achieved 69% hot creep.

[0070] As is evident from Table 1, IE1 and IE2, which include ethylene-silane copolymers with copolymerized silane content of 0.48 mol% to 1.00 mol% and filler-to-catalyst weight ratios of 75 to 1000, demonstrate faster cure at ambient conditions than comparative examples that do not include this combination of features. For example, IE1 cured approximately 7 times faster than CE1. Such results are surprising because IE1 reaches 60% hot creep faster than CE1, even though IE1 contains less Bronsted acid catalyst than CE1. Similarly, IE2 cured more than 35 times faster than CE2, despite comparable loadings of Bronsted acid catalyst. Comparison of CE3 and CE4 demonstrates that although higher copolymerized silane content affects cure speed, it is not the only factor affecting cure performance. For example, the higher silane content of ESC2 (CE3) resulted in a 4-fold faster cure than ESC1 (CE4), but this performance improvement falls far short of the 7-fold and over 35-fold faster cure speeds obtained by IE1 and IE2 versus CE1 and CE2, respectively. Thus, the combination of both copolymerized silane content and filler-to-catalyst weight ratio are also possible features that affect cure speed. Comparing CE1 to CE4, it can be seen that the inclusion of filler adversely affected ambient cure properties with ESC1. The same detrimental effect is evident in CE2, but to a greater extent. In contrast, when the polymer compositions are made with ethylene-silane copolymers having copolymerized silane contents of 0.48 mol% to 1.00 mol% and filler-to-catalyst weight ratios of 75 to 1000 (i.e., IE1 and IE2), the same fillers appear to have little or no adverse effect on crosslinking properties.

Claims

1. A polymer composition comprising: An ethylene-silane copolymer containing units derived from an ethylene monomer and a silane monomer, wherein the ethylene-silane copolymer has a copolymerized silane content of 0.48 mol% to 1.00 mol%; A Bronsted acid catalyst; A filler comprising one or more of a flame retardant and carbon black; A polymer composition having a filler-to-catalyst weight ratio of 75 to 1000.

2. The polymer composition according to claim 1, wherein the filler comprises both a flame retardant and carbon black.

3. The polymer composition according to claim 1, wherein the Bronsted acid catalyst is a sulfonic acid.

4. The polymer composition according to claim 3, wherein the Bronsted acid catalyst is an arylsulfonic acid.

5. The polymer composition according to claim 1, wherein the polymer composition comprises 0.01 wt% to 0.50 wt% of a Bronsted acid catalyst based on the total weight of the polymer composition.

6. The polymer composition according to claim 1, wherein the silane is vinyltrimethylsiloxane.

7. The polymer composition according to claim 6, wherein the copolymerized silane content of the ethylene-silane copolymer is 0.55 mol% to 0.80 mol%.

8. The polymer composition according to any one of claims 1 to 7, wherein the filler-to-catalyst weight ratio is 100 to 700.

9. The polymer composition according to claim 8, wherein the filler-to-catalyst weight ratio is 100 to 500.

10. A cable comprising: A conductor; The polymer composition according to any one of claims 1 to 7 disposed around the conductor.