Polyolefin formulations containing combinations of voltage stabilizer compounds - Patents.com
Patent Information
- Application Number
- JP2024502545
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2021-08-04
- Filing Date
- 2022-08-01
- Publication Date
- 2025-08-05
- Estimated Expiration
- 2042-08-01
AI Technical Summary
Existing polyolefin formulations for insulated electrical conductors lack sufficient dielectric breakdown strength, leading to thicker insulation layers and increased cable mass, which limits the length of cables that can be produced and the voltage they can transmit efficiently.
A combination of an alkoxyphenol compound and a benzophenone compound is blended with a polyolefin polymer to enhance dielectric breakdown strength, creating a synergistic effect that results in formulations with improved insulation properties.
The synergistic combination significantly increases dielectric breakdown strength, allowing for thinner insulation layers, reducing cable mass, and enabling higher voltage transmission with fewer seams, thus improving energy efficiency and cable length.
Smart Images

Figure 00000000_0001_ABST 
Figure 00000000_0000_ABST
Abstract
Description
[Technical field]
[0001] The technical field includes polyolefin formulations for wire and cable.
[0002] Introduction Patents in this field include U.S. Pat. Nos. 3,413,263, 6,696,154 (B2), 8,680,399 (B2), 9,133,320 (B2), and 9,343,198 (B2). Published patent applications in this field include European Patent Publication Nos. 0111043(A1), 2886595, UK Published Patent No. 1461331(A), U.S. Patent Application Publication Nos. 2016 / 0304699(A1), 2016 / 0312007(A1), WO 2010 / 028721(A1), 2012 / 044521, 2014 / 209661(A1), and 2014 / 172107(A1). Publications include About The Significance Of Peroxide Decomposition Products In XLPE Cable Insulations, by H. Wagner and J. Wartusch, IEEE Trans. Electr. Insul, vol. EI-12, no. 6, December 1977.
[0003] Insulated conductors typically comprise a conductive core covered by an insulating layer. The conductive core may be solid or stranded (e.g., a bundle of wires). Some insulated conductors may also contain one or more additional elements, such as semiconductive layers and / or protective jackets (e.g., windings, tapes, or sheaths). Examples are coated metal wires and power cables, including those for use in low voltage ("LV", >0-<5 kilovolts (kV), medium voltage ("MV", 5-<69 kV), high voltage ("HV", 69-230 kV), and extra-high voltage ("EHV", >230 kV) power cables and their transmission / distribution applications. AEIC / ICEA specifications and / or IEC test methods may be used to evaluate power cables.
[0004] The majority of high voltage and extra high voltage power cables include an insulation layer composed of an insulating material that includes a host polymer and one or more additives. The additives may include antioxidants, colorants, and / or hindered amine stabilizers. The dielectric breakdown strength (also known as dielectric strength) of the insulating material determines how thick the insulation layer needs to be to meet industry standards for power cable performance at a particular voltage.
[0005] All other things being equal, a higher dielectric breakdown strength of the insulating material allows a thinner insulating layer to have the same dielectric breakdown strength as a comparative thicker layer. All other things being equal, a thinner insulating layer means a thinner cable. A thinner cable advantageously allows a smaller amount of cable mass to be used per unit cable length to achieve a given dielectric breakdown strength. This in turn usefully increases the length of cable that can be wound onto a standard size cable roll. A longer cable then reduces the number of joints or splices required to connect two or more thinner cables together. Alternatively, a higher dielectric breakdown strength of the insulating material allows a higher dielectric breakdown strength for an insulating layer with the same thickness, and therefore for a cable of the same thickness. A higher dielectric breakdown strength for a cable of the same thickness advantageously allows a higher voltage to be transmitted in that cable configuration. Transmitting power at a higher voltage reduces energy losses. Summary of the Invention
[0006] The inventors have found a combination of voltage stabilizer additives that includes an alkoxyphenol compound and a benzophenone compound and has a beneficial voltage stabilizing effect. This effect is believed to be synergistic, as described below. When these compounds are incorporated into a host polyolefin polymer, the resulting polyolefin formulation has increased dielectric breakdown strength relative to a host polyolefin that does not contain (B) an alkoxyphenol compound and (C) a benzophenone compound. In some embodiments, the dielectric breakdown strength of the formulation of the present invention is advantageously greater than a comparative formulation containing benzyl and / or benzyl derivatives. The inventors contemplate the following embodiments:
[0007] (A) a polyolefin polymer; and (B) a composition of formula (I): [ka] (In the formula, R 1is (C1-C 20 (C) an alkoxyphenol compound of formula (II): [ka] (In the formula, Ar 1 and a polyolefin formulation comprising a benzophenone compound,
[0008] A method of making a polyolefin formulation comprising contacting (A) a polyolefin polymer with (B) an alkoxyphenol compound and (C) a benzophenone compound to form the formulation.
[0009] A method of making a crosslinked polyolefin product, comprising: (A) subjecting a formulation to curing conditions such as to crosslink the polyolefin polymer, thereby making the crosslinked polyolefin product.
[0010] A crosslinked polyolefin product made by the above process.
[0011] Articles comprising polyolefin formulations and / or crosslinked polymer products. [Brief description of the drawings]
[0012] [Figure 1] FIG. 2 is a diagram showing the shape of a test sample for measuring dielectric breakdown strength. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0013] The Summary and Abstract are incorporated herein by reference. Embodiments are described below, some of which are described as numbered aspects for ease of reference.
[0014] Aspect 1. A composition comprising (A) a polyolefin polymer and x weight percent (wt%) of (B) a copolymer of formula (I): [ka] (In the formula, R 1 is (C1-C 20 ) alkyl) alkoxyphenol compound of formula (II): [ka] (In the formula, Ar 1 and a benzophenone compound (wherein x is phenyl or alkylphenyl), wherein y is 1-8 wt. % and x is 0.1-3.0 wt. %, with the proviso that x is less than 0.5y, the weight percent being based on the total weight of the polyolefin formulation. The formulation may contain only (B) the alkoxyphenol compound and only (C) the benzophenone compound. The polyolefin formulation has increased dielectric breakdown strength relative to (A) polyolefin polymer not containing one or both of components (B) and (C).
[0015] Aspect 2. The polyolefin formulation of aspect 1, comprising: 1 is phenyl, and R 1 (i) (C1-C5) alkyl, (ii) (C6-C 10 (iii) alkyl, (iv) methyl, and (v) heptyl; or Ar 1 is alkylphenyl, R 1 (i) (C1-C5) alkyl, (ii) (C6-C 10 In another embodiment, R 1 is selected from the group consisting of (v) (C2-C8) alkyl, (C4-C8) alkyl, and (viii) (C6-C8) alkyl.
[0016] Aspect 3.R 1 is methyl or heptyl, Ar 1 The polyolefin formulation according to any one of aspects 1 to 2, wherein is phenyl.
[0017] Aspect 4. (A) The polyolefin polymer is a low density polyethylene polymer, ethylene / (C4-C 20 4. The polyolefin formulation according to any one of claims 1 to 3, wherein the polyolefin formulation is selected from the group consisting of alpha-olefin copolymers, ethylene / (unsaturated carboxylic acid ester) copolymers, ethylene / (monocyclic organosiloxane) copolymers, ethylene / propylene copolymers, ethylene / propylene / (diene monomer) terpolymers, and propylene homopolymers.
[0018] Aspect 5. The polyolefin formulation of any one of Aspects 1-4, comprising 50.0-99.7 weight percent (wt%) of an (A) polyolefin polymer, x=0.3 wt% to x=0.9 wt% of an (B) alkoxyphenol compound, 1.9-7.4 wt% of a (C) benzophenone compound, and a total of 0.1-43 wt% of at least one additive, wherein the at least one additive is different from components (A), (B), and (C), respectively, and is independently selected from the group consisting of (D) organic peroxide, (E) scorch inhibitor, (F) antioxidant, (G) filler, (H) flame retardant, (I) hindered amine stabilizer, (J) tree inhibitor, (K) methyl radical scavenger, (L) crosslinking coagent, (M) processing aid, (N) colorant, and a combination of any two or more of additives (D)-(N).
[0019] Aspect 6. The polyolefin formulation of aspect 5, comprising 85 to 99.5 weight percent (wt%) of an (A) polyolefin polymer that is a low density polyethylene polymer; and 0.30 to 0.50 wt% of an (A) polyolefin polymer that is a low density polyethylene polymer. 1 (B) an alkoxyphenol compound, which is a compound of formula (I) in which is methyl or heptyl; and 1.5 to 2.4% by weight of Ar 1 and 0.1 to 1.5 wt. % of at least one (F) antioxidant.
[0020] Aspect 7. A method of making a polyolefin formulation according to any one of aspects 1-6, comprising mixing (A) a polyolefin polymer with (B) an alkoxyphenol compound and (C) a benzophenone compound, and optionally at least one additive, to make a formulation. The formulation made may be a heterogeneous or homogeneous blend of components (A), (B), and (C). The contacting step comprises contacting components (A), (B), and (C) with one another (from a previously uncontacted state). The contacting step may further comprise mixing the contacted (A), (B), and (C) together to form a homogeneous mixture thereof. In some embodiments, the method further comprises mixing at least one of optional additives (D)-(N) with (A) and (B). The mixing may comprise melt blending one or more of components (B), (C), and optionally additives (D)-(N) into a melt of component (A). The melt blending may be carried out in an extruder configured to melt mix the polyolefin and additives. The resulting melt blend may be extruded through a die to form strands and then pelletized to obtain a polyolefin formulation in the form of pellets. Alternatively, the melt blend may be extruded through a die designed to form an article of manufacture that includes the polyolefin formulation.
[0021] Aspect 8. A method of making a crosslinked polyolefin product, comprising subjecting a polyolefin formulation according to any one of aspects 1-6 to curing conditions to crosslink the (A) polyolefin polymer, thereby making a crosslinked polyolefin product. The curing conditions may include exposing the formulation to ultraviolet light or heating the formulation with (D) an organic peroxide and optionally (L) a crosslinking coagent. An embodiment of the method may include heating an embodiment of a polyolefin formulation according to any one of aspects 1-7 comprising (D) an organic peroxide and optionally (L) a crosslinking coagent to crosslink the (A) polyolefin polymer, thereby making a crosslinked polyolefin product. When no (L) crosslinking coagent is used, crosslinking comprises forming covalent carbon-carbon bonds between molecules of the (A) polyolefin polymer. When a (L) crosslinking coagent is included, crosslinking comprises forming covalent carbon-carbon bonds between molecules of the (A) polyolefin polymer and forming covalent carbon-carbon bonds between molecules of the (L) crosslinking coagent and molecules of the (A) polyolefin polymer.
[0022] Aspect 9. A crosslinked polyolefin product produced by the method of aspect 8. The crosslinked polyolefin product has increased dielectric breakdown strength relative to a crosslinked (A) polyolefin polymer that does not contain one or both of components (B) and (C). The crosslinked polyolefin product may include (A') a crosslinked (networked) polyethylene polymer produced by crosslinking (A) polyolefin polymer or a combination of (A) polyolefin polymer and (L) crosslinking coagent, and components (B) and (C). The crosslinked polyolefin product may further include at least one additive selected from the following: (F) antioxidant, (G) filler, (H) flame retardant, (I) hindered amine stabilizer, (J) tree inhibitor, (K) methyl radical scavenger, (M) nucleating agent, and (N) colorant (e.g., carbon black or titanium dioxide). The crosslinked polyolefin product has increased dielectric breakdown strength relative to a crosslinked (A) polyolefin polymer that does not contain components (B) and (C).
[0023] Aspect 10. An article comprising the polyolefin formulation according to any one of aspects 1-6 or the crosslinked polyolefin product according to aspect 9. The article has increased dielectric breakdown strength relative to an article containing (A) polyolefin polymer without one or both of components (B) and (C). In some aspects, the article of manufacture is selected from coatings, films, sheets, extruded articles (not pellets), and injection molded articles. For example, coated conductors, insulation layers for wires and cables for power transmission or communication, agricultural films, automotive parts, containers, food packaging, garment bags, grocery bags, heavy duty bags, industrial sheets, pallets and shrink wrap, bags, buckets, freezer containers, lids, toys. The article of manufacture has increased dielectric breakdown strength relative to a crosslinked host polyolefin without (B) alkoxyphenol compounds and (C) benzophenone compounds.
[0024] Aspect 11. A coated conductor comprising a conductive core and an insulating layer at least partially covering the conductive core, wherein at least a portion of the insulating layer comprises the crosslinked polyethylene product of aspect 9. The coated conductor and its insulating layer have increased dielectric breakdown strength relative to a coated conductor or insulating layer containing an (A) polyolefin polymer that does not contain one or both of components (B) and (C). The conductive core may be a wire having a proximal end and a distal end, at least one of which may be free of an insulating layer.
[0025] Embodiment 12. A method of transmitting electricity comprising applying a voltage across the conductive core of the coated conductor of embodiment 10 to cause a flow of electricity through the conductive core. Also contemplated is a method of transmitting data using the coated conductors of the present invention comprising insulated conductors.
[0026] Aspect 13. The invention of any one of aspects 1-12, wherein the polyolefin formulation has an improvement (increase) of at least +10.0 percent (%) in dielectric breakdown strength value eta, η relative to a comparative formulation not containing both the (B) alkoxyphenol compound and the (C) benzophenone compound, and the dielectric breakdown strength value eta, η at a failure probability value of 63.2% is determined using Weibull statistics according to the dielectric breakdown strength test method and Weibull statistics method described herein. In some embodiments, the improvement (increase) in the dielectric breakdown strength value eta, η (at a failure probability value of 63.2%) of the invention relative to the (A) polyolefin polymer not containing a voltage stabilizer (e.g., relative to Comparative Example 0 (CE0) described in the Examples below) is at least +25%, alternatively at least +45%, alternatively at least +49%. In some embodiments, the improvement in the dielectric breakdown strength value eta, η (at a failure probability value of 63.2%) of the inventive polyolefin polymer (e.g., relative to CE0) without the voltage stabilizer is further characterized as being up to 75%, alternatively up to +65%, alternatively up to +59%, alternatively up to 55%. In some embodiments, the improvement in the dielectric breakdown strength value eta, η (at a failure probability value of 63.2%) of the inventive polyolefin polymer (e.g., relative to CE0) without the voltage stabilizer is +45% to +54%. In some embodiments, the improvement in the dielectric breakdown strength value eta, η (at a failure probability value of 63.2%) of the inventive polyolefin polymer (e.g., relative to CE0) without the voltage stabilizer is +50%±5%. In some embodiments, the crosslinked polyolefin product made from the polyolefin formulation has any one of the improvements in the dielectric breakdown strength value eta, η (at a failure probability value of 63.2%) of the inventive polyolefin polymer described above. The aforementioned dielectric strength improvement values eta, η (for a failure probability value of 63.2%) are all determined according to the dielectric strength test method described below. In some embodiments, the values eta, η (for a failure probability value of 63.2%) are further characterized by a 90% confidence level beta, β, determined according to the dielectric strength test method and Weibull statistical method described below.
[0027] Aspect 14. The invention of any one of Aspects 1-13, wherein the polyolefin formulation has an improvement (increase) in dielectric breakdown strength value eta η that is greater than the sum of the eta of a first comparative formulation comprising only the (A) polyolefin polymer and benzophenone and the eta of a second comparative formulation comprising the (A) polyolefin polymer, 2-acetonaphthone, and 9-acetanthracene, wherein the weight percentage (wt %) of benzophenone in the first comparative formulation is the same as the wt % of the (C) benzophenone compound in the polyolefin formulation, the wt % of 2-acetonaphthone in the second comparative formulation is the same as the wt % of the (B) alkoxyphenol compound in the polyolefin formulation, and the wt % of 9-acetanthracene in the second comparative formulation is the same as the wt % of the (B) alkoxyphenol compound in the polyolefin formulation.
[0028] The coated conductor may be a power cable having a proximal end and a distal end, and electricity may flow from the proximal end to the distal end through a conductive core, or vice versa. The conductive core may be a wire. The power cable may be a medium-voltage (MV), high-voltage (HV), or extra-high-voltage (EHV) power cable. The power cable is useful in power transmission applications.
[0029] (A) Polyolefin polymers. They are composed of polyethylene macromolecules containing, independently, at least 5, or alternatively 10 to 200,000 constitutional units derived from the polymerization of ethylene and zero, one, or more other olefin-functional monomers. (A) Polyolefin polymers have a molecular weight of 0.870 to 0.975 grams per cubic centimeter (g / cm). 3 ), or 0.890 to 0.930 g / cm 3 (e.g. LDPE or LLDPE), or 0.910-0.930 g / cm 3 (e.g., LDPE or LLDPE), or 0.931 to 0.945 g / cm 3(e.g. MDPE), or 0.945-0.970g / cm 3 (e.g., HDPE), all measured in accordance with ASTM D792-13, Method B.
[0030] Polyethylene may be a homopolymer or a copolymer. A homopolymer is made by polymerizing only ethylene. A copolymer is made by polymerizing at least two different olefin monomers, one of which is ethylene. A copolymer may be a bipolymer made by polymerizing ethylene and one different olefin monomer, a terpolymer made by polymerizing ethylene and two different olefin monomers, or a tetrapolymer made by polymerizing ethylene and three different olefin monomers. Polyolefins that are copolymers may be block copolymers or random copolymers.
[0031] (A) Examples of olefin-functional monomers used to make polyolefin polymers are ethylene, propene, (C4-C 20 ) alpha-olefins, cyclic alkenes (e.g., norbornene), dienes (e.g., 1,3-butadiene), unsaturated carboxylic acid esters, and olefin-functional hydrolyzable silanes. (C4-C 20 Examples of alpha-olefins are (C4-C8) alpha-olefins such as 1-butene, 1-hexene, or 1-octene, and (C 10 -C 20 ) alpha-olefins. An example of a diene is 1,3-butadiene. Examples of unsaturated carboxylic acid esters are alkyl acrylates, alkyl methacrylates, and vinyl carboxylates (e.g., vinyl acetate). Examples of olefin-functional hydrolyzable silanes are vinyltrialkoxysilanes, vinyltris(dialkylamino)silanes, and vinyl(trioximo)silanes.
[0032] In some embodiments, (A) the polyolefin polymer is an ethylene-based polymer. The ethylene-based polymer comprises 51 to 100 weight percent ethylene units derived from the polymerization of ethylene and 49 to 0 weight percent comonomer units derived from the polymerization of one or two olefin-functional monomers (comonomers). The comonomers include propylene, (C4-C 20 ) alpha-olefins, and 1,3-butadiene. (C4-C 20 The alpha-olefin may be a (C4-C8) alpha-olefin such as 1-butene, 1-hexene, or 1-octene.
[0033] Examples of suitable ethylene-based polymers are polyethylene homopolymers, ethylene / (C4-C 20 ) alpha-olefin copolymers, ethylene / propylene copolymers, ethylene / propylene / diene monomer (EPDM) copolymers, such as ethylene / propylene / 1,3-butadiene terpolymers, and ethylene / 1-butene / styrene copolymers. 20Examples of alpha-olefin copolymers are ethylene / 1-butene copolymer, ethylene / 1-hexene copolymer, and ethylene / 1-octene copolymer. The ethylene-based polymer can be ultra-low-density polyethylene (ULDPE), very low-density polyethylene (VLDPE), linear low-density polyethylene (LLDPE), low-density polyethylene (LDPE), medium-density polyethylene (MDPE), high-density polyethylene (HDPE), or ultra-high-density polyethylene (UHDPE). Many of the ethylene-based polymers are sold by The Dow Chemical Company under trade names such as AFFINITY, ATTANE, DOWLEX, ENGAGE, FLEXOMER, or INFUSE. Other ethylene-based polymers are sold by other suppliers under trade names such as TAFMER, EXCEED, and EXACT. LDPE and LLDPE are compositionally different due to how they are made under different polymerization conditions: LDPE is made in a high pressure polymerization reactor in the presence of a free radical initiator (peroxide or O2) and without an olefin polymerization catalyst, whereas LLDPE is made in a standard pressure polymerization reactor in the presence of an olefin polymerization catalyst and in the absence of a free radical initiator.
[0034] In some embodiments, the (A) polyolefin polymer is a polyethylene homopolymer, e.g., low density polyethylene (LDPE). All of its constituent units are ethylenic repeat units. LDPE can be made by polymerizing ethylene in a high pressure reactor in the absence of a metal-based polymerization catalyst and in the presence of a small amount (e.g., 0.3-0.4 wt%) of a free radical initiator (e.g., a peroxide or mixture of peroxides or O2) and 1 wt% of a chain transfer agent, which is propylene.
[0035] In some embodiments, the (A) polyolefin polymer consists of only one ethylene-based polymer (e.g., only LLDPE, or only LDPE, or only MDPE, or only HDPE). In some embodiments, the (A) polyolefin polymer consists of LDPE. When the (A) polyolefin polymer consists of LDPE, in some such embodiments, the polyolefin formulation may not include any organic polymers other than LDPE.
[0036] Alternatively, the (A) polyolefin polymer may be an ethylene / alpha-olefin copolymer. The ethylene / alpha-olefin copolymer may be an ethylene / 1-butene copolymer, an ethylene / 1-hexene copolymer, an ethylene / 1-octene copolymer, or a combination of any two thereof. Ethylene / (C4-C 20 The constituent units of the alpha-olefin copolymer are composed of 51 to 99.9% by weight of constituent units derived from ethylene and 49 to 0.1% by weight of constituent units derived from an alpha-olefin.
[0037] The (A) polyolefin polymer may be an ethylene / propylene copolymer, the constituent units of which consist of ethylenic monomer units, propylene comonomer units, and optionally diene comonomer units.
[0038] The (A) polyolefin polymer may be an ethylene / (unsaturated carboxylic acid ester) copolymer. The unsaturated carboxylic acid ester is vinyl acetate, an alkyl acrylate, or an alkyl methacrylate.
[0039] The (A) polyolefin polymer may be an ethylene / (monocyclic organosiloxane) copolymer. The monocyclic organosiloxane is represented by the formula (III): [R 1 ,R 2 SiO 2 / 2 ] n(III) (wherein the subscript n is an integer of 3 or greater, and each R 1 are independently (C-C)alkenyl or HC=C(R 1a )-C(=O)-O-(CH2) m -(In the formula, R 1a is H or methyl, and the subscript m is an integer from 1 to 4, 2 are independently H, (C-C) alkyl, phenyl, or R 1 (which is the case.)
[0040] The (A) polyolefin polymer may comprise a blend of two or more different ethylene-based polymers. In some embodiments, the two or more different ethylene-based polymers of the blend comprise at least one LDPE.
[0041] In some embodiments, the (A) polyolefin polymer comprises a low density polyethylene (LDPE) polymer. The LDPE polymer is made by polymerizing ethylene in a high pressure reactor in the absence of a metal-based polymerization catalyst and in the presence of small amounts of a free radical initiator (e.g., peroxide or O2) and a chain transfer agent (CTA). The CTA may be propylene, which may be used at 1 wt. % based on the total weight of ethylene and propylene in the high pressure reactor. The LDPE polymer has a viscosity of 0.910-0.930 g / cm. 3 and a melt index (I2) of 1.0 to 5 g / 10 min. The LDPE polymer may be LDPE-1 as described in the examples.
[0042] The polyolefin formulation may comprise 60.0-99.9 wt.% of the (A) polyolefin polymer, alternatively 70.0-99.9 wt.% of the (A) polyolefin polymer, alternatively 85.0-99.9 wt.% of the (A) polyolefin polymer, alternatively 90.0-99.9 wt.% of the (A) polyolefin polymer, all based on the total weight of the polyolefin formulation.
[0043] (B) Formula (I): [ka] (In the formula, R 1 is (C1-C 20 In some embodiments, R 1 is (C 11 -C 20 ) alkyl, or (C1-C 10 ) alkyl, or (C1-C8) alkyl, or (C1-C3) alkyl, or (C6-C8) alkyl, or methyl, or ethyl, or propyl, or butyl, or 1-methylpropyl, or pentyl, or hexyl, or heptyl, or octyl, or decyl. R 1 may be methyl or heptyl, and (B) the alkoxyphenol compound of formula (I) may be 4-methoxyphenol (CAS 150-76-5) or 4-heptyloxyphenol (CAS 13037-86-0). 1 (B) the alkoxyphenol compound of formula (I) may be 4-decyloxyphenol.
[0044] (C) Formula (II): [ka] (In the formula, Ar 1 is phenyl or alkylphenyl).
[0045] Ar in formula (II) 1 The group may be alkylphenyl. The alkylphenyl is a phenyl group having 1 to 5 (C1-C 20 ) a phenyl group independently substituted with an alkyl group. Without being bound by theory, it is believed that the alkyl substituents on the phenyl aid in the solubility of the (C) benzophenone compound therewith in the (A) polyolefin polymer.
[0046] Alkylphenyl includes (C1) alkylphenyl (i.e., methylphenyl), (C2-C 20 ) alkylphenyl, or a combination thereof. Examples of (C1) alkylphenyl (i.e., methylphenyl) include 4-methylphenyl, 2,4-dimethylphenyl, 2,5-dimethylphenyl, 2,4,5-trimethylphenyl, and 2,3,4,t-tetramethylphenyl. (C2-C 20 Examples of alkylphenyl include 4-ethylphenyl, 4-hexylphenyl, 4-decylphenyl, and 4-nonadecylphenyl. An example of a combination is 2-methyl-4-hexylphenyl.
[0047] In some embodiments, Ar 1 is phenyl or methyl-substituted phenyl, or phenyl. 1 may be phenyl, and (C) the benzophenone compound of formula (II) may be benzophenone itself (CAS 119-61-9). Alternatively, Ar 2 may be 4-methylphenyl, 2,4-dimethylphenyl, 3,4-dimethylphenyl, or 4-(1,1-dimethylethyl)phenyl, and (C) the benzophenone compound of formula (II) may be 4-methylbenzophenone (CAS 134-84-9), 2,4-dimethylbenzophenone (CAS 1140-14-3), 3,4-dimethylbenzophenone (CAS 2571-39-3), or 4-tert-butylbenzophenone (CAS 22679-54-5).
[0048] The polyolefin formulations and crosslinked polyolefin products made therefrom may be free of any voltage stabilizer compounds except for the (B) alkoxyphenol compound and the (C) benzophenone compound. Alternatively, the polyolefin formulations and crosslinked polyolefin products made therefrom may contain a third voltage stabilizer compound different from the (B) alkoxyphenol compound and the (C) benzophenone compound.
[0049] "However, x is less than 0.5y" means that the weight percent loading x of the (B) alkoxyphenol compound in the formulation is less than half the weight percent loading y of the (C) benzophenone compound in the formulation. Surprisingly, if the weight percent loading x of the (B) alkoxyphenol compound in the formulation is too high relative to the weight percent loading y of the (C) benzophenone compound in the formulation, the voltage stabilizing effect of the combination of (B) and (C) is reduced or even reversed, i.e., the relative effect becomes voltage instability. As a function of the weight percent loading y of the (C) benzophenone compound in the formulation, the weight percent loading x of the (B) alkoxyphenol compound in the formulation may be 0.03y to 0.30y, or x may be 0.05y to 0.24y.
[0050] Within the constraint that "x is less than 0.5y," in some embodiments, the amount of (B) alkoxyphenol compound is 0.15-0.94 wt%, alternatively 0.20-0.44 wt%, alternatively 0.35-0.44 wt%. In some embodiments, the amount of (C) benzophenone compound is 1.0-7.4 wt%, alternatively 1.5-7.5 wt%, alternatively 1.5-2.9 wt%, alternatively 1.8-2.4 wt%. All weight percentages are based on the total weight of the polyolefin formulation or the total weight of the crosslinked polyolefin product, respectively.
[0051] Component (D) organic peroxide: a molecule, or collection of such molecules, containing carbon, hydrogen, and two or more oxygen atoms and having at least one -OO- group, provided that if more than one -OO- group is present, each -OO- group is indirectly bonded to another -OO- group through one or more carbon atoms. The (D) organic peroxide may be added to the polyolefin formulation for curing, which comprises heating the polyolefin formulation containing components (A), (B), and (D) to a temperature equal to or higher than the decomposition temperature of the (D) organic peroxide. The (D) organic peroxide is represented by the formula R O -OOR O where each R O are independently 20 ) alkyl group or (C6-C20 ) an aryl group. 20 ) alkyl groups are independently unsubstituted or have one or two (C6-C 12 ) substituted with an aryl group. 20 The aryl group is unsubstituted or has one to four (C-C 10 ) alkyl group. Alternatively, (D) is a group of formula R O -OOROOR O where R is (C2-C 10 ) alkylene, (C3-C 10 ) a divalent hydrocarbon group such as cycloalkylene or phenylene, and each R O(D) The organic peroxide may be bis(1,1-dimethylethyl)peroxide, bis(1,1-dimethylpropyl)peroxide, 2,5-dimethyl-2,5-bis(1,1-dimethylethylperoxy)hexane, 2,5-dimethyl-2,5-bis(1,1-dimethylethylperoxy)hexyne, 4,4-bis(1,1-dimethylethylperoxy)valeric acid, butyl ester, 1,1-bis(1,1-dimethylethylperoxy)-3,3,5-trimethylcyclohexane, benzoyl peroxide, tert-butyl peroxybenzoate, di-tert-amyl peroxide ("DTAP"). (D) The organic peroxide may be dicumyl peroxide, bis(alpha-t-butyl-peroxyisopropyl)benzene ("BIPB"), isopropyl cumyl t-butyl peroxide, t-butyl cumyl peroxide, di-t-butyl peroxide, 2,5-bis(t-butylperoxy)-2,5-dimethylhexane, 2,5-bis(t-butylperoxy)-2,5-dimethylhexyne-3,1,1-bis(t-butylperoxy)-3,3,5-trimethylcyclohexane, isopropyl cumyl cumyl peroxide, butyl 4,4-di(tert-butylperoxy)valerate, or di(isopropyl cumyl)peroxide, or dicumyl peroxide. (E) The organic peroxide may be dicumyl peroxide. In some embodiments, a blend of two or more (D) organic peroxides is used, such as a 20:80 (w / w) blend of t-butylcumyl peroxide and bis(t-butylperoxyisopropyl)benzene (e.g., LUPEROX D446B, available from Arkema). In some embodiments, at least one, or each (D) organic peroxide contains one -OO- group. The (D) organic peroxide may be 0.29-0.44 wt. %, alternatively 0.30-39 wt. %, alternatively 0.30-0.37 wt. % of the carrier mixture, or alternatively of the polyolefin formulation.
[0052] Optional Component (E) Scorch Inhibitor: A molecule, or collection of such molecules, that inhibits premature curing. Examples of scorch inhibitors are hindered phenols, semi-hindered phenols, TEMPO, TEMPO derivatives, 1,1-diphenylethylene, 2,4-diphenyl-4-methyl-1-pentene (also known as alpha-methylstyrene dimer or AMSD), and allyl-containing compounds as described in U.S. Pat. No. 6,277,925 (B1), column 2, line 62 to column 3, line 46. In some embodiments, the polyolefin formulation and crosslinked polyolefin product do not include (E). When present, (E) scorch inhibitor may be 0.01 to 1.5 wt. %, alternatively 0.05 to 1.2 wt. %, alternatively 0.1 to 1.0 wt. % of the polyolefin formulation.
[0053] Optional Component (F) Antioxidant: an organic molecule, or a collection of such molecules, that inhibits oxidation. (F) Antioxidant functions to impart antioxidant properties to the polyolefin formulation and / or crosslinked polyolefin product. Examples of suitable (F) are bis(4-(1-methyl-1-phenylethyl)phenyl)amine (e.g., NAUGARD 445), 2,2'-methylene-bis(4-methyl-6-t-butylphenol) (e.g., VANOX MBPC), 2,2'-thiobis(2-t-butyl-5-methylphenol) (CAS number 90-66-4, 4,4'-thiobis(2-t-butyl-5-methylphenol) (also known as 4,4'-thiobis(6-tert-butyl-m-cresol)), CAS number 96-69-5, commercially available LOWINOX TBM-6), 2,2'-thiobis(6-t-butyl-4-methylphenol) (CAS number 90-66-4 ... TBP-6), tris[(4-tert-butyl-3-hydroxy-2,6-dimethylphenyl)methyl]-1,3,5-triazine-2,4,6-trione) (e.g., CYANOX1790), pentaerythritol tetrakis(3-(3,5-bis(1,1-dimethylethyl)-4-hydroxyphenyl)propionate (e.g., IRGANOX1010, CAS number 6683-19-8), 3,5-bis(1,1-dimethylethyl)-4-hydroxybenzenepropanoic acid 2,2'-thiodiethanediyl ester (e.g., IRGANOX1035, CAS number 41484-35-9), distearyl thiodipropionate ("DSTDP (distearyl thiodipropionate)"), dilauryl thiodipropionate (e.g., IRGANOX PS800), stearyl 3-(3,5-di-t-butyl-4-hydroxyphenyl)propionate (e.g., IRGANOX 1076), 2,4-bis(dodecylthiomethyl)-6-methylphenol (IRGANOX 1726), 4,6-bis(octylthiomethyl)-o-cresol (e.g., IRGANOX 1520), and 2',3-bis[[3-[3,5-di-tert-butyl-4-hydroxyphenyl]propionyl]]propionohydrazide (IRGANOX 1024).In some embodiments, (F) is 4,4'-thiobis(2-t-butyl-5-methylphenol) (also known as 4,4'-thiobis(6-tert-butyl-m-cresol)), 2,2'-thiobis(6-t-butyl-4-methylphenol, tris[(4-tert-butyl-3-hydroxy-2,6-dimethylphenyl)methyl]-1,3,5-triazine-2,4,6-trione, distearyl thiodipropionate, or dilauryl thiodipropionate, or any two of these. or a combination thereof. The combination may be tris[(4-tert-butyl-3-hydroxy-2,6-dimethylphenyl)methyl]-1,3,5-triazine-2,4,6-trione and distearyl thiodipropionate. In some embodiments, the polyolefin formulation and crosslinked polyolefin product are free of (F). When present, the (F) antioxidant may be 0.01 to 1.5 wt. % of the polyolefin formulation, alternatively 0.05 to 1.2 wt. %, alternatively 0.1 to 1.0 wt. %.
[0054] Optional component (G) filler: a finely divided particulate solid or gel that occupies space in the host material and optionally affects the function of the host material. The (G) filler may be a calcined clay, an organoclay, or a hydrophobized fumed silica, such as that commercially available under the trade name CAB-O-SIL from Cabot Corporation. The (G) filler may have a flame retardant effect. In some embodiments, the polyolefin formulation and the crosslinked polyolefin product do not contain (G). When present, the (G) filler may be 1-40% by weight, alternatively 2-30% by weight, alternatively 5-20% by weight of the polyolefin formulation.
[0055] Optional Component (H) Flame Retardant: A molecule or substance that inhibits combustion, or an aggregate of such molecules. (H) may be a halogenated compound or a halogen-free compound. (H) Examples of halogenated (H) flame retardants are organic chlorides and organic bromides, and examples of organic chlorides are chlorendic acid derivatives and chlorinated paraffins. Examples of organic bromides are decabromodiphenyl ether, decabromodiphenyl ethane, polymeric brominated compounds such as brominated polystyrene, brominated carbonate oligomers, brominated epoxy oligomers, tetrabromophthalic anhydride, tetrabromobisphenol A, and hexabromocyclododecane. Typically, halogenated (H) flame retardants are used in combination with a synergist to improve their efficiency. The synergist may be antimony trioxide. Examples of halogen-free (H) flame retardants are inorganic minerals, organic nitrogen intumescent compounds, and phosphorus-based intumescent compounds. Examples of inorganic minerals are aluminum hydroxide and magnesium hydroxide. Examples of phosphorus-based expanding compounds are organic phosphonic acids, phosphonates, phosphinates, phosphonites, phosphinites, phosphine oxides, phosphines, phosphites, phosphates, phosphorus nitrile chlorides, phosphoramidates, phosphoric acid amides, phosphonic acid amides, phosphinic acid amides, melamine and their melamine derivatives including melamine polyphosphate, melamine pyrophosphate and melamine cyanurate, and mixtures of two or more of these materials.Examples include phenyl bis dodecyl phosphate, phenyl bis neopentyl phosphate, phenyl ethylene hydrogen phosphate, phenyl-bis-3,5,5' trimethylhexyl phosphate), ethyl diphenyl phosphate, 2 ethylhexyl di(p-tolyl) phosphate, diphenyl hydrogen phosphate, bis(2-ethyl-hexyl) para-tolyl phosphate, tritolyl phosphate, bis(2-ethylhexyl)-phenyl phosphate, tri(nonylphenyl) phosphate, phenylmethyl hydrogen phosphate, di(dodecyl) p-tolyl phosphate, tricresyl phosphate, triphenyl phosphate, triphenyl phosphate, dibutylphenyl phosphate, 2-chloroethyl diphenyl phosphate, p-tolyl bis(2,5,5'-trimethylhexyl) phosphate, 2-ethylhexyl diphenyl phosphate, and diphenyl hydrogen phosphate. The types of phosphate esters described in U.S. Patent No. 6,404,971 are examples of phosphorus-based flame retardants. Additional examples include liquid phosphates such as bisphenol A diphosphate (BAPP) (Adeka Palmarole) and / or resorcinol bis(diphenyl phosphate) (Fyroflex RDP) (Supresta, ICI), solid phosphorus such as ammonium polyphosphate (APP), piperazine pyrophosphate, and piperazine polyphosphate. Ammonium polyphosphate is often used with flame retardant co-additives such as melamine derivatives. Melafine (DSM) (2,4,6-triamino-1,3,5-triazine, finely divided melamine) is also useful. In some embodiments, the polyolefin formulation and crosslinked polyolefin product are free of (H). When present, (H) may be at a concentration of 0.01 to 70% by weight of the polyolefin formulation, alternatively 0.05 to 40% by weight, alternatively 1 to 20% by weight.
[0056] Optional component (I) hindered amine stabilizer: a molecule or aggregate of such molecules containing a basic nitrogen atom that is bonded to at least one sterically bulky organic group and functions as an inhibitor of degradation or decomposition. (I) is a compound that has a sterically hindered amino functional group and inhibits oxidative degradation and can also extend the shelf life of the polyolefin formulation embodiment containing (D) organic peroxide. Examples of suitable (I) are butanedioic acid dimethyl ester, polymer with 4-hydroxy-2,2,6,6-tetramethyl-1-piperidine-ethanol (CAS number 65447-77-0, commercially available LOWILITE62), and N,N'-bisformyl-N,N'-bis(2,2,6,6-tetramethyl-4-piperidinyl)-hexamethylenediamine (CAS number 124172-53-8, commercially available Uvinul 4050H). In some aspects, the polyolefin formulation and crosslinked polyolefin product do not contain (I). When present, (I) the hindered amine stabilizer may be from 0.001 to 1.5% by weight of the polyolefin formulation, alternatively from 0.002 to 1.2% by weight, alternatively from 0.002 to 1.0% by weight, alternatively from 0.005 to 0.5% by weight, alternatively from 0.01 to 0.2% by weight, alternatively from 0.05 to 0.1% by weight.
[0057] Optional Component (J) Tree Inhibitor: A molecule or aggregate of such molecules that inhibits water and / or electrical treeing. The tree inhibitor may be a water tree inhibitor or an electrical tree inhibitor. Water tree inhibitors are compounds that inhibit water treeing, a process that degrades polyolefins when exposed to the combined effects of an electric field and moisture or water. Electrical tree inhibitors, also called voltage stabilizers, are compounds that inhibit electrical treeing, an electrical pre-breakdown process in solid electrical insulation resulting from partial discharge. Electrical treeing can occur in the absence of water. Water treeing and electrical treeing are problems for electrical cables containing coated conductors, where the coating contains a polyolefin. (J) may be poly(ethylene glycol), PEG. In some embodiments, the polyolefin formulation and crosslinked polyolefin products are free of (J). When present, the (J) tree inhibitor may be 0.01-1.5% by weight of the polyolefin formulation, alternatively 0.05-1.2% by weight, alternatively 0.1-1.0% by weight.
[0058] Optional Component (K) Methyl Radical Scavenger: A molecule or aggregate of such molecules that reacts with methyl radicals. (K) reacts with methyl radicals in the polyolefin formulation or crosslinked polyolefin product. (K) can be 2,2,6,6-tetramethyl-1-piperidinyl-N-oxyl or a "TEMPO" derivative of 1,1-diarylethylene. Examples of TEMPO derivatives are 4-acryloxy-2,2,6,6-tetramethyl-1-piperidinyl-N-oxyl (CAS number 21270-85-9, "acrylate TEMPO"), 4-allyloxy-2,2,6,6-tetramethyl-1-piperidinyl-N-oxyl (CAS number 217496-13-4, "allyl TEMPO"), bis(2,2,6,6-tetramethyl-1-piperidinyl-N-oxyl)sebacate ... No. 2516-92-9, "BisTEMPO")), N,N-bis(acryloyl-4-amino)-2,2,6,6-tetramethyl-1-piperidinyl-N-oxyl (CAS No. 1692896-32-4, "diacrylamide TEMPO"), and N-acryloyl-4-amino-2,2,6,6-tetramethyl-1-piperidinyl-N-oxyl (CAS No. 21270-88-2, "monoacrylamide TEMPO"). Examples of 1,1-diarylethylenes are 1,1-diphenylethylene and alpha-methylstyrene. In some embodiments, the polyolefin formulation and crosslinked polyolefin product are free of (K). When present, the (K) methyl radical scavenger may be 0.01 to 1.5 wt. % of the polyolefin formulation, alternatively 0.05 to 1.2 wt. %, alternatively 0.1 to 1.0 wt. %.
[0059] Optional Component (L) Crosslinking Coagent: A molecule containing a backbone or ring substructure and one or more propenyl, acrylate, and / or vinyl groups attached thereto, the substructure being composed of carbon atoms and optionally nitrogen atoms, or an aggregate of such molecules. (L) Crosslinking Coagent does not contain silicon atoms. The (L) coagent may be a propenyl-functional coagent described by any one of the following constraints (i)-(v): (i) (L) is 2-allylphenyl allyl ether, 4-isopropenyl-2,6-dimethylphenyl allyl ether, 2,6-dimethyl-4-allylphenyl allyl ether, 2-methoxy-4-allylphenyl allyl ether, 2,2'-diallyl bisphenol A, O,O'-diallyl bisphenol A, or tetramethyl diallyl bisphenol A; (ii) (L) is 2,4-diphenyl-4-methyl-1-pentene or 1,3-diisopropenyl benzene; (iii) (L) is triallyl isocyanurate ("TAIC"), triallyl cyanurate ("TAC"), triallyl trimellitate ("TATM"); trimellitate), N,N,N′,N′,N″,N″-hexaallyl-1,3,5-triazine-2,4,6-triamine (HATATA(N,N,N′,N′,N″,N″-hexaallyl-1,3,5-triazine-2,4,6-triamin), N 2 ,N 2 ,N 4 ,N 4 ,N 6 ,N 6(iv) (L) is a mixture of any two of the propenyl-functional coagents in (i). Alternatively, (L) may be an acrylate-functional coagent selected from trimethylolpropane triacrylate ("TMPTA"), trimethylolpropane trimethylacrylate ("TMPTMA"), ethoxylated bisphenol A dimethacrylate, 1,6-hexanediol diacrylate, pentaerythritol tetraacrylate, dipentaerythritol pentaacrylate, tris(2-hydroxyethyl)isocyanurate triacrylate, and propoxylated glyceryl triacrylate. Alternatively, (L) may be a vinyl-functional coagent selected from polybutadiene having a 1,2-vinyl content of at least 50% by weight, and trivinylcyclohexane ("TVCH"). Alternatively, (L) may be a coagent described in U.S. Pat. No. 5,346,961 or U.S. Pat. No. 4,018,852. Alternatively, (L) may be a combination of the aforementioned coagents or any two or more thereof. In some embodiments, the polyolefin formulation and crosslinked polyolefin product are free of (L). When present, the (L) coagent may be 0.01-4.5% by weight, alternatively 0.05-2% by weight, alternatively 0.1-1% by weight, alternatively 0.2-0.5% by weight of the polyolefin formulation.
[0060] Optional Component (M) Processing Aid: (A) An organic or organosiloxane additive that enhances the melt flow of polyolefin polymer during extrusion. Examples of (M) are poly(fluoroethylene) polymers and polydimethylsiloxane. In some embodiments, the polyolefin formulation and crosslinked polyolefin product are free of (M). When present, (M) may be at a concentration of 0.01-1.5%, alternatively 0.05-1.2%, alternatively 0.1-1.0% by weight of the polyolefin formulation.
[0061] Optional Component (N) Colorant (e.g., carbon black or TiO2). Carbon black: A finely divided form of quasicrystalline carbon with a high surface area to volume ratio, but less than activated carbon. Examples of carbon black are furnace carbon black, acetylene carbon black, conductive carbon (e.g., carbon fiber, carbon nanotubes, graphene, graphite, and expanded graphite platelets). In some embodiments, the polyolefin formulation and crosslinked polyolefin product are free of (N). When present, (N) may be 0.01-40% by weight of the polyolefin formulation, alternatively 0.05-35% by weight, alternatively 0.1-20% by weight, alternatively 0.5-10% by weight, alternatively 1-5% by weight.
[0062] For the avoidance of doubt, (G) filler and (N) colorant are different.
[0063] Additionally, the polyolefin formulation may further comprise one or more other optional additives independently selected from carrier resins, lubricants, slip agents, plasticizers, surfactants, extender oils, acid scavengers, and metal deactivators.
[0064] The crosslinked polyolefin product may also contain by-products of curing, such as (D) alcohol and ketone by-products of the reaction of organic peroxides. If the polyolefin formulation further contains any one or more of the optional additives or components, such as (F) an antioxidant, the crosslinked polyolefin product may also contain any one or more of the optional additives or components, such as (F), or one or more reaction products formed therefrom during the curing of the polyolefin formulation.
[0065] The crosslinked polyolefin product may be in a divided solid form or in a continuous form. The divided solid form may include granules, pellets, powders, or a combination of any two or more thereof. The continuous form may be an article such as a molded part (e.g., an injection molded part) or an extruded part (e.g., a coated conductor or cable).
[0066] Coated conductor. A coated conductor may be an insulated electrical conductor. An insulated conductor may be a coated metal wire or electrical cable, including power cables for use in low voltage ("LV", >0 to <5 kilovolts (kV)), medium voltage ("MV", 5 to <69 kV), high voltage ("HV", 69 to 230 kV), or extra high voltage ("EHV", >230 kV) data transmission and electricity transmission / distribution applications. "Wire" means a single strand or filament of conductive material, e.g., a conductive metal such as copper or aluminum. "Cable" and "power cable" are synonymous and refer to an insulated electrical conductor including at least one wire disposed within a covering, which may be referred to as a sheath, jacket (protective outer jacket), or coating. Insulated conductors may be designed and configured for use in medium voltage, high voltage, or extra high voltage applications. Examples of suitable cable designs are shown in US Pat. Nos. 5,246,783, 6,496,629, and 6,714,707.
[0067] An insulated conductor may include a conductor / transmission core and an outer single layer or multi-layer coating disposed therearound to protect and insulate the conductor / transmission core from the external environment. The conductor / transmission core may be comprised of one or more metal wires. When the conductor / transmission core houses two or more metal wires, the metal wires may be subdivided into individual wire bundles. Each wire in the conductor / transmission core, whether bundled or unbundled, may be individually coated with an insulating layer and / or the individual bundles may be coated with an insulating layer. The single layer or multi-layer coating (e.g., single or multi-layer coating, or sheath) functions primarily to protect or insulate the conductor / transmission core from the external environment, such as sunlight, water, heat, oxygen, other conductive materials (e.g., to prevent short circuits), and / or other corrosive substances (e.g., chemical gases).
[0068] The single or multi-layer coating from one insulated conductor to the next may be constructed differently depending on the intended use of each. For example, when viewed in cross-section, a multi-layer coating of an insulated conductor may be constructed sequentially to have the following components from its innermost layer to its outermost layer: an inner semiconducting layer, a cross-linked polyolefin insulating layer comprising a cross-linked polyolefin product (the cross-linked product of the present invention), an outer semiconducting layer, a metallic shield, and a protective sheath. The layers and sheath are circumferentially and coaxially (longitudinally) continuous. The metallic shield (ground) is coaxially continuous and either continuous (layer) or discontinuous (tape or wire) in the circumferential direction. Depending on the intended application, a multi-layer coating for an insulated optical fiber may omit the semiconducting layer and / or the metallic shield. The outer semiconducting layer, if present, may be constructed of a peroxide cross-linked semiconducting product bonded to or peelable from the cross-linked polyolefin layer.
[0069] In some embodiments, a method of making a coated conductor includes extruding a coating comprising a layer of a polyolefin formulation on a conductor / transmission core to obtain a coated core, and passing the coated core through a continuous vulcanization (CV) device configured with suitable CV conditions to cure the polyolefin formulation to obtain a coated conductor. The CV conditions include temperature, atmosphere (e.g., nitrogen gas), and line speed or duration of passage through the CV device. Suitable CV conditions can provide a coated conductor exiting the CV device, the coated conductor containing a crosslinked polyolefin layer formed by curing a layer of crosslinked polyolefin layer.
[0070] Dielectric Breakdown Strength (Dielectric Strength): The maximum electric field (applied voltage divided by electrode separation) that an electrically insulating material can withstand without experiencing a breakdown event, i.e., becoming conductive. Expressed in volts using standard electrode separation distances.
[0071] Any compound, composition, formulation, material, mixture, or reaction product herein may be free of any one of the chemical elements selected from the group consisting of H, Li, Be, B, C, N, O, F, Na, Mg, Al, Si, P, S, Cl, K, Ca, Sc, Ti, V, Cr, Mn, Fe, Co, Ni, Cu, Zn, Ga, Ge, As, Se, Br, Rb, Sr, Y, Zr, Nb, Mo, Tc, Ru, Rh, Pd, Ag, Cd, In, Sn, Sb, Te, I, Cs, Ba, Hf, Ta, W, Re, Os, Ir, Pt, Au, Hg, Tl, Pb, Bi, lanthanides, and actinides, but not excluding chemical elements that are essentially required by the compound, composition, formulation, material, mixture, or reaction product (e.g., C and H required for polyethylene, or C, H, and O required for alcohol).
[0072] or precedes different embodiments. ANSI is the American National Standards Institute organization, headquartered in Washington, DC, USA. ASME is the American Society of Mechanical Engineers, headquartered in New York City, New York, USA. ASTM is the standards organization ASTM International, West Conshohocken, Pennsylvania, USA. Any comparative examples are used for illustrative purposes only and are not prior art. "Free of" or "lacking" means complete absence or undetectable. IEC is the International Electrotechnical Commission, 3 rue de Varemb, Case postale 131, CH-1211, Geneva 20, Switzerland, http: / / www.iec.ch. IUPAC is the International Union of Pure and Applied Chemistry, IUPAC Secretariat, Research Triangle Park, North Carolina, USA. The Periodic Table of the Elements is the IUPAC version of May 1, 2018. "May" gives permitted options, not required. "Operative" means functionally possible or effective. "Optional" means absent (or excluded) or present (or included). A property can be measured using standard test methods and conditions. Ranges include endpoints, subranges, and integer and / or fractional values subsumed therein, but integer ranges do not include fractional values. Room temperature: 23° ± 1°C.
[0073] Unless otherwise stated, definitions of terms used herein are taken from the IUPAC Compendium of Chemical Technology ("Gold Book"), 2.3.3 edition, dated February 24, 2014.
[0074] In some embodiments, any one of the terms "comprising" or "comprises" can be replaced with the phrase "consisting essentially of" or "consists essentially of". The phrases "consisting essentially of" and "consists essentially of" are partially closed-ended and mean that the polyolefin formulation and crosslinked polyolefin products made therefrom do not contain excluded materials. For example, excluded materials may include any voltage stabilizer that is not the only compound (B) alkoxyphenol compound and (C) benzophenone compound. The use of the term "comprising" or "comprising" when referring to the following materials or features does not negate the partially closed-ended nature of "consisting essentially of" or "consists essentially of", but simply allows for any additional materials or features that are not expressly excluded by "consisting essentially of" or "consists essentially of". In some embodiments, any one of the terms "comprising" or "comprises" can be replaced with the phrase "consisting of" or "consists of." The phrases "consisting of" and "consists of" are closed ended and exclude any element or feature not expressly recited thereafter.
[0075] For the sake of brevity, only certain ranges are expressly disclosed herein.However, ranges from any lower limit can be combined with any upper limit to enumerate ranges that are not expressly enumerated.Also, ranges from any lower limit can be combined with any other lower limit to enumerate ranges that are not expressly enumerated, and similarly, ranges from any upper limit can be combined with any other upper limit to enumerate ranges that are not expressly enumerated.
[0076] Density Test Method: Measured according to ASTM D792-13, Standard Test Method for Density and Specific Gravity (Relative Density) of Plastics by Displacement, Method B (for testing solid plastics in liquids other than water, e.g., liquid 2-propanol). Results are expressed in grams per cubic centimeter (g / cm 3 ) units.
[0077] Melt index (I2) is measured according to ASTM D1238-04 (190°C, 2.16 kg), Standard Test Method for Melt Flow Rate of Thermoplastics by Extrusion Plateometer, using the condition 190°C / 2.16 kilograms (kg), formerly known as "Condition E", also known as I2. Results are reported in grams dissolved per 10 minutes (g / 10 min) or the equivalent in decigrams per 1.0 minute (dg / 1 min). 10.0 dg = 1.00 g.
[0078] Embodiments of the invention may be tested according to the following dielectric breakdown strength test method. For clarity, the method description is divided into sections 1-3. Section 1 addresses materials used to prepare the test assembly. Section 2 addresses procedures for preparing a test plaque representing an insulating layer and preparing the test assembly. The test assembly includes a sandwich of a test plaque representing an insulating layer and two conductor disks, with the test plaque (insulating layer) disposed between the conductor disks. Section 3 addresses procedures for applying increasing test voltages to the test assembly and detecting a dielectric breakdown event in the insulating layer.
[0079] Section 1: Dielectric Breakdown Strength Test Method (Materials): The conductors are multiple 40 millimeter (mm) diameter aluminum disks and multiple 29 mm diameter aluminum disks, each disk 75 micrometers thick. A test insulation layer is sandwiched between the conductors such that the total thickness of the sandwich is 350-500 micrometers. After breakdown, the Al disks are removed and the thickness of the insulation layer is measured at the location of the breakdown.
[0080] Section 2: Dielectric Breakdown Strength Test Method (Procedure for Assembling Electrodes and Test Plaques into a Test Assembly). Prepare the test insulation layer samples in a two-step thermoforming process. Step 1: Weigh the polymer pellets. Place the weighed pellets in a compression mold (8 inch x 8 inch square compression molding frame, thickness about 150 to about 900 micrometers). Preheat the polymer pellets to 140°C under about 7 pounds per square inch (psi) for 3 minutes. At the same temperature, switch to high pressure of about 382 psi and hold for 3 minutes. Under the same pressure, cool the resulting polymer plaque to room temperature within about 15 minutes. Step 2: Cut out multiple conductive aluminum (Al) disks of 29 mm and 40 mm diameter from a 75 micrometer thick aluminum sheet. Place the conductive Al disks above and below the plaque (prepared in step 1), with the 29 mm diameter disk on one side and the 40 mm diameter disk on the other side. The two conductive Al disks are positioned opposite each other and approximately concentric with each other. A 3×3 array of nine pairs of such conductive Al disks are positioned on each side of an 8 inch×8 inch polymer plaque with space between them. The resulting assembly is hot compressed in the same compression mold and under the same protocol as in step 1. The assembly is then placed between two brass electrodes to obtain a test assembly. Each test assembly has nine pairs of upper and lower brass electrodes, nine pairs of upper and lower conductive Al disks, and a single plaque sandwiched between the nine pairs of upper and lower conductive Al disks.
[0081] The test assembly parts 1 are shown in FIG. 1. Each test assembly has nine parts 1. The test assembly parts 1 include one of nine pairs of upper brass electrodes 11 and lower brass electrodes 15, one of nine pairs of upper conductive Al disks 21 and lower conductive Al disks 25, and a portion of a single plaque 30 (FIG. 1). Each pair of brass electrodes 11 and 15 is in electrical communication with a device (not shown) configured to provide current, detect dielectric breakdown, and measure voltage thereat. Such devices are well known, see, for example, ASTM D149-20, Standard Test Method for Dielectric Breakdown Voltage and Dielectric Strength of Solid Electrical Insulating Materials at Commercial Power Frequencies, and IEC 243-1, Methods of Test for Electrical Strength of Solid Insulating Materials Part 1: Tests at Power Frequencies. Brass electrodes 11 and 15 are used to apply current to the pair of conductive Al disks 21 and 25, respectively. The upper conductive Al disk 21 has an independent lower surface 22 and an independent upper surface 23, and the disk thickness is the distance between them (i.e., from 22 to 23). The lower conductive Al disk 25 has an independent lower surface 27 and an independent upper surface 26, and the disk thickness is the distance between them (i.e., from 26 to 27). Different portions of the plaque 30 are sandwiched between different pairs of spaced apart conductive Al disks 21 and 25, respectively. The thickness of the plaque 30 between the conductive Al disks 21 and 25 is the distance between the lower surface 22 of the upper conductive Al disk 21 and the upper surface 26 of the lower conductive Al disk 25. Each portion of the plaque 30 has an independent upper surface 31. The thickness T of the portion of plaque 30 used to determine the dielectric breakdown strength in Section 3 below is the distance between the top surface 26 of the lower conductive Al disk 25 and the top surface 31 of plaque 30 .This thickness T is indicated by “}T” in FIG. 1 and is measured at the location of the channel formed by the breakdown event referenced in Section 3.
[0082] Section 3: Dielectric Breakdown Strength Test Method: A procedure in which an alternating current (AC) is applied to a test assembly with increasing test voltage to detect a dielectric breakdown event. The assembly prepared above is immersed in insulating oil and it is contacted with brass electrodes at the top and bottom. A voltage is applied. The voltage is gradually increased at a rate of 500 V / S (volts per second, 50 Hz) until a breakdown event occurs, forming a channel through the polymer. The breakdown event is detected as a sudden increase in current. The kilovolts (V) applied when this jump in current event occurs is recorded. Such a breakdown event is due to the formation of a channel by the voltage applied to the insulating layer. The thickness of the insulating layer at the location of the channel is measured and used as the insulation thickness in the following calculation of the actual dielectric breakdown strength: E act = V / T, where V is the breakdown voltage in kilovolts (kV), T is the insulation thickness in millimeters (mm) measured at the channel, and E act is the actual breakdown strength in kilovolts per millimeter (kV / mm). For reporting purposes, in the following tables, the actual breakdown strength E act is normalized to a thickness of 1.016 millimeters (mm, equal to 40 mils) and reported as normalized breakdown strength E in kV / mm. Normalized breakdown strength E is calculated according to Equation 1 (Equation 1): E = (V / T) * (T / T0) ^ (1 / 2) (Equation 1) (where ^ (1 / 2) indicates square root, V is the kilovolts applied when the breakdown event occurred, each T is a measurement of the thickness of the insulating layer (plaque, location of breakdown), and T0 is 1.016 mm thick (equivalent to 40 mils) such that T / T0 normalizes the breakdown strength values to the 1.016 mm thickness). The voltage at which the breakdown event occurs is recorded. The effectiveness of the voltage stabilizer is evaluated by comparing the breakdown field strength of the same polymer both with and without the additive.
[0083] In the dielectric breakdown strength test method of the present invention, the voltage at which a dielectric breakdown event occurs varies depending on the thickness of the insulating layer. The normalized dielectric breakdown strength E, which has units of kV / mm, is analyzed using the well-known two-parameter Weibull statistics according to the Weibull statistical method described below.
[0084] Weibull statistical method. Equation 2 (Equation 2):
number
[0085] The dielectric breakdown strength values used to determine the improvement or reduction over the baseline value of CE0 are the predicted values eta, η, for a failure probability value of 63.2%, determined from the normalized field strength E values using the Weibull statistics described above. Also reported are the 90% confidence level (upper and lower bounds) beta, β, values, b, obtained using the Weibull statistics described above. All other things being equal, the higher the β value, the narrower the range of field strengths at which test sample N will fail, and therefore the narrower the range of E at the 90% confidence level.
[0086] All other conditions being equal, including the thickness of the insulating layer, the higher the voltage at which the breakdown strength occurs, the greater the breakdown strength of the insulating material. Determine the percent increase (improvement) or percent decrease (deterioration) of the voltage of the test plaques (N=8 or 9) at which the breakdown event occurs compared to the voltage of 17 control plaques (N=153 or 155) at which the breakdown event occurs. The greater the percent increase, the greater the improvement in breakdown strength. The greater the percent decrease, the greater the deterioration in breakdown strength. EXAMPLES
[0087] Polyethylene polymer (A)-1: Low density polyethylene (LDPE-1). LDPE-1 has a density of 0.920 g / cm 3 and a melt index of 2.0 g / 10 min. Available from The Dow Chemical Company as DFDK-7423NT.
[0088] The alkoxyphenol compound (B)-1 of the present invention: 1 4-Methoxyphenol, a compound of formula (I) in which is methyl.
[0089] Alkoxyphenol compound (B)-2 of the present invention: R 1 4-heptyloxyphenol, a compound of formula (I) in which is heptyl.
[0090] Benzophenone compound (C)-1 of the present invention: Ar 1Benzophenone, a compound of formula (II) wherein
[0091] Test compounds including (B) alkoxyphenol compound alone (comparative), (C) benzophenone compound alone (comparative), and blends thereof (invention) are used to evaluate the effect on the dielectric breakdown strength of polyolefin formulations. Tested embodiments of the polyolefin formulations of the invention include a test compound that is an alkoxyphenol compound (B), a test compound that is a benzophenone compound (C) of formula (II), and a polyethylene polymer (A)-1. The first comparative polyolefin formulation includes a test compound that is an alkoxyphenol compound (B) and a polyethylene polymer (A)-1, but does not contain a benzophenone compound (C) of formula (II). The second comparative polyolefin formulation includes a test compound that is a benzophenone compound (C) of formula (II) and a polyethylene polymer (A)-1, but does not contain an alkoxyphenol compound (B). The third comparative formulation includes a polyethylene polymer (A)-1, but does not contain either compound (B) or compound (C). Test formulations are prepared by melt compounding a known amount of test compound into polyethylene polymer (A)-1 such that the concentration of the test compound in the test formulation is 0.1-10.0 wt% based on the total weight of the formulation. Concentrations of 0.5 wt% and 1.0 wt% of the test compound are convenient amounts to use for testing purposes, although higher concentrations may be used if desired. Separately, the formulations are fabricated into test plaques according to the procedure previously described for the dielectric breakdown strength test method, and the voltage at which a dielectric breakdown event occurs is determined. Results are reported as eta values when the probability of failure value, determined according to the Weibull statistics above, is 63.2%.
[0092] Comparative Example 0 ("CE0"). A single batch of stabilizer-free comparative formulation consisting of 100.00 wt. % polyethylene polymer (A)-1 is prepared. The batch of stabilizer-free comparative formulation does not contain any voltage stabilizers or any additives. In a separate experiment, different samples of the stabilizer-free comparative formulation are melt compounded into 17 test plaques. The dielectric breakdown strength of each test plaque is measured using a 3 x 3 array of 9 pairs of electrodes to obtain 153 actual dielectric breakdown strength values. The dielectric breakdown strength values are normalized to a plaque thickness of 40 mm according to Equation 1 below. The normalized dielectric breakdown strength value of CE0 has an eta, η, value of 18.49 kV / mm (for a failure probability value of 63.2%) with a 90% confidence level, beta being 18.18 to 18.81 kV / mm (lower to upper limit). All comparisons of percent improvement and eta, η, values of the present invention at a failure probability value of 63.2% are compared to the baseline (unimproved or reduced) normalized breakdown strength value of 18.5 kV / mm at a failure probability value of 63.2%.
[0093] The procedure used to conduct the experiments for the comparative examples and inventive examples described below includes the following steps: (1) turn on the Brabender mixer and heat while the bowl is empty until the recorded temperature is about 140°C. (2) charge about 260 grams of (A) polyethylene polymer resin into the Brabender bowl and mix at 40 rpm until it melts for up to 10 minutes. (3) reduce the mixing speed (rpm), reverse the twin screw rotation, and remove a sample for further testing. (4) add additional amounts of (A) polyethylene polymer and compounds (B) and (C) such that the bowl volume is refilled to a target additive load of 260 g, and increase the rpm back to 40 rpm. (5) mix the resulting sample for up to 5 minutes. (6) reduce the mixing speed (rpm), reverse the twin screw rotation, and remove a sample for further testing. (7) repeat steps 4-6 to create a series of additive concentrations up to 2% by weight in polyethylene. Typically, formulations are performed at 0.5%, 1%, and 2% by weight. (8) The mixing speed (rpm) is reduced, the twin screws are reversed, and a portion of the sample is removed for further testing. (9) Step 9 is the end of the experiment. (10) The sample is pressed into a think plaque approximately 15 mils thick. (11) Aluminum disks are embedded into the top and bottom of the sample and taken for electrical testing (see the Measurement section below for an outline of the process). Notes on preparation of the blend mixture additive: The blend mixture is prepared by adding equal weight proportions of the two additives onto a weighing bowl and then mixing with a spatula.
[0094] Comparative Examples 1-6 (CE1-CE6): In another experiment, compound polyethylene polymer (A)-1 was melt blended with either (CE1) a first known amount of (B)-1, 4-methoxyphenol; (CE2) a second known amount of (B)-1; (CE3) a known amount of (B)-2, 4-heptyloxyphenol; (CE4) a first known amount of (C)-1 benzophenone; (CE5) a second known amount of (C)-1 benzophenone; or (CE6) a third known amount of (C)-1 benzophenone (all as shown in Table 1 below) to obtain comparative polyolefin formulations CE1-CE6, respectively. The formulations were tested according to the dielectric breakdown strength test method. The test results are shown in Table 2.
[0095] Comparative Example 7 (CE7): A polyethylene polymer (A)-1 is melt blended with a known amount of (B)-1, 4-methoxyphenol, and a known amount of (C)-1 benzophenone to obtain a comparative polyolefin formulation CE7, where the amount of (B)-1 (wt%) in the formulation is greater than half the amount of (C)-1 (wt%) in the formulation, i.e., the relative amounts of (B)-1 and (C)-1 do not satisfy "where x is less than 0.5y". The formulation is tested according to the dielectric breakdown strength test method. The test results are shown in Table 2.
[0096] [Table 1]
[0097] [Table 2]
[0098] N / m not measured.
[0099] N / r not reported. As shown by the data in Table 2, 2.0 wt. % benzophenone enhances the voltage breakdown strength by 29% (CE5) compared to CE0, which does not contain the voltage stabilizer additive. 2.4 wt. % of the 2.0 / 0.4 (wt / wt) combination of 4-methoxyphenol and benzophenone, i.e., 2.0 wt. % (B) and 0.4 wt. % (C), which does not meet the condition that x is less than 0.5y, reduces the voltage breakdown strength (CE7) compared to the sum of the improvements of CE2+CE4 (=17.26%-19.26%).
[0100] Inventive Examples 1-3 (IE1-IE3): In another experiment, polyethylene polymer (A)-1 is melt blended with known amounts of 4-methoxyphenol (B)-1 and benzophenone (C)-1 according to Table 3 below, or polyethylene polymer (A)-1 is melt blended with known amounts of 4-heptyloxyphenol (B)-2 and benzophenone (C)-1 to obtain the polyolefin formulations of the present invention of IE1-IE3. The formulations are tested according to the dielectric breakdown strength test method. The test results are shown in Table 4.
[0101] Inventive Example 4 (IE4): Hypothetical. In another experiment, polyethylene polymer (A)-1 was melt blended with known amounts of 4-methoxyphenol (B)-1, 4-heptyloxyphenol (B)-2, and benzophenone (C)-1 according to Table 3 below to obtain an inventive polyolefin formulation of IE4. The formulation was tested according to the dielectric breakdown strength test method.
[0102] [Table 3]
[0103] The data in Table 3 show that polyolefin formulations IE1 to IE4 are examples of polyolefin formulations according to the invention.
[0104] [Table 4]
[0105] As shown by the data in Table 4, the combination of 0.4 wt% 4-methoxyphenol (B)-1 and 2.0 wt% benzophenone (C)-1 improves the voltage breakdown strength by 38% compared to CE0, which does not contain any voltage stabilizer additive. As shown in Table 2, 0.5 wt% 4-methoxyphenol (B)-1 alone improves only 2.6% (CE1) and 2.0 wt% benzophenone (C)-1 alone improves only 29% (CE5), for a total improvement of CE1+CE5=31.6% in comparison. The combination of 0.4 wt% 4-methoxyphenol (B)-1 and 7.0 wt% benzophenone (C)-1 improves the voltage breakdown strength by 39%. As shown in Table 2, 0.5 wt% of 4-methoxyphenol (B)-1 alone provides only a 2.6% (CE1) improvement, and 7.0 wt% of benzophenone (C)-1 alone provides only a 25% (CE6) improvement, for a comparative total improvement of CE1+CE6=27.6%. 1 The improvement in voltage stabilization of the polyolefin formulation of the present invention comprising (B) a 4-alkoxyphenol compound of formula (I), where is (C1-C20) alkyl, and (C) a benzophenone compound of formula (II) can be said to be synergistic.
[0106] As shown by the data in Table 4, the combination of 0.4 wt% 4-heptyloxyphenol (B)-2 and 2.0 wt% (C)-1 benzophenone in IE3 performs better than the combination of 0.4 wt% 4-methoxyphenol (B)-1 and also 2.0 wt% (C)-1 benzophenone in IE1.
[0107] Inventive Examples 5a-5c, 6a-6c, 7a-7c, and 8a-8c (IE5a-IE5c, IE6a-IE6c, IE7a-IE7c, and IE8a-IE8c, all hypothetical): In separate experiments, inventive example IE1 is replicated, except that polyethylene polymer (A)-1 is replaced with high density polyethylene polymer (HDPE, IE5a-IE5c), ethylene / vinyl acetate copolymer (EVA, IE6a-IE6c), ethylene / methyl acrylate copolymer (EMA, IE7a-IE7c), or ethylene / (monocyclic tetravinyl-tetramethyl-tetrasiloxane) copolymer (IE8a-IE8c), to obtain the first inventive polyolefin formulation IE5a, IE6a, IE7a, or IE8a, respectively. In another experiment, 1.0 wt% of dicumyl peroxide is immersed therein to obtain the second inventive polyolefin formulation IE3b, IE4b, IE5b, or IE6b, respectively. The wt% is based on the total weight of each second formulation. In another experiment, the obtained inventive formulation IE5b, IE6b, IE7b, or IE8b is heated at 120°C for 1 hour, thereby producing the inventive crosslinked polyolefin product IE5c, IE6c, IE7c, or IE8c.
[0108] Inventive Example 9 (hypothetical): Preparation of a coated conductor. The inventive polyolefin formulation of any one of the preceding inventive examples is introduced into a wire coating extrusion line to prepare a coated wire having a coating consisting essentially of the formulation as a wire structure on a 14 AWG solid copper wire. The wire coating extrusion line is composed of a BRABENDER 1.9 cm extruder with variable speed drive, a 25:1 standard PE screw, a BRABENDER crosshead wire die, a laboratory water-cooled trough with air wipe, a laser micrometer, and a variable speed wire puller. The sample is extruded to a wall thickness of 0.76 millimeters (mm, 30 mils) at a screw speed of 40 rpm. The wire is prepared using a set temperature profile of 160° / 170°C / 180°C / 190°C across zone 1 / zone 2 / zone 3 / and head / die, respectively, at a take-up speed of 3.1 meters per minute (10 feet per minute). The coating on the wire consists essentially of one of the inventive polyolefin formulations. The formulation can be cured sufficiently by passing the wire through a vulcanizing tube set at a curing temperature of 220° C. to obtain a wire having a coating thereon, the coating consisting essentially of the crosslinked product of the present invention.
[0109] Inventive Example 10 (hypothetical): Conduction of electricity. An end of the coating is stripped from each end of the coated wire prepared above to expose the wire. A voltage is applied across the wire (e.g., conductive core) of the coated wire (coated conductor), thereby causing a flow of electricity through the wire. The applied voltage may be provided by a battery, a power grid, or a solar panel including an inverter.
Claims
1. (A) a polyolefin polymer and x weight percent (wt %) of (B) a polyolefin polymer of formula (I): 【Chemical 1】 (In the formula, R 1 is (C 1 -C 20 ) alkyl) and y weight % of (C) an alkoxyphenol compound of formula (II): 【Chemistry 2】 (In the formula, Ar 1 and y is 1 to 8 wt % and x is 0.1 to 3.0 wt %, with the proviso that x is less than 0.5y, wherein the wt % are based on the total weight of the polyolefin formulation.
2. 2. The polyolefin formulation according to claim 1, wherein the Ar 1 is phenyl, and R 1 However, (i) (C 1 -C 5 ) alkyl, (ii) (C 6 -C 10 (iii) alkyl, (iv) methyl, and (v) heptyl, or 1 is alkylphenyl, and R 1 However, (i) (C 1 -C 5 ) alkyl, (ii) (C 6 -C 10 (iii) alkyl, (iv) methyl, and (v) heptyl.
3. The R 1 is methyl or heptyl, and said Ar 1 The polyolefin formulation of claim 1 , wherein is phenyl.
4. The (A) polyolefin polymer is a low-density polyethylene polymer, an ethylene / (C 4 -C 20 2. The polyolefin formulation of claim 1, wherein the polyolefin is selected from the group consisting of alpha-olefin copolymers, ethylene / (unsaturated carboxylic acid ester) copolymers, ethylene / (monocyclic organosiloxane) copolymers, ethylene / propylene copolymers, ethylene / propylene / (diene monomer) terpolymers, and propylene homopolymers.
5. The polyolefin formulation of claim 1, comprising 50.0 to 99.7 weight percent (wt%) of the (A) polyolefin polymer, x=0.2 wt% to x=0.9 wt% of the (B) alkoxyphenol compound, 1.6 to 7.4 wt% of the (C) benzophenone compound, and a total of 0.1 to 43 wt% of at least one additive, wherein the at least one additive is different from component (A), component (B), and component (C) and is independently selected from the group consisting of (D) organic peroxide, (E) scorch inhibitor, (F) antioxidant, (G) filler, (H) flame retardant, (I) hindered amine stabilizer, (J) tree inhibitor, (K) methyl radical scavenger, (L) crosslinking coagent, (M) processing aid, (N) colorant, and a combination of any two or more of the additives (D) to (N).
6. 6. The polyolefin formulation of claim 5, comprising 85 to 99.5 weight percent (wt%) of the (A) polyolefin polymer which is a low density polyethylene polymer, and 0.30 to 0.50 wt% of R 1 is methyl or heptyl, and 1.5 to 2.4% by weight of the alkoxyphenol compound (B) of formula (I), 1 and 0.1 to 1.5 wt % of at least one (F) antioxidant.
7. 7. A method of making the polyolefin formulation of any one of claims 1 to 6, comprising mixing (A) a polyolefin polymer with (B) an alkoxyphenol compound and (C) a benzophenone compound, and optionally at least one additive, to make the formulation.
8. 10. A method of making a crosslinked polyolefin product, comprising: (A) subjecting the polyolefin formulation of any one of claims 1 to 6 to curing conditions so as to crosslink the polyolefin polymer, thereby making said crosslinked polyolefin product.
9. 9. A crosslinked polyolefin product made by the method of claim 8.
10. An article comprising the polyolefin formulation of any one of claims 1 to 6, the crosslinked polyolefin product of claim 9, or a combination thereof.
11. 10. A coated conductor comprising a conductive core and an insulating layer at least partially covering the conductive core, wherein the insulating layer comprises the cross-linked polyethylene product of claim 9.
12. 11. A method of transmitting electricity comprising applying a voltage across the conductive core of the coated conductor of claim 10 to cause a flow of electricity through the conductive core.