High energy return foam and method for preparing same

A high-energy return foam is created using a specific polyolefin composition and crosslinking process, achieving a 70% rebound and maintaining low density with enhanced mechanical properties, addressing the limitations of existing foams in footwear.

JP7778786B2Active Publication Date: 2025-12-02DOW GLOBAL TECHNOLOGIES LLC
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Patent Information

Application Number
JP2023535406
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-12-14
Filing Date
2021-03-30
Publication Date
2025-12-02
Estimated Expiration
2041-03-30

AI Technical Summary

Technical Problem

Existing foams in footwear applications have a rebound of only 60-65%, and there is a demand for high-energy-return foams with a rebound of 70% or more, while maintaining low density and good mechanical properties.

Method used

A high-energy return foam is developed using a composition comprising 30% to 100% by weight of a polyolefin elastomer with a density of 0.857 g/cc to 0.884 g/cc and a melt index (MI) of 5 g/10 min or less, and 0% to 70% by weight of a polyolefin derivative with varying densities and MI, which is crosslinked and then foamed.

Benefits of technology

The foam achieves a resilience of 70% or greater, with a density of 0.05 g/cc to 0.50 g/cc, and maintains good mechanical properties such as Asker C hardness, tensile strength, elongation, and tear strength, making it suitable for footwear applications.

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Abstract

The present disclosure relates to high energy return foams and methods for preparing same.
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Description

[Technical Field]

[0001] The present disclosure relates to high energy return foams and methods for preparing same.

[0002] Introduction Physical foaming is a hot topic in footwear applications. In this application, high-resilience foams are highly desirable. Foaming technologies are available on the market that allow for the formation of crosslinked blockers and subsequent autoclaving to obtain foams. However, most foams can only achieve a rebound of 60-65%. Therefore, there remains a constant demand for high-energy-return foams that exhibit high rebound of 70% or more, preferably maintaining low foam density and / or good mechanical properties at the same time.

[0003] After persistent searching, the inventors have surprisingly found a high energy return foam that can achieve one or more of the above goals. Summary of the Invention

[0004] In a first aspect of the present disclosure, the present disclosure provides a high-energy return foam derived from a composition, the composition comprising, based on the weight of the composition, about 30% to about 100% by weight of a polyolefin elastomer having a density of about 0.857 g / cc to about 0.884 g / cc and a MI of about 5 g / 10 min or less, and about 0% to about 70% by weight of a polyolefin derivative having a density of less than about 0.857 g / cc or greater than about 0.884 g / cc or having a MI of greater than about 5 g / 10 min.

[0005] In a second aspect of the present disclosure, the present disclosure provides a method for preparing a high energy return foam according to any one of the preceding claims, comprising: a) providing a composition, the composition comprising, based on the weight of the composition, about 30 wt. % to about 100 wt. % of a polyolefin elastomer having a density of about 0.857 g / cc to about 0.884 g / cc and a MI of about 5 g / 10 min or less, and about 0 wt. % to about 70 wt. % of a polyolefin derivative having a density of less than about 0.857 g / cc or greater than about 0.884 g / cc or having a MI of greater than about 5 g / 10 min; b) crosslinking the polymer in the composition obtained in step a); c) foaming the resulting crosslinked polymer obtained in step b). [Brief explanation of the drawings]

[0006] [Figure 1] Table 1 shows the surface morphology of the examples. DETAILED DESCRIPTION OF THE INVENTION

[0007] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this invention belongs. Additionally, all publications, patent applications, patents, and other references mentioned herein are incorporated by reference.

[0008] Numerical ranges disclosed herein include all values ​​between and including the lower and upper limits. Ranges including explicit values ​​(e.g., 1 or 2, or 3 to 5, or 6, or 7) include any subranges between any two explicit values ​​(e.g., including subranges from 1 to 2, 2 to 6, 5 to 7, 3 to 7, 5 to 6, etc.). Unless stated to the contrary, implicit from the context, or customary in the art, all parts and percentages are by weight and all testing methods are current as of the filing date of this disclosure.

[0009] As disclosed herein, the terms "composition," "formulation," or "mixture" refer to a physical blend of different components obtained by simply mixing the different components by physical means. The sum of the weight percentages of each component in a composition equals 100% by weight, based on the total weight of the composition.

[0010] As disclosed herein, "and / or" means "and, or alternatively." All ranges are inclusive of the endpoints unless otherwise indicated.

[0011] A "blowing agent" is a substance capable of producing a cellular structure in a composition via a foaming process.

[0012] As used herein, the term "polymer" refers to a polymeric compound prepared by polymerizing monomers, whether of the same type or different types. Thus, the generic term polymer includes the term homopolymer (used to refer to a polymer prepared from only one type of monomer, with the understanding that trace amounts of impurities may be incorporated into the polymer structure), and the term interpolymer, as defined herein below. Trace amounts of impurities, such as catalyst residues, may be incorporated into and / or within the polymer. Typically, polymers are stabilized with very small amounts ("ppm" amounts) of one or more stabilizers.

[0013] As used herein, the term "interpolymer" refers to a polymer prepared by the polymerization of at least two different types of monomers. Thus, the term interpolymer includes the term copolymer (used to refer to a polymer prepared from two different types of monomers) and polymers prepared from more than two different types of monomers.

[0014] As used herein, the term "polyolefin" or "olefin-based polymer" refers to a polymer that, in polymerized form, comprises 50 weight percent or a majority weight percent (based on the weight of the polymer) of an olefin, such as ethylene or propylene, and may optionally contain one or more comonomers.

[0015] "High energy return foam" means foam with a rebound of 70% or more.

[0016] The high energy return foam is derived from a composition comprising, based on the weight of the composition, about 30% to about 100% by weight of a polyolefin elastomer having a density of about 0.857 g / cc to about 0.884 g / cc and a MI of about 5 g / 10 min or less, and about 0% to about 70% by weight of a polyolefin derivative having a density of less than about 0.857 g / cc or greater than about 0.884 g / cc or a MI of greater than about 5 g / 10 min.

[0017] The high energy return foam may be derived from a composition comprising about 30% to about 100% by weight, or about 35% to about 100% by weight, or about 40% to about 100% by weight, or about 45% to about 100% by weight, or about 50% to about 100% by weight, preferably about 70% to about 100% by weight, more preferably about 80% to about 100% by weight, and even more preferably about 90% to about 100% by weight of a polyolefin elastomer and about 0% to about 70% by weight, or about 0% to about 65% by weight, or about 0% to about 60% by weight, or about 0% to about 55% by weight, or about 0% to about 50% by weight, preferably about 0% to about 30% by weight, more preferably about 0% to about 20% by weight, and even more preferably about 0% to about 10% by weight of a polyolefin derivative.

[0018] The polyolefin elastomer may have a density of 0.857 g / cc to 0.884 g / cc, preferably about 0.859 g / cc to 0.883 g / cc, more preferably about 0.860 g / cc to about 0.882 g / cc, and even more preferably about 0.862 g / cc to about 0.880 g / cc, and a MI of about 5 g / 10 min or less, preferably about 4 g / 10 min or less, more preferably about 3 g / 10 min or less, more preferably about 2 g / 10 min or less, even more preferably about 1.5 g / 10 min or less, and even more preferably about 1.2 g / 10 min or less, or less than 1 g / 10 min.

[0019] The polyolefin elastomer having a density of 0.857 g / cc to about 0.884 g / cc and a MI of about 5 g / 10 min or less can be selected from ethylene / α-olefin random copolymers, ethylene / α-olefin multi-block interpolymers, ethylene / α-olefin / non-conjugated polyene interpolymers, or a mixture of any two or more thereof.

[0020] Preferably, the polyolefin elastomer has a density of from about 0.857 g / cc to about 0.884 g / cc, preferably from about 0.859 g / cc to 0.883 g / cc, more preferably from about 0.860 g / cc to about 0.882 g / cc, and even more preferably from about 0.862 g / cc to about 0.880 g / cc.

[0021] Preferably, the polyolefin elastomer has a MI of about 5 g / 10 min or less, preferably about 4 g / 10 min or less, more preferably about 3 g / 10 min or less, more preferably about 2 g / 10 min or less, even more preferably about 1.5 g / 10 min or less, or 1.2 g / 10 min or less, or 1 g / 10 min or less. Alternatively, the polyolefin elastomer has a MI of about 0.1 g / 10 min to about 4 g / 10 min, preferably about 0.2 g / 10 min to about 3 g / 10 min, more preferably about 0.3 g / 10 min to about 1.5 g / 10 min, even more preferably about 0.5 g / 10 min to about 1.2 g / 10 min.

[0022] Preferably, the polyolefin derivative may be selected from ethylene vinyl acetate copolymer (EVA), low density polyethylene (LDPE), and linear low density polyethylene (LLDPE).

[0023] Preferably, the polyolefin derivative has a density less than about 0.857 g / cc or greater than about 0.884 g / cc, or less than about 0.859 g / cc or greater than about 0.883 g / cc, preferably less than about 0.860 g / cc or greater than about 0.882 g / cc, more preferably less than about 0.862 g / cc or greater than about 0.880 g / cc.

[0024] Preferably, the polyolefin derivative has a MI greater than 5 g / 10 min, preferably greater than 6 g / 10 min, more preferably greater than 7 g / 10 min, even more preferably greater than 10 g / 10 min.

[0025] Alternatively, the polyolefin derivative has a MI of greater than about 5 g / 10 min, preferably greater than about 4 g / 10 min, more preferably greater than about 3 g / 10 min, more preferably greater than about 2 g / 10 min, even more preferably greater than about 1.5 g / 10 min, or greater than 1.2 g / 10 min, or greater than 1 g / 10 min.

[0026] Preferably, the polymer in the composition is crosslinked, and the crosslinked polymer has a gel percentage by hot xylene extraction of about 50% to about 100% by weight, preferably about 52% to about 99.9% by weight, more preferably about 55% to about 99% by weight, and even more preferably about 55% to about 75% by weight.

[0027] The foam has a resilience of about 70% or greater, or about 70.5% or greater, preferably about 71% or greater, more preferably about 72% or greater, even more preferably about 73% or greater, even more preferably about 73.5% or greater, even more preferably about 74% or greater, or even more preferably about 74.5% or greater.

[0028] The foam has a density of about 0.05 g / cc to about 0.50 g / cc, preferably about 0.08 to about 0.30 g / cc, more preferably about 0.10 to about 0.25 g / cc, and even more preferably about 0.10 to about 0.14 g / cc.

[0029] The foam has an Asker C hardness of about 5 to about 70, more preferably about 10 to about 60, even more preferably about 12 to about 55, and even more preferably about 15 to about 35.

[0030] The foam has a tensile strength of about 0.5 to about 5 MPa, more preferably about 0.8 to about 4.5 MPa, and even more preferably about 1 to about 4 MPa.

[0031] The foam has an elongation of about 200% or greater, or about 250% or greater, more preferably 300% or greater, even more preferably about 400% or greater, and even more preferably about 500% or greater.

[0032] The foam has a 100% modulus of about 0.1 to about 3 MPa, more preferably about 0.2 to about 2 MPa, and even more preferably about 0.3 to about 1.8 MPa.

[0033] The foam has a Type C tear strength of about 1 to about 20 kg / cm, more preferably about 2 to about 15 kg / cm, and even more preferably about 4 to about 10 kg / cm.

[0034] The foam has a split tear strength of about 0.5 to about 10 kg / cm, more preferably about 1 to about 4 kg / cm, and even more preferably about 1.2 to about 3.5 kg / cm.

[0035] The foam has a compression set (50°C, 6 hours, 30 minutes) of about 20% to about 98%, more preferably about 25% to about 80%, more preferably about 30% to about 70%.

[0036] A) Ethylene / α-olefin random copolymer The ethylene / α-olefin copolymer is an ethylene / propylene random copolymer or an ethylene / C4-C8 α-olefin random copolymer. In one embodiment, the ethylene / α-olefin copolymer is an ethylene / C4-C8 α-olefin copolymer. The ethylene / C4-C8 α-olefin copolymer is composed of, or otherwise consists of, ethylene in polymerized form and one copolymerizable C4-C8 α-olefin comonomer. The C4-C8 α-olefin comonomer may be selected from 1-butene, 1-hexene, and 1-octene.

[0037] In one embodiment, the ethylene / α-olefin random copolymers for the inventive compositions described herein have a density of from about 0.857 g / cc to about 0.884 g / cc, preferably from about 0.859 g / cc to 0.883 g / cc, more preferably from about 0.860 g / cc to about 0.882 g / cc, and even more preferably from about 0.862 g / cc to about 0.880 g / cc.

[0038] Preferably, the ethylene / α-olefin random copolymers for the compositions of the present invention described herein have a MI of about 5 g / 10 min or less, preferably about 4 g / 10 min or less, more preferably about 3 g / 10 min or less, more preferably about 2 g / 10 min or less, even more preferably about 1.5 g / 10 min or less, or 1.2 g / 10 min or less, or 1 g / 10 min or less. Alternatively, the ethylene / α-olefin random copolymers for the compositions of the present invention described herein have a MI of about 0.1 g / 10 min to about 4 g / 10 min, preferably about 0.2 g / 10 min to about 3 g / 10 min, more preferably about 0.3 g / 10 min to about 1.5 g / 10 min, even more preferably about 0.5 g / 10 min to about 1.2 g / 10 min.

[0039] Suitable ethylene / α-olefin random copolymers may be ENGAGE™ manufactured by Dow, such as ENGAGE™ 8150 or ENGAGE™ 7467.

[0040] B) Ethylene / α-olefin multi-block interpolymer As used herein, "ethylene / α-olefin multi-block interpolymer," also known as "olefin block copolymer (OBC)," refers to an interpolymer comprising, in polymerized form, ethylene and one or more copolymerizable α-olefin comonomers, characterized by multiple blocks or segments of two or more (preferably three or more) polymerized monomer units, which have different chemical or physical properties. Specifically, this term refers to a polymer comprising two or more (preferably three or more) chemically distinct regions or segments (referred to as "blocks") linked in a linear fashion, i.e., a polymer comprising chemically distinct units that are linked (covalently bonded) end-to-end with respect to polymerized functional groups, rather than in a pendant or grafted fashion. The blocks differ in the amount or type of comonomer incorporated therein, density, amount of crystallinity, type of crystallinity (e.g., polyethylene vs. polypropylene), size of crystals resulting from polymers of such composition, type or degree of stereoregularity (isotactic or syndiotactic), regioregularity or regioirregularity, amount of branching, including long-chain branching or hyperbranching, uniformity, and / or any other chemical or physical property. Block copolymers are characterized by unique distributions of both polymer polydispersity (PDI or Mw / Mn) and block length distribution, based, for example, on the effectiveness of the use of a shuttling agent in combination with the catalyst system. Non-limiting examples of olefin block copolymers of the present disclosure, and processes for preparing same, are disclosed in U.S. Pat. Nos. 7,858,706 (B2), 8,198,374 (B2), 8,318,864 (B2), 8,609,779 (B2), 8,710,143 (B2), 8,785,551 (B2), and 9,243,090 (B2), all of which are incorporated herein by reference in their entireties.

[0041] Ethylene / α-olefin multi-block interpolymers are characterized by multiple blocks or segments of two or more polymerized monomer units that differ in chemical or physical properties.

[0042] In some embodiments, the multiblock copolymer can be represented by the following formula: (AB)n, where n is at least 1 and preferably an integer greater than 1, e.g., 2, 3, 4, 5, 10, 15, 20, 30, 40, 50, 60, 70, 80, 90, 100, or more. "A" represents a hard block or segment, and "B" represents a soft block or segment. Preferably, the A and B segments are linked in a substantially linear fashion, as opposed to a substantially branched or substantially star-shaped fashion. In other embodiments, the A and B segments are randomly distributed along the polymer chain. In other words, for example, a block copolymer typically does not have the following structure: AAA-AA-BBB-BB. In still other embodiments, a block copolymer typically does not have a third type of block or segment containing a different comonomer. In still other embodiments, each of the A and B blocks has monomers or comonomers distributed substantially randomly within the block. In other words, neither block A nor block B includes two or more sub-segments (or sub-blocks) of distinct composition, such as a tip segment having a substantially different composition than the remainder of the block.

[0043] Olefin block copolymers are generally produced via a chain shuttling process, such as that described in U.S. Pat. No. 7,858,706, which is incorporated herein by reference. Some chain shuttling agents and related information are listed at column 16, line 39 to column 19, line 44. Some catalysts are listed at column 19, line 45 to column 46, line 19, and some cocatalysts are listed at column 46, line 20 to column 51, line 28. Some process features are listed at column 51, line 29 to column 54, line 56. See also: U.S. Pat. Nos. 7,608,668, 7,893,166, and 7,947,793, as well as U.S. Patent Publication No. 2010 / 0197880. See also U.S. Pat. No. 9,243,173.

[0044] Preferably, ethylene constitutes the majority mole fraction of the total ethylene / α-olefin multi-block copolymer. That is, ethylene constitutes at least 50% by weight of the total ethylene / α-olefin multi-block copolymer. More preferably, ethylene constitutes at least 60%, at least 70%, or at least 80% by weight, with the substantial remainder of the total ethylene / α-olefin multi-block interpolymer comprising a C4-C8 α-olefin comonomer, preferably selected from 1-butene, 1-hexene, and 1-octene. In one embodiment, the ethylene / α-olefin multi-block interpolymer contains 50%, 60%, 65% to 80%, 85%, or 90% by weight of ethylene. For many ethylene / octene multi-block interpolymers, the composition comprises an ethylene content of greater than 80% by weight of the total ethylene / octene multi-block interpolymer and an octene content of 10% to 15% by weight, or 15% to 20% by weight of the total ethylene / octene multi-block interpolymer.

[0045] Ethylene / α-olefin multiblock copolymers contain varying amounts of "hard" and "soft" segments. "Hard" segments are blocks of polymerized units in which ethylene is present in an amount greater than 90%, or greater than 95%, or greater than 95%, or greater than 98%, up to 100% by weight based on the weight of the polymer. In other words, the comonomer content (content of monomers other than ethylene) in the hard segments is less than 10%, or less than 5%, or less than 5%, or less than 2% by weight based on the weight of the polymer, and can be as low as zero. In some embodiments, the hard segments contain all or substantially all units derived from ethylene. "Soft" segments are blocks of polymerized units in which the comonomer content (content of monomers other than ethylene) is greater than 5%, or greater than 8%, or greater than 10%, or greater than 15% by weight based on the weight of the polymer. In one embodiment, the comonomer content of the soft segment is greater than 20 weight percent, or greater than 25 weight percent, or greater than 30 weight percent, or greater than 35 weight percent, or greater than 40 weight percent, or greater than 45 weight percent, or greater than 50 weight percent, or greater than 60 weight percent, and can be up to 100 weight percent.

[0046] The soft segment may be present in the ethylene / α-olefin multi-block interpolymer at 1 wt%, 5 wt%, 10 wt%, 15 wt%, 20 wt%, 25 wt%, 30 wt%, 35 wt%, 40 wt%, 45 wt%, 55 wt%, 60 wt%, 65 wt%, 70 wt%, 75 wt%, 80 wt%, 85 wt%, 90 wt%, 95 wt%, or 99 wt% of the total weight of the ethylene / α-olefin multi-block interpolymer. Conversely, the hard segment may be present in a similar range. The weight percentage of the soft segment and the weight percentage of the hard segment may be calculated based on data obtained from DSC or NMR. Such methods and calculations are disclosed, for example, in USP 7,608,668, the disclosure of which is incorporated herein by reference in its entirety. Specifically, the weight percent of the hard and soft segments and the comonomer content can be determined as described in US Pat. No. 7,608,668, columns 57-63.

[0047] In one embodiment, the ethylene / α-olefin multi-block copolymers are produced in a continuous process and have a polydispersity index (Mw / Mn) of 1.7 to 3.5, or 1.8 to 3, or 1.8 to 2.5, or 1.8 to 2.2. When produced in a batch or semi-batch process, the ethylene / α-olefin multi-block copolymers have a Mw / Mn of 1.0 to 3.5, or 1.3 to 3, or 1.4 to 2.5, or 1.4 to 2.

[0048] Non-limiting examples of suitable ethylene / α-olefin multi-block copolymers are disclosed in US Pat. No. 7,608,668, the entire contents of which are incorporated herein by reference.

[0049] In one embodiment, the ethylene / α-olefin multi-block copolymer is defined as having hard and soft segments, being styrene-free, consisting solely of (i) ethylene and (ii) a C4-C8 α-olefin, and having a Mw / Mn of 1.7 to 3.5.

[0050] In one embodiment, the ethylene / α-olefin multi-block interpolymer has a density of from about 0.857 g / cc to about 0.884 g / cc, preferably from about 0.859 g / cc to 0.883 g / cc, more preferably from about 0.860 g / cc to about 0.882 g / cc, and even more preferably from about 0.862 g / cc to about 0.880 g / cc.

[0051] Preferably, the ethylene / α-olefin multi-block interpolymers for the compositions of the present invention described herein have a MI of about 5 g / 10 min or less, preferably about 4 g / 10 min or less, more preferably about 3 g / 10 min or less, more preferably about 2 g / 10 min or less, even more preferably about 1.5 g / 10 min or less, or 1.2 g / 10 min or less, or 1 g / 10 min or less. Alternatively, the ethylene / α-olefin multi-block interpolymers for the compositions of the present invention described herein have a MI of about 0.1 g / 10 min to about 4 g / 10 min, preferably about 0.2 g / 10 min to about 3 g / 10 min, more preferably about 0.3 g / 10 min to about 1.5 g / 10 min, even more preferably about 0.5 g / 10 min to about 1.2 g / 10 min.

[0052] A suitable ethylene / α-olefin multi-block interpolymer may be INFUSE™ manufactured by Dow, such as INFUSE™ 9107 OBC.

[0053] C) Ethylene / α-olefin / non-conjugated polyene interpolymer The ethylene / α-olefin / non-conjugated polyene interpolymers for the inventive compositions described herein comprise, in polymerized form, ethylene, an α-olefin, and a non-conjugated polyene.

[0054] Suitable examples of the α-olefin include C3 to C20 α-olefins, further C3 to C10 α-olefins, and preferably propylene.

[0055] The α-olefin may be either an aliphatic compound or an aromatic compound. The α-olefin is preferably a C3 to C20 aliphatic compound, preferably a C3 to C16 aliphatic compound, and more preferably a C3 to C10 aliphatic compound. A preferred C3 to C10 aliphatic α-olefin is selected from the group consisting of propylene, 1-butene, 1-hexene, and 1-octene, more preferably propylene. In a further embodiment, the interpolymer is an ethylene / propylene / nonconjugated diene (EPDM) terpolymer. In a further embodiment, the diene is 5-ethylidene-2-norbornene (ENB).

[0056] Suitable examples of non-conjugated polyenes include C4 to C40 non-conjugated dienes.

[0057] Exemplary non-conjugated polyenes include straight-chain acyclic dienes such as 1,4-hexadiene and 1,5-heptadiene, branched-chain acyclic dienes such as 5-methyl-1,4-hexadiene, 2-methyl-1,5-hexadiene, 6-methyl-1,5-heptadiene, 7-methyl-1,6-octadiene, 3,7-dimethyl-1,6-octadiene, 3,7-dimethyl-1,7-octadiene, 5,7-dimethyl-1,7-octadiene, 1,9-decadiene, and mixed isomers of dihydromyrcene, 1,4-cyclohexadiene, 1,5-cyclooctadiene, and 1,5-cyclododecadiene. Examples of suitable alicyclic dienes include single-ring alicyclic dienes such as cyclohexylene, polycyclic alicyclic fused and bridged ring dienes such as tetrahydroindene, methyltetrahydroindene, alkenyl, alkylidene, cycloalkenyl, and cycloalkylidene norbornenes such as 5-methylene-2-norbornene (MNB), 5-ethylidene-2-norbornene (ENB), 5-vinyl-2-norbornene (VNB), 5-propenyl-2-norbornene, 5-isopropylidene-2-norbornene, 5-(4-cyclopentenyl)-2-norbornene, and 5-cyclohexylidene-2-norbornene. Preferably, the polyene is a non-conjugated diene selected from the group consisting of ENB, dicyclopentadiene, 1,4-hexadiene, 7-methyl-1,6-octadiene, preferably ENB, VNB, dicyclopentadiene, and 1,4-hexadiene, 7-methyl-1,6-octadiene, preferably ENB, VNB, dicyclopentadiene, and 1,4-hexadiene, more preferably ENB, VNB, and dicyclopentadiene, even more preferably ENB.

[0058] In one embodiment, the ethylene / α-olefin / non-conjugated polyene interpolymer comprises a majority amount of polymerized ethylene based on the weight of the interpolymer. In a further embodiment, the ethylene / α-olefin / non-conjugated polyene interpolymer is an ethylene / α-olefin / diene interpolymer. In a further embodiment, the interpolymer is EPDM. In a further embodiment, the diene is ENB.

[0059] In one embodiment, the ethylene / α-olefin / non-conjugated polyene interpolymer has a molecular weight distribution (Mw / Mn) from 2 to 50, further from 2 to 35, further from 2 to 25. In a further embodiment, the ethylene / α-olefin / non-conjugated polyene interpolymer is an ethylene / α-olefin / diene interpolymer (EAODM). In a further embodiment, the interpolymer is EPDM. In a further embodiment, the diene is ENB.

[0060] In a further embodiment, the ethylene / α-olefin / non-conjugated polyene interpolymer is an ethylene / α-olefin / diene interpolymer. In a further embodiment, the interpolymer is EPDM. In a further embodiment, the diene is ENB.

[0061] The EPDM used in the present disclosure may, for example, contain 50 to 85% by weight of polymer units derived from ethylene. Preferably, the EPDM contains 60 to 80% by weight of ethylene, more preferably 65 to 75% by weight.

[0062] The EPDM may contain 15 to 50% by weight of polymer units derived from propylene, preferably 20 to 45% by weight, more preferably 25 to 40% by weight of polymer units derived from propylene.

[0063] The EPDM may contain 0.1 to 15 wt% of polymer units derived from diene monomers. Preferably, the EPDM contains 0.2 to 10 wt% of polymer units derived from diene monomers, more preferably 0.3 to 8 wt% of polymer units derived from diene monomers, and even more preferably 0.5 to 6 wt%.

[0064] The diene monomer may be, for example, one or more selected from 1,4-hexadiene, 1,6-octadiene, 5-methyl-1,4-hexadiene, 3,7-dimethyl-1,6-octadiene, dicyclopentadiene (DCPD), 5-vinyl-2-norbornene, 5-ethylidene-2-norbornene (ENB), and / or 2,5-norbornadiene. For example, the diene monomer may be, for example, one selected from 1,4-hexadiene, 1,6-octadiene, 5-methyl-1,4-hexadiene, 3,7-dimethyl-1,6-octadiene, dicyclopentadiene (DCPD), 5-vinyl-2-norbornene, 5-ethylidene-2-norbornene (ENB), or 2,5-norbornadiene. For example, the diene monomer may be selected from dicyclopentadiene (DCPD), 5-vinyl-2-norbornene, or 5-ethylidene-2-norbornene (ENB). It is particularly preferred that the diene monomer is 5-ethylidene-2-norbornene (ENB).

[0065] The EPDM may contain, for example, 0.1 to 10 wt. % of polymer units derived from one or more selected from 1,4-hexadiene, 1,6-octadiene, 5-methyl-1,4-hexadiene, 3,7-dimethyl-1,6-octadiene, dicyclopentadiene (DCPD), 5-vinyl-2-norbornene, 5-ethylidene-2-norbornene (ENB), and / or 2,5-norbornadiene. The EPDM may contain, for example, 0.1 to 10 weight percent of polymer units derived from 1,4-hexadiene, 1,6-octadiene, 5-methyl-1,4-hexadiene, 3,7-dimethyl-1,6-octadiene, dicyclopentadiene (DCPD), 5-vinyl-2-norbornene, 5-ethylidene-2-norbornene (ENB), or 2,5-norbornadiene. More preferably, the EPDM contains 0.2 to 8 wt. % of polymer units derived from 1,4-hexadiene, 1,6-octadiene, 5-methyl-1,4-hexadiene, 3,7-dimethyl-1,6-octadiene, dicyclopentadiene (DCPD), 5-vinyl-2-norbornene, 5-ethylidene-2-norbornene (ENB), or 2,5-norbornadiene, even more preferably 0.3 to 6 wt. %, and even more preferably 0.5 to 4 wt. Even more preferably, the EPDM contains 0.1 to 10 wt. % of polymer units derived from DCPD, ENB, or VNB, even more preferably 0.2 to 8 wt. %, or 0.3 to 6 wt. In one particular embodiment, the EPDM contains 0.1 to 10 wt. % of polymer units derived from ENB, even more preferably 0.2 to 8 wt. %, or 0.3 to 6 wt. %, or 0.5 to 4 wt. %.

[0066] In certain embodiments, the EPDM comprises 0.1 to 10 wt %, 0.2 to 8 wt %, 0.3 to 6 wt %, or 0.5 to 4 wt % of polymer units derived from a diene monomer selected from 1,4-hexadiene, 1,6-octadiene, 5-methyl-1,4-hexadiene, 3,7-dimethyl-1,6-octadiene, dicyclopentadiene (DCPD), 5-vinyl-2-norbornene, 5-ethylidene-2-norbornene (ENB), or 2,5-norbornadiene. More preferably, the EPDM contains 0.1 to 15 wt%, preferably 0.2 to 10 wt%, more preferably 0.3 to 8 wt% of polymer units derived from a diene monomer selected from dicyclopentadiene (DCPD), 5-vinyl-2-norbornene (VNB), or 5-ethylidene-2-norbornene (ENB). Even more preferably, the EPDM contains 0.1 to 10 wt%, preferably 0.2 to 8 wt%, more preferably 0.3 to 6 wt% of polymer units derived from a diene monomer, and the diene monomer is 5-ethylidene-2-norbornene (ENB).

[0067] In a further particular embodiment, the EPDM is 50 to 85 wt. % of polymer units derived from ethylene; 15 to 50 wt. % of polymer units derived from propylene; and 0.1 to 10 wt. % of polymer units derived from diene monomers.

[0068] In another particular embodiment, the EPDM is 50 to 85 wt. % of polymer units derived from ethylene; 15 to 50 wt. % of polymer units derived from propylene; and 0.1 to 10 wt. % of polymer units derived from a diene monomer, the diene monomer being dicyclopentadiene (DCPD), 5-vinyl-2-norbornene (VNB), or 5-ethylidene-2-norbornene (ENB).

[0069] EPDM is 60 to 80 wt. % of polymer units derived from ethylene; 20 to 45 wt. % of polymer units derived from propylene; and 0.2 to 8% by weight of polymer units derived from a diene monomer, the diene monomer being 5-ethylidene-2-norbornene (ENB) being particularly preferred.

[0070] Even more specifically, 65 to 75 wt. % polymer units derived from ethylene; 25 to 40 wt. % of polymer units derived from propylene; and 0.3 to 6% by weight of polymer units derived from a diene monomer, preferably 5-ethylidene-2-norbornene (ENB).

[0071] In one embodiment, the ethylene / α-olefin / non-conjugated polyene interpolymers for the inventive compositions described herein have a density of from about 0.857 g / cc to about 0.884 g / cc, preferably from about 0.859 g / cc to 0.883 g / cc, more preferably from about 0.860 g / cc to about 0.882 g / cc, and even more preferably from about 0.862 g / cc to about 0.880 g / cc.

[0072] Preferably, the ethylene / α-olefin / non-conjugated polyene interpolymers for the compositions of the present invention described herein have a MI of about 5 g / 10 min or less, preferably about 4 g / 10 min or less, more preferably about 3 g / 10 min or less, more preferably about 2 g / 10 min or less, even more preferably about 1.5 g / 10 min or less, or 1.2 g / 10 min or less, or 1 g / 10 min or less. Alternatively, the ethylene / α-olefin / non-conjugated polyene interpolymers for the compositions of the present invention described herein have a MI of about 0.1 g / 10 min to about 4 g / 10 min, preferably about 0.2 g / 10 min to about 3 g / 10 min, more preferably about 0.3 g / 10 min to about 1.5 g / 10 min, and even more preferably about 0.5 g / 10 min to about 1.2 g / 10 min.

[0073] Suitable ethylene / α-olefin / non-conjugated polyene interpolymers for the inventive compositions described herein can be NORDEL™ manufactured by Dow, such as NORDEL™ IP3722, NORDEL™ IP3745, and the like.

[0074] Preparation method The compositions of the present disclosure are crosslinked and then expanded to form the foams of the present disclosure. Crosslinking can be accomplished by peroxides or irradiation.

[0075] Crosslinking "Crosslinking" refers to the formation of chemical bonds between different polymer chains to form a network structure. Crosslinking can be achieved by any of the chemical reactions that can form the network described above. Below are some examples of crosslinking techniques, including peroxides, irradiation, moisture curing with silanes, hydrosilylation, etc.

[0076] A crosslinking agent may be used to crosslink the composition. The crosslinking agent is not particularly limited as long as it is capable of crosslinking the copolymer. The crosslinking agent may be a known organic peroxide used to crosslink polyethylene resins. Examples include percumyl compounds such as dicumyl peroxide and tert-butylcumyl peroxide, perbutyl compounds such as 1,1-bis(tert-butylperoxy)-3,3,5-trimethylcyclohexane, 2,5-dimethyl-2,5-di(tert-butylperoxy)hexane, and di-tert-butyl peroxide, perhexyl compounds such as tert-hexyl peroxybenzoate, and perocta-based compounds such as 1,1,3,3-tetramethylbutylperoxy-2-ethylhexanoate. Among these, percumyl compounds and perbutyl compounds are preferred, with dicumyl peroxide being more preferred. These compounds may be used alone or in combination of two or more of them. The lower limit of the amount of crosslinking agent to be mixed is preferably 0.1 parts by weight, more preferably 0.2 parts by weight, per 100 parts by weight of the total weight of the polymer, and the upper limit of the amount of crosslinking agent to be mixed is preferably 5.0 parts by weight, more preferably 2.5 parts by weight, per 100 parts by weight of the total weight of the polymer.

[0077] When the amount of crosslinking agent added is within this range, the polymer is crosslinked to provide a crosslinked polymer with a moderate gel fraction.

[0078] The crosslinking reaction is preferably carried out at a temperature at which the polymer softens and the crosslinking agent substantially decomposes, or higher. This temperature is specifically at least the one-hour half-life temperature of the organic peroxide and at least the melting point of the polyethylene resin. This temperature can be maintained for 1 to 200 minutes to carry out the crosslinking. For example, the crosslinking reaction is preferably carried out at a temperature of 80 to 220°C, more preferably 120 to 210°C, even more preferably 150 to 200°C, or even more preferably 160 to 180°C.

[0079] The crosslinking reaction can also be carried out by irradiation at a dose of 30 to 150 kGy, preferably 40 to 120 kGy, and more preferably 45 to 80 kGy.

[0080] The crosslinked polymer has a gel percentage of about 50% to about 100% by weight by hot xylene extraction, preferably about 60% to about 100% by weight by hot xylene extraction, more preferably about 65% to about 99.9% by weight by hot xylene extraction, and even more preferably about 70% to about 99% by weight by hot xylene extraction.

[0081] Foaming A blowing agent is used to foam the crosslinked polymer. The type of blowing agent used is not particularly limited, as long as it can expand the crosslinked particles. Examples of blowing agents include inorganic physical blowing agents such as air, nitrogen, carbon dioxide, argon, helium, oxygen, and neon, and organic physical blowing agents such as aliphatic hydrocarbons, e.g., propane, n-butane, isobutane, n-pentane, isopentane, and n-hexane; alicyclic hydrocarbons, e.g., cyclohexane and cyclopentane; halogenated hydrocarbons, e.g., chlorofluoromethane, trifluoromethane, 1,1-difluoroethane, 1,1,1,2-tetrafluoroethane, methyl chloride, ethyl chloride, and methylene chloride; and dialkyl ethers, e.g., dimethyl ether, diethyl ether, and methyl ethyl ether. Among these, inorganic physical blowing agents are preferred because they do not deplete the ozone layer and are inexpensive, with nitrogen, air, and carbon dioxide being more preferred. The blowing agents can be used alone or in combination of two or more of them. The crosslinking and foaming steps are preferably carried out in succession in different vessels.

[0082] The step of foaming with a foaming agent may be carried out after the crosslinking step.

[0083] The temperature for foaming the crosslinked polymer is preferably about 90° C. or higher, more preferably about 95° C. or higher, more preferably about 100° C. or higher, even more preferably about 115° C. or higher, or about 120° C. The upper limit of the temperature for foaming with a foaming agent is preferably about 180° C., more preferably about 170° C., even more preferably about 165° C., and even more preferably about 150° C.

[0084] The lower limit of the pressure for foaming the crosslinked polymer is about 10 MPa or about 15 MPa, preferably about 18 MPa, more preferably about 20 MPa, and even more preferably about 22 MPa. In one embodiment, the pressure for foaming the crosslinked polymer is about 10 to about 80 MPa, preferably about 15 to about 70 MPa, more preferably about 20 to about 50 MPa, and even more preferably about 20 to about 30 MPa. [Example]

[0085] Certain embodiments of the present invention are now illustrated in the following examples, in which all parts and percentages are by weight unless otherwise specified.

[0086] Information on the raw materials used in the examples is listed in Table 1 below.

[0087] [Table 1] * MV: Mooney viscosity at 125°C (ASTM D 1646)

[0088] Sample preparation The polymer pellets were added to a 1 L internal mixer at 80-120°C. The peroxide was then added in one shot. The resulting mixture was mixed for an additional 5 minutes until the compound mixture reached 130-140°C. The residue was then transferred to a two-roll mill, cut into squares, and placed in a preheated bunform mold. Preheating was carried out at 120°C for 9 minutes and pressed at 10 tons for 4 minutes.

[0089] Crosslinking 1. Peroxide curing: The preheated mass is transferred to a foaming press and pressurized at 100 kg / cm 2 and held at 180°C for 10 minutes.

[0090] 2. About irradiation: Irradiation was carried out at Lucky Star Irradiation Science Co., Ltd. (Lucky Star) (Shanghai, China). Irradiation was carried out using Co-60, and the dose was monitored at Lucky Star using a dosimeter (HKAgDc) and a spectrophotometer (Shimadzu UV-2450).

[0091] Foaming The resulting block was transferred into an autoclave chamber. N2 was then injected to reach the desired internal pressure. The chamber was then heated to the desired temperature for 4-8 hours. Foams were obtained by removing the gas immediately after saturation.

[0092] Characterization Foam Density The volume was determined by weighing the bun foam to the nearest 0.1 g and measuring the length, width, and thickness to the nearest 0.01 cm. Density could be calculated in terms of weight and volume.

[0093] Shove-style rebound The resilience of the foam (skin-on), also known as rebound, was measured according to ASTM D7121 standard. The maximum rebound heights obtained for the fourth, fifth, and sixth rebounds of the impact head after the initial hit were noted and the average was taken as the resilience of the test specimen. Three specimens were tested for each foam sample, and the average was reported as the resilience of the foam.

[0094] Compression set Compression set (C-Set) was measured according to ASTM D395, Method B, under conditions of 50% compression for 6 hours at 50°C. Two buttons per foam were tested and the average value reported. Compression set was calculated using the following formula: Compression set = (T1-T2) / (T1-T0) x 100% where T0 is the device spacing, T1 is the sample thickness before testing, and T2 is the sample thickness after testing.

[0095] Asker C hardness Hardness was the average of five readings (5 seconds latency) taken across the surface of the sample.

[0096] MI Melt index (MI) was measured according to ASTM D1238 at 190° C. under a load of 2.16 kg, and results were reported in grams dissolved per 10 minutes (g / 10 min).

[0097] Mechanical properties The bun foam skin layers were subjected to ASTM D638 (tensile, Type 4) and ASTM D624 (tear, Type C) mechanical property testing at 20 inches per minute. Sample thickness was approximately 3 mm. Split tear strength was measured at a test speed of 2 inches per minute using specimens with dimensions of 6 inches (length) x 1 inch (width) x 0.4 inches (thickness) and notch depths of 1 to 1.5 inches.

[0098] Gel fraction (gel%) The gel fraction by the hot xylene extraction method can be measured as follows: Approximately 0.1 g of crosslinked polymer is weighed out and designated as sample weight W1. The weighed crosslinked polymer is placed in a 150 mL round-bottom flask, and 100 mL of xylene is added to the round-bottom flask. The mixture is heated under reflux for 6 hours using a heating mantle. The residue remaining in the round-bottom flask after dissolution is then separated by filtration through a 100-mesh metal mesh, and the separated product is dried in a vacuum dryer at 80°C for 8 hours or more. The weight W2 of the resulting dried product is measured. The weight percentage of weight W2 relative to sample weight W1 ((W2 / W1) × 100) (%) is calculated and designated as the gel fraction.

[0099] Examples and Discussion The following Tables 2 and 3 show comparative examples and examples of the present invention.

[0100] [Table 2] * Rough (R), Smooth (S), ^ NA: Unable to measure due to poor foam surface roughness. # NT = not tested.

[0101] [Table 3] ^ NA: Unable to measure due to poor foam surface roughness. # NT = Not Tested

[0102] The results of the examples and comparative examples of the present invention show that a foam having a resilience of 70% or more can be produced using a polyolefin elastomer having a density of about 0.857 g / cc to about 0.884 g / cc and an MI of about 5 g / 10 min or less. The present specification includes the following aspects. Section 1. 1. A high energy return foam derived from a composition comprising, based on the weight of the composition, about 30% to about 100% by weight of a polyolefin elastomer having a density of about 0.857 g / cc to about 0.884 g / cc and a MI of about 5 g / 10 minutes or less, and about 0% to about 70% by weight of a polyolefin derivative having a density of less than about 0.857 g / cc or greater than about 0.884 g / cc or having a MI of greater than about 5 g / 10 minutes. Section 2. Item 1. The high energy return foam according to item 1, wherein the polyolefin elastomer is selected from ethylene / α-olefin random copolymers, ethylene / α-olefin multi-block interpolymers, ethylene / α-olefin / non-conjugated polyene interpolymers, or a mixture of any two or more thereof. Section 3. Item 1. A high energy return foam according to item 1, wherein the foam has a rebound of 70% or more. Section 4. Item 1. The high energy return foam according to item 1, wherein the polymer in the composition is crosslinked, and the crosslinked polymer has a gel content of about 50% by weight to about 100% by weight by hot xylene extraction. Section 5. Item 1. The high energy return foam according to item 1, wherein the crosslinking is carried out by peroxide or irradiation. Section 6. Item 6. The high energy return foam according to item 4 or 5, wherein the crosslinked polymer is foamed at a temperature of about 90°C or higher and a pressure of about 10 to about 80 MPa. Section 7. Item 6. The high energy return foam according to item 4 or 5, wherein the crosslinked polymer is foamed at a temperature of about 100°C to about 150°C and a pressure of about 15 to about 70 MPa. Section 8. Item 6. A high energy return foam according to item 4 or 5, wherein the foam has a resilience of 72% or more. Section 9. Item 1. The high energy return foam according to item 1, wherein the composition comprises, based on the weight of the composition, about 35% by weight to about 100% by weight of a polyolefin elastomer having a density of about 0.857 g / cc to about 0.884 g / cc and a MI of about 5 g / 10 minutes or less, and about 0% by weight to about 65% by weight of a polyolefin derivative having a density of less than about 0.857 g / cc or more than about 0.884 g / cc or a MI of more than about 5 g / 10 minutes. Section 10. Item 1. The high energy return foam according to item 1, wherein the composition comprises, based on the weight of the composition, about 50% to about 100% by weight of a polyolefin elastomer having a density of about 0.857 g / cc to about 0.884 g / cc and a MI of about 5 g / 10 minutes or less, and about 0% to about 50% by weight of a polyolefin derivative having a density of less than about 0.857 g / cc or more than about 0.884 g / cc or a MI of more than about 5 g / 10 minutes. Section 11. A method for preparing a high energy return foam according to any one of items 1 to 10, a) providing a composition, the composition comprising, based on the weight of the composition, about 30 wt. % to about 100 wt. % of a polyolefin elastomer having a density of about 0.857 g / cc to about 0.884 g / cc and a MI of about 5 g / 10 min or less, and about 0 wt. % to about 70 wt. % of a polyolefin derivative having a density of less than about 0.857 g / cc or greater than about 0.884 g / cc or having a MI of greater than about 5 g / 10 min; b) crosslinking the polymer in the composition obtained in step a); c) foaming the resulting cross-linked polymer obtained in step b). Section 12. Item 12. The method according to item 11, wherein the crosslinking is carried out by peroxide or irradiation. Section 13. Item 12. The method according to Item 11, wherein the crosslinked polymer is foamed at a temperature of about 90° C. or higher and a pressure of about 10 to about 80 MPa. Section 14. Item 12. The method according to Item 11, wherein the crosslinked polymer is foamed at a temperature of about 100°C to about 150°C and a pressure of about 15 to about 70 MPa. Section 15. Item 12. The method of claim 11, wherein the foam has a resilience of 70% or more.

Claims

1. A high energy return foam having a rebound of 79% or greater derived from the composition, the composition comprises, based on the weight of the composition, about 30% to about 100% by weight of a polyolefin elastomer having a density of about 0.857 g / cc to about 0.884 g / cc and a MI of about 5 g / 10 min or less; and the composition may comprise up to about 70% by weight of a polyolefin derivative having a density of less than about 0.857 g / cc or greater than about 0.884 g / cc or having a MI of greater than about 5 g / 10 min and selected from the group consisting of low density polyethylene (LDPE), linear low density polyethylene (LLDPE), and combinations thereof; the polymer in the composition is crosslinked by peroxide or irradiation, the crosslinked polymer having a gel percentage of about 50% to about 100% by weight by hot xylene extraction; A high energy return foam, wherein the crosslinked polymer is foamed at a temperature of about 90° C. or higher and a pressure of about 10 to about 80 MPa.

2. 10. The high energy return foam of claim 1, wherein the polyolefin elastomer is selected from an ethylene / α-olefin random copolymer, an ethylene / α-olefin multi-block interpolymer, an ethylene / α-olefin / non-conjugated polyene interpolymer, or a mixture of any two or more thereof.

3. 2. The high energy return foam of claim 1, wherein the composition comprises about 35% to about 100% by weight of a polyolefin elastomer having a density of about 0.857 g / cc to about 0.884 g / cc and a MI of about 5 g / 10 min or less, based on the weight of the composition, and the composition may comprise up to about 65% by weight of a polyolefin derivative having a density of less than about 0.857 g / cc or greater than about 0.884 g / cc or having a MI of greater than about 5 g / 10 min and selected from the group consisting of low density polyethylene (LDPE), linear low density polyethylene (LLDPE), and combinations thereof.

4. A method for preparing a high energy return foam according to any one of claims 1 to 3, comprising the steps of: a) providing said composition; b) crosslinking the polymer in the composition obtained in step a) by peroxide or irradiation, wherein the crosslinked polymer has a gel percentage of about 50% to about 100% by weight by hot xylene extraction; c) foaming the resulting crosslinked polymer obtained in step b) at a temperature of about 90° C. or higher and a pressure of about 10 to about 80 MPa.

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