WO2018230272A1 - タイヤ用樹脂金属複合部材、及びタイヤ - Google Patents
タイヤ用樹脂金属複合部材、及びタイヤ Download PDFInfo
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- WO2018230272A1 WO2018230272A1 PCT/JP2018/019551 JP2018019551W WO2018230272A1 WO 2018230272 A1 WO2018230272 A1 WO 2018230272A1 JP 2018019551 W JP2018019551 W JP 2018019551W WO 2018230272 A1 WO2018230272 A1 WO 2018230272A1
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- resin
- tire
- thermoplastic elastomer
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- based thermoplastic
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- C—CHEMISTRY; METALLURGY
- C09—DYES; PAINTS; POLISHES; NATURAL RESINS; ADHESIVES; COMPOSITIONS NOT OTHERWISE PROVIDED FOR; APPLICATIONS OF MATERIALS NOT OTHERWISE PROVIDED FOR
- C09J—ADHESIVES; NON-MECHANICAL ASPECTS OF ADHESIVE PROCESSES IN GENERAL; ADHESIVE PROCESSES NOT PROVIDED FOR ELSEWHERE; USE OF MATERIALS AS ADHESIVES
- C09J167/00—Adhesives based on polyesters obtained by reactions forming a carboxylic ester link in the main chain; Adhesives based on derivatives of such polymers
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B60—VEHICLES IN GENERAL
- B60C—VEHICLE TYRES; TYRE INFLATION; TYRE CHANGING; CONNECTING VALVES TO INFLATABLE ELASTIC BODIES IN GENERAL; DEVICES OR ARRANGEMENTS RELATED TO TYRES
- B60C9/00—Reinforcements or ply arrangement of pneumatic tyres
- B60C9/18—Structure or arrangement of belts or breakers, crown-reinforcing or cushioning layers
- B60C9/20—Structure or arrangement of belts or breakers, crown-reinforcing or cushioning layers built-up from rubberised plies each having all cords arranged substantially parallel
- B60C9/22—Structure or arrangement of belts or breakers, crown-reinforcing or cushioning layers built-up from rubberised plies each having all cords arranged substantially parallel the plies being arranged with all cords disposed along the circumference of the tyre
- B60C9/2204—Structure or arrangement of belts or breakers, crown-reinforcing or cushioning layers built-up from rubberised plies each having all cords arranged substantially parallel the plies being arranged with all cords disposed along the circumference of the tyre obtained by circumferentially narrow strip winding
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- B—PERFORMING OPERATIONS; TRANSPORTING
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- B32B15/00—Layered products comprising a layer of metal
- B32B15/04—Layered products comprising a layer of metal comprising metal as the main or only constituent of a layer, which is next to another layer of the same or of a different material
- B32B15/08—Layered products comprising a layer of metal comprising metal as the main or only constituent of a layer, which is next to another layer of the same or of a different material of synthetic resin
- B32B15/09—Layered products comprising a layer of metal comprising metal as the main or only constituent of a layer, which is next to another layer of the same or of a different material of synthetic resin comprising polyesters
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- B32B27/06—Layered products comprising a layer of synthetic resin as the main or only constituent of a layer, which is next to another layer of the same or of a different material
- B32B27/08—Layered products comprising a layer of synthetic resin as the main or only constituent of a layer, which is next to another layer of the same or of a different material of synthetic resin
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- B—PERFORMING OPERATIONS; TRANSPORTING
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- B32B7/04—Interconnection of layers
- B32B7/12—Interconnection of layers using interposed adhesives or interposed materials with bonding properties
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- B—PERFORMING OPERATIONS; TRANSPORTING
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- B60C1/00—Tyres characterised by the chemical composition or the physical arrangement or mixture of the composition
- B60C1/0041—Compositions of the carcass layers
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- B60—VEHICLES IN GENERAL
- B60C—VEHICLE TYRES; TYRE INFLATION; TYRE CHANGING; CONNECTING VALVES TO INFLATABLE ELASTIC BODIES IN GENERAL; DEVICES OR ARRANGEMENTS RELATED TO TYRES
- B60C15/00—Tyre beads, e.g. ply turn-up or overlap
- B60C15/04—Bead cores
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- B60C5/00—Inflatable pneumatic tyres or inner tubes
- B60C5/01—Inflatable pneumatic tyres or inner tubes without substantial cord reinforcement, e.g. cordless tyres, cast tyres
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- B60C9/00—Reinforcements or ply arrangement of pneumatic tyres
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- B60C9/00—Reinforcements or ply arrangement of pneumatic tyres
- B60C9/18—Structure or arrangement of belts or breakers, crown-reinforcing or cushioning layers
- B60C9/20—Structure or arrangement of belts or breakers, crown-reinforcing or cushioning layers built-up from rubberised plies each having all cords arranged substantially parallel
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- B60C—VEHICLE TYRES; TYRE INFLATION; TYRE CHANGING; CONNECTING VALVES TO INFLATABLE ELASTIC BODIES IN GENERAL; DEVICES OR ARRANGEMENTS RELATED TO TYRES
- B60C9/00—Reinforcements or ply arrangement of pneumatic tyres
- B60C9/18—Structure or arrangement of belts or breakers, crown-reinforcing or cushioning layers
- B60C9/20—Structure or arrangement of belts or breakers, crown-reinforcing or cushioning layers built-up from rubberised plies each having all cords arranged substantially parallel
- B60C9/22—Structure or arrangement of belts or breakers, crown-reinforcing or cushioning layers built-up from rubberised plies each having all cords arranged substantially parallel the plies being arranged with all cords disposed along the circumference of the tyre
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Definitions
- the present disclosure relates to a resin-metal composite member for a tire and a tire.
- a reinforcing cord which is a metal member, is spirally wound around a tire body (hereinafter also referred to as a tire frame body).
- a reinforcing belt member is provided.
- the tire is provided with a bead that plays a role of fixing to the rim, and a metal wire is used as the bead wire.
- a tire that is formed of at least a thermoplastic resin material and has an annular tire frame, and has a reinforcing cord member that is wound in the circumferential direction on the outer periphery of the tire frame to form a reinforcing cord layer
- the thermoplastic resin material includes at least a polyester-based thermoplastic elastomer
- one or more reinforcing threads at least one thermoplastic polymer with a positive glass transition temperature, poly (p- Phenylene ether) and a functionalized unsaturated thermoplastic styrene (TPS) elastomer having a negative glass transition temperature, wherein the TPS elastomer is a functional group selected from epoxide groups, carboxyl groups and acid anhydride groups, and ester groups
- TPS thermoplastic styrene
- Patent Document 1 JP 2012-046025
- Patent Document 2 International Publication No. 2012/104281
- an object of the present disclosure is to provide a resin-metal composite member for a tire that is provided on a tire and includes a metal member and that has excellent adhesion durability and wet heat durability.
- a resin-metal composite member for a tire which is provided on a tire and includes a metal member and which has excellent adhesion durability and wet heat durability.
- resin is a concept including a thermoplastic resin, a thermoplastic elastomer, and a thermosetting resin, and does not include vulcanized rubber.
- resin “same species” means those having a skeleton that is common to the skeleton constituting the main chain of the resin, such as esters and styrenes.
- a numerical range expressed using “to” means a range including numerical values described before and after “to” as a lower limit value and an upper limit value.
- process includes not only an independent process but also a process that can be clearly distinguished from other processes as long as the purpose is achieved. include.
- thermoplastic resin means a polymer compound that softens and flows as the temperature rises and becomes relatively hard and strong when cooled, but does not have rubbery elasticity.
- thermoplastic elastomer means a copolymer having a hard segment and a soft segment.
- thermoplastic elastomer for example, a crystalline polymer having a high melting point hard segment or a polymer constituting a hard segment having a high cohesive force, and a polymer constituting an amorphous soft segment having a low glass transition temperature, And a copolymer having.
- the thermoplastic elastomer includes, for example, a polymer compound that softens and flows as the temperature rises, becomes relatively hard and strong when cooled, and has rubbery elasticity.
- hard segment refers to a component that is relatively harder than the soft segment
- soft segment refers to a component that is relatively softer than the hard segment.
- the hard segment is preferably a molecular constraining component that serves as a crosslinking point of the crosslinked rubber that prevents plastic deformation due to crystals or the like.
- the hard segment is, for example, a structure having a rigid group such as an aromatic group or an alicyclic group in the main skeleton, or a structure enabling intermolecular packing by intermolecular hydrogen bonding or ⁇ - ⁇ interaction, etc. Can be mentioned.
- the soft segment is preferably a flexible component exhibiting rubber elasticity. Examples of the soft segment include a segment having a long-chain group (for example, a long-chain alkylene group) in the main chain, a high degree of molecular rotation freedom, and a stretchable structure.
- the resin-metal composite member for tires according to the present embodiment includes a metal member, an adhesive layer, and a covering resin layer in this order.
- the adhesive layer includes a polyester-based thermoplastic elastomer having a polar functional group, and the hard segment (HS) with respect to the total amount of the hard segment (HS) and the soft segment (SS) in the polyester-based thermoplastic elastomer having the polar functional group.
- Ratio [HS / (HS + SS)] (hereinafter also simply referred to as “HS ratio”) is 83 mol% or more and 98 mol% or less.
- metal members are used as reinforcing cords for reinforcing belt members wound around the outer periphery of the tire frame body, bead wires in beads that play a role of fixing to the tire rim, and the like.
- a normal tire skeleton body includes an elastic material such as rubber or resin.
- the metal member provided in the tire as described above has an elastic property such as a tire skeleton body from the viewpoint of improving the durability of the tire.
- an adhesive layer and a covering resin layer are provided in this order on the surface of the metal member, and are interposed between the metal member and the elastic material, thereby improving the adhesiveness.
- further improvement in adhesion specifically, adhesion durability
- tires may be placed in a humid heat environment during traveling, wet heat durability is also required.
- the present inventors made a resin metal composite member in which an adhesive layer and a coating resin layer are provided in this order on the surface of the metal member, and the adhesive layer contains a polyester-based thermoplastic elastomer having a polar functional group, It has been found that when the HS ratio [HS / (HS + SS)] is 83 mol% or more and 98 mol% or less, excellent adhesion durability and wet heat durability can be obtained. The reason is guessed as follows.
- the “polar functional group” refers to a group that exhibits chemical reactivity (so-called functionality) and causes charge bias (so-called polarity) in the molecule.
- the adhesive layer includes a polyester-based thermoplastic elastomer having a polar functional group. Therefore, due to the bias of the electric charge due to the polar functional group, an interaction occurs between the hydrated hydroxyl group present on the surface of the metal member and the polar functional group, and an attractive force is generated between the two. As a result, it is considered that high adhesion between the metal member and the adhesive layer can be obtained.
- the covering resin layer via the adhesive layer, the difference in rigidity between the metal member and the elastic material such as the tire frame can be reduced. Therefore, it is presumed that excellent adhesion durability can be realized as a resin-metal composite member provided with a metal member provided on a tire.
- the HS ratio of the polyester thermoplastic elastomer having a polar functional group contained in the adhesive layer is increased, the crystallinity of the elastomer tends to be increased.
- the water barrier property of the adhesive layer that is, the property of preventing moisture from passing through
- the HS ratio of the polyester-based thermoplastic elastomer having a polar functional group contained in the adhesive layer is increased, the elasticity of the adhesive layer is increased, that is, the rigidity is increased and the strength is improved. And, by improving the strength of the adhesive layer itself, the occurrence of breakage of the adhesive layer when a load is applied to the adhesive layer, the occurrence of misalignment at the interface of the adhesive layer, and the like are suppressed. As a result, the metal member and the adhesive layer It is inferred that high adhesion durability can be obtained.
- the HS ratio of the polyester-based thermoplastic elastomer having a polar functional group contained in the adhesive layer becomes too high, the weldability with the resin contained in the coating resin layer, that is, the compatibility in the heated and melted state, Inferior.
- HS ratio is the said range, it is excellent also in weldability with resin. That is, it is thought that high adhesiveness and wet heat durability are highly compatible by controlling the HS ratio of the polyester-based thermoplastic elastomer having a polar functional group contained in the adhesive layer within an appropriate range.
- the covering resin layer contains a polyester-based thermoplastic elastomer. That is, it is preferable that the same type of polyester-based thermoplastic elastomer is included in both the adhesive layer and the coating resin layer. Thereby, it is excellent in compatibility with the material for adhesive layers (mainly adhesive) and the material for coating resin layers (mainly resin), and it can be given well when coating resin on the adhesive layer surface. . Thereby, it is considered that high adhesion between the adhesive layer and the coating resin layer can be obtained.
- the ratio of the hard segment (HS) to the total amount of the hard segment (HS) and the soft segment (SS) [HS / (HS + SS)] is It is 83 mol% or more and 98 mol% or less.
- the HS ratio is 83 mol% or more, the degree of crystallinity and the elastic modulus tend to be high, and high adhesion and wet heat durability can be obtained.
- the HS ratio is 98 mol% or less, the weldability with the resin contained in the coating resin layer is excellent.
- HS ratio of the polyester-type thermoplastic elastomer which has a polar functional group is 85 mol% or more and 97 mol% or less, and it is more preferable that it is 87 mol% or more and 96 mol% or less.
- the method for adjusting the HS ratio in the polyester-based thermoplastic elastomer having a polar functional group is not particularly limited.
- a method of adjusting the HS ratio by a known method at a stage before the modification treatment can be mentioned.
- polyester-based thermoplastic elastomer having a required HS ratio for example, synthesis by a known method
- polyester-based thermoplastic elastomer for example, a saturated polyester-based thermoplastic elastomer
- the HS ratio in the polyester-based thermoplastic elastomer having a functional group can be adjusted.
- the HS ratio is measured by identifying a hard segment (HS) and a soft segment (SS) by a nuclear magnetic resonance (NMR) method. Specifically, the thermoplastic elastomer to be measured is dissolved in deuterated trifluoroacetic acid, and 1 H-NMR and 13 C-NMR are measured according to a conventional method. Next, each functional group is assigned, the structure of HS and SS is identified, and the ratio of HS and SS [HS / (HS + SS)] is obtained.
- NMR nuclear magnetic resonance
- the polyester thermoplastic elastomer having a polar functional group contained in the adhesive layer preferably has a crystallinity of 7% or more and 40% or less.
- the degree of crystallinity of the polyester-based thermoplastic elastomer having a polar functional group is preferably 8% or more and 37% or less, and more preferably 9% or more and 35% or less.
- the method for adjusting the crystallinity in the polyester-based thermoplastic elastomer having a polar functional group is not particularly limited.
- a method for adjusting the HS ratio specifically, the higher the HS ratio, the higher the degree of crystallinity
- a method for performing an annealing process specifically, the greater the amount of heat given by the annealing process, the more the crystal The degree of conversion tends to be high.
- the crystallinity means a value calculated from the area of the endothermic peak in a curve (so-called DSC curve) obtained by differential scanning calorimetry (DSC).
- the crystallinity is measured using a differential scanning calorimeter DSC according to ASTM D3418-8. Specifically, an object to be measured is placed on an aluminum pan, an empty pan is set as a control, and measurement is performed at a heating rate of 10 ° C./min.
- the melting point of indium and zinc is used to correct the temperature of the detection unit of the measuring apparatus, and the heat of fusion of indium is used to correct the amount of heat.
- the adhesive layer has a water permeability coefficient of 30 g ⁇ mm / m 2 or more and 330 g ⁇ mm / m 2 or less.
- the water permeability coefficient is 30 g ⁇ mm / m 2 or more, the weldability with the resin contained in the coating resin layer is excellent.
- the water permeability coefficient is 330 g ⁇ mm / m 2 or less, high wet heat durability is obtained.
- the water permeability coefficient of the adhesive layer is further preferably 31 g ⁇ mm / m 2 or more and 200 g ⁇ mm / m 2 or less, more preferably 32 g ⁇ mm / m 2 or more and 180 g ⁇ mm / m 2 or less. preferable.
- the method for adjusting the water permeability coefficient of the adhesive layer is not particularly limited.
- a method of adjusting the crystallinity of a polyester-based thermoplastic elastomer having a polar functional group contained specifically, the water permeability coefficient tends to increase as the crystallinity increases.
- the measurement of the water permeability coefficient is performed by measuring the moisture permeability according to JIS Z 0208: 1976 (moisture-proof packaging material moisture permeability test method (cup method), 80 ° C., 90% RH).
- the adhesive layer preferably has a tensile elastic modulus of 250 MPa to 1500 MPa.
- the tensile elastic modulus of the adhesive layer is preferably 300 MPa or more and 1200 MPa or less, and more preferably 350 MPa or more and 1000 MPa or less.
- the adhesive layer is preferably a layer having a smaller tensile elastic modulus than the coating resin layer.
- the method for adjusting the tensile elastic modulus of the adhesive layer is not particularly limited.
- a method of adjusting the HS ratio of a polyester-based thermoplastic elastomer having a polar functional group contained specifically, the tensile modulus tends to increase as the HS ratio increases
- selection of the kind of adhesive agent, such as a polyester-type thermoplastic elastomer which has a polar functional group selection of the kind of adhesive agent, such as a polyester-type thermoplastic elastomer which has a polar functional group, adjustment of the formation conditions and heat history (for example, heating temperature, heating time, etc.) of an adhesive layer, etc. are mentioned.
- the measurement of the tensile elasticity modulus of an contact bonding layer can be performed by the method similar to the tensile elasticity modulus of the coating resin layer mentioned later.
- the tensile modulus of the adhesive layer and E 1 when the tensile modulus of the coating resin layer was E 2, as the value of E 1 / E 2, for example, an 0.05 or more and 0.5 or less, 0.05 or more and 0.3 or less are preferable, and 0.05 or more and 0.2 or less are more preferable.
- E 1 / E 2 when the value of E 1 / E 2 is in the above range, the durability of the tire is excellent as compared with the case where the value is smaller than the above range, and the riding comfort during traveling is excellent as compared with the case where the value is larger than the above range.
- the resin-metal composite member has a structure in which a metal member, an adhesive layer, and a covering resin layer are arranged in this order.
- the shape of the resin / metal composite member is not particularly limited. Examples of the shape of the resin-metal composite member include a cord shape and a sheet shape.
- the resin-metal composite member examples include a reinforcing belt member disposed at a crown portion (that is, an outer peripheral portion) of a tire frame body included in a tire, a bead member that plays a role of fixing to a tire rim, and the like.
- a resin-metal composite member is used as a reinforcing belt member, a belt in which one or a plurality of cord-like resin-metal composite members are arranged along the circumferential direction of a tire on the outer peripheral portion of a tire frame body. Layer.
- a plurality of cord-like resin-metal composite members can be used as a crossing belt layer or the like that is disposed so as to cross each other at an angle with respect to the circumferential direction of the tire.
- the structure “having the metal member, the adhesive layer, and the coating resin layer in this order” includes, for example, a state in which the entire surface of the metal member is covered with the coating resin layer via the adhesive layer, And a state in which a part of the surface of the member is coated with a coating resin layer via an adhesive layer. At least in the region where the resin-metal composite member and the elastic member such as the tire frame body are in contact with each other, the metal member, the adhesive layer having a relatively larger tensile elastic modulus than the covering resin layer, and the covering resin layer are in this order. It is preferable to have an arranged structure.
- the resin-metal composite member may have other layers in addition to the metal member, the adhesive layer, and the coating resin layer. However, from the viewpoint of adhesion between the metal member and the coating resin layer, the metal member and the adhesive layer are in direct contact with each other at least partially, and the adhesive layer and the coating resin layer are in direct contact with each other at least in part.
- the metal member is not particularly limited, and for example, a metal cord used for a conventional rubber tire can be used as appropriate.
- the metal cord include a monofilament (that is, a single wire) made of only one metal cord, and a multifilament (that is, a stranded wire) obtained by twisting a plurality of metal cords.
- the shape of the metal member is not limited to a linear shape (that is, a cord shape), and may be a plate-like metal member, for example.
- the metal member in the present embodiment is preferably a monofilament (that is, a single wire) or a multifilament (that is, a stranded wire), and more preferably a multifilament, from the viewpoint of further improving the durability of the tire.
- the cross-sectional shape and size (for example, diameter) of the metal member are not particularly limited, and those suitable for the desired tire can be appropriately selected and used.
- the metal member is a stranded wire of a plurality of cords
- the number of the plurality of cords is, for example, 2 to 10, preferably 5 to 9.
- the thickness of the metal member is preferably 0.2 mm to 2 mm, and more preferably 0.8 mm to 1.6 mm. Let the thickness of a metal member be the number average value of the thickness measured in five places chosen arbitrarily.
- the tensile elastic modulus of the metal member itself (hereinafter, unless otherwise specified, “elastic modulus” means a tensile elastic modulus) is usually about 100,000 MPa to 300,000 MPa, and may be 120,000 MPa to 270000 MPa. Preferably, it is 150,000 MPa to 250,000 MPa.
- the tensile modulus of the metal member is calculated from the slope of a stress-strain curve drawn on a tensile tester using a ZWICK type chuck.
- the breaking elongation (that is, tensile breaking elongation) of the metal member itself is usually about 0.1% to 15%, preferably 1% to 15%, and more preferably 1% to 10%.
- the tensile elongation at break of a metal member can be obtained from the strain by drawing a stress-strain curve using a ZWICK chuck with a tensile tester.
- the adhesive layer is disposed between the metal member and the coating resin layer, and includes a polyester-based thermoplastic elastomer having a polar functional group.
- the polar functional group examples include an epoxy group (the group shown in the following (1), wherein R 11 , R 12 and R 13 each independently represents a hydrogen atom or an organic group (eg, an alkyl group)), a carboxy group (—COOH) And its anhydride group, amino group (—NH 2 ), isocyanate group (—NCO), hydroxy group (—OH), imino group ( ⁇ NH), silanol group (—SiOH) and the like.
- the “anhydride group” means an anhydride group in which H 2 O is removed from two carboxy groups (an anhydride group shown in (2-1) below, where R 21 is a single bond or a substituted group).
- the anhydride group shown in the following (2-1) becomes a state shown in the following (2-2), that is, a state having two carboxy groups, when H 2 O is given.
- an epoxy group, a carboxy group and its anhydride group, a hydroxy group, and an amino group are preferable, and an epoxy group, a carboxy group and its anhydride group, and an amino group are more preferable. preferable.
- a polyester-based thermoplastic elastomer having a polar functional group can be obtained by modifying a polyester-based thermoplastic elastomer (TPC) with a compound having a group that becomes a polar functional group (that is, a derivative).
- TPC polyester-based thermoplastic elastomer
- a compound having a group that becomes a polar functional group and a reactive group eg, an unsaturated group such as an ethylenic carbon-carbon double bond
- a polyester thermoplastic elastomer It can be obtained by bonding (for example, addition reaction or graft reaction).
- Examples of the derivative that modifies the polyester-based thermoplastic elastomer include, for example, an epoxy compound having a reactive group, an unsaturated carboxylic acid (for example, methacrylic acid, maleic acid, fumaric acid, and Itaconic acid etc.), unsaturated carboxylic acid anhydrides (eg maleic anhydride, citraconic anhydride, itaconic anhydride, glutaconic anhydride etc.), carboxylic acids having other reactive groups and their anhydrides, reactive groups Examples include amine compounds, isocyanate compounds having reactive groups, alcohols having reactive groups, silane compounds having reactive groups, and derivatives thereof.
- an epoxy compound having a reactive group an unsaturated carboxylic acid (for example, methacrylic acid, maleic acid, fumaric acid, and Itaconic acid etc.), unsaturated carboxylic acid anhydrides (eg maleic anhydride, citraconic anhydride, itaconic anhydride, glutaconic anhydride etc.), carboxylic
- the ratio of the hard segment (HS) to the total amount of the hard segment (HS) and the soft segment (SS) [HS / (HS + SS)] (HS ratio) of the polyester-based thermoplastic elastomer having a polar functional group is 83 mol. % Or more and 98 mol% or less.
- the HS ratio is preferably adjusted by a known method at a stage before the modification treatment.
- Synthesis method a method for synthesizing a polyester-based thermoplastic elastomer having a polar functional group (hereinafter also simply referred to as “polar group-containing TPC”) will be specifically described.
- polar group-containing TPC a method of modifying a polyester-based thermoplastic elastomer (TPC) with an unsaturated carboxylic acid or an anhydride thereof will be described.
- a polar group-containing TPC (that is, a polyester-based thermoplastic elastomer having a polar functional group) is obtained by, for example, modifying a melt of a saturated polyester-based thermoplastic elastomer containing a polyalkylene ether glycol segment with an unsaturated carboxylic acid or a derivative thereof. Obtained
- Modification refers to graft modification of a saturated polyester thermoplastic elastomer containing a polyalkylene ether glycol segment with an unsaturated carboxylic acid or a derivative thereof, terminal modification and modification by transesterification, modification by decomposition reaction, and the like.
- a terminal functional group or an alkyl chain moiety is conceivable, particularly for the ether bond of the terminal carboxylic acid, terminal hydroxyl group and polyalkylene ether glycol segment. Examples include ⁇ -position and ⁇ -position carbon.
- the polyalkylene ether glycol segment has many bonds at the ⁇ -position with respect to the ether bond.
- Compounding material (A) Saturated polyester thermoplastic elastomer
- a saturated polyester thermoplastic elastomer is usually a block copolymer having a soft segment containing a polyalkylene ether glycol segment and a hard segment containing a polyester. It is.
- the content of the polyalkylene ether glycol segment in the saturated polyester thermoplastic elastomer is preferably 58 to 73% by mass, more preferably 60 to 70% by mass in the saturated polyester thermoplastic elastomer. .
- polyalkylene ether glycol constituting the soft segment
- the polyalkylene ether glycol includes at least one of 1,2-propylene ether and 1,3-propylene ether).
- the polyalkylene ether glycol preferably has a number average molecular weight of 400 to 6,000, more preferably 600 to 4,000, and particularly preferably 1,000 to 3,000. is there.
- the “number average molecular weight” here is measured by gel permeation chromatography (GPC).
- GPC gel permeation chromatography
- the saturated polyester-based thermoplastic elastomer is, for example, i) at least one selected from aliphatic diols having 2 to 12 carbon atoms and alicyclic diols; ii) aromatic dicarboxylic acids and alicyclic dicarboxylic acids and their Obtained by polycondensing oligomers obtained by esterification or transesterification using at least one selected from alkyl esters and iii) polyalkylene ether glycol having a number average molecular weight of 400 to 6,000 as raw materials be able to.
- aliphatic diol having 2 to 12 carbon atoms and the alicyclic diol having 2 to 12 carbon atoms those usually used as raw materials for polyesters, particularly polyester thermoplastic elastomers, can be used.
- polyester thermoplastic elastomers ethylene glycol, propylene glycol, trimethylene glycol, 1,4-butanediol, 1,4-cyclohexanediol, 1,4-cyclohexanedimethanol and the like can be mentioned.
- 1,4-butanediol and ethylene glycol are preferable, and 1,4-butanediol is particularly preferable.
- These diols can be used singly or as a mixture of two or more.
- aromatic dicarboxylic acid and the alicyclic dicarboxylic acid those generally used as raw materials for polyester, particularly polyester thermoplastic elastomers, can be used.
- examples include terephthalic acid, isophthalic acid, phthalic acid, 2,6-naphthalenedicarboxylic acid, and cyclohexanedicarboxylic acid.
- terephthalic acid and 2,6-naphthalenedicarboxylic acid are preferable, and terephthalic acid is particularly preferable.
- these dicarboxylic acids may be used alone or in combination of two or more.
- dimethyl ester or diethyl ester of the above dicarboxylic acid is used.
- dimethyl terephthalate and 2,6-dimethyl naphthalate are preferable.
- trifunctional triols, tricarboxylic acids, and esters thereof may be copolymerized in a small amount.
- aliphatic dicarboxylic acids such as adipic acid and dialkyl esters thereof can be used as the copolymerization component.
- polyester thermoplastic elastomers include “Primalloy” manufactured by Mitsubishi Chemical Corporation, “Perprene” manufactured by Toyobo Co., Ltd., “Hytrel” manufactured by Toray DuPont Co., Ltd., and the like.
- Unsaturated carboxylic acid or derivative thereof includes, for example, acrylic acid, maleic acid, fumaric acid, tetrahydrophthalic acid, itaconic acid, citraconic acid, crotonic acid, and isocrotonic acid.
- Unsaturated carboxylic acid anhydride and methyl (meth) acrylate, ethyl (meth) acrylate, propyl (meth) acrylate, butyl (meth) acrylate, hexyl (meth) acrylate, octyl (meth) acrylate , 2-ethylhexyl (meth) acrylate, lauryl (meth) acrylate, stearyl (meth) acrylate, glycidyl methacrylate, dimethyl maleate, maleic acid To 2-ethylhexyl), and 2-unsaturated carboxylic acid esters of hydroxyethyl methacrylate, and the like.
- unsaturated carboxylic acid anhydrides are preferred. What is necessary is just to select the compound which has these unsaturated bonds suitably according to the copolymer containing the polyalkylene ether glycol segment which should be modified
- the compound having an unsaturated bond can be added after being dissolved in an organic solvent or the like.
- (C) Radical generator As the radical generator used for performing the radical reaction in the modification treatment, for example, t-butyl hydroperoxide, cumene hydroperoxide, 2,5-dimethylhexane-2,5-dihydro Peroxide, 2,5-dimethyl-2,5-bis (tertiarybutyloxy) hexane, 3,5,5-trimethylhexanoyl peroxide, t-butylperoxybenzoate, benzoyl peroxide, dicumyl peroxide Organic and inorganic peroxides such as 1,3-bis (t-butylperoxyisopropyl) benzene, dibutyl peroxide, methyl ethyl ketone peroxide, potassium peroxide, and hydrogen peroxide; 2,2′-azobisisobutyl Ronitrile, 2,2'-azobis (isobutyramide) Halides, 2,2'-azobis [2-methyl-N-(2-hydroxyethyl)
- radical generators may be appropriately selected according to the type of the saturated polyester thermoplastic elastomer containing the polyalkylene ether glycol segment used in the modification treatment, the type of the unsaturated carboxylic acid or its derivative, the modification conditions, and the like. . Moreover, you may use only by 1 type and may use 2 or more types together.
- the radical generator can also be added after being dissolved in an organic solvent or the like. In order to further improve the adhesion, not only a radical generator but also a compound having an unsaturated bond (that is, the following (D)) can be used in combination as a modification aid.
- the compound having an unsaturated bond means a compound having a carbon-carbon multiple bond other than the (B) unsaturated carboxylic acid or derivative thereof, specifically, styrene.
- vinyl aromatic monomers such as methylstyrene, ethylstyrene, isopropylstyrene, phenylstyrene, o-methylstyrene, 2,4-dimethylstyrene, o-chlorostyrene, and o-chloromethylstyrene. Improvement of the modification efficiency can be expected by these blends.
- Arbitrary components can be mix
- additives such as lubricants, anti-fogging agents, anti-blocking agents, slip agents, crosslinking agents, crosslinking aids, colorants, flame retardants, dispersants, antistatic agents, antibacterial agents, and fluorescent whitening agents can do.
- the adhesive layer preferably contains a polyester-based thermoplastic elastomer having a polar functional group (polar group-containing TPC) in an amount of 50% by mass or more, more preferably 60% by mass or more, and 75 The mass% or more is more preferable.
- polar group-containing TPC polar group-containing TPC
- the blending ratio of each component constituting the polar group-containing TPC is preferably (B) an unsaturated carboxylic acid or its derivative with respect to 100 parts by weight of the (A) saturated polyester-based thermoplastic elastomer. 0.01 to 30 parts by mass, more preferably 0.05 to 5 parts by mass, still more preferably 0.1 to 2 parts by mass, and particularly preferably 0.1 to 1 part by mass.
- the (C) radical generator is preferably 0.001 to 3 parts by weight, more preferably 0.005 to 0.5 parts by weight, and more preferably 100 parts by weight of the (A) saturated polyester thermoplastic elastomer.
- the blending ratio is preferably 0.01 to 0.2 parts by weight, particularly preferably 0.01 to 0.1 parts by weight.
- the amount of modification of the polar group-containing TPC by infrared absorption spectroscopy is desirably 0.01 to 15, preferably 0.03 to 2.5 in terms of the following formula A 1786 / (Ast ⁇ r). More preferably, it is 0.1 to 2.0, and particularly preferably 0.2 to 1.8.
- a 1786 is a peak intensity of 1786 cm ⁇ 1 measured on a 20 ⁇ m thick film of TPC containing polar groups.
- Ast is the peak intensity of the standard wave number measured on a 20 ⁇ m thick film of a standard sample (that is, a saturated polyester elastomer having a polyalkylene ether glycol segment content of 65 mass%).
- r is a value obtained by dividing the mole fraction of the polyester segment in the polar group-containing TPC by the mole fraction of the polyester segment in the standard sample.
- a method for determining the value of the modification amount of the polar group-containing TPC by the infrared absorption spectrum method is as follows. That is, a film sample having a thickness of 20 ⁇ m is dried under reduced pressure at 100 ° C. for 15 hours to remove unreacted substances, and an infrared absorption spectrum is measured. From the obtained spectrum, an absorption peak due to stretching vibration of an acid anhydride-derived carbonyl group appearing at 1786 cm ⁇ 1 (note that a tangent line connecting the mountain hems on both sides of the absorption band in the range of 1750 to 1820 cm ⁇ 1 is defined as a baseline. The peak height is calculated as “peak intensity A 1786 ”.
- an infrared absorption spectrum is measured in the same manner for a 20 ⁇ m thick film of a standard sample (that is, a saturated polyester elastomer having a polyalkylene ether glycol segment content of 65 mass%).
- a peak of a normal wave number for example, in the case of an aromatic polyester elastomer containing a benzene ring, an absorption peak due to the CH out-of-plane variation angle of the benzene ring appearing at 872 cm ⁇ 1 (still 850 to 900 cm ⁇
- the peak height of the tangent line connecting the mountain hems on both sides of the absorption band in the range of 1 is used as a base line, and is defined as “peak intensity As”.
- the peak of the reference wave number may be selected from those derived from hard segments that are not affected by denaturation and do not have an absorption peak overlapping in the vicinity thereof. From these two peak intensities, the amount of modification by the infrared absorption spectrum method is calculated according to the above formula. In that case, as r, the value which remove
- Blending method Synthesis of polar group-containing TPC is, for example, modifying (A) a saturated polyester thermoplastic elastomer with (B) an unsaturated carboxylic acid or a derivative thereof in the presence of (C) a radical generator. Done in At this time, it is preferable to use the component (A) as a melt because the reaction with the component (B) can be performed more efficiently and sufficient modification is realized.
- a method of preliminarily mixing the component (B) with the non-molten component (A) and then melting the component (A) to react with the component (B) can be preferably used.
- a melt kneading method using the kneader which can give sufficient shearing stress.
- a kneading machine used in the melt kneading method a normal kneading machine such as a mixing roll, a sigma type kneading machine with rotary blades, a Banbury mixer, a high-speed biaxial continuous mixer, and a uniaxial, biaxial or multi-axial extruder type kneader Any machine can be selected.
- a twin screw extruder is preferable because of high reaction efficiency and low manufacturing cost.
- Melt kneading is a powdery or granular component (A), component (B) and component (C), and, if necessary, component (D), and the other ingredients mentioned as the additional compounding material (optional component) It is also possible to carry out the compounding agent after uniformly mixing with a Henschel mixer, a ribbon blender, a V-type blender or the like at a predetermined blending ratio.
- the kneading temperature of each component is preferably in the range of 100 ° C. to 300 ° C., more preferably in the range of 120 ° C. to 280 ° C., taking into account the thermal degradation of component (A) and the half-life temperature of component (C). The range of 150 ° C. to 250 ° C.
- the optimum kneading temperature is a temperature range from a temperature 20 ° C. higher than the melting point of the component (A) to the melting point.
- the kneading order and method of each component are not particularly limited, and the component (A), the component (B) and the component (C), and additional compounding materials such as the component (D) are collectively included.
- a kneading method may be used.
- a method may be used in which a part of the components (A) to (D) is kneaded and then the remaining components including additional compounding materials are kneaded.
- component (C) is blended, it is preferable to add it simultaneously with component (B) and component (D) from the viewpoint of improving adhesiveness.
- the melting point of the polyester-based thermoplastic elastomer having a polar functional group is preferably from 160 ° C to 230 ° C, more preferably from 180 ° C to 227 ° C, and further preferably from 190 ° C to 225 ° C. preferable.
- the melting point is 160 ° C. or higher, the heat resistance against heating during tire manufacture (for example, heating during vulcanization) is excellent.
- the melting point is in the above range, when the polyester resin is contained in the coating resin layer, it becomes easy to obtain a melting point close to that of the polyester thermoplastic elastomer.
- the melting point of the polar group-containing TPC refers to a temperature at which an endothermic peak is obtained in a curve (so-called DSC curve) obtained by differential scanning calorimetry (DSC).
- the melting point is measured using a differential scanning calorimeter DSC according to JIS K 7121: 2012. The measurement can be performed, for example, using “DSC Q100” of TA Instruments Co., Ltd. at a sweep rate of 10 ° C./min.
- the average thickness of the adhesive layer is not particularly limited, but is preferably 5 ⁇ m to 500 ⁇ m, more preferably 20 ⁇ m to 150 ⁇ m, and more preferably 20 ⁇ m to 100 ⁇ m from the viewpoint of riding comfort during running and tire durability. More preferably.
- the average thickness of the adhesive layer is obtained by obtaining SEM images of cross sections obtained by cutting the resin-metal composite member along the stacking direction of the metal member, the adhesive layer, and the coating resin layer from arbitrary five locations. The number average value of the thickness of the adhesive layer measured from the image is used. The thickness of the adhesive layer in each SEM image is the thinnest part (that is, the part where the distance between the interface between the metal member and the adhesive layer and the interface between the adhesive layer and the coating resin layer is minimum). The value to be measured.
- the average thickness of the adhesive layer and T 1 when the average thickness of the resin coating layer was T 2, as the value of T 1 / T 2, for example, an 0.1 to 0.5, 0. 1 or more and 0.4 or less are preferred, and 0.1 or more and 0.35 or less are more preferred.
- T 1 / T 2 when the value of T 1 / T 2 is in the above range, the ride comfort during running is superior to that in the case where the value is smaller than the above range, and the durability of the tire is excellent in comparison with the case where the value is larger than the above range.
- the material of the coating resin layer is not particularly limited, and for example, at least one thermoplastic material selected from the group consisting of a thermoplastic resin and a thermoplastic elastomer can be used.
- the coating resin layer desirably contains a thermoplastic elastomer from the viewpoint of ease of molding and adhesiveness to the adhesive layer.
- the covering resin layer contains a polyester-based thermoplastic elastomer among the thermoplastic elastomers. Since the adhesive layer contains a polyester-based thermoplastic elastomer having a polar functional group, the coating resin layer contains the polyester-based thermoplastic elastomer, so that the adhesive layer material (mainly an adhesive) and the coating resin layer are used. Excellent compatibility with materials (mainly resin). Thereby, it is considered that the adhesion at the surface of the adhesive layer is excellent and the high adhesion between the adhesive layer and the coating resin layer can be obtained.
- the polyester-based thermoplastic elastomer preferably includes a polyester-based thermoplastic elastomer having no polar functional group, and more preferably includes an unmodified polyester-based thermoplastic elastomer.
- the coating resin layer includes a polyester-based thermoplastic elastomer (preferably a polyester-based thermoplastic elastomer having no polar functional group)
- it is preferably included in an amount of 50% by mass or more with respect to the entire coating resin layer, and 60% by mass or more. Is more preferable, and 70 mass% or more is still more preferable.
- the polyester-based thermoplastic elastomer is the same as the polyester-based thermoplastic elastomer used in the tire skeleton described later, and the preferred embodiment is also the same. Therefore, detailed description is omitted here.
- the melting point of the polyester-based thermoplastic elastomer is preferably 160 ° C or higher and 230 ° C or lower, more preferably 180 ° C or higher and 227 ° C or lower, and further preferably 190 ° C or higher and 225 ° C or lower. .
- the melting point is 160 ° C. or higher, the heat resistance against heating during tire manufacture (for example, heating during vulcanization) is excellent.
- the more excellent adhesiveness is acquired by setting it as near melting
- fusing point of the polyester-type thermoplastic elastomer contained in a coating resin layer is performed by the method similar to the above-mentioned polar group containing TPC.
- thermoplastic elastomers examples include polyamide-based thermoplastic elastomers, polystyrene-based thermoplastic elastomers, polyurethane-based thermoplastic elastomers, and olefin-based thermoplastic elastomers. These may be used alone or in combination of two or more.
- thermoplastic elastomer polystyrene-based thermoplastic elastomer, polyurethane-based thermoplastic elastomer, and olefin-based thermoplastic elastomer are the same as the thermoplastic elastomer used for the tire frame described later, and the preferred embodiments are also the same. Therefore, detailed description is omitted here.
- thermoplastic resin examples include polyamide-based thermoplastic resins, polyester-based thermoplastic resins, olefin-based thermoplastic resins, polyurethane-based thermoplastic resins, vinyl chloride-based thermoplastic resins, and polystyrene-based thermoplastic resins. Can do. These may be used alone or in combination of two or more.
- polyamide-based thermoplastic resin examples include a polyamide that forms a hard segment of a polyamide-based thermoplastic elastomer used in a tire skeleton, which will be described later.
- polyamide-based thermoplastic resins include polyamide (amide 6) obtained by ring-opening polycondensation of ⁇ -caprolactam, polyamide (amide 11) obtained by ring-opening polycondensation of undecane lactam, and ring-opening polycondensation of lauryl lactam.
- the amide 6 can be represented by, for example, ⁇ CO— (CH 2 ) 5 —NH ⁇ n .
- the amide 11 can be represented by ⁇ CO— (CH 2 ) 10 —NH ⁇ n , for example.
- the amide 12 can be represented by, for example, ⁇ CO— (CH 2 ) 11 —NH ⁇ n .
- the amide 66 can be represented by ⁇ CO (CH 2 ) 4 CONH (CH 2 ) 6 NH ⁇ n , for example.
- Amide MX can be represented, for example, by the following structural formula (A-1). Here, n represents the number of repeating units.
- amide 6 As a commercially available product of amide 6, for example, “UBE nylon” series (for example, 1022B and 1011FB) manufactured by Ube Industries, Ltd. can be used. As a commercially available product of amide 11, for example, “Rilsan B” series manufactured by Arkema Co., Ltd. can be used. As a commercially available product of amide 12, for example, “UBE nylon” series (for example, 3024U, 3020U, and 3014U) manufactured by Ube Industries, Ltd. can be used. As a commercially available product of amide 66, for example, “UBE nylon” series (for example, 2020B and 2015B) manufactured by Ube Industries, Ltd. can be used. As a commercially available product of amide MX, for example, “MX nylon” series (for example, S6001, S6021, S6011, etc.) manufactured by Mitsubishi Gas Chemical Co., Ltd. can be used.
- MX As a commercially available product of amide MX, for example, “MX nylon
- the polyamide-based thermoplastic resin may be a homopolymer consisting only of the above structural unit, or may be a copolymer of the above structural unit and another monomer. In the case of a copolymer, it is preferable that the content rate of the said structural unit in each polyamide-type thermoplastic resin is 40 mass% or more.
- polyester-based thermoplastic resin examples include a polyester that forms a hard segment of a polyester-based thermoplastic elastomer used for a tire skeleton, which will be described later.
- Specific examples of the polyester-based thermoplastic resin include polylactic acid, polyhydroxy-3-butylbutyric acid, polyhydroxy-3-hexylbutyric acid, poly ( ⁇ -caprolactone), polyenantlactone, polycaprylolactone, and polybutylene.
- examples thereof include aliphatic polyesters such as adipate and polyethylene adipate; and aromatic polyesters such as polyethylene terephthalate, polybutylene terephthalate, polyethylene naphthalate, and polybutylene naphthalate.
- polybutylene terephthalate is preferable as the polyester-based thermoplastic resin.
- polyester-based thermoplastic resins examples include “Duranex” series (for example, 2000 and 2002) manufactured by Polyplastics Co., Ltd. and “Novaduran” series (for example, manufactured by Mitsubishi Engineering Plastics Co., Ltd.) , 5010R5, 5010R3-2, etc.) and “Toraycon” series (for example, 1401X06, 1401X31 etc.) manufactured by Toray Industries, Inc. can be used.
- the olefinic thermoplastic resin examples include polyolefin that forms a hard segment of an olefinic thermoplastic elastomer used in a tire skeleton described later.
- Specific examples of the olefin-based thermoplastic resin include a polyethylene-based thermoplastic resin, a polypropylene-based thermoplastic resin, and a polybutadiene-based thermoplastic resin.
- the olefin thermoplastic resin is preferably a polypropylene thermoplastic resin.
- polypropylene-based thermoplastic resin examples include a propylene homopolymer, a propylene- ⁇ -olefin random copolymer, a propylene- ⁇ -olefin block copolymer, and the like.
- Examples of the ⁇ -olefin include propylene, 1-butene, 1-pentene, 3-methyl-1-butene, 1-hexene, 4-methyl-1-pentene, 3-methyl-1-pentene, 1-heptene, Examples thereof include ⁇ -olefins having about 3 to 20 carbon atoms such as 1-octene, 1-decene, 1-dodecene, 1-tetradecene, 1-hexadecene, 1-octadecene, and 1-eicocene.
- the coating resin layer may contain components other than the thermoplastic resin and the thermoplastic elastomer.
- components other than the thermoplastic resin and the thermoplastic elastomer include rubber, various fillers (for example, silica, calcium carbonate, clay, etc.), anti-aging agents, oils, plasticizers, color formers, weathering agents, and the like.
- the average thickness of the coating resin layer is not particularly limited. From the viewpoint of excellent durability and weldability, it is preferably 10 ⁇ m or more and 1000 ⁇ m or less, and more preferably 50 ⁇ m or more and 700 ⁇ m or less.
- the average thickness of the coating resin layer was obtained by obtaining SEM images of cross sections obtained by cutting the resin-metal composite member along the lamination direction of the metal member, the adhesive layer, and the coating resin layer from arbitrary five locations. The number average value of the thickness of the coating resin layer measured from the SEM image is used. The thickness of the coating resin layer in each SEM image is measured at the thinnest portion (that is, the portion where the distance between the interface between the adhesive layer and the coating resin layer and the outer edge of the resin-metal composite member is minimum). Value.
- the tensile elastic modulus of the coating resin layer is preferably larger than the tensile elastic modulus of the adhesive layer.
- the tensile elastic modulus of the coating resin layer is, for example, 50 MPa or more and 1000 MPa or less, and is preferably 50 MPa or more and 800 MPa or less, and more preferably 50 MPa or more and 700 MPa or less from the viewpoint of riding comfort and running performance.
- the tensile elastic modulus of the coating resin layer can be controlled by, for example, the type of resin contained in the coating resin layer.
- the tensile modulus is measured according to JIS K7113: 1995.
- Shimadzu Autograph AGS-J 5KN
- Shimadzu Corporation the tensile velocity is set to 100 mm / min, and the tensile elastic modulus is measured.
- a measurement sample of the same material as that of the coating resin layer may be separately prepared and the elasticity modulus may be measured.
- the tire according to this embodiment includes an annular tire skeleton including an elastic material, and the resin-metal composite member for tire according to the above-described embodiment.
- the resin-metal composite member for tire is used as, for example, a reinforcing belt member and a bead member that are wound around the outer periphery of the tire frame body in the circumferential direction.
- the tire skeleton constituting the tire according to the present embodiment will be described.
- the tire frame includes an elastic material. That is, examples of the tire skeleton include an aspect including a rubber material as an elastic material (a so-called tire skeleton for a rubber tire), an aspect including a resin material as an elastic material (a so-called tire skeleton for a resin tire), and the like. .
- the rubber material only needs to contain at least rubber (that is, a rubber component), and may contain other components such as additives as long as the effects of the present disclosure are not impaired.
- the content of rubber (that is, the rubber component) in the tire skeleton is preferably 50% by mass or more, and more preferably 90% by mass or more with respect to the entire tire skeleton.
- the tire frame body can be formed using, for example, a rubber material.
- the rubber component used in the tire frame is not particularly limited, and natural rubber and various synthetic rubbers that are conventionally used for rubber blending can be used alone or in combination of two or more.
- a rubber as shown below or a blend of two or more of these can be used.
- the natural rubber may be a sheet rubber or a block rubber, and all of RSS # 1 to # 5 can be used.
- various diene-based synthetic rubbers, diene-based copolymer rubbers, special rubbers, modified rubbers, and the like can be used.
- copolymers of butadiene and aromatic vinyl compounds for example, SBR and NBR
- copolymers of butadiene and other diene compounds for example, polybutadiene (BR), copolymers of butadiene and aromatic vinyl compounds (for example, SBR and NBR), and copolymers of butadiene and other diene compounds.
- IR Polyisoprene
- CR chloroprene rubber
- IIR butyl rubber
- X-IIR halogenated butyl rubber
- EPM ethylene-propylene copolymer rubber
- EPDM ethylene-propylene-diene copolymer rubber
- the rubber material used for the tire frame may be added with other components such as additives depending on the purpose.
- additives include reinforcing materials such as carbon black, fillers, vulcanizing agents, vulcanization accelerators, fatty acids or salts thereof, metal oxides, process oils, and anti-aging agents. Can be blended.
- a tire skeleton including a rubber material is obtained by, for example, molding an unvulcanized rubber material in which the rubber included is in an unvulcanized state into the shape of a tire skeleton, and then vulcanizing the rubber by heating. can get.
- the resin material only needs to contain at least a resin (that is, a resin component), and may contain other components such as an additive as long as the effects of the present disclosure are not impaired.
- the content of the resin (that is, the resin component) in the tire frame body is preferably 50% by mass or more, and more preferably 90% by mass or more with respect to the entire tire frame body.
- the tire skeleton can be formed using, for example, a resin material.
- the resin contained in the tire skeleton examples include thermoplastic resins, thermoplastic elastomers, and thermosetting resins. From the viewpoint of ride comfort during traveling, the resin material preferably includes a thermoplastic elastomer, and more preferably includes a polyamide-based thermoplastic elastomer.
- thermosetting resin examples include phenol-based thermosetting resins, urea-based thermosetting resins, melamine-based thermosetting resins, and epoxy-based thermosetting resins. These thermosetting resins may be used alone or in combination of two or more.
- thermoplastic resin examples include polyamide-based thermoplastic resins, polyester-based thermoplastic resins, olefin-based thermoplastic resins, polyurethane-based thermoplastic resins, vinyl chloride-based thermoplastic resins, and polystyrene-based thermoplastic resins. . These thermoplastic resins may be used alone or in combination of two or more.
- thermoplastic resin is preferably at least one selected from polyamide-based thermoplastic resins, polyester-based thermoplastic resins, and olefin-based thermoplastic resins, and is selected from polyamide-based thermoplastic resins and olefin-based thermoplastic resins. More preferably, at least one selected from the group consisting of
- thermoplastic elastomer examples include polyamide thermoplastic elastomer (TPA), polystyrene thermoplastic elastomer (TPS), polyurethane thermoplastic elastomer (TPU), and olefin thermoplastic elastomer (TPO) defined in JIS K6418: 2007. ), Polyester-based thermoplastic elastomer (TPEE), crosslinked thermoplastic rubber (TPV), and other thermoplastic elastomers (TPZ).
- TPA polyamide thermoplastic elastomer
- TPS polystyrene thermoplastic elastomer
- TPU polyurethane thermoplastic elastomer
- TPO olefin thermoplastic elastomer
- TPO olefin thermoplastic elastomer
- TPEE Polyester-based thermoplastic elastomer
- TPV crosslinked thermoplastic rubber
- TPZ thermoplastic elastomers
- thermoplastic elastomer it is preferable from an adhesive viewpoint to use resin of the same kind as the coating resin layer contained in a resin metal composite member.
- the coating resin layer includes a polyester-based thermoplastic resin or thermoplastic elastomer
- the coating resin layer includes a polyamide-based thermoplastic resin or thermoplastic elastomer
- the polyamide-based thermoplastic elastomer is a thermoplastic resin comprising a copolymer having a crystalline polymer having a high melting point and a non-crystalline polymer having a low glass transition temperature. It means a material having an amide bond (—CONH—) in the main chain of the polymer forming the hard segment.
- a soft segment in which at least polyamide is crystalline and a high melting point is formed and another polymer (for example, polyester or polyether) is amorphous and has a low glass transition temperature.
- the material which forms is mentioned.
- the polyamide-based thermoplastic elastomer may be formed using a chain extender such as dicarboxylic acid in addition to the hard segment and the soft segment.
- a chain extender such as dicarboxylic acid
- Specific examples of the polyamide-based thermoplastic elastomer include an amide-based thermoplastic elastomer (TPA) defined in JIS K6418: 2007, and a polyamide-based elastomer described in JP-A-2004-346273. .
- examples of the polyamide forming the hard segment include polyamides produced by monomers represented by the following general formula (1) or general formula (2).
- R 1 represents a molecular chain of a hydrocarbon having 2 to 20 carbon atoms (for example, an alkylene group having 2 to 20 carbon atoms). ]
- R 2 represents a hydrocarbon molecular chain having 3 to 20 carbon atoms (for example, an alkylene group having 3 to 20 carbon atoms). ]
- R 1 is preferably a hydrocarbon molecular chain having 3 to 18 carbon atoms (for example, an alkylene group having 3 to 18 carbon atoms), and a hydrocarbon molecular chain having 4 to 15 carbon atoms (for example, (Alkylene group having 4 to 15 carbon atoms) is more preferable, and a molecular chain of a hydrocarbon having 10 to 15 carbon atoms (for example, an alkylene group having 10 to 15 carbon atoms) is particularly preferable.
- R 2 is preferably a hydrocarbon molecular chain having 3 to 18 carbon atoms (eg, an alkylene group having 3 to 18 carbon atoms), and a hydrocarbon molecular chain having 4 to 15 carbon atoms.
- an alkylene group having 4 to 15 carbon atoms is more preferable, and a molecular chain of a hydrocarbon having 10 to 15 carbon atoms (for example, an alkylene group having 10 to 15 carbon atoms) is particularly preferable.
- the monomer represented by the general formula (1) or the general formula (2) include ⁇ -aminocarboxylic acid or lactam.
- the polyamide forming the hard segment include polycondensates of these ⁇ -aminocarboxylic acids or lactams, and copolycondensation polymers of diamines and dicarboxylic acids.
- Examples of ⁇ -aminocarboxylic acids include 6 to 20 carbon atoms such as 6-aminocaproic acid, 7-aminoheptanoic acid, 8-aminooctanoic acid, 10-aminocapric acid, 11-aminoundecanoic acid, and 12-aminododecanoic acid.
- Examples of the lactam include aliphatic lactams having 5 to 20 carbon atoms such as lauryl lactam, ⁇ -caprolactam, udecan lactam, ⁇ -enantolactam, and 2-pyrrolidone.
- diamine examples include ethylene diamine, trimethylene diamine, tetramethylene diamine, hexamethylene diamine, heptamethylene diamine, octamethylene diamine, nonamethylene diamine, decamethylene diamine, undecamethylene diamine, dodecamethylene diamine, 2, 2, 4
- diamine compounds such as aliphatic diamines having 2 to 20 carbon atoms such as trimethylhexamethylenediamine, 2,4,4-trimethylhexamethylenediamine, 3-methylpentamethylenediamine, and metaxylenediamine.
- the dicarboxylic acid can be represented by HOOC- (R 3 ) m —COOH (R 3 : a hydrocarbon molecular chain having 3 to 20 carbon atoms, m: 0 or 1).
- R 3 a hydrocarbon molecular chain having 3 to 20 carbon atoms, m: 0 or 1.
- oxalic acid, succinic acid And aliphatic dicarboxylic acids having 2 to 20 carbon atoms such as glutaric acid, adipic acid, pimelic acid, suberic acid, azelaic acid, sebacic acid, and dodecanedioic acid.
- a polyamide obtained by ring-opening polycondensation of lauryl lactam, ⁇ -caprolactam, or decane lactam can be preferably used.
- polyester, polyether, etc. are mentioned, for example.
- Specific examples include polyethylene glycol, polypropylene glycol, polytetramethylene ether glycol, and ABA type triblock polyether. These can be used alone or in combination of two or more.
- polyether diamine etc. which are obtained by making ammonia etc. react with the terminal of polyether can also be used.
- the “ABA type triblock polyether” means a polyether represented by the following general formula (3).
- each of x and z is preferably an integer of 1 to 18, more preferably an integer of 1 to 16, still more preferably an integer of 1 to 14, and particularly preferably an integer of 1 to 12.
- y is preferably an integer of 5 to 45, more preferably an integer of 6 to 40, still more preferably an integer of 7 to 35, and particularly preferably an integer of 8 to 30.
- combinations of the hard segment and the soft segment include a combination of a ring-opening polycondensate of lauryl lactam and polyethylene glycol, a combination of a ring-opening polycondensate of lauryl lactam and polypropylene glycol, and a ring opening of lauryl lactam.
- a combination of a polycondensate and a polytetramethylene ether glycol, or a ring-opening polycondensate of lauryl lactam and an ABA type triblock polyether is preferred, and a ring opening polycondensate of lauryl lactam and an ABA type triblock polyether The combination with is more preferable.
- the number average molecular weight of the polymer forming the hard segment is preferably 300 to 15000 from the viewpoint of melt moldability.
- the number average molecular weight of the polymer forming the soft segment is preferably 200 to 6000 from the viewpoint of toughness and low temperature flexibility.
- the mass ratio (x: y) of the hard segment (x) and the soft segment (y) is preferably 50:50 to 90:10, and preferably 50:50 to 80:20 from the viewpoint of moldability of the tire frame body. Is more preferable.
- the polyamide-based thermoplastic elastomer can be synthesized by copolymerizing a polymer forming a hard segment and a polymer forming a soft segment by a known method.
- Examples of commercially available products of polyamide-based thermoplastic elastomer include, for example, “UBESTA XPA” series (for example, XPA9063X1, XPA9055X1, XPA9048X2, XPA9048X1, XPA9040X1, XPA9040X2XPA9044, etc.) manufactured by Daicel Eponic Corporation. “Vestamide” series (for example, E40-S3, E47-S1, E47-S3, E55-S1, E55-S3, EX9200, E50-R2, etc.) can be used.
- Polyamide thermoplastic elastomer is suitable as a resin contained in a resin material in order to satisfy the performance required as a tire skeleton from the viewpoint of elastic modulus (that is, flexibility) and strength.
- polyamide-based thermoplastic elastomers often have good adhesion to thermoplastic resins and thermoplastic elastomers.
- polystyrene-based thermoplastic elastomer for example, at least polystyrene forms a hard segment, and other polymers (for example, polybutadiene, polyisoprene, polyethylene, hydrogenated polybutadiene, hydrogenated polyisoprene, etc.) Examples thereof include materials that form amorphous soft segment having a low glass transition temperature.
- polystyrene forming the hard segment for example, those obtained by a known radical polymerization method or ionic polymerization method are preferably used, and specifically, polystyrene having anion living polymerization can be mentioned.
- the polymer forming the soft segment include polybutadiene, polyisoprene, and poly (2,3-dimethyl-butadiene).
- the combination of the hard segment and the soft segment mentioned above can be mentioned.
- the combination of the hard segment and the soft segment is preferably a combination of polystyrene and polybutadiene or a combination of polystyrene and polyisoprene.
- the soft segment is preferably hydrogenated.
- the number average molecular weight of the polymer forming the hard segment is preferably from 5,000 to 500,000, more preferably from 10,000 to 200,000. Further, the number average molecular weight of the polymer forming the soft segment is preferably from 5,000 to 1,000,000, more preferably from 10,000 to 800,000, and even more preferably from 30,000 to 500,000. Further, the volume ratio (x: y) of the hard segment (x) and the soft segment (y) is preferably 5:95 to 80:20 from the viewpoint of moldability of the tire frame body, and 10:90 to 70:30. Is more preferable.
- the polystyrene-based thermoplastic elastomer can be synthesized by copolymerizing a polymer forming a hard segment and a polymer forming a soft segment by a known method.
- polystyrene-based thermoplastic elastomers include styrene-butadiene copolymers [for example, SBS (polystyrene-poly (butylene) block-polystyrene) and SEBS (polystyrene-poly (ethylene / butylene) block-polystyrene)], styrene.
- -Isoprene copolymer eg polystyrene-polyisoprene block-polystyrene
- styrene-propylene copolymer eg SEP (polystyrene- (ethylene / propylene) block), SEPS (polystyrene-poly (ethylene / propylene) block-polystyrene) ), SEEPS (polystyrene-poly (ethylene-ethylene / propylene) block-polystyrene), SEB (polystyrene (ethylene / butylene) block)] and the like.
- SEP polystyrene- (ethylene / propylene) block
- SEPS polystyrene-poly (ethylene / propylene) block-polystyrene
- SEEPS polystyrene-poly (ethylene-ethylene / propylene) block-polystyrene
- thermoplastic elastomers examples include “Tough Tech” series manufactured by Asahi Kasei Corporation (for example, H1031, H1041, H1043, H1051, H1052, H1053, H1062, H1082, H1141, H1221, and H1272).
- SEBS 8007, 8076, etc.
- SEPS SEPS
- thermoplastic elastomer As polyurethane-based thermoplastic elastomers, for example, at least polyurethane forms a hard segment in which pseudo-crosslinking is formed by physical aggregation, and other polymers form a soft segment with a low glass transition temperature that is amorphous. Material.
- Specific examples of the polyurethane-based thermoplastic elastomer include a polyurethane-based thermoplastic elastomer (TPU) defined in JIS K6418: 2007.
- TPU polyurethane-based thermoplastic elastomer
- the polyurethane-based thermoplastic elastomer can be represented as a copolymer including a soft segment including a unit structure represented by the following formula A and a hard segment including a unit structure represented by the following formula B.
- P represents a long-chain aliphatic polyether or a long-chain aliphatic polyester.
- R represents an aliphatic hydrocarbon, an alicyclic hydrocarbon, or an aromatic hydrocarbon.
- P ′ represents a short-chain aliphatic hydrocarbon, alicyclic hydrocarbon, or aromatic hydrocarbon.
- the long-chain aliphatic polyether or long-chain aliphatic polyester represented by P for example, those having a molecular weight of 500 to 5000 can be used.
- P is derived from a diol compound containing a long-chain aliphatic polyether represented by P or a long-chain aliphatic polyester.
- diol compounds include polyethylene glycol, polypropylene glycol, polytetramethylene ether glycol, poly (butylene abido) diol, poly- ⁇ -caprolactone diol, poly (hexamethylene carbonate) having a molecular weight within the above range.
- Diol, ABA type triblock polyether and the like These can be used alone or in combination of two or more.
- R is a partial structure introduced using a diisocyanate compound containing an aliphatic hydrocarbon, an alicyclic hydrocarbon, or an aromatic hydrocarbon represented by R.
- the aliphatic diisocyanate compound containing an aliphatic hydrocarbon represented by R include 1,2-ethylene diisocyanate, 1,3-propylene diisocyanate, 1,4-butane diisocyanate, 1,6-hexamethylene diisocyanate, and the like. Is mentioned.
- Examples of the diisocyanate compound containing an alicyclic hydrocarbon represented by R include 1,4-cyclohexane diisocyanate and 4,4-cyclohexane diisocyanate.
- examples of the aromatic diisocyanate compound containing an aromatic hydrocarbon represented by R include 4,4′-diphenylmethane diisocyanate and tolylene diisocyanate. These can be used alone or in combination of two or more.
- P ′ is derived from a diol compound containing a short-chain aliphatic hydrocarbon, alicyclic hydrocarbon, or aromatic hydrocarbon represented by P ′.
- Examples of the aliphatic diol compound containing a short-chain aliphatic hydrocarbon represented by P ′ include glycol and polyalkylene glycol.
- Examples of the alicyclic diol compound containing an alicyclic hydrocarbon represented by P ′ include cyclopentane-1,2-diol, cyclohexane-1,2-diol, cyclohexane-1,3-diol, Examples include cyclohexane-1,4-diol and cyclohexane-1,4-dimethanol.
- examples of the aromatic diol compound containing an aromatic hydrocarbon represented by P ′ include hydroquinone, resorcin, chlorohydroquinone, bromohydroquinone, methylhydroquinone, phenylhydroquinone, methoxyhydroquinone, phenoxyhydroquinone, 4,4′- Dihydroxybiphenyl, 4,4′-dihydroxydiphenyl ether, 4,4′-dihydroxydiphenyl sulfide, 4,4′-dihydroxydiphenylsulfone, 4,4′-dihydroxybenzophenone, 4,4′-dihydroxydiphenylmethane, bisphenol A, 1, Examples include 1-di (4-hydroxyphenyl) cyclohexane, 1,2-bis (4-hydroxyphenoxy) ethane, 1,4-dihydroxynaphthalene, and 2,6-dihydroxynaphthalene. These can be used alone or in combination of two or more.
- the number average molecular weight of the polymer forming the hard segment is preferably 300 to 1500 from the viewpoint of melt moldability.
- the number average molecular weight of the polymer forming the soft segment is preferably 500 to 20000, more preferably 500 to 5000, and particularly preferably 500 to 3000, from the viewpoints of flexibility and thermal stability of the polyurethane-based thermoplastic elastomer.
- the mass ratio (x: y) of the hard segment (x) and the soft segment (y) is preferably 15:85 to 90:10, and preferably 30:70 to 90:10 from the viewpoint of moldability of the tire frame body. Is more preferable.
- the polyurethane-based thermoplastic elastomer can be synthesized by copolymerizing a polymer forming a hard segment and a polymer forming a soft segment by a known method.
- a polyurethane-based thermoplastic elastomer for example, thermoplastic polyurethane described in JP-A-5-331256 can be used.
- a combination of a hard segment composed only of an aromatic diol and an aromatic diisocyanate and a soft segment composed only of a polycarbonate ester is preferable.
- TDI isocyanate
- polyester polyol copolymer TDI / polyether polyol copolymer, TDI / caprolactone polyol copolymer, TDI / polycarbonate polyol copolymer, 4,4′-diphenylmethane diisocyanate (MDI) / Polyester polyol copolymer, MDI / polyether polyol copolymer, MDI / caprolactone polyol copolymer, MDI / polycarbonate polyol copolymer, and MDI + hydroquinone / polyhexa At least one selected from methylene carbonate copolymers is preferred.
- TDI / polyester polyol copolymer TDI / polyether polyol copolymer
- MDI / polyester polyol copolymer MDI / polyether polyol copolymer
- MDI + hydroquinone / polyhexamethylene carbonate copolymer At least one selected from is more preferable.
- thermoplastic elastomers examples include, for example, “Elastolan” series (for example, ET680, ET880, ET690, and ET890) manufactured by BASF, and “Clamiron U” series manufactured by Kuraray Co., Ltd. (For example, 2000 series, 3000 series, 8000 series, 9000 series, etc.), “Milactolan” series (for example, XN-2001, XN-2004, P390RSUP, P480RSUI, P26MRNAT, E490, E590, etc.) manufactured by Japan Miraclan Co., Ltd. And P890 etc.) can be used.
- “Elastolan” series for example, ET680, ET880, ET690, and ET890
- BASF BASF
- Clamiron U manufactured by Kuraray Co., Ltd.
- Milactolan for example, XN-2001, XN-2004, P390RSUP, P480RSUI, P26MRNAT, E490, E
- thermoplastic elastomer for example, at least a polyolefin is crystalline and a hard segment having a high melting point is formed. Examples thereof include materials that form a soft segment having a crystallinity and a low glass transition temperature. Examples of the polyolefin forming the hard segment include polyethylene, polypropylene, isotactic polypropylene, and polybutene. Examples of olefinic thermoplastic elastomers include olefin- ⁇ -olefin random copolymers, olefin block copolymers, and the like.
- propylene block copolymer ethylene-propylene copolymer, propylene-1-hexene copolymer, propylene-4-methyl-1-pentene copolymer, propylene-1-butene copolymer, ethylene- 1-hexene copolymer, ethylene-4-methyl-pentene copolymer, ethylene-1-butene copolymer, 1-butene-1-hexene copolymer, 1-butene-4-methyl-pentene, ethylene- Methacrylic acid copolymer, ethylene-methyl methacrylate copolymer, ethylene-ethyl methacrylate copolymer, ethylene-butyl methacrylate copolymer, ethylene-methyl acrylate copolymer, ethylene-ethyl acrylate copolymer, ethylene -Butyl acrylate copolymer, propylene-methacrylic acid copolymer, propylene-methacrylic Meth
- thermoplastic elastomers include propylene block copolymers, ethylene-propylene copolymers, propylene-1-hexene copolymers, propylene-4-methyl-1-pentene copolymers, propylene-1- Butene copolymer, ethylene-1-hexene copolymer, ethylene-4-methyl-pentene copolymer, ethylene-1-butene copolymer, ethylene-methacrylic acid copolymer, ethylene-methyl methacrylate copolymer , Ethylene-ethyl methacrylate copolymer, ethylene-butyl methacrylate copolymer, ethylene-methyl acrylate copolymer, ethylene-ethyl acrylate copolymer, ethylene-butyl acrylate copolymer, propylene-methacrylic acid copolymer , Propylene-methyl methacrylate copolymer, pro Lene-e
- olefin resins such as ethylene and propylene may be used.
- 50 mass% or more and 100 mass% or less of the olefin resin content rate in an olefin type thermoplastic elastomer are preferable.
- the number average molecular weight of the olefinic thermoplastic elastomer is preferably 5,000 to 10,000,000.
- the mechanical properties of the thermoplastic resin material are sufficient and the processability is excellent.
- the number average molecular weight of the olefinic thermoplastic elastomer is more preferably 7,000 to 1,000,000, and particularly preferably 10,000 to 1,000,000. Thereby, the mechanical properties and processability of the thermoplastic resin material can be further improved.
- the number average molecular weight of the polymer forming the soft segment is preferably 200 to 6000 from the viewpoint of toughness and low temperature flexibility.
- the mass ratio (x: y) of the hard segment (x) and the soft segment (y) is preferably 50:50 to 95:15, and preferably 50:50 to 90:10 from the viewpoint of moldability of the tire frame body. Is more preferable.
- the olefinic thermoplastic elastomer can be synthesized by copolymerization by a known method.
- an olefinic thermoplastic elastomer obtained by acid modification may be used as the olefinic thermoplastic elastomer.
- a product obtained by acid-modifying an olefinic thermoplastic elastomer means that an unsaturated compound having an acidic group such as a carboxylic acid group, a sulfuric acid group, and a phosphoric acid group is bonded to the olefinic thermoplastic elastomer.
- bondsing unsaturated compounds having acidic groups such as carboxylic acid groups, sulfuric acid groups, and phosphoric acid groups to olefinic thermoplastic elastomers include, for example, as unsaturated compounds having acidic groups to olefinic thermoplastic elastomers.
- Bonding for example, graft polymerization
- an unsaturated bonding site of an unsaturated carboxylic acid for example, generally maleic anhydride
- the unsaturated compound having an acidic group is preferably an unsaturated compound having a carboxylic acid group which is a weak acid group from the viewpoint of suppressing deterioration of the olefin-based thermoplastic elastomer.
- acrylic acid, methacrylic acid, itaconic acid, croton Examples include acids, isocrotonic acid, and maleic acid.
- thermoplastic elastomers examples include “Tuffmer” series (for example, A0550S, A1050S, A4050S, A1070S, A4070S, A35070S, A1085S, A4085S, A7090, A70090, MH7007, MH7010, manufactured by Mitsui Chemicals, Inc.
- TPO "series (for example, E-2900H, F-3900H, E-2900, F-3900, J-5900, E-2910, F-3910, J-59 0, E-2710, F-3710, J-5910, E-2740, F-3740, R110MP, R110E, T310E, and M142E, etc.) and the like can also be used.
- thermoplastic elastomer for example, at least a polyester is crystalline and a hard segment having a high melting point is formed, and another polymer (eg, polyester or polyether) is amorphous and has a low glass transition temperature.
- the polyester-based thermoplastic elastomer for example, at least a polyester is crystalline and a hard segment having a high melting point is formed, and another polymer (eg, polyester or polyether) is amorphous and has a low glass transition temperature. The material which forms is mentioned.
- aromatic polyester can be used, for example.
- the aromatic polyester can be formed from, for example, an aromatic dicarboxylic acid or an ester-forming derivative thereof and an aliphatic diol.
- the aromatic polyester is preferably polybutylene terephthalate derived from at least one of terephthalic acid and dimethyl terephthalate and 1,4-butanediol.
- the aromatic polyester includes, for example, isophthalic acid, phthalic acid, naphthalene-2,6-dicarboxylic acid, naphthalene-2,7-dicarboxylic acid, diphenyl-4,4′-dicarboxylic acid, diphenoxyethanedicarboxylic acid, 5 -Dicarboxylic acid components such as sulfoisophthalic acid and ester-forming derivatives thereof, and diols having a molecular weight of 300 or less (for example, ethylene glycol, trimethylene glycol, pentamethylene glycol, hexamethylene glycol, neopentyl glycol, and decamethylene glycol) Aliphatic diols such as 1,4-cyclohexanedimethanol, and cycloaliphatic diols such as tricyclodecane dimethylol; and xylylene glycol, bis (p-hydroxy) diphenyl, bis (p-hydroxyphenyl) propane 2,2-
- polyester forming the hard segment examples include polyethylene terephthalate, polybutylene terephthalate, polymethylene terephthalate, polyethylene naphthalate, and polybutylene naphthalate. Of these, polybutylene terephthalate is preferable.
- Aliphatic polyethers include poly (ethylene oxide) glycol, poly (propylene oxide) glycol, poly (tetramethylene oxide) glycol, poly (hexamethylene oxide) glycol, copolymers of ethylene oxide and propylene oxide, poly (propylene oxide) And ethylene oxide addition polymer of glycol, and a copolymer of ethylene oxide and tetrahydrofuran.
- the aliphatic polyester include poly ( ⁇ -caprolactone), polyenantlactone, polycaprylolactone, polybutylene adipate, and polyethylene adipate.
- poly (tetramethylene oxide) glycol poly (propylene oxide) glycol are polymers that form soft segments from the viewpoint of the elastic properties of the resulting polyester block copolymer.
- an ethylene oxide adduct poly ( ⁇ -caprolactone), polybutylene adipate, polyethylene adipate, and the like are preferable.
- the number average molecular weight of the polymer forming the soft segment is preferably 300 to 6000 from the viewpoint of toughness and low temperature flexibility. Further, the mass ratio (x: y) between the hard segment (x) and the soft segment (y) is preferably 99: 1 to 20:80, and 98: 2 to 30: from the viewpoint of moldability of the tire frame body. 70 is more preferable.
- the combination of the hard segment and the soft segment described above examples include, for example, combinations of the hard segment and the soft segment mentioned above.
- the combination of the hard segment and the soft segment described above is preferably a combination in which the hard segment is polybutylene terephthalate, the soft segment is an aliphatic polyether, and the hard segment is polybutylene terephthalate. More preferred is a combination wherein is poly (ethylene oxide) glycol.
- polyester-based thermoplastic elastomers examples include “Hytrel” series (for example, 3046, 5557, 6347, 4047N, and 4767N) manufactured by Toray DuPont Co., Ltd., and “Perprene” manufactured by Toyobo Co., Ltd. Series (for example, P30B, P40B, P40H, P55B, P70B, P150B, P280B, P450B, P150M, S1001, S2001, S5001, S6001, and S9001) can be used.
- Hytrel for example, 3046, 5557, 6347, 4047N, and 4767N
- Perprene manufactured by Toyobo Co., Ltd. Series
- the polyester-based thermoplastic elastomer can be synthesized by copolymerizing a polymer that forms a hard segment and a polymer that forms a soft segment by a known method.
- the elastic material may contain other components other than rubber or resin as desired.
- other components include resins, rubbers, various fillers (eg, silica, calcium carbonate, and clay), anti-aging agents, oils, plasticizers, colorants, weathering agents, and reinforcing materials.
- the melting point of the resin contained in the resin material is, for example, about 100 ° C. to 350 ° C., and the durability and productivity of the tire are increased. From the viewpoint, about 100 ° C. to 250 ° C. is preferable, and 120 ° C. to 250 ° C. is more preferable.
- the tensile modulus of elasticity defined in JIS K7113: 1995 of the tire skeleton itself including an elastic material is preferably 50 MPa to 1000 MPa, more preferably 50 MPa to 800 MPa, and particularly preferably 50 MPa to 700 MPa.
- the elastic modulus of the elastic material is 50 MPa to 1000 MPa, the rim can be assembled efficiently while maintaining the shape of the tire frame.
- the tensile strength specified in JIS K7113 (1995) of the tire skeleton itself including an elastic material is usually about 15 MPa to 70 MPa, preferably 17 MPa to 60 MPa, and more preferably 20 MPa to 55 MPa.
- the tensile yield strength defined in JIS K7113 (1995) of the tire skeleton itself including an elastic material is preferably 5 MPa or more, more preferably 5 MPa to 20 MPa, and particularly preferably 5 MPa to 17 MPa.
- the elastic material can withstand deformation against a load applied to the tire during traveling.
- the tensile yield elongation defined by JIS K7113 (1995) of the tire frame itself including an elastic material is preferably 10% or more, more preferably 10% to 70%, and particularly preferably 15% to 60%.
- the tensile yield elongation of the elastic material is 10% or more, the elastic region is large and the rim assembly property can be improved.
- the tensile elongation at break stipulated in JIS K7113 (1995) of the tire skeleton itself containing an elastic material is preferably 50% or more, more preferably 100% or more, particularly preferably 150% or more, and most preferably 200% or more.
- the rim assembly property is good, and it is possible to make it difficult to break against a collision.
- the deflection temperature under load defined by ISO 75-2 or ASTM D648 of the tire frame itself containing an elastic material is preferably 50 ° C. or higher, more preferably 50 ° C. to 150 ° C., 50 C. to 130.degree. C. is particularly preferable. If the deflection temperature under load of the elastic material is 50 ° C. or higher, deformation of the tire frame can be suppressed even when vulcanization is performed in the manufacture of the tire.
- each figure shown below is the figure shown typically, and the magnitude
- the resin-metal composite member is applied to the belt portion, but the resin-metal composite member may be applied to other parts such as a bead portion in addition to the belt portion.
- FIG. 1A is a perspective view showing a cross section of a part of the tire according to the first embodiment.
- FIG. 1B is a cross-sectional view of a bead portion attached to a rim.
- a tire 10 according to the first embodiment has a cross-sectional shape substantially similar to that of a conventional general rubber pneumatic tire.
- the tire 10 includes a pair of bead portions 12 that contact the bead seat 21 and the rim flange 22 of the rim 20, a side portion 14 that extends outward in the tire radial direction from the bead portion 12, and a tire radial direction of one side portion 14.
- a tire skeleton body 17 including only a crown portion (that is, an outer peripheral portion) 16 that connects the outer end and the outer end in the tire radial direction of the other side portion 14 is provided.
- the tire skeleton 17 is formed using a resin material (for example, a resin material containing a polyamide-based thermoplastic elastomer as a resin). However, it can also be formed using a rubber material.
- the tire frame body 17 is an annular tire frame half body (so-called tire frame piece) 17A having the same shape, which is injection-molded integrally with one bead portion 12, one side portion 14, and a half-width crown portion 16. Are opposed to each other and joined at the tire equatorial plane.
- annular bead core 18 made of only a steel cord is embedded as in a conventional general pneumatic tire. Further, only rubber, which is a material having a better sealing property than the resin material forming the tire skeleton 17, is used for a portion that contacts the rim 20 of the bead portion 12 and at least a portion that contacts the rim flange 22 of the rim 20.
- An annular seal layer 24 made of is formed.
- the resin-metal composite member 26 which is a reinforcing cord, is embedded in the crown portion 16 in a cross-sectional view along the axial direction of the tire frame body 17. It is spirally wound in the circumferential direction. Further, a tread 30 made of only rubber, which is a material superior in wear resistance to the resin material forming the tire skeleton 17, is disposed on the outer peripheral side of the resin-metal composite member 26 in the tire radial direction. Details of the resin-metal composite member 26 will be described later.
- the tire skeleton 17 is formed of a resin material, but may be formed of a rubber material.
- the tire frame half body 17A has a bilaterally symmetric shape, that is, one tire frame half body 17A and the other tire frame half body 17A have the same shape, and therefore a mold for molding the tire frame half body 17A is provided. There is an advantage that only one type is required.
- the tire skeleton 17 is made of a single resin material.
- each part of the tire frame body 17 (for example, the side part 14, the crown part 16, and the bead part 12) is similar to a conventional general rubber pneumatic tire. You may use the resin material which has a different characteristic for every.
- the tire skeleton 17 can also be formed of a single rubber material. Moreover, it can also form using the rubber material which has a different characteristic for each site
- part for example, side part 14, crown part 16, and bead part 12 grade
- a reinforcing material for example, a polymer material, a metal fiber, a cord, a nonwoven fabric, a woven fabric, or the like
- a reinforcing material for example, a polymer material, a metal fiber, a cord, a nonwoven fabric, a woven fabric, or the like
- the tire frame body 17 may be reinforced with the reinforcing material.
- the tire frame half body 17A is formed by injection molding. However, it is not limited to this, For example, you may shape
- the tire skeleton 17 is formed by joining two members (that is, two tire skeleton halves 17A). However, the present invention is not limited to this, and the tire skeleton body may be formed as one member by melting core method, split core method, or blow molding using a low melting point metal, or formed by joining three or more members. May be.
- An annular bead core 18 made of a metal cord such as a steel cord is embedded in the bead portion 12 of the tire 10.
- the resin-metal composite member according to the above-described embodiment can be used as the member including the bead core 18, the resin-metal composite member according to the above-described embodiment can be used.
- the bead portion 12 can be formed of a resin-metal composite member.
- the bead core 18 may be formed of an organic fiber cord, a resin-coated organic fiber cord, or a hard resin, in addition to the steel cord.
- the bead core 18 may be omitted if the rigidity of the bead portion 12 is ensured and there is no problem in fitting with the rim 20.
- An annular seal layer 24 made of only rubber is formed on a portion of the bead portion 12 that contacts the rim 20 and at least a portion of the rim 20 that contacts the rim flange 22.
- the seal layer 24 may also be formed in a portion where the bead portion 12 and the bead sheet 21 of the tire skeleton 17 are in contact with each other.
- rubber is used as the material for forming the seal layer 24, it is preferable to use the same type of rubber as that used on the outer surface of the bead portion of a conventional general rubber pneumatic tire.
- the rubber seal layer 24 may be omitted as long as the sealing performance between the resin material in the tire skeleton 17 and the rim 20 can be secured.
- the seal layer 24 may be formed to include another thermoplastic resin or thermoplastic elastomer that is more excellent in sealability than the resin material included in the tire frame body 17.
- thermoplastic resins include resins such as polyurethane resins, olefin resins, polystyrene resins, and polyester resins, and blends of these resins with rubbers or elastomers.
- a thermoplastic elastomer can also be used. Examples thereof include polyester-based thermoplastic elastomers, polyurethane-based thermoplastic elastomers, olefin-based thermoplastic elastomers, combinations of these elastomers, or blends of these elastomers with rubber.
- FIG. 2 is a cross-sectional view along the tire rotation axis of the tire 10 according to the first embodiment, and shows a state in which the resin cord member 26 is embedded in the crown portion of the tire frame body 17. As shown in FIG. 2, the resin cord member 26 is spirally wound in a state in which at least a part thereof is embedded in the crown portion 16 in a cross-sectional view along the axial direction of the tire frame body 17.
- L in FIG. 2 indicates the embedding depth of the resin cord member 26 in the tire rotation axis direction with respect to the crown portion 16 (that is, the outer peripheral surface of the tire frame body 17).
- the embedding depth L of the resin cord member 26 with respect to the crown portion 16 is 1 ⁇ 2 of the diameter D of the resin cord member 26.
- the resin cord member 26 has a structure in which a metal member 27 (for example, a steel cord twisted with steel fibers) is used as a core and the outer periphery of the metal member 27 is covered with a coating resin layer 28 via an adhesive layer 25. is doing.
- a rubber tread 30 is disposed on the outer peripheral side of the resin cord member 26 in the tire radial direction. Further, the tread 30 is formed with a tread pattern including a plurality of grooves on the ground contact surface with the road surface, similarly to a conventional general rubber pneumatic tire.
- the tire 10 is in a state where the resin cord member 26 coated with the coating resin layer 28 containing a thermoplastic elastomer is in close contact with the tire skeleton 17 containing a resin material containing the same kind of thermoplastic elastomer. Buried. Therefore, the contact area between the coating resin layer 28 covering the metal member 27 and the tire frame body 17 is increased, and the adhesion durability between the resin cord member 26 and the tire frame body 17 is improved. As a result, the durability of the tire is increased. Will be excellent.
- the embedding depth L of the resin cord member 26 with respect to the crown portion 16 is preferably 1/5 or more of the diameter D of the resin cord member 26, and more preferably more than 1/2. Further, it is more preferable that the entire resin cord member 26 is embedded in the crown portion 16. If the embedding depth L of the resin cord member 26 exceeds 1/2 of the diameter D of the resin cord member 26, it is difficult to jump out of the buried portion due to the dimension of the resin cord member 26. When the entire resin cord member 26 is embedded in the crown portion 16, the surface (outer peripheral surface) becomes flat, and another member is placed on the crown portion 16 in which the resin cord member 26 is embedded. Even so, it is possible to prevent air from entering the peripheral portion of the resin cord member 26.
- the tread 30 is made of only rubber, but instead of rubber, a tread made of only a thermoplastic resin material having excellent wear resistance may be used.
- the resin cord member 26 includes a belt layer in which one or a plurality of cord-like resin-metal composite members are arranged on the outer periphery of the tire frame body along the circumferential direction of the tire, and a plurality of cord-like members.
- the resin-metal composite member can be used as an intersecting belt layer or the like that is disposed so as to intersect with each other at an angle with respect to the circumferential direction of the tire.
- the resin-metal composite member disposed on the outer periphery of the tire frame is preferably disposed such that the average distance between adjacent metal members is 400 ⁇ m to 3200 ⁇ m, and is disposed so as to be 600 ⁇ m to 2200 ⁇ m. Is more preferable, and it is even more preferable that they are arranged to be 800 ⁇ m to 1500 ⁇ m.
- the average distance between the metal members of adjacent resin-metal composite members is 400 ⁇ m or more, an increase in the weight of the tire is suppressed and the fuel efficiency during running tends to be excellent.
- the average distance between the metal members of adjacent resin-metal composite members is 3200 ⁇ m or less, a sufficient tire reinforcing effect tends to be obtained.
- adjacent resin-metal composite members means a certain resin-metal composite member and another resin-metal composite member located closest to the resin-metal composite member, and are different from each other. Both when the members are adjacent to each other and when different parts of the same resin-metal composite member are adjacent (for example, when a single resin-metal composite member is wound around the outer periphery of the tire frame body multiple times) included.
- the “average distance between metal members” is a value determined by the following equation.
- Average distance between metal members ⁇ width of belt portion ⁇ (thickness of metal member ⁇ n) ⁇ / (n ⁇ 1)
- the “belt portion” means a portion where the resin-metal composite member is disposed on the outer peripheral portion of the tire frame body.
- n is the number of resin-metal composite members observed in a cross section obtained by cutting the tire frame body on which the resin-metal composite members are arranged in a direction perpendicular to the radial direction of the tire.
- the width of the belt portion means the resin metal at the both ends of the resin-metal composite member observed in the cross section (positions farthest from the center line of the tire frame body in the left-right direction).
- the length between the composite members means the length along the outer peripheral surface of the tire frame.
- the thickness of the metal member is the number average value of the measured thickness values at five arbitrarily selected locations. When the metal member consists of only one metal cord, the measured thickness is the maximum diameter of the cross section of the metal member (that is, the distance between two points arbitrarily selected on the contour line of the cross section of the metal member is the maximum). The distance between the two points).
- a metal member When a metal member consists only of a some metal cord, it is set as the diameter of the smallest circle among the circles where all the cross sections of the some metal cord observed in the cross section of a metal member are included. When metal members having different thicknesses are included in the belt portion, the thickness of the thickest metal member is defined as “the thickness of the metal member”.
- the tire skeleton halves supported by a thin metal support ring face each other.
- a joining mold is installed so as to contact the outer peripheral surface of the abutting portion of the tire skeleton half.
- die is comprised so that the periphery of the junction part (namely, butting part) of a tire frame half body may be pressed with a predetermined pressure (not shown).
- the temperature around the joint portion of the tire frame half is equal to or higher than the melting point (or softening point) of the resin (for example, the polyamide-based thermoplastic elastomer in the first embodiment) included in the resin material in the tire frame. Press under conditions.
- the joint portion of the tire frame half body is heated and pressurized by the bonding mold, the joint portion is melted, the tire frame half halves are fused together, and these members are integrated into the tire frame body 17. Is formed.
- the metal member 27 is unwound from a reel and the surface thereof is cleaned.
- the outer periphery of the metal member 27 is covered with an adhesive extruded from an extruder (for example, an adhesive containing a polyester-based thermoplastic elastomer having a polar functional group) to form a layer that becomes the adhesive layer 25.
- an adhesive extruded from an extruder for example, an adhesive containing a polyester-based thermoplastic elastomer having a polar functional group
- the extruder for example, polyester-based thermoplastic elastomer
- FIG. 3 is an explanatory diagram for explaining an operation of installing the resin cord member on the crown portion of the tire frame body using the resin cord member heating device and the rollers.
- the resin cord member supply device 56 includes a reel 58 around which the resin cord member 26 is wound, a resin cord member heating device 59 disposed downstream of the reel 58 in the cord conveyance direction, and conveyance of the resin cord member 26.
- the second roller 64 can be used as a metal cooling roller.
- the surfaces of the first roller 60 and the second roller 64 are made of fluororesin (for example, Teflon (registered trademark) in the first embodiment) in order to suppress adhesion of a molten or softened resin material. It is coated. As described above, the heated resin cord member is firmly integrated with the case resin of the tire frame.
- the resin cord member heating device 59 includes a heater 70 and a fan 72 that generate hot air.
- the resin cord member heating device 59 includes a heating box 74 through which the resin cord member 26 passes through an internal space in which hot air is supplied, and a discharge port 76 through which the heated resin cord member 26 is discharged. ing.
- the temperature of the heater 70 of the resin cord member heating device 59 is raised, and the ambient air heated by the heater 70 is sent to the heating box 74 by the wind generated by the rotation of the fan 72.
- the resin cord member 26 unwound from the reel 58 is sent into a heating box 74 whose internal space is heated with hot air, and heated (for example, the temperature of the resin cord member 26 is heated to about 100 ° C. to 250 ° C.). To do.
- the heated resin cord member 26 is spirally wound around the outer peripheral surface of the crown portion 16 of the tire frame body 17 rotating in the direction of arrow R in FIG.
- the resin at the contact portion melts or softens and melts and joins with the resin of the tire frame body to Integrated into the surface.
- the resin cord member 26 is melt-bonded to the adjacent resin cord member 26, the resin cord member 26 is wound with no gap. Thereby, the air entering to the portion where the resin cord member 26 is embedded is suppressed.
- the embedding depth L of the resin cord member 26 can be adjusted by the heating temperature of the resin cord member 26, the tension applied to the resin cord member 26, the pressing force by the first roller 60, and the like.
- the embedding depth L of the resin cord member 26 is set to be 1/5 or more of the diameter D of the resin cord member 26.
- a belt-like tread 30 is wound around the outer peripheral surface of the tire skeleton 17 in which the resin cord member 26 is embedded, and this is accommodated in a vulcanizing can or mold and heated (that is, vulcanized).
- the tread 30 may be unvulcanized rubber or vulcanized rubber.
- the tire 10 is completed when the seal layer 24 made of only vulcanized rubber is bonded to the bead portion 12 of the tire frame body 17 using an adhesive or the like.
- the joining portion of the tire frame half body 17A was heated using a joining mold.
- the present disclosure is not limited to this.
- the above-described joint portion is heated by a separately provided high-frequency heater or the like, or softened or melted beforehand by irradiation with hot air or infrared rays, and pressed by a joining mold. Then, the tire frame half body 17A may be joined.
- the resin cord member supply device 56 has two rollers, a first roller 60 and a second roller 64.
- the present disclosure is not limited to this, and only one of the rollers (that is, one roller) may be included.
- the resin cord member 26 is heated, and the surface of the tire skeleton body 17 at the portion where the heated resin cord member 26 contacts is melted or softened.
- the present disclosure is not limited to this aspect, and the resin cord member 26 is not heated, and a hot air generator is used to directly heat the outer peripheral surface of the crown portion 16 in which the resin cord member 26 is embedded, and then the resin The cord member 26 may be embedded in the heated crown portion 16.
- the heat source of the resin cord member heating device 59 is a heater and a fan.
- the resin cord member 26 may be directly heated with radiant heat (for example, infrared rays).
- the portion where the resin cord member 26 is embedded and the thermoplastic resin in the crown portion 16 is melted or softened is forced by the metal second roller 64. It was set as the aspect cooled automatically.
- the present disclosure is not limited to this aspect, and may be an aspect in which cold air is directly blown onto a portion where the thermoplastic resin is melted or softened to forcibly cool and solidify the portion where the thermoplastic resin is melted or softened. .
- it is easy to manufacture the resin cord member 26 spirally a method of disposing the resin cord member 26 discontinuously in the width direction is also conceivable.
- the belt-shaped tread 30 is wound around the outer peripheral surface of the tire skeleton 17 in which the resin cord member 26 is embedded, and then heated (that is, vulcanized).
- the present disclosure is not limited to this mode, and a mode in which a vulcanized belt-like tread is bonded to the outer peripheral surface of the tire frame body 17 with an adhesive or the like may be used.
- the vulcanized belt-like tread include precure treads used for retreaded tires.
- the tire 10 according to the first embodiment is a so-called tubeless tire in which an air chamber is formed between the tire 10 and the rim 20 by attaching the bead portion 12 to the rim 20.
- the present disclosure is not limited to this aspect, and may be a complete tube shape.
- the ratio [HS / (HS + SS)] of the hard segment (HS) to the total amount of the hard segment (HS) and the soft segment (SS) in the polyester-based thermoplastic elastomer having a polar functional group, including the thermoplastic elastomer, is 83 mol%.
- a resin-metal composite member for a tire that is 98 mol% or less is provided.
- the polyester-based thermoplastic elastomer having the polar functional group is selected from the group consisting of an epoxy group, a carboxy group and its anhydride, and an amino group as the polar functional group.
- a resin-metal composite member for a tire according to the first aspect having at least one kind of group.
- the polyester thermoplastic elastomer having the polar functional group has a crystallinity of 7% or more and 40% or less, for the tire according to the first or second aspect.
- a resin-metal composite member is provided.
- the adhesive layer has a water permeability coefficient of 30 g ⁇ mm / m 2 or more and 330 g ⁇ mm / m 2 or less.
- a resin-metal composite member for a tire according to a viewpoint is provided.
- the resin-metal composite member for a tire according to any one of the first to fourth aspects wherein the adhesive layer has a tensile elastic modulus of 250 MPa to 1500 MPa. Is done.
- the resin-metal composite member for a tire constitutes a reinforcing belt member wound in the circumferential direction on the outer peripheral portion of the tire frame body.
- Tires are provided.
- the tire according to the sixth aspect is provided in which the resin-metal composite member for a tire constitutes a bead member.
- the coating resin shown in Table 1 extruded with an extruder was attached to the outer periphery of the layer to be the adhesive layer, and the coating was cooled.
- the extrusion conditions were such that the temperature of the metal member was 200 ° C., the temperature of the coating resin was 240 ° C., and the extrusion speed was 30 m / min.
- a resin-metal composite member having a structure in which the outer periphery of a multifilament (that is, a metal member) was covered with a coating resin layer via an adhesive layer was produced.
- Table 1 shows the average thickness of the adhesive layer and the average thickness of the coating resin layer in the resin-metal composite member.
- a tire skeleton body made of a resin material made only of a polyester-based thermoplastic elastomer (manufactured by Toray DuPont, “Hytrel 5557”, melting point 207 ° C.) was produced.
- the resin-metal composite member is wound around the crown portion of the tire skeleton and disposed thereon, and an unvulcanized tread rubber is disposed thereon.
- a tire was produced.
- the resin-metal composite member was placed on the tire frame so that the average distance between the metal members of adjacent resin-metal composite members was 1000 ⁇ m.
- the tire size was 245/35 R18.
- the thickness of the tread rubber was 10 mm.
- ⁇ Preparation of sample for measurement> Separately from the preparation of the tire, the sample for measurement reproducing the conditions for heating the tire (that is, annealing treatment, vulcanization of the tread rubber), that is, the annealing treatment (180 in Examples 2 and 4 and Comparative Examples 2 and 4).
- the annealing treatment 180 in Examples 2 and 4 and Comparative Examples 2 and 4.
- annealing treatment 145 ° C., 30 minutes
- a measurement sample was prepared by the following method. Specifically, a 2 mm thick plate formed by the coating resin shown in Table 1 by injection molding was prepared, and a JIS3 dumbbell test piece was punched out for elastic modulus measurement to prepare a coating resin layer measurement sample.
- a 2 mm thick plate formed by injection molding with the adhesive shown in Table 1 was prepared, and a test piece having a shape matched to each of the following measuring methods (elastic modulus measurement sample: JIS3 dumbbell test)
- a specimen for crystallinity measurement: a test piece for DSC apparatus [Q2000] and a specimen for water permeability coefficient measurement: a test piece defined in JIS Z 0208) were punched out to prepare an adhesive layer measurement sample.
- These samples were subjected to a thermal history similar to that of the tire (Examples 2 and 4 and Comparative Examples 2 and 4 were annealed (180 ° C., 20 minutes), and Examples 1, 3, 5, 6 and Comparatives were made.
- Example 1 and 3 a tire centerline portion during vulcanization was used using a tire vulcanized under the same conditions as the tires described in the Examples and Comparative Examples in order to perform annealing (145 ° C., 30 minutes). Measure the temperature of the adhesive layer of the nearby resin-metal composite member, heat-treat the sample under the temperature conditions obtained by the measurement, and the time taken for vulcanization. Sample "and" Adhesive layer measurement sample ".
- a coated resin plate material of 30 mm ⁇ 70 mm ⁇ thickness 3.0 mm formed by the coating resin shown in Table 1 was produced by injection molding.
- the adhesive shown in Table 1 was injection-molded at a temperature of 300 ° C., 25 mm ⁇ 70 mm ⁇ thickness 3.0 mm toward the coated resin plate material to form an adhesive plate material.
- a weldability evaluation sample was prepared in which the weld surfaces of both layers were 10 mm ⁇ 25 mm.
- the covering resin plate material and the adhesive plate material were grasped, and shear peeling evaluation was performed at a pulling speed of 100 mm / min with an autograph manufactured by Shimadzu Corporation. Evaluation was made according to the following criteria according to the fracture ratio at the weld interface.
- ⁇ Metal initial adhesion test> As an index of adhesion between the adhesive layer and the metal member and between the coated resin layer and the adhesive layer, the peel force when the adhesive layer and the coated resin layer were peeled from the metal member was measured immediately after the production of the resin-metal composite member. Specifically, using a “TENSIRON RTF-1210” manufactured by A & D Co., Ltd., a 180 ° peel test was performed at a tensile rate of 100 mm / min in a room temperature environment (specifically, 25 ° C.). The peeling force (unit: N) was measured. Based on the measured values, the adhesion was evaluated according to the following evaluation criteria. (Evaluation criteria) A: The peeling force is 10N or more. B: The peeling force is 5N or more and less than 10N. C: The peeling force is less than 5N.
- the unit of the composition shown in the table is “part” unless otherwise specified.
- the components in the table are as follows. (Coating resin layer) ⁇ P-1: Toray DuPont Polyester thermoplastic elastomer, “Hytrel 5557”, melting point 207 ° C. P-2: Made by Toray DuPont, polyester thermoplastic elastomer, “Hytrel 6347”, melting point 215 ° C. ⁇ P-3: Toray DuPont, polyester thermoplastic elastomer, “Hytrel 2571”, melting point 228 ° C.
- Adhesive layer G-1: manufactured by Mitsubishi Chemical Corporation, maleic anhydride-modified polyester thermoplastic elastomer, “Primalloy-AP GQ730”, HS ratio [HS / (HS + SS)] 87 mol%, melting point 204 ° C.
- G-2 manufactured by Mitsubishi Chemical Corporation, maleic anhydride-modified polyester thermoplastic elastomer, “elastomer with adjusted ratio of HS and SS of Primalloy-AP GQ730”, HS ratio [HS / (HS + SS)] 96 mol%, melting point 220 ° C
- G-3 manufactured by Toray, polybutylene terephthalate resin (PBT), “Trecon 1401X06”, HS ratio [HS / (HS + SS)] 100 mol%, melting point 225 ° C.
- G-4 manufactured by Mitsubishi Chemical Corporation, maleic anhydride-modified polyester thermoplastic elastomer, “Primalloy-AP GQ331”, HS ratio [HS / (HS + SS)] 80 mol%, melting point 180 ° C.
- Example 7 Comparative Examples 5 and 6
- tires were produced in the same manner as in the Examples and Comparative Examples except that the tire frame was changed from a resin to a rubber (that is, a rubber tire). The production of the tire will be described in detail below.
- a tire skeleton for a rubber tire in which at least a crown portion was formed from the obtained rubber material was produced by a known method.
- Natural rubber 80 parts ⁇ Styrene butadiene rubber (SBR, JSR Corporation, JSR1502, rubber component) 20 parts ⁇ Carbon black (C / B, Asahi Carbon Corporation, Asahi # 51) 50 parts ⁇ Stearic acid 2 parts ⁇ Zinc oxide 3 parts ⁇ Sulfur 3 parts ⁇ Vulcanization accelerator (Ouchi Shinsei Chemical Co., Ltd.) 1 part ⁇ Process oil (Idemitsu Kosan Co., Ltd., Diana Process Oil PW380) 0.2 parts ⁇ Anti-aging agent (Ouchi Shinsei Chemical Co., Ltd., Nocrack 6C) 1.5 parts
- the resin-metal composite member is wound around the crown portion of the tire skeleton and disposed thereon, and an unvulcanized tread rubber is disposed thereon.
- a tire was produced.
- the arrangement of the resin-metal composite member on the tire skeleton, the tire size, and the thickness of the tread rubber were the same as in Example 1.
- the produced raw tire was heated under conditions of 180 ° C. and 20 minutes (that is, annealing treatment, vulcanization of tire frame body rubber and tread rubber).
- the adhesive layer contains a polyester-based thermoplastic elastomer having a polar functional group, and the HS ratio [HS / (HS + SS)] is 83 mol% or more and 98 mol. It was found that in this example using the resin-metal composite member in the range of% or less, both the adhesion durability and the wet heat durability were excellent as compared with the comparative example.
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- Engineering & Computer Science (AREA)
- Mechanical Engineering (AREA)
- Chemical & Material Sciences (AREA)
- Chemical Kinetics & Catalysis (AREA)
- Organic Chemistry (AREA)
- Tires In General (AREA)
- Laminated Bodies (AREA)
- Adhesives Or Adhesive Processes (AREA)
Priority Applications (3)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| CN201880039534.1A CN110785289B (zh) | 2017-06-16 | 2018-05-21 | 轮胎用树脂金属复合构件和轮胎 |
| EP18817336.3A EP3640052B1 (en) | 2017-06-16 | 2018-05-21 | Resin-metal composite member for tire, and tire |
| US16/712,998 US20200115600A1 (en) | 2017-06-16 | 2019-12-13 | Resin-metal composite member for tire, and tire |
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| Application Number | Priority Date | Filing Date | Title |
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| JP2017118903A JP6785194B2 (ja) | 2017-06-16 | 2017-06-16 | タイヤ用樹脂金属複合部材、及びタイヤ |
| JP2017-118903 | 2017-06-16 |
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| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| US16/712,998 Continuation US20200115600A1 (en) | 2017-06-16 | 2019-12-13 | Resin-metal composite member for tire, and tire |
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| WO2018230272A1 true WO2018230272A1 (ja) | 2018-12-20 |
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| US (1) | US20200115600A1 (https=) |
| EP (1) | EP3640052B1 (https=) |
| JP (1) | JP6785194B2 (https=) |
| CN (1) | CN110785289B (https=) |
| WO (1) | WO2018230272A1 (https=) |
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| JP2012082316A (ja) * | 2010-10-12 | 2012-04-26 | Mitsubishi Chemicals Corp | 接着性樹脂及び接着性樹脂組成物並びに積層体 |
| WO2012104281A1 (fr) | 2011-02-03 | 2012-08-09 | Compagnie Generale Des Etablissements Michelin | Renfort composite gaine d'une couche de polymere auto-adherente au caoutchouc |
| JP2013053211A (ja) * | 2011-09-02 | 2013-03-21 | Mitsubishi Chemicals Corp | 熱可塑性エラストマー組成物 |
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| FR2872820B1 (fr) * | 2004-07-07 | 2008-09-05 | Conception & Dev Michelin Sa | Systeme adhesif pour le collage direct d'un polyurethane cuit a du caoutchouc cru |
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2018
- 2018-05-21 WO PCT/JP2018/019551 patent/WO2018230272A1/ja not_active Ceased
- 2018-05-21 EP EP18817336.3A patent/EP3640052B1/en active Active
- 2018-05-21 CN CN201880039534.1A patent/CN110785289B/zh active Active
-
2019
- 2019-12-13 US US16/712,998 patent/US20200115600A1/en not_active Abandoned
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| JPH05331256A (ja) | 1992-06-02 | 1993-12-14 | Sanko Chem Co Ltd | 熱可塑性ポリウレタンの製造方法 |
| JP2012046025A (ja) | 2010-08-25 | 2012-03-08 | Bridgestone Corp | タイヤ |
| JP2012082316A (ja) * | 2010-10-12 | 2012-04-26 | Mitsubishi Chemicals Corp | 接着性樹脂及び接着性樹脂組成物並びに積層体 |
| WO2012104281A1 (fr) | 2011-02-03 | 2012-08-09 | Compagnie Generale Des Etablissements Michelin | Renfort composite gaine d'une couche de polymere auto-adherente au caoutchouc |
| JP2013053211A (ja) * | 2011-09-02 | 2013-03-21 | Mitsubishi Chemicals Corp | 熱可塑性エラストマー組成物 |
| JP2013082310A (ja) * | 2011-10-07 | 2013-05-09 | Bridgestone Corp | タイヤ |
| WO2014175453A1 (ja) * | 2013-04-25 | 2014-10-30 | 株式会社ブリヂストン | タイヤ |
| WO2014175452A1 (ja) * | 2013-04-25 | 2014-10-30 | 株式会社ブリヂストン | タイヤ |
| JP2017118903A (ja) | 2015-12-28 | 2017-07-06 | 山田 憲嗣 | ベッド管理システム |
Non-Patent Citations (1)
| Title |
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| See also references of EP3640052A4 |
Also Published As
| Publication number | Publication date |
|---|---|
| EP3640052B1 (en) | 2022-01-19 |
| CN110785289A (zh) | 2020-02-11 |
| JP2019001360A (ja) | 2019-01-10 |
| EP3640052A4 (en) | 2020-12-16 |
| JP6785194B2 (ja) | 2020-11-18 |
| CN110785289B (zh) | 2021-07-27 |
| US20200115600A1 (en) | 2020-04-16 |
| EP3640052A1 (en) | 2020-04-22 |
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