WO2017138359A1 - 車両用シート部材および車両用シート並びにそれらの製造方法 - Google Patents
車両用シート部材および車両用シート並びにそれらの製造方法 Download PDFInfo
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- WO2017138359A1 WO2017138359A1 PCT/JP2017/002654 JP2017002654W WO2017138359A1 WO 2017138359 A1 WO2017138359 A1 WO 2017138359A1 JP 2017002654 W JP2017002654 W JP 2017002654W WO 2017138359 A1 WO2017138359 A1 WO 2017138359A1
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- WIPO (PCT)
- Prior art keywords
- foamed resin
- molded body
- vehicle seat
- resin molded
- seat member
- Prior art date
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- RJDOZRNNYVAULJ-UHFFFAOYSA-L [O--].[O--].[O--].[O--].[O--].[O--].[O--].[O--].[O--].[O--].[F-].[F-].[Mg++].[Mg++].[Mg++].[Al+3].[Si+4].[Si+4].[Si+4].[K+] Chemical compound [O--].[O--].[O--].[O--].[O--].[O--].[O--].[O--].[O--].[O--].[F-].[F-].[Mg++].[Mg++].[Mg++].[Al+3].[Si+4].[Si+4].[Si+4].[K+] RJDOZRNNYVAULJ-UHFFFAOYSA-L 0.000 description 1
- 239000006096 absorbing agent Substances 0.000 description 1
- 150000001252 acrylic acid derivatives Chemical class 0.000 description 1
- 239000000853 adhesive Substances 0.000 description 1
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- 150000001298 alcohols Chemical class 0.000 description 1
- CEGOLXSVJUTHNZ-UHFFFAOYSA-K aluminium tristearate Chemical compound [Al+3].CCCCCCCCCCCCCCCCCC([O-])=O.CCCCCCCCCCCCCCCCCC([O-])=O.CCCCCCCCCCCCCCCCCC([O-])=O CEGOLXSVJUTHNZ-UHFFFAOYSA-K 0.000 description 1
- 229940063655 aluminum stearate Drugs 0.000 description 1
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- BJQHLKABXJIVAM-UHFFFAOYSA-N bis(2-ethylhexyl) phthalate Chemical compound CCCCC(CC)COC(=O)C1=CC=CC=C1C(=O)OCC(CC)CCCC BJQHLKABXJIVAM-UHFFFAOYSA-N 0.000 description 1
- MPMBRWOOISTHJV-UHFFFAOYSA-N but-1-enylbenzene Chemical compound CCC=CC1=CC=CC=C1 MPMBRWOOISTHJV-UHFFFAOYSA-N 0.000 description 1
- 239000001273 butane Substances 0.000 description 1
- FSRYENDEMMDKMT-UHFFFAOYSA-N butoxy ethaneperoxoate Chemical compound CCCCOOOC(C)=O FSRYENDEMMDKMT-UHFFFAOYSA-N 0.000 description 1
- 125000000484 butyl group Chemical group [H]C([*])([H])C([H])([H])C([H])([H])C([H])([H])[H] 0.000 description 1
- OOCMUZJPDXYRFD-UHFFFAOYSA-L calcium;2-dodecylbenzenesulfonate Chemical compound [Ca+2].CCCCCCCCCCCCC1=CC=CC=C1S([O-])(=O)=O.CCCCCCCCCCCCC1=CC=CC=C1S([O-])(=O)=O OOCMUZJPDXYRFD-UHFFFAOYSA-L 0.000 description 1
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- 239000001569 carbon dioxide Substances 0.000 description 1
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- 150000007942 carboxylates Chemical class 0.000 description 1
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- 229910052801 chlorine Inorganic materials 0.000 description 1
- 125000001309 chloro group Chemical group Cl* 0.000 description 1
- 235000019864 coconut oil Nutrition 0.000 description 1
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- 238000000354 decomposition reaction Methods 0.000 description 1
- LSXWFXONGKSEMY-UHFFFAOYSA-N di-tert-butyl peroxide Chemical compound CC(C)(C)OOC(C)(C)C LSXWFXONGKSEMY-UHFFFAOYSA-N 0.000 description 1
- PXBRQCKWGAHEHS-UHFFFAOYSA-N dichlorodifluoromethane Chemical compound FC(F)(Cl)Cl PXBRQCKWGAHEHS-UHFFFAOYSA-N 0.000 description 1
- 235000019404 dichlorodifluoromethane Nutrition 0.000 description 1
- 235000014113 dietary fatty acids Nutrition 0.000 description 1
- IEPRKVQEAMIZSS-AATRIKPKSA-N diethyl fumarate Chemical compound CCOC(=O)\C=C\C(=O)OCC IEPRKVQEAMIZSS-AATRIKPKSA-N 0.000 description 1
- MTHSVFCYNBDYFN-UHFFFAOYSA-N diethylene glycol Chemical compound OCCOCCO MTHSVFCYNBDYFN-UHFFFAOYSA-N 0.000 description 1
- GYZLOYUZLJXAJU-UHFFFAOYSA-N diglycidyl ether Chemical compound C1OC1COCC1CO1 GYZLOYUZLJXAJU-UHFFFAOYSA-N 0.000 description 1
- 229940031769 diisobutyl adipate Drugs 0.000 description 1
- XZTWHWHGBBCSMX-UHFFFAOYSA-J dimagnesium;phosphonato phosphate Chemical compound [Mg+2].[Mg+2].[O-]P([O-])(=O)OP([O-])([O-])=O XZTWHWHGBBCSMX-UHFFFAOYSA-J 0.000 description 1
- LDCRTTXIJACKKU-ONEGZZNKSA-N dimethyl fumarate Chemical compound COC(=O)\C=C\C(=O)OC LDCRTTXIJACKKU-ONEGZZNKSA-N 0.000 description 1
- 229960004419 dimethyl fumarate Drugs 0.000 description 1
- LDCRTTXIJACKKU-ARJAWSKDSA-N dimethyl maleate Chemical compound COC(=O)\C=C/C(=O)OC LDCRTTXIJACKKU-ARJAWSKDSA-N 0.000 description 1
- POLCUAVZOMRGSN-UHFFFAOYSA-N dipropyl ether Chemical compound CCCOCCC POLCUAVZOMRGSN-UHFFFAOYSA-N 0.000 description 1
- CIKJANOSDPPCAU-UHFFFAOYSA-N ditert-butyl cyclohexane-1,4-dicarboperoxoate Chemical compound CC(C)(C)OOC(=O)C1CCC(C(=O)OOC(C)(C)C)CC1 CIKJANOSDPPCAU-UHFFFAOYSA-N 0.000 description 1
- GVGUFUZHNYFZLC-UHFFFAOYSA-N dodecyl benzenesulfonate;sodium Chemical compound [Na].CCCCCCCCCCCCOS(=O)(=O)C1=CC=CC=C1 GVGUFUZHNYFZLC-UHFFFAOYSA-N 0.000 description 1
- ZJOLCKGSXLIVAA-UHFFFAOYSA-N ethene;octadecanamide Chemical compound C=C.CCCCCCCCCCCCCCCCCC(N)=O.CCCCCCCCCCCCCCCCCC(N)=O ZJOLCKGSXLIVAA-UHFFFAOYSA-N 0.000 description 1
- 150000002170 ethers Chemical class 0.000 description 1
- 125000001495 ethyl group Chemical group [H]C([H])([H])C([H])([H])* 0.000 description 1
- 238000001125 extrusion Methods 0.000 description 1
- 239000000194 fatty acid Substances 0.000 description 1
- 229930195729 fatty acid Natural products 0.000 description 1
- 150000004665 fatty acids Chemical class 0.000 description 1
- 230000002431 foraging effect Effects 0.000 description 1
- XLYMOEINVGRTEX-UHFFFAOYSA-N fumaric acid monoethyl ester Natural products CCOC(=O)C=CC(O)=O XLYMOEINVGRTEX-UHFFFAOYSA-N 0.000 description 1
- 239000007789 gas Substances 0.000 description 1
- 239000010439 graphite Substances 0.000 description 1
- 229910002804 graphite Inorganic materials 0.000 description 1
- 229910052736 halogen Inorganic materials 0.000 description 1
- 150000002367 halogens Chemical class 0.000 description 1
- DMEGYFMYUHOHGS-UHFFFAOYSA-N heptamethylene Natural products C1CCCCCC1 DMEGYFMYUHOHGS-UHFFFAOYSA-N 0.000 description 1
- 239000012796 inorganic flame retardant Substances 0.000 description 1
- 229910001872 inorganic gas Inorganic materials 0.000 description 1
- 229910052742 iron Inorganic materials 0.000 description 1
- 150000002576 ketones Chemical class 0.000 description 1
- 239000007788 liquid Substances 0.000 description 1
- VTHJTEIRLNZDEV-UHFFFAOYSA-L magnesium dihydroxide Chemical compound [OH-].[OH-].[Mg+2] VTHJTEIRLNZDEV-UHFFFAOYSA-L 0.000 description 1
- 239000000347 magnesium hydroxide Substances 0.000 description 1
- 229910001862 magnesium hydroxide Inorganic materials 0.000 description 1
- 239000000395 magnesium oxide Substances 0.000 description 1
- CPLXHLVBOLITMK-UHFFFAOYSA-N magnesium oxide Inorganic materials [Mg]=O CPLXHLVBOLITMK-UHFFFAOYSA-N 0.000 description 1
- AXZKOIWUVFPNLO-UHFFFAOYSA-N magnesium;oxygen(2-) Chemical compound [O-2].[Mg+2] AXZKOIWUVFPNLO-UHFFFAOYSA-N 0.000 description 1
- FPYJFEHAWHCUMM-UHFFFAOYSA-N maleic anhydride Chemical compound O=C1OC(=O)C=C1 FPYJFEHAWHCUMM-UHFFFAOYSA-N 0.000 description 1
- 238000002844 melting Methods 0.000 description 1
- 230000008018 melting Effects 0.000 description 1
- 229910052751 metal Inorganic materials 0.000 description 1
- 239000002184 metal Substances 0.000 description 1
- 229920000609 methyl cellulose Polymers 0.000 description 1
- 125000002496 methyl group Chemical group [H]C([H])([H])* 0.000 description 1
- 239000001923 methylcellulose Substances 0.000 description 1
- 235000010981 methylcellulose Nutrition 0.000 description 1
- 239000000203 mixture Substances 0.000 description 1
- RKISUIUJZGSLEV-UHFFFAOYSA-N n-[2-(octadecanoylamino)ethyl]octadecanamide Chemical compound CCCCCCCCCCCCCCCCCC(=O)NCCNC(=O)CCCCCCCCCCCCCCCCC RKISUIUJZGSLEV-UHFFFAOYSA-N 0.000 description 1
- 229910052757 nitrogen Inorganic materials 0.000 description 1
- QIQXTHQIDYTFRH-UHFFFAOYSA-N octadecanoic acid Chemical compound CCCCCCCCCCCCCCCCCC(O)=O QIQXTHQIDYTFRH-UHFFFAOYSA-N 0.000 description 1
- 150000002894 organic compounds Chemical class 0.000 description 1
- 150000001451 organic peroxides Chemical class 0.000 description 1
- 125000000913 palmityl group Chemical group [H]C([*])([H])C([H])([H])C([H])([H])C([H])([H])C([H])([H])C([H])([H])C([H])([H])C([H])([H])C([H])([H])C([H])([H])C([H])([H])C([H])([H])C([H])([H])C([H])([H])C([H])([H])C([H])([H])[H] 0.000 description 1
- 239000012188 paraffin wax Substances 0.000 description 1
- 239000008188 pellet Substances 0.000 description 1
- 239000003208 petroleum Substances 0.000 description 1
- 229910052698 phosphorus Inorganic materials 0.000 description 1
- 239000011574 phosphorus Substances 0.000 description 1
- 229920002401 polyacrylamide Polymers 0.000 description 1
- 229920001083 polybutene Polymers 0.000 description 1
- 229920000573 polyethylene Polymers 0.000 description 1
- 229920001223 polyethylene glycol Polymers 0.000 description 1
- 229920000139 polyethylene terephthalate Polymers 0.000 description 1
- 239000005020 polyethylene terephthalate Substances 0.000 description 1
- 229920000642 polymer Polymers 0.000 description 1
- 239000011496 polyurethane foam Substances 0.000 description 1
- 229920002451 polyvinyl alcohol Polymers 0.000 description 1
- 229920000036 polyvinylpyrrolidone Polymers 0.000 description 1
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- 230000001737 promoting effect Effects 0.000 description 1
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- 150000003839 salts Chemical class 0.000 description 1
- 150000004760 silicates Chemical class 0.000 description 1
- 229920002545 silicone oil Polymers 0.000 description 1
- 239000000344 soap Substances 0.000 description 1
- 229940080264 sodium dodecylbenzenesulfonate Drugs 0.000 description 1
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- 238000003756 stirring Methods 0.000 description 1
- 239000000126 substance Substances 0.000 description 1
- 125000001424 substituent group Chemical group 0.000 description 1
- QAOWNCQODCNURD-UHFFFAOYSA-N sulfuric acid Substances OS(O)(=O)=O QAOWNCQODCNURD-UHFFFAOYSA-N 0.000 description 1
- 239000000454 talc Substances 0.000 description 1
- 229910052623 talc Inorganic materials 0.000 description 1
- OPQYOFWUFGEMRZ-UHFFFAOYSA-N tert-butyl 2,2-dimethylpropaneperoxoate Chemical compound CC(C)(C)OOC(=O)C(C)(C)C OPQYOFWUFGEMRZ-UHFFFAOYSA-N 0.000 description 1
- 229950011008 tetrachloroethylene Drugs 0.000 description 1
- CYRMSUTZVYGINF-UHFFFAOYSA-N trichlorofluoromethane Chemical compound FC(Cl)(Cl)Cl CYRMSUTZVYGINF-UHFFFAOYSA-N 0.000 description 1
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- UFTFJSFQGQCHQW-UHFFFAOYSA-N triformin Chemical compound O=COCC(OC=O)COC=O UFTFJSFQGQCHQW-UHFFFAOYSA-N 0.000 description 1
- DCXXMTOCNZCJGO-UHFFFAOYSA-N tristearoylglycerol Chemical compound CCCCCCCCCCCCCCCCCC(=O)OCC(OC(=O)CCCCCCCCCCCCCCCCC)COC(=O)CCCCCCCCCCCCCCCCC DCXXMTOCNZCJGO-UHFFFAOYSA-N 0.000 description 1
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- 238000003466 welding Methods 0.000 description 1
- 239000004711 α-olefin Substances 0.000 description 1
Images
Classifications
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B60—VEHICLES IN GENERAL
- B60N—SEATS SPECIALLY ADAPTED FOR VEHICLES; VEHICLE PASSENGER ACCOMMODATION NOT OTHERWISE PROVIDED FOR
- B60N2/00—Seats specially adapted for vehicles; Arrangement or mounting of seats in vehicles
- B60N2/70—Upholstery springs ; Upholstery
- B60N2/7017—Upholstery springs ; Upholstery characterised by the manufacturing process; manufacturing upholstery or upholstery springs not otherwise provided for
-
- A—HUMAN NECESSITIES
- A47—FURNITURE; DOMESTIC ARTICLES OR APPLIANCES; COFFEE MILLS; SPICE MILLS; SUCTION CLEANERS IN GENERAL
- A47C—CHAIRS; SOFAS; BEDS
- A47C27/00—Spring, stuffed or fluid mattresses or cushions specially adapted for chairs, beds or sofas
- A47C27/14—Spring, stuffed or fluid mattresses or cushions specially adapted for chairs, beds or sofas with foamed material inlays
- A47C27/15—Spring, stuffed or fluid mattresses or cushions specially adapted for chairs, beds or sofas with foamed material inlays consisting of two or more layers
-
- A—HUMAN NECESSITIES
- A47—FURNITURE; DOMESTIC ARTICLES OR APPLIANCES; COFFEE MILLS; SPICE MILLS; SUCTION CLEANERS IN GENERAL
- A47C—CHAIRS; SOFAS; BEDS
- A47C7/00—Parts, details, or accessories of chairs or stools
- A47C7/02—Seat parts
- A47C7/18—Seat parts having foamed material included in cushioning part
- A47C7/20—Seat parts having foamed material included in cushioning part with reinforcement in the foam layer
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B29—WORKING OF PLASTICS; WORKING OF SUBSTANCES IN A PLASTIC STATE IN GENERAL
- B29C—SHAPING OR JOINING OF PLASTICS; SHAPING OF MATERIAL IN A PLASTIC STATE, NOT OTHERWISE PROVIDED FOR; AFTER-TREATMENT OF THE SHAPED PRODUCTS, e.g. REPAIRING
- B29C44/00—Shaping by internal pressure generated in the material, e.g. swelling or foaming ; Producing porous or cellular expanded plastics articles
- B29C44/02—Shaping by internal pressure generated in the material, e.g. swelling or foaming ; Producing porous or cellular expanded plastics articles for articles of definite length, i.e. discrete articles
- B29C44/12—Incorporating or moulding on preformed parts, e.g. inserts or reinforcements
- B29C44/1271—Incorporating or moulding on preformed parts, e.g. inserts or reinforcements the preformed parts being partially covered
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B60—VEHICLES IN GENERAL
- B60N—SEATS SPECIALLY ADAPTED FOR VEHICLES; VEHICLE PASSENGER ACCOMMODATION NOT OTHERWISE PROVIDED FOR
- B60N2/00—Seats specially adapted for vehicles; Arrangement or mounting of seats in vehicles
- B60N2/90—Details or parts not otherwise provided for
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B29—WORKING OF PLASTICS; WORKING OF SUBSTANCES IN A PLASTIC STATE IN GENERAL
- B29C—SHAPING OR JOINING OF PLASTICS; SHAPING OF MATERIAL IN A PLASTIC STATE, NOT OTHERWISE PROVIDED FOR; AFTER-TREATMENT OF THE SHAPED PRODUCTS, e.g. REPAIRING
- B29C44/00—Shaping by internal pressure generated in the material, e.g. swelling or foaming ; Producing porous or cellular expanded plastics articles
- B29C44/02—Shaping by internal pressure generated in the material, e.g. swelling or foaming ; Producing porous or cellular expanded plastics articles for articles of definite length, i.e. discrete articles
- B29C44/12—Incorporating or moulding on preformed parts, e.g. inserts or reinforcements
- B29C44/128—Internally reinforcing constructional elements, e.g. beams
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B29—WORKING OF PLASTICS; WORKING OF SUBSTANCES IN A PLASTIC STATE IN GENERAL
- B29K—INDEXING SCHEME ASSOCIATED WITH SUBCLASSES B29B, B29C OR B29D, RELATING TO MOULDING MATERIALS OR TO MATERIALS FOR MOULDS, REINFORCEMENTS, FILLERS OR PREFORMED PARTS, e.g. INSERTS
- B29K2023/00—Use of polyalkenes or derivatives thereof as moulding material
- B29K2023/04—Polymers of ethylene
- B29K2023/06—PE, i.e. polyethylene
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B29—WORKING OF PLASTICS; WORKING OF SUBSTANCES IN A PLASTIC STATE IN GENERAL
- B29K—INDEXING SCHEME ASSOCIATED WITH SUBCLASSES B29B, B29C OR B29D, RELATING TO MOULDING MATERIALS OR TO MATERIALS FOR MOULDS, REINFORCEMENTS, FILLERS OR PREFORMED PARTS, e.g. INSERTS
- B29K2023/00—Use of polyalkenes or derivatives thereof as moulding material
- B29K2023/10—Polymers of propylene
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B29—WORKING OF PLASTICS; WORKING OF SUBSTANCES IN A PLASTIC STATE IN GENERAL
- B29K—INDEXING SCHEME ASSOCIATED WITH SUBCLASSES B29B, B29C OR B29D, RELATING TO MOULDING MATERIALS OR TO MATERIALS FOR MOULDS, REINFORCEMENTS, FILLERS OR PREFORMED PARTS, e.g. INSERTS
- B29K2025/00—Use of polymers of vinyl-aromatic compounds or derivatives thereof as moulding material
- B29K2025/04—Polymers of styrene
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B29—WORKING OF PLASTICS; WORKING OF SUBSTANCES IN A PLASTIC STATE IN GENERAL
- B29K—INDEXING SCHEME ASSOCIATED WITH SUBCLASSES B29B, B29C OR B29D, RELATING TO MOULDING MATERIALS OR TO MATERIALS FOR MOULDS, REINFORCEMENTS, FILLERS OR PREFORMED PARTS, e.g. INSERTS
- B29K2105/00—Condition, form or state of moulded material or of the material to be shaped
- B29K2105/04—Condition, form or state of moulded material or of the material to be shaped cellular or porous
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B29—WORKING OF PLASTICS; WORKING OF SUBSTANCES IN A PLASTIC STATE IN GENERAL
- B29L—INDEXING SCHEME ASSOCIATED WITH SUBCLASS B29C, RELATING TO PARTICULAR ARTICLES
- B29L2031/00—Other particular articles
- B29L2031/58—Upholstery or cushions, e.g. vehicle upholstery or interior padding
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B29—WORKING OF PLASTICS; WORKING OF SUBSTANCES IN A PLASTIC STATE IN GENERAL
- B29L—INDEXING SCHEME ASSOCIATED WITH SUBCLASS B29C, RELATING TO PARTICULAR ARTICLES
- B29L2031/00—Other particular articles
- B29L2031/771—Seats
Definitions
- the present invention relates to a vehicle seat member, a vehicle seat, and a manufacturing method thereof.
- a foamed resin molded body is a frame material comprising a main body portion embedded in a foamed resin molded body and a protruding portion protruding from the main body portion and projecting from the foamed resin molded body to the outside.
- a vehicle seat including at least a vehicle seat member formed integrally with the vehicle is known. Further, the vehicle seat member further includes an upper seat member laminated on an upper portion of the vehicle seat member, and the upper seat member is made of a cushion material that is elastically deformed when a load is applied, and the vehicle seat member is the upper seat member.
- a vehicular seat made of a foamed resin molded article having a higher compressive strength is also known.
- Patent Document 1 and Patent Document 2 in the vehicle seat of the above-described form, a concave groove or a notch along the shape of the frame material is formed on the back surface side of the vehicle seat member, and the inside of the concave groove or the notch Describes a vehicle seat in which a frame material is inserted and fixed.
- it is difficult to firmly fix the position of the frame material with respect to the vehicle seat member, and there may be a case where a misalignment or a noise due to the misalignment occurs.
- Patent Document 3 and Patent Document 4 describe a vehicle seat in which a frame material is formed integrally with a vehicle seat member at the time of molding.
- the frame material is integrally formed inside the vehicle seat member that is a foamed resin molded body, it is possible to avoid the frame material from being displaced in the vehicle seat member. There is.
- the frame material is integrally formed inside the foamed resin molded body constituting the vehicle seat member, the frame material is hardly displaced.
- the foamed resin molded body usually has a property of shrinking slightly after demolding, and it is inevitable that the frame material, which is usually a wire, is deformed with the shrinkage. Due to the deformation, the position of the protruding portion that functions as a fixing portion to the vehicle main body is also slightly displaced from the initial position. In current vehicles, particularly automobiles, high dimensional accuracy is required, and in order to improve the assembly accuracy, it is considered to reduce the displacement of the protruding portion generated after foam molding. ing.
- the present inventors have also disclosed that a foamed resin molded body in which a frame material is integrally formed inside like a vehicle seat member may interfere with the frame material when shrinking after demolding.
- a new problem was found that the dimensional change after demolding is complicated and the control of the dimension after demolding is difficult as compared with a molded article made only of a foamed resin not included.
- the present inventors fasten the protruding portion to the vehicle main body when the foamed resin molded body does not have sufficient strength to hold the base end portion and the main body portion of the protruding portion.
- the base end portion and the main body portion move relative to the foamed resin molded body, and the vehicle seat member and the vehicle main body cannot be fastened with sufficient strength. I found a new problem.
- the first aspect of the present invention is: For a vehicle in which a frame material comprising a main body portion embedded in a foamed resin molded body and a protruding portion protruding from the main body portion and projecting outward from the foamed resin molded body is integrally molded in the foamed resin molded body A method of manufacturing a sheet member, In the molding die, the frame material is arranged so that the main body portion is located inside the molding die, and filled with pre-foamed resin particles obtained by pre-foaming expandable resin particles containing a resin and a foaming agent.
- the in-mold foam molding step when the outer dimension of the foamed resin molded body in the vehicle seat member obtained in the demolding step is A, and the inner dimension of the molding die corresponding to the outer dimension is B,
- the method is characterized in that the foamed resin molded article is molded so that (BA) / B is 13/1000 or less.
- the protrusion is compared with the case where (BA) / B exceeds 13/1000.
- a vehicle seat member with a reduced amount of displacement can be manufactured.
- achieved high dimensional accuracy can be manufactured.
- the foamed resin molded body in the in-mold foam molding step, is molded so that (BA) / B is 2.5 / 1000 or more and 13/1000 or less. Is preferred.
- the base end portion of the protruding portion and the main body portion of the frame material are held with sufficient strength by the surrounding foamed resin molded body due to the shrinkage of the foamed resin molded body in the manufacturing process.
- a vehicle seat member can be manufactured. The vehicle seat member manufactured by this method can be securely fastened to the vehicle main body via the protrusion.
- the second aspect of the present invention is: For a vehicle in which a frame material comprising a main body portion embedded in a foamed resin molded body and a protruding portion protruding from the main body portion and projecting outward from the foamed resin molded body is integrally molded in the foamed resin molded body A method of manufacturing a sheet member, In the molding die, the frame material is arranged so that the main body portion is located inside the molding die, and filled with pre-foamed resin particles obtained by pre-foaming expandable resin particles containing a resin and a foaming agent.
- the foamed resin molded body is molded such that the expansion ratio is 10 to 60 times, and the fusion rate between the expanded particles derived from the pre-expanded resin particles is 50 to 100%.
- a standard foamed resin molded body is manufactured by in-mold foam molding so that the resin has the foaming ratio and the fusion rate using a standard mold having a predetermined in-mold shape, and demolding.
- the resin is such that (DC) / D is 13/1000 or less, where C is the outer dimension of the standard foamed resin molding and D is the inner dimension of the standard mold corresponding to the outer dimension. And to the method.
- the foamed resin molded body in which the frame material is integrally molded may interfere with the frame material when shrinking after demolding.
- the dimensional change after demolding is complicated, and there is a problem that it is difficult to control the dimensions of the finished product.
- the difference in size for each foamed resin molded body in each vehicle seat member is reduced. can do. Therefore, according to the 2nd aspect of this invention, the yield at the time of producing the vehicle seat member which has the foaming resin molding of the target dimension can be improved.
- a resin having (DC) / D of 2.5 / 1000 or more and 13/1000 or less as the resin.
- DC DC
- the base end portion of the protruding portion and the main body portion of the frame material are held with sufficient strength by the surrounding foamed resin molded body due to the shrinkage of the foamed resin molded body in the manufacturing process.
- a vehicle seat member can be manufactured. The vehicle seat member manufactured by this method can be securely fastened to the vehicle main body via the protrusion.
- the foamed resin molded body is substantially rectangular in plan view, and the main body portion of the frame material partially includes a portion along the longitudinal direction of the foamed resin molded body. More preferably, the protrusion is formed at a portion along the longitudinal direction of the main body.
- the foamed resin molded body has a substantially rectangular shape in plan view, the amount of contraction in the longitudinal direction is larger than that in the short direction. In the vehicular seat in which the protruding portion is formed in the main body portion along the increasing direction, the effect of the present invention is more reliably achieved.
- the third aspect of the present invention is: The vehicle seat member, and an upper seat member disposed on an upper portion of the vehicle seat member, the upper seat member including a cushion material that is elastically deformed when a load is applied, and the vehicle seat member
- the foamed resin molded body has a higher compressive strength than the upper sheet member, and is a method for manufacturing a vehicle seat, A vehicle seat member manufacturing process for manufacturing the vehicle seat member by the method according to the first aspect or the second aspect of the present invention; A vehicle seat manufacturing step of manufacturing the vehicle seat by disposing the upper seat member on an upper portion of the vehicle seat member obtained in the vehicle seat member manufacturing step. .
- the method of the third aspect of the present invention it is possible to give a comfortable elastic feeling to a person sitting by the upper seat member, and to prevent the vehicle seat member from being deformed more than necessary by the vehicle seat member.
- a vehicle seat having both comfort and safety can be obtained.
- the fourth aspect of the present invention is: For a vehicle in which a frame material comprising a main body portion embedded in a foamed resin molded body and a protruding portion protruding from the main body portion and projecting outward from the foamed resin molded body is integrally molded in the foamed resin molded body A sheet member, The foamed resin molded body is obtained by in-mold foam molding using a mold, and the outer dimension of the foamed resin molded body is A, and the inner dimension of the mold corresponding to the outer dimension is B. Then, the present invention relates to the vehicle seat member, wherein (BA) / B is 13/1000 or less.
- the vehicle seat member according to the fourth aspect of the present invention has a small dimensional change during the manufacturing process of the foamed resin molded body, compared with the case where (BA) / B exceeds 13/1000, The amount of displacement of the protrusion is small.
- the vehicle seat member according to this aspect has a small dimensional change during the manufacturing process of the foamed resin molded body, and thus is high despite the frame material being integrally formed inside the foamed resin molded body. Has dimensional accuracy.
- (BA) / B defined above is 2.5 / 1000 or more and 13/1000 or less.
- the base end portion of the projecting portion and the main body portion of the frame material have sufficient strength to the surrounding foamed resin molded body due to shrinkage of the foamed resin molded body in the manufacturing process. Since it is hold
- the fifth aspect of the present invention is: For a vehicle in which a frame material comprising a main body portion embedded in a foamed resin molded body and a protruding portion protruding from the main body portion and projecting outward from the foamed resin molded body is integrally molded in the foamed resin molded body A sheet member,
- the foamed resin molded body is obtained by filling pre-foamed resin particles obtained by pre-foaming expandable resin particles containing a resin and a foaming agent in a mold and foam-molding in the mold,
- the expansion ratio is 10 to 60 times
- the fusion rate between the expanded particles derived from the pre-expanded resin particles is 50 to 100%
- a standard foamed resin molded body is manufactured by in-mold foam molding so that the resin has the foaming ratio and the fusion rate using a standard mold having a predetermined in-mold shape, and demolding.
- the resin is such that (DC) / D is
- the vehicular seat member according to the fifth aspect of the present invention has a small dimensional change during the manufacturing process of the foamed resin molded body, so that (DC) / D defined above exceeds 13/1000. In comparison, the amount of displacement of the protrusion is small.
- the vehicle seat member according to this aspect has a small dimensional change during the manufacturing process of the foamed resin molded body, and thus is high despite the frame material being integrally formed inside the foamed resin molded body. Has dimensional accuracy.
- the vehicle seat member according to the fifth aspect of the present invention further includes a foamed resin molded body made of a resin having (DC) / D as defined above of 2.5 / 1000 or more and 13/1000 or less. Is preferred.
- the base end portion of the projecting portion and the main body portion of the frame material have sufficient strength to the surrounding foamed resin molded body due to shrinkage of the foamed resin molded body in the manufacturing process. Since it is hold
- the sixth aspect of the present invention is: For a vehicle in which a frame material comprising a main body portion embedded in a foamed resin molded body and a protruding portion protruding from the main body portion and projecting outward from the foamed resin molded body is integrally molded in the foamed resin molded body A sheet member,
- the foamed resin molded body is a foamed molded body of a composite resin containing a polystyrene resin and a polyolefin resin, or a foamed molded body of a polystyrene resin, and relates to the vehicle seat member.
- the vehicle seat member according to the sixth aspect of the present invention has a small dimensional change in the manufacturing process of the foamed resin molded body, the protrusion is compared with a case where a foamed resin molded body made of another resin is provided. The displacement of the part is small.
- the vehicle seat member according to this aspect has a small dimensional change during the manufacturing process of the foamed resin molded body, and thus is high despite the frame material being integrally formed inside the foamed resin molded body. Has dimensional accuracy.
- the base end portion of the projecting portion and the main body portion of the frame material may be formed by the shrinkage of the foamed resin molded body during the manufacturing process. Since it is held with sufficient strength by the foamed resin molded body, it can be securely fastened to the vehicle body via the protruding portion.
- the foamed resin molded body is substantially rectangular in a plan view, and the main body portion of the frame material partially includes the foamed resin. It has a portion along the longitudinal direction of the molded body, and the protruding portion is formed at a portion along the longitudinal direction of the main body portion.
- the foamed resin molded body has a substantially rectangular shape in plan view, the amount of contraction in the longitudinal direction is larger than that in the short direction. In the vehicular seat in which the protruding portion is formed in the main body portion along the increasing direction, the effect of the present invention is more reliably achieved.
- the seventh aspect of the present invention is: A vehicle seat member according to a fourth aspect, a fifth aspect, or a sixth aspect of the present invention, and an upper seat member disposed on an upper portion of the vehicle seat member, wherein the upper seat member has a load.
- the foamed resin molded body in the vehicle seat member includes a cushion material that is elastically deformed, and the vehicle seat has higher compressive strength than the upper seat member.
- the vehicle seat according to the seventh aspect of the present invention can give a comfortable elastic feeling to a person sitting by the upper seat member, and prevents the vehicle seat from being deformed more than necessary by the vehicle seat member.
- the vehicle seat has both comfort and safety.
- the present invention provides a vehicle seat member, a vehicle seat, and a method for manufacturing the same, which sufficiently satisfy the high mounting accuracy required for the vehicle main body in recent years.
- a frame material comprising a main body portion embedded in a foamed resin molded body and a protruding portion protruding from the main body portion and having a leading end projecting outward from the foamed resin molded body is foamed resin molding.
- the displacement of the projecting portion of the frame material serving as a fixing portion to the vehicle main body can be reduced.
- a frame material comprising a main body portion embedded in a foamed resin molded body and a protruding portion protruding from the main body portion and having a leading end projecting outward from the foamed resin molded body is foamed resin molding.
- FIG. 3 is a sectional view taken along line III-III in FIG. 2.
- FIG. 4 is a sectional view taken along line IV-IV in FIG. 2.
- It is a schematic diagram for demonstrating the in-mold foam-molding process in the manufacturing method of the vehicle seat member 30 by this invention.
- It is a schematic diagram which shows the vehicle seat member 30 after a demolding process in the manufacturing method of the vehicle seat member 30 by this invention.
- the vehicle seat 50 includes, as a basic configuration, a vehicle seat member 30 including a foamed resin molded body 10 and a frame material 20 embedded in the foamed resin molded body 10 by integral molding. .
- the overall shape of the vehicle seat member 30 is not particularly limited, but a generally rectangular shape in plan view is common, and at this time, the vehicle seat member 30 has an overall shape that extends in a direction substantially along the plane. It is common to have Of course, the shape and thickness of the foamed resin molded body 10 in plan view vary depending on the shape of the vehicle body to which the vehicle seat 50 is attached.
- the foamed resin molded body 10 is an in-mold foam molded body of foamed resin. Suitable types of resin, expansion ratio, fusion rate, etc. will be described in detail later.
- the frame material 20 is embedded in the foamed resin molded body 10 in order to give the required shape retention and strength, and a steel wire (wire) having a diameter of about 3 to 6 mm is generally used. A thin steel plate may be used.
- the frame member 20 is provided with a main body 21 embedded in a portion slightly inside the outer peripheral surface along the outer periphery of the foamed resin molded body 10, and the foam resin in the main body 21. It includes two first protrusions 23 and 23 formed by a portion 22 along one longitudinal side surface of the molded body 10. However, the first protrusions 23 and 23 are not necessarily formed on the portion 22. Further, although not essential, in the illustrated example, one second protrusion 25 is also formed in the portion 24 of the main body 21 along the other longitudinal side surface of the foamed resin molded body 10.
- the first protruding portion 23 protrudes in the thickness direction of the foamed resin molded body 10, and the tip portion protrudes from the back side of the foamed resin molded body 10 to the outside. Moreover, the 2nd protrusion part 25 protrudes toward the surface direction of the foamed resin molding 10, and the front-end
- FIG. In the illustrated example, the first and second projecting portions 23 and 25 are formed by bending a steel wire constituting the main body portion 21 into a substantially U shape.
- the projecting portion forming the above may be integrated with the main body portion 21 by welding or the like.
- a metal or resin plate may be arranged at the corner, and the plate may be integrally connected by a steel wire (wire). Further, the first protrusions 23 and 23 may be provided upright on such a plate.
- the position where the first protrusions 23 and 23 are formed is set according to the position of the mounting jig on the vehicle body side to which the vehicle seat 50 is mounted. In many cases, the position is close to both ends of the portion 22 along one longitudinal side surface of the body 10.
- the illustrated vehicle seat 50 further includes an upper seat member 40 above the vehicle seat member 30 described above.
- the upper portion of the vehicle seat member 30 refers to a position in the vehicle seat member 30 that is a side on which a vehicle occupant sits when the vehicle seat member 30 is installed in the vehicle.
- the upper sheet member 40 is made of a cushion material that is elastically deformed when a load is applied, and the vehicle seat member 30 is formed of a foamed resin molded body having a higher compressive strength than the upper sheet member 40.
- a soft polyurethane foam is exemplified.
- the foamed resin molded body constituting the vehicle seat member 30 is a molded body made of a foamed polystyrene-based resin, a molded body made of a polystyrene-based resin and a polyolefin-based resin, or a foamed polyolefin-based resin.
- a molded body or a molded body made of a foamed composite resin containing a polystyrene-based resin and a polyphenylene ether resin is preferable.
- a comfortable elasticity can be given to a seated person by the upper seat member 40, and the vehicle seat member 30 can prevent the vehicle seat 50 from being deformed more than necessary. .
- the vehicle seat 50 is covered with an appropriate cover material in actual use.
- a first aspect of the present invention is a method of manufacturing a vehicle seat member 30, Pre-expanded resin particles in which the frame material 20 is disposed in the mold 100 so that the main body portion 21 is located inside the mold 100 and the expandable resin particles containing a resin and a foaming agent are pre-expanded.
- (BA) / B is 13/1000 or less, more preferably 2.5 / 1000 or more, 13/1000 or less, more preferably 3/1000 or more, more preferably 11/1000 or less, more preferably 10/1000.
- the foamed resin molded body 10 is molded so as to be more preferably 9/1000 or less.
- (BA) / B is an index representing how much the foamed resin molded body 10 molded in the mold 100 in the in-mold foam molding process contracts after the demolding process.
- the part for measuring the outer dimension of the foamed resin molded body 10 is not particularly limited, and is, for example, the width of an arbitrary part of the foamed resin molded body 10.
- the foamed resin molded body 10 has an overall shape that extends in a direction substantially along a plane, it may be the width of an arbitrary portion when viewed in plan, or the width in the thickness direction. Also good.
- the foamed resin molded body 10 has a shape that is substantially rectangular in plan view, the length A in plan view can be the outer dimension of the foamed resin molded body 10 as shown in FIG.
- the inner dimension of the mold 100 corresponding to the outer dimension of the foamed resin molded body 10 is determined according to the outer dimension of the foamed resin molded body 10.
- the length A in plan view is the outer dimension of the foamed resin molded body 10 as shown in FIG.
- the corresponding length B of the mold 100 is taken as the inner dimension of the mold 100.
- the frame material 20 is arranged in the mold 100 so that the main body 21 is located inside the mold 100 (in the cavity). At this time, it is preferable that the tip portions of the projecting portions 23 and 25 of the frame material 20 are not positioned in the cavity of the mold 100 filled with the foamed resin during the in-mold foam molding.
- the frame material 20 is arranged so that the tip portions of the protruding portions 23 and 25 of the frame material 20 are located outside the mold 100 (parts other than the cavity).
- the frame material 20 is placed in the cavity of the mold 100 in a state in which an enclosure is provided in the frame material 20 so that the foamed resin does not enter around the tips of the protrusions 23 and 25. May be.
- the main body portion 21 and the base end portions 231 and 251 of the projecting portions 23 and 25 of the frame material 20 are expanded resin molded bodies by the in-mold foam molding step and the demolding step described later. 10 is obtained.
- the vehicle seat member 30 has a structure in which the tip portions of the protrusions 23 and 25 are exposed to the outside of the foamed resin molded body 10.
- the resin is not particularly limited, and composite resins including polystyrene resins and polyolefin resins, polystyrene resins, composite resins including polystyrene resins and polyphenylene ether resins, polyolefin resins, polyester resins, and the like can be used.
- the foamable resin particles are obtained by impregnating resin particles with a foaming agent.
- the foaming resin particles may be impregnated with the foaming agent simultaneously with formation of the resin by polymerization, or may be impregnated with the foaming agent after polymerization of the resin.
- the composite resin particles contain a polyolefin resin and a polystyrene resin.
- the shape of the composite resin particles is preferably, for example, a true sphere, an oval (egg), or a column.
- the average particle size is not particularly limited, but is preferably 0.3 to 7 mm.
- the average particle diameter is less than 0.3 mm, the foaming resin particles have low foam retention, which may make it difficult to reduce the density. If it exceeds 7 mm, the filling property of the pre-foamed resin particles in the mold may be lowered, and it may be difficult to reduce the thickness of the foam-molded product.
- the ratio (L / D) between the maximum diameter L and the minimum diameter D of the composite resin particles is not particularly limited, but is preferably 1 to 1.6. Particles with a large flatness exceeding 1.6 may reduce the filling property of the pre-foamed resin particles into the mold.
- polyolefin resin examples include resins containing units derived from olefin monomers having 2 to 10 carbon atoms such as polypropylene and polyethylene.
- the polyolefin-based resin may be a homopolymer of an olefin monomer, or may be a copolymer of an olefin monomer and another monomer that can be copolymerized with the olefin monomer.
- the polyolefin resin may be cross-linked.
- the copolymer examples include a copolymer (EVA) of vinyl acetate and ethylene.
- EVA copolymer
- the polyolefin resin for example, a resin having a weight average molecular weight of 180,000 to 500,000 can be used.
- the content of vinyl acetate-derived units in EVA is preferably 5.5 to 8% by mass.
- the content is less than 5.5% by mass, foam moldability may be deteriorated.
- the content is more than 8% by mass, foam molding may be difficult due to the melting point of EVA being less than 100 ° C.
- polystyrene resin examples include resins derived from styrene monomers such as styrene and substituted styrene (substituents include lower alkyl, halogen atoms (particularly chlorine atoms) and the like).
- substituted styrene examples include ⁇ -methylstyrene, p-methylstyrene, t-butylstyrene, chlorostyrene and the like.
- the polystyrene resin may be a homopolymer of a styrene monomer, or a copolymer of a styrene monomer and another monomer copolymerizable with the styrene monomer. May be.
- examples of other monomers include acrylonitrile, (meth) acrylic acid alkyl ester (alkyl moiety having about 1 to 8 carbon atoms), divinylbenzene, ethylene glycol mono- or di (meth) acrylic acid ester, maleic anhydride, N -Phenylmaleimide and the like.
- the polystyrene resin is more preferably a resin derived only from styrene.
- the content of the polystyrene resin can be 120 to 400 parts by mass with respect to 100 parts by mass of the polyolefin resin.
- the content of the polystyrene resin is less than 120 parts by mass, the foamability of the foamable resin particles, the chemical resistance and the heat resistance of the foamed molded product may be lowered.
- the content of the polystyrene resin is more than 400 parts by mass, the rigidity of the foamed molded product may be lowered.
- a more preferable content of the polystyrene resin is 150 to 250 parts by mass with respect to 100 parts by mass of the polyolefin resin.
- the composite resin particles may contain other additives.
- Other additives include nucleating agents, coloring agents, flame retardants, flame retardant aids, antioxidants, ultraviolet absorbers, scaly silicates, and the like.
- nucleating agent examples include zinc stearate, aluminum stearate, ethylene bis stearic acid amide and the like.
- Coloring agents include carbon black, iron oxide, graphite and the like.
- flame retardants examples include tris (2,3-dibromopropyl) isocyanurate, tetrabromocyclooctane, hexabromocyclododecane, decabromodigenyl ether, tribromophenyl allyl ether, tetrabromobisphenol A diallyl ether, tetrabromobisphenol A Brominated flame retardants such as diglycidyl ether, tetrabromobisphenol A di (hydroxyethyl) ether, tetrabromobisphenol A bis (2,3-dibromopropyl) ether, chlorinated paraffin, triphenyl chloride, diphenyl chloride, perchlorpentacyclo Chlorine flame retardants such as decane and chlorodicyclopentadiene, chlorine bromine-containing flame retardants such as 1,2-dibromo-3-chloropropane and 2-chloro-1,2,3,
- the amount of flame retardant used is preferably 1 to 10 parts by mass with respect to 100 parts by mass of the composite resin particles.
- the amount used is less than 1 part by mass, it may be difficult to produce slow flame retardancy of the composite resin particles.
- the amount is more than 10 parts by mass, not only the effect corresponding to a large amount of use is not obtained, but also the foamed molded product may become brittle.
- a more preferable usage amount is 2 to 8 parts by mass.
- scaly silicate examples include mica (for example, natural mica and synthetic mica), sericite, and the like.
- the composite resin particles may be produced by any method as long as the polyolefin resin and the polystyrene resin can be contained in the particles. For example, a method of kneading both resins in an extruder and cutting the kneaded product, a method of impregnating a seed particle containing a polyolefin resin with an styrene monomer in an aqueous medium, and then polymerizing the monomer, etc. It is done. Among these, the latter method is preferable from the viewpoint of more uniformly mixing both resins and obtaining particles having a more spherical shape.
- the composite resin particles obtained by the latter method are also referred to as polyolefin-modified polystyrene resin particles or simply modified resin particles.
- the seed particles are impregnated with 120 to 400 parts by mass of a styrene monomer in a dispersion obtained by dispersing 100 parts by mass of seed particles containing a polyolefin resin in the following step (i).
- seed particles can be obtained by a known method.
- seed particles can be produced by first melt-extruding a polyolefin-based resin using an extruder and granulating by underwater cutting, strand cutting, hot cutting, or the like.
- shape of the seed particles to be used can be, for example, a true sphere, an oval sphere (egg), a cylinder, a prism, a pellet, or a granular.
- the mass of individual seed particles is not particularly limited. However, considering that the mass of the modified resin particles is defined by this mass, the mass can usually be about 10 to 500 mg / 100.
- the average particle size of individual seed particles there is no particular restriction on the average particle size of individual seed particles.
- the average particle size of the modified resin particles is defined by this average particle size, the average particle size can be 0.2 to 1.5 mm.
- the average particle diameter is less than 0.2 mm, the foaming resin particles have low foam retention, which may make it difficult to reduce the density. If it exceeds 1.5 mm, the filling property of the pre-foamed resin particles into the mold may be lowered, and it may be difficult to reduce the thickness of the foamed molded product.
- the ratio (L / D) between the maximum diameter L and the minimum diameter D of each seed particle there is no particular limitation on the ratio (L / D) between the maximum diameter L and the minimum diameter D of each seed particle.
- the L / D of the modified resin particles is defined by this L / D, the L / D of 1 to 1.6 can be obtained.
- the flatness exceeds 1.6, the filling property of the foamed resin particles into the mold may be lowered.
- the seed particles may contain other additives mentioned in item (4) above.
- aqueous medium examples include water and a mixed medium of water and a water-soluble solvent (for example, alcohol).
- the aqueous medium may contain a dispersant in order to stabilize the dispersibility of the styrene monomer droplets and seed particles.
- the dispersant examples include water-soluble polymers such as polyvinyl alcohol, methyl cellulose, polyacrylamide, and polyvinyl pyrrolidone, and poorly soluble inorganic compounds such as tricalcium phosphate, magnesium pyrophosphate, and calcium carbonate.
- a surfactant when a hardly soluble inorganic compound is used, it is preferable to use a surfactant.
- the amount of the dispersant used is preferably 0.1 to 4% by mass in the aqueous medium containing the dispersant. When the amount is less than 0.1% by mass, the effect of dispersion stability may be difficult to be exhibited. When the amount is more than 4% by mass, an effect of dispersion stability is exhibited, but an effect commensurate with a large amount of use cannot be expected, and the production cost may increase.
- surfactant examples include fatty acid soaps, N-acyl amino acids or salts thereof, carboxylates such as alkyl ether carboxylates, alkylbenzene sulfonates such as calcium dodecylbenzenesulfonate and sodium dodecylbenzenesulfonate, and alkylnaphthalenes.
- Sulfonates dialkyl sulfosuccinates, alkyl sulfoacetates, sulfonates such as ⁇ -olefin sulfonates, higher alcohol sulfates, secondary higher alcohol sulfates, alkyl ether sulfates, polyoxyethylene
- sulfuric acid ester salts such as alkylphenyl ether sulfates
- phosphoric acid ester salts such as alkyl ether phosphoric acid ester salts and alkyl phosphoric acid ester salts.
- the impregnation of the seed particles with the styrene monomer is usually performed at a temperature at which the polymerization of the styrene monomer does not substantially occur. Moreover, you may superpose
- the impregnation temperature is usually in the range of 50 to 100 ° C.
- the polymerization of the styrene monomer can be carried out in the presence of a polymerization initiator.
- any polymerization initiator used in ordinary styrene polymerization can be used.
- polymerization initiators may be used alone or in combination of two or more. In order to adjust the molecular weight and reduce the residual monomer, it is preferable to use a plurality of polymerization initiators having a decomposition temperature in the range of 80 to 120 ° C. for obtaining a half-life of 10 hours.
- the styrene monomer may contain a plasticizer, a chain transfer agent, an oil-soluble polymerization inhibitor, a water-soluble polymerization inhibitor, a bubble regulator, a flame retardant, a flame retardant aid, and the like.
- plasticizer examples include toluene, xylene, cyclohexane, ethyl acetate, dioctyl phthalate, and tetrachloroethylene.
- chain transfer agents examples include mercaptans and ⁇ -methylstyrene.
- the polymerization temperature is preferably in the range of 70 to 140 ° C, more preferably in the range of 90 to 130 ° C.
- the polymerization temperature may be raised for some time in a constant or stepwise manner.
- the temperature raising rate is preferably 0.1 to 2 ° C./min.
- the polyolefin resin may be crosslinked.
- the crosslinking agent examples include 2,2-di-t-butylperoxybutane, 2,2-bis (t-butylperoxy) butane, dicumyl peroxide, 2,5-dimethyl-2,5-di And organic peroxides such as -t-butylperoxyhexane. These crosslinking agents can be used alone or in admixture of two or more.
- the amount of the crosslinking agent used is preferably 0.05 to 1 part by mass with respect to 100 parts by mass of the polyolefin resin.
- the timing of crosslinking may be before or after polymerization of the styrene monomer.
- the cross-linking agent may be added alone to the polymerization system.
- the crosslinking agent is preferably added in the form of a solution dissolved in a solvent, a plasticizer or a styrene monomer, or a dispersion dispersed in water, from the viewpoint of work safety.
- a bubble adjusting agent, a flame retardant, a flame retardant aid and the like may be added to the reaction system at the time of crosslinking.
- composite resin particles Commercially available composite resin particles
- Commercially available products can be purchased and used as composite resin particles containing a polystyrene resin and a polyolefin resin.
- Examples of commercially available composite resin particles containing a polystyrene resin and a polyolefin resin include PIOCERAN (registered trademark): OP-30EU, OP-30ELV manufactured by Sekisui Plastics Co., Ltd. (Polystyrene resin particles) (1) Polystyrene resin
- the polystyrene resin constituting the polystyrene resin particles is not particularly limited.
- styrene For example, styrene, ⁇ -methylstyrene, vinyltoluene, chlorostyrene, ethylstyrene, i-propylstyrene, dimethylstyrene, A homopolymer of a styrene monomer such as bromostyrene or a copolymer of two or more of these monomers may be mentioned, and a polystyrene resin containing 50% by mass or more of a styrene component is preferable, and polystyrene is more preferable.
- the polystyrene resin may be a copolymer of the styrene monomer as a main component and a vinyl monomer copolymerizable with the styrene monomer.
- vinyl monomers include methyl (meth) acrylate, ethyl (meth) acrylate, butyl (meth) acrylate, alkyl (meth) acrylates such as cetyl (meth) acrylate, (meth) acrylonitrile, dimethyl maleate,
- bifunctional monomers such as divinylbenzene and alkylene glycol dimethacrylate are exemplified.
- the polystyrene resin may be a virgin raw material, a recycled product of a used foamed molded product, a plastic material constituting a home appliance, or a mixture thereof.
- polystyrene resin may contain other additives as mentioned in (4) of the above (composite resin particles containing polystyrene resin and polyolefin resin).
- the shape of the polystyrene-based resin particles used in the present invention is not particularly limited, but a spherical shape is preferable, and the particle diameter is from the viewpoint of easy filling of the polystyrene-based resin pre-expanded particles described later into a mold. It is preferably 3 to 2.0 mm, preferably 0.3 to 1.4 mm. Further, when the shape is a columnar shape, the volume corresponding to the preferable particle diameter is preferable.
- the polystyrene-reduced weight average molecular weight (Mw) of the polystyrene-based resin is small, the mechanical strength of the polystyrene-based resin foam molded article obtained by foaming the expandable polystyrene-based resin particles may be low, but large. In this case, the foamability of the expandable polystyrene resin particles may be lowered, and a polystyrene resin foam molded article having a high expansion ratio may not be obtained. Therefore, the range of 120,000 to 600,000 is preferable.
- polystyrene resin particles As a production method of polystyrene resin particles used as the material of the expandable polystyrene resin particles, a general-purpose method is used. For example, a virgin raw material and a recovered product are supplied to an extruder. Melt-kneading, extruding into a strand form from an extruder, cooling, and then cutting each predetermined length to produce polystyrene resin particles (strand cut method), from a hole in a die attached to the tip of the extruder Examples thereof include a method of producing polystyrene-based resin particles by cutting and cooling simultaneously with extrusion into water (in-water hot cut method). Further, after the scaly silicate or metal oxide is dispersed in the resin in the extruder, polystyrene resin particles may be cut by predetermined lengths.
- the polystyrene resin particles are obtained by seed polymerization by impregnating a polystyrene resin seed particle with a styrene monomer in a suspension in water using the obtained polystyrene resin particle as a seed particle.
- the addition amount of the styrene monomer when the styrene monomer is absorbed in the polystyrene resin seed particles and polymerized to perform seed polymerization is within a range of 10 to 800 parts by mass of the styrene monomer with respect to 100 parts by mass of the seed particles. is there. A preferred range is 50 to 500 parts by mass.
- the addition amount is less than 10 parts by mass, the amount of the styrene monomer and the amount of the polymerization initiator are too small, and the seed particles are not absorbed to the center of the seed particles, and uniform seed polymerization cannot be performed in the seed particles.
- addition amount exceeds 800 parts by mass, it takes too much time for seed polymerization and productivity is lowered, and in addition, a large amount of polymer powder derived from styrene monomer that is not absorbed by the seed particles is generated. It is not preferable.
- the polymerization initiator used when the styrene monomer is impregnated into the polystyrene resin seed particles to perform seed polymerization is not particularly limited, and the above (composite resin particles including a polystyrene resin and a polyolefin resin)
- the polymerization initiators mentioned in (b-1) of (5) can be used.
- a dispersant may be used to stabilize the dispersibility of the styrene monomer droplets, the polystyrene resin seed particles, and the polystyrene resin particles.
- the dispersant the dispersants mentioned in (a-2) of (5) of the above (composite resin particles containing a polystyrene resin and a polyolefin resin) can be used.
- polystyrene resin particles Commercially available polystyrene resin particles
- Commercially available polystyrene resin particles include Eslen beads manufactured by Sekisui Plastics Co., Ltd .: FDK-40LV, ESDK, and the like.
- composite resin particles containing the polystyrene resin and polyolefin resin detailed above or resin particles having the same shape as the polystyrene resin particles can be used. It can contain suitably.
- Examples of the other resin particles include composite resins including polystyrene resins and polyphenylene ether resins, polyolefin resin particles, and polyester resin particles.
- polystyrene resin in the composite resin containing the polystyrene resin and the polyphenylene ether resin examples include the polystyrene resins mentioned in (2) of (Composite resin particles containing the polystyrene resin and the polyolefin resin).
- the polyphenylene ether resin in the composite resin has the following formula:
- R 1 and R 2 represent an alkyl group having 1 to 4 carbon atoms or a halogen atom, and n represents the degree of polymerization
- specific examples thereof include polyphenylene ether resins.
- the ratio of the polystyrene resin and the polyphenylene ether resin in the composite resin is not particularly limited, but when the total amount of the polystyrene resin and the polyphenylene ether resin is 100 parts by mass, 90 to 10 parts by mass of the polystyrene resin and 10 It is preferable to contain 90 to 30 parts by mass of polyphenylene ether resin, and more preferably 90 to 30 parts by mass of polystyrene resin and 10 to 70 parts by mass of polyphenylene ether resin. When the polystyrene resin is 90 parts by mass or less and the polyphenylene ether resin is 10 parts by mass or more, sufficient heat resistance is easily imparted to the foamed molded article of the composite resin.
- polyolefin resin constituting the polyolefin resin particles examples include the polyolefin resins mentioned in (1) above (composite resin particles containing a polystyrene resin and a polyolefin resin).
- polyester resin constituting the polyester resin particles is polyethylene terephthalate.
- a general-purpose method is used in the same manner as the composite resin particles or polystyrene resin particles containing the polystyrene resin and the polyolefin resin described in detail above.
- a method of producing resin particles by supplying resin virgin raw materials and recovered products to an extruder, melt-kneading, extruding into a strand form from the extruder, cooling, and cutting at predetermined lengths (strand cut method)
- Resin particles can be produced by a method of extruding a resin into water through a hole in a die attached to the tip of an extruder and simultaneously cutting and cooling to produce resin particles (an underwater hot cut method).
- the composite resin particles containing a polystyrene resin and a polyphenylene ether resin may be produced by any method as long as the polystyrene resin and the polyphenylene ether resin can be contained in the particles.
- a method of kneading both resins in an extruder and cutting the kneaded product, impregnating seed particles containing one resin with a monomer that forms the other resin in an aqueous medium, and then polymerizing the monomer Methods and the like is preferable from the viewpoint of more uniformly mixing both resins and obtaining particles having a more spherical shape.
- the composite resin particles obtained by the latter method are also referred to as polystyrene-based resin-modified polyphenylene ether resin particles.
- the step of impregnating the monomer into the seed particles and the polymerization step can be performed by a procedure similar to the procedure described in (5) of (Composite resin particles containing a polystyrene resin and a polyolefin resin).
- hydrocarbons such as propane, n-butane, isobutane, n-pentane, isopentane, neopentane, cyclopentane, cyclopentadiene, n-hexane, petroleum ether, ketones such as acetone and methyl ethyl ketone, methanol, ethanol, isopropyl alcohol, etc.
- Low boiling point ether compounds such as alcohols, dimethyl ether, diethyl ether, dipropyl ether, methyl ethyl ether, halogen-containing hydrocarbons such as trichloromonofluoromethane, dichlorodifluoromethane, inorganic gases such as carbon dioxide, nitrogen, ammonia, etc. Can be mentioned.
- These foaming agents may be used alone or in combination of two or more.
- hydrocarbons from the viewpoint of preventing the destruction of the ozone layer and from the viewpoint of quickly replacing with the air and suppressing the change with time of the foamed molded product.
- carbon hydrogens hydrocarbons having a boiling point of ⁇ 45 to 40 ° C. are more preferred, and propane, n-butane, isobutane, n-pentane, isopentane and the like are more preferred.
- the impregnation with the foaming agent may be performed on the particles after polymerization of the resin, or may be performed on particles in the middle of polymerization.
- Impregnation during the polymerization can be performed by a method of impregnation in an aqueous medium (wet impregnation method).
- the impregnation after polymerization can be carried out by a wet impregnation method or a method of impregnation in the absence of a medium (dry impregnation method).
- the late stage of polymerization is preferably after 70% by mass of the constituent monomers have been polymerized. It is also possible to impregnate the foaming agent following the polymerization after 99% by mass of the constituent monomers have been polymerized.
- the impregnation temperature of the foaming agent can be 50 to 140 ° C.
- the impregnation of the foaming agent may be performed in the presence of a foaming aid.
- foaming aid include solvents such as toluene, xylene, ethylbenzene, and cyclohexane, and plasticizers (high boiling point solvents) such as diisobutyl adipate, diacetylated monolaurate, and coconut oil.
- the addition amount of the foaming aid is preferably 0.2 to 2.5 parts by mass with respect to 100 parts by mass of the composite resin particles.
- a surface treatment agent for example, a binding inhibitor, a fusion accelerator, an antistatic agent, a spreading agent, etc.
- a surface treatment agent for example, a binding inhibitor, a fusion accelerator, an antistatic agent, a spreading agent, etc.
- the binding inhibitor plays a role of preventing the foamed resin particles from being bonded to each other by heating during the production of the foamed resin particles described below.
- the binding inhibitor include talc, calcium carbonate, zinc stearate, aluminum hydroxide, ethylene bis stearamide, tricalcium phosphate, dimethylsiloxane and the like.
- the fusion promoter plays a role of promoting the fusion of the foamed resin particles at the time of in-mold molding.
- the fusion accelerator include stearic acid, stearic acid triglyceride, hydroxystearic acid triglyceride, and stearic acid sorbitan ester.
- antistatic agent examples include polyoxyethylene alkylphenol ether and stearic acid sorbitan ester.
- spreading agents examples include polybutene, polyethylene glycol, and silicone oil.
- the addition amount (total value) of these surface treatment agents is preferably 0.01 to 2 parts by mass with respect to 100 parts by mass of the resin particles.
- the expandable resin particles are expanded (pre-expanded) with water vapor or the like in a foaming machine (preliminary foaming machine) to be pre-expanded resin particles having a large number of small holes (also simply referred to as expanded resin particles).
- the volume ratio of the pre-expanded resin particles is preferably in the range of 10 to 60 times, more preferably in the range of 10 to 50 times, more preferably in the range of 20 to 50 times, and more preferably in the range of 25 to 45 times.
- the prefoamed resin particles are preferably stored and aged for about 24 hours at 20 to 60 ° C. after the prefoaming.
- the bulk magnification and bulk density of the pre-foamed resin particles are measured by the following procedure.
- pre-foamed resin particles were collected as a measurement sample, Wg was collected, this measurement sample was naturally dropped into a graduated cylinder, and the volume Vcm 3 of the measurement sample dropped into the graduated cylinder was measured using an apparent density measuring instrument in accordance with JIS K6911. The bulk multiple and the bulk density of the expanded particles are measured based on the following formula.
- the frame material 20 is disposed in the mold 100 as described above, and further filled with pre-foamed resin particles, and then the pre-foamed resin particles are foamed in the mold 100. Then, the foamed resin molded body 10 is molded by in-mold foam molding. As the mold 100, a closed mold having a large number of small holes is used. Foaming of the pre-expanded resin particles is performed by heating the inside of the mold 100 with water vapor to foam, filling the gaps between the pre-expanded resin particles and fusing the pre-expanded resin particles together. To do.
- the multiple of the foamed resin molded product 10 obtained in the in-mold foam molding step is preferably in the range of 10 to 60 times, more preferably in the range of 10 to 50 times, more preferably in the range of 20 to 50 times, more preferably 25. It is in the range of 45 times.
- (BA) / B is 13/1000 or less, more preferably 2.5 / 1000 or more, 13/1000 or less, more preferably 3 / 1000 or more, more preferably 11/1000 or less, more preferably 10/1000 or less, and more preferably 9/1000 or less.
- the multiple of the foamed resin molded body 10 can be controlled, for example, by adjusting the filling amount of the pre-foamed resin particles into the cavity of the mold 100.
- the density of the foamed resin molding is a density measured by the method described in JIS K7222: 2005 “Measurement of foamed plastic and rubber-apparent density”.
- the expansion ratio also referred to as “multiple expansion” or “multiple”
- density of the foamed resin molded product can be measured by the following method.
- a test piece of 50 cm 3 or more (100 cm 3 or more in the case of semi-rigid and soft materials) is cut out from the foamed resin molded body so as not to change the original cell structure of the material, its mass is measured, and the following equation is calculated.
- Condition adjustment of the test piece The test piece was cut out from a sample of the foamed resin molding after 72 hours or more after molding, and the temperature was 23 ° C. ⁇ 2 ° C. relative humidity 50% ⁇ 5% or the temperature 27 ° C. ⁇ 2 ° C. relative humidity 65% ⁇ The sample was left in a 5% atmospheric condition for 16 hours or more.
- the fusion rate between the expanded particles derived from the pre-expanded resin particles in the expanded resin molded body 10 obtained in the in-mold foam molding step is not particularly limited, but is 50 to 100%, more preferably 70 to 100%, more preferably 90 to 100%.
- the fusion rate refers to the foam broken inside the particles out of the total number of the foamed particles derived from the pre-foamed resin particles that appear on the cross section when the foamed resin molded body 10 is bent and broken.
- the ratio of the number of particles is expressed as a percentage.
- the fusion rate can be measured by the following procedure. The foamed resin molded product is divided into two by hand, and the foamed particles on the fracture surface are broken at the number (a) of the particles broken in the particles in an arbitrary range of 100 to 150 and at the interface between the particles. Count the number of particles (b).
- a value obtained by substituting the result into the formula [(a) / ((a) + (b))] ⁇ 100 is defined as a fusion rate (%).
- the foamed resin molded body is divided into two parts, for example, by inserting a cutting line having a depth of about 5 mm along the center of the foamed resin molded body with a cutter knife and then manually dividing the foamed resin molded body into two parts along the cutting line. This can be done.
- (BA) / B is 13/1000 or less, more preferably 2.5 / 1000 or more, 13/1000 or less, It is easy to mold the foamed resin molded body 10 that is more preferably 3/1000 or more, more preferably 11/1000 or less, more preferably 10/1000 or less, and more preferably 9/1000 or less.
- the fusion rate can be controlled, for example, by controlling the amount of heat at the time of heating and foaming.
- the demolding process is a process of demolding the mold 100 to obtain the vehicle seat member 30. As shown in FIG. 5, when the mold 100 is a combination of the first mold 101 and the second mold 102, the first mold 101 and the second mold 102 are divided. Thus, the vehicle seat member 30 can be taken out.
- the second aspect of the present invention is a method of manufacturing a vehicle seat member 30, Pre-expanded resin particles in which the frame material 20 is disposed in the mold 100 so that the main body portion 21 is located inside the mold 100 and the expandable resin particles containing a resin and a foaming agent are pre-expanded.
- in-mold foam molding step of foaming the pre-foamed resin particles in the mold 100 and molding the foamed resin molded body 10 by in-mold foam molding;
- the foamed resin molded body 10 is molded so that the expansion ratio is 10 to 60 times, and the fusion rate between the expanded particles derived from the pre-expanded resin particles is 50 to 100%.
- a standard foamed resin molded body is manufactured by in-mold foam molding so that the resin has the foaming ratio and the fusion rate using a standard mold having a predetermined in-mold shape, and demolding.
- the resin is such that (DC) / D is 13/1000 or less, where C is the outer dimension of the standard foamed resin molding and D is the inner dimension of the standard mold corresponding to the outer dimension. It is characterized by that.
- the above (DC) / D is an index indicating how much the standard foamed resin molded product shrinks after demolding when the standard foamed resin molded product is formed by in-mold foam molding using only resin. It is.
- the foamed resin molded body with the frame material integrated into the inside is more complicated in dimensional change after demolding than the molded body made of only foamed resin without the frame material, and it is difficult to control the dimensions of the finished product.
- foaming in individual vehicle seat members 30 is performed.
- the difference in dimension for each resin molded body 10 can be reduced. For this reason, according to the 2nd aspect of this invention, the yield at the time of producing the vehicle seat member 30 which has the foamed resin molding 10 of the target dimension can be improved.
- the vehicle seat member 30 manufactured by using the above-described predetermined resin allows the (BA) / B specified in the first aspect to be maximum. Therefore, the amount of shrinkage of the foamed resin molded body 10 is sufficiently small, and the amount of displacement of the frame member 20 and the protrusions 23 and 25 in the final vehicle seat member 30 is preferably small.
- (DC) / D is more preferably 2.5 / 1000 or more and 13/1000 or less, more preferably 3/1000 or more, more preferably 11/1000 or less, more preferably A resin that is 10/1000 or less, more preferably 9/1000 or less is used.
- (DC) / D is 2.5 / 1000 or more or 3/1000 or more, the base end portions 231 and 251 of the projecting portions 23 and 25 and the main body portion 21 of the frame material 20 are in the manufacturing process.
- the foamed resin molded body 10 is preferable because the foamed resin molded body 10 is held with sufficient strength by the surrounding foamed resin molded body 10.
- (DC) / D is 11/1000 or less or 10/1000 or less, the displacement amount of the frame member 20 and the protrusions 23 and 25 in the final vehicle seat member 30 is further reduced, which is preferable. .
- the external dimension C of the standard foamed resin molded body after a sufficient time has elapsed after the demolding step, for example, in the atmosphere where the temperature and pressure are not particularly adjusted from the demolding step (that is, under conditions of room temperature and atmospheric pressure)
- the external dimensions measured after standing for more than 24 hours can be used.
- the part for measuring the outer dimension C of the standard foamed resin molded body is not particularly limited, and is the width of an arbitrary part of the standard foamed resin molded body.
- the standard foamed resin molded body has an overall shape having a spread in a direction substantially along the plane, it may be the width of an arbitrary portion when viewed in plan, or the width in the thickness direction. Also good.
- the standard foamed resin molded body has a shape that is substantially rectangular in plan view
- the length in plan view can be the outer dimension of the foamed resin molded body.
- the inner dimension D corresponding to the outer dimension C of the standard foamed resin molded body of the standard mold is determined according to the outer dimension C of the standard foamed resin molded body.
- the second aspect of the present invention preferably further includes the same features as the first aspect of the present invention. That is, in the in-mold foam molding step of the second aspect of the present invention, (BA) / B defined for the first aspect is 13/1000 or less, more preferably 2.5 / 1000 or more, 13 / 1000 or less, more preferably 3/1000 or more, more preferably 11/1000 or less, more preferably 10/1000 or less, and more preferably 9/1000 or less.
- the resin used in the second aspect of the present invention is not particularly limited as long as the above (DC) / D falls within the above range.
- a composite resin containing a polystyrene resin and a polyolefin resin is used.
- Polystyrene resins, composite resins containing polystyrene resins and polyphenylene ether resins, polyolefin resins, polyester resins, etc. can be used, especially composite resins containing polystyrene resins and polyolefin resins, or polystyrene resins. preferable.
- a more preferred form of the resin used in the second aspect of the present invention is as described for the first aspect of the present invention.
- suitable ranges of the expansion ratio and the fusion rate of the foamed resin molded body 10 are as illustrated as suitable ranges with respect to the first aspect.
- the value of the expansion ratio and the value of the fusion rate of the standard foamed resin molded body are the value of the expansion ratio and the value of the fusion ratio of the foamed resin molded body 10, respectively.
- it is 100, it is preferably 80 to 120, more preferably 90 to 110, particularly preferably 98 to 102, and most preferably 100.
- the definition of the fusion rate is as described above with respect to the first aspect of the present invention.
- the foaming agent used in the production of the standard foamed resin molded body, the foamable resin particles containing the resin and the foaming agent, and the prefoamed resin particles obtained by prefoaming the foamable resin particles are the same as those in the first embodiment. It is preferable that it is the same as what is used when manufacturing the above-mentioned foamed resin molding 10.
- the standard mold having the predetermined in-mold shape is not particularly limited.
- the mold used for manufacturing the vehicle seat member 30 or the shape in the cavity is a regular hexahedron.
- the standard foamed resin molded body molded using the standard mold is preferably made of only the foamed resin without including the frame material.
- the third aspect of the present invention is a method for manufacturing the vehicle seat 50, and the vehicle seat member manufacturing process for manufacturing the vehicle seat member 30 by the method according to the first aspect or the second aspect of the present invention.
- the means for combining the vehicle seat member 30 and the upper seat member 40 is not particularly limited, and the upper surface (first surface) of the vehicle seat member 30 is selected by a joining means such as an appropriate adhesive or joining member.
- the upper seat member 40 may be joined to a surface facing the surface from which the protruding portion 23 projects, or the vehicle seat member 30 and the upper seat member 40 are stacked without using joining means.
- the vehicle seat member 30 and the upper seat member 40 may be integrated by covering the vehicle seat 50 with an appropriate cover material.
- the upper sheet member 40 is as described above.
- the outer dimension of the foamed resin molded body 10 is A, and the inner dimension of the molding die 100 corresponding to the outer dimension is B.
- (BA) / B is 13/1000 or less, more preferably 2.5 / 1000 or more, 13/1000 or less, more preferably 3/1000 or more, more preferably 11/1000 or less, more preferably Is 10/1000 or less, more preferably 9/1000 or less.
- the method of in-mold foam molding using the mold 100 can be specifically exemplified by the method described in detail with respect to the first embodiment of the present invention.
- examples of the resin constituting the foamed resin molded body 10 include the resins described in detail with respect to the first aspect of the present invention. Particularly preferably, a polystyrene resin and a polyolefin resin are used. It is a composite resin or a polystyrene resin. By using this resin, it is easy to make (BA) / B in the above range.
- the expansion ratio is 10 to 60 times, and the fusion rate between the expanded particles derived from the pre-expanded resin particles is 50 to 100%.
- (BA) / B is more preferable because it is easy to make the above range.
- Further preferable ranges of the expansion ratio and the fusion rate are as exemplified as the preferable ranges with respect to the first embodiment.
- the fifth aspect of the present invention is: A vehicle seat member 30 comprising:
- the foamed resin molded body 10 is obtained by filling pre-foamed resin particles obtained by pre-foaming foamable resin particles containing a resin and a foaming agent in a mold and foam-molding in the mold,
- the expansion ratio is 10 to 60 times
- the fusion rate between the expanded particles derived from the pre-expanded resin particles is 50 to 100%
- the resin is molded in-mold so as to have the expansion ratio and the fusion rate using a standard molding mold having a predetermined in-mold shape, and demolded to produce a standard foamed resin molded body
- (DC) / D is 13/1000 or less, more preferably 2. 5/1000 or more, 13/1000 or less, more preferably 3/1000 or more, more
- suitable ranges of the expansion ratio and the fusion rate of the foamed resin molded body 10 are as illustrated as suitable ranges with respect to the first aspect.
- the value of the expansion ratio and the value of the fusion rate of the standard foamed resin molded body are the value of the expansion ratio and the value of the fusion ratio of the foamed resin molded body 10, respectively.
- it is 100, it is preferably 80 to 120, more preferably 90 to 110, particularly preferably 98 to 102, and most preferably 100.
- the definition of the fusion rate is as described above with respect to the first aspect of the present invention.
- the foaming agent used in the production of the standard foamed resin molded body, the foamable resin particles containing the resin and the foaming agent, and the prefoamed resin particles obtained by prefoaming the foamable resin particles are the same as those in the first embodiment. It is preferable that it is the same as what is used when manufacturing the above-mentioned foamed resin molding 10.
- the standard mold having the predetermined in-mold shape is not particularly limited.
- the mold used for manufacturing the vehicle seat member 30 or the shape in the cavity is a regular hexahedron.
- a regular hexahedron mold having a shape of 10 cm on a side is preferably made of only the foamed resin without including the frame material.
- the resin constituting the foamed resin molded body 10 includes the resins described in detail with respect to the first aspect of the present invention, and particularly preferably a polystyrene resin and a polyolefin resin. It is a composite resin or a polystyrene resin.
- the sixth aspect of the present invention is: A vehicle seat member 30 comprising: The foamed resin molded body 10 is a foamed molded body of a composite resin containing a polystyrene resin and a polyolefin resin, or a foamed molded body of a polystyrene resin, and relates to a vehicle seat member 30.
- the expansion ratio is 10 to 60 times, and the fusion rate between the expanded particles derived from the pre-expanded resin particles is 50 to 100%.
- the amount of displacement of the protrusions 23 and 25 is particularly small.
- the dimensional change during the manufacturing process of the foamed resin molded body 10 is particularly small, even though the frame material 20 is integrally molded inside the foamed resin molded body 10, the dimensional accuracy is further increased. Further, the base end portions 231 and 251 of the projecting portions 23 and 25 and the main body portion 21 of the frame material 20 are more firmly held by the surrounding foamed resin molded body 10 due to the shrinkage of the foamed resin molded body 10 during the manufacturing process.
- the seventh aspect of the present invention is: The present invention relates to a vehicle seat 50 including the vehicle seat member 30 according to a fourth aspect, a fifth aspect, or a sixth aspect of the present invention, and an upper seat member 40 disposed on an upper portion of the vehicle seat member 30.
- Example 1 polystyrene resin and polyphenylene ether having a resin molding shrinkage ratio of less than 3/1000 and a resin molding shrinkage ratio of about 2/1000 when the expansion ratio is 40 times and the fusion rate is 98%.
- a composite resin composed of resin (polystyrene-modified polyphenylene ether resin) was used.
- This resin molding shrinkage ratio is standard for a foamed resin molded body produced under the same conditions as in Example 1 below, except that the mold 100 used in Example 1 below is used as a standard mold and the frame material 20 is not used. Obtained as a foamed molded product.
- the fusion rate is a value measured by the following procedure.
- a cutting line having a depth of about 5 mm is made with a cutter knife along the center of the foamed resin molding. Thereafter, the foamed molded product is manually divided into two along the cut line.
- the number (a) of particles broken in the particles and the number (b) of particles broken at the interface between the particles in an arbitrary range of 100 to 150 are counted.
- a value obtained by substituting the result into the formula [(a) / ((a) + (b))] ⁇ 100 is defined as a fusion rate (%). The same applies to the following fusion rate.
- Example 2 as a resin having a resin molding shrinkage ratio of 3/1000 or more and 13/1000 or less, polystyrene having a resin molding shrinkage ratio of about 3/1000 when the expansion ratio is 30 times and the fusion rate is 98%. System resin was used.
- This resin molding shrinkage ratio is standard for a foamed resin molded body produced under the same conditions as in Example 2 below, except that the mold 100 used in Example 2 below is used as a standard mold and the frame material 20 is not used. Obtained as a foamed molded product.
- Example 3 as a resin having a resin molding shrinkage of 3/1000 or more and 13/1000 or less, polystyrene having a resin molding shrinkage of about 8/1000 when the expansion ratio is 30 times and the fusion rate is 98%.
- Composite resin and polyolefin resin (Piocelan (registered trademark): OP-30EU, manufactured by Sekisui Plastics Co., Ltd.) was used.
- This resin molding shrinkage ratio is obtained by standardizing a foamed resin molded body manufactured under the same conditions as in Example 3 below, except that the mold 100 used in Example 3 below is used as a standard mold and the frame material 20 is not used. Obtained as a foamed molded product.
- Comparative Example 1 as a resin having a resin molding shrinkage ratio larger than 13/1000, a polypropylene resin having a resin molding shrinkage ratio of about 18/1000 when the expansion ratio is 30 times and the fusion rate is 98% is used. Using.
- This resin molding shrinkage ratio is standard for a foamed resin molded body produced under the same conditions as in Comparative Example 1 below, except that the mold 100 used in Comparative Example 1 below is used as a standard mold and the frame material 20 is not used. Obtained as a foamed molded product.
- the vehicle seat member 30 having the form described in the embodiment was manufactured by in-mold foam molding.
- the used mold 100 had an internal dimension (internal dimension B in FIG.
- the foamed resin the above polystyrene-modified polyphenylene ether resin having a resin molding shrinkage ratio of about 2/1000 was used.
- the frame member 20 an iron wire (SWM-B) having a diameter of 4.5 mm was used. Assuming that when the molding die 100 is used, it is assumed that the outer dimension after molding of the foamed resin molded body 10 including the frame material 20 is smaller than the inner dimension of the molding die 100 by 2/1000. The width of the molded body 10 in the longitudinal direction (outer dimension A in FIG. 6) is 1260 mm.
- the inner dimension of the mold 100 is designed so that the width of the foamed resin molded body 10 in the short direction is 550 mm and the thickness is 160 mm.
- the allowable value as a product of the width (outside dimension A) in the longitudinal direction of the foamed resin molded body 10 is 1260 mm ⁇ 6 mm.
- the frame material 20 is disposed over the entire circumference at a substantially central portion in the thickness direction of the foamed resin molded body 10 constituting the vehicle seat member 30 and at a position approximately 30 mm inward from the peripheral side surface of the foamed resin molded body 10. .
- Two first projecting portions 23 and 23 are formed on the portion 22 of the main body portion 21 along the longitudinal side surface of one of the foamed resin moldings 10 with a distance of 700 mm between the apexes.
- One second protrusion 25 is also formed at the center of the portion 24 of the main body 20 along the other longitudinal side surface of the molded body 10.
- the polystyrene-modified polyphenylene ether resin pre-foamed resin particles were produced by the following procedure.
- 1600 g of polystyrene-modified polyphenylene ether resin polyphenylene ether content of about 50 parts by mass, Tg; about 145 ° C. when the total amount of polystyrene resin and polyphenylene ether resin is 100 parts by mass
- 1500 g of water 32 g of magnesium oxide was added, and 80 g of n-butane was injected and impregnated while stirring in a sealed state. Thereafter, the temperature was raised to 120 ° C. and maintained at this temperature for 15 hours.
- the pressure at that time was 14 kg / cm 2 . Thereafter, it was cooled to 30 ° C. and taken out.
- the bead-shaped base resin particles were washed, dehydrated and dried, then placed in a sealed container, held and aged at a temperature of a cool box (15 ° C.) for 72 hours to obtain expandable resin particles.
- the n-butane content in the bead-shaped base resin particles was 2.5 parts by mass.
- the bead-like expandable resin particles were put into a pressure foaming machine, heated and foamed with steam, the bulk density was adjusted to 0.025 g / cm 3, and allowed to stand for 24 hours for aging.
- pre-expanded resin particles (bulk multiple of 40 times) of the polystyrene-modified polyphenylene ether resin were produced.
- the mold 100 in which the frame material 20 is disposed in the cavity is filled with the pre-foamed resin particles (bulk multiple 40 times), and the mold is clamped, and the cavity of the mold 100 is heated and foamed with water vapor.
- the vehicle seat member 30 was manufactured by filling the gap between the foamed resin particles and integrating the pre-foamed resin particles by fusing them together and removing the mold. At this time, the expansion ratio of the foamed resin molded body 10 was 40 times, and the fusion rate was 98%.
- the outer dimensions of the foamed resin molded body 10 in the vehicle seat member 30 were measured.
- All of the 10 manufactured vehicle seat members 30 are within the range of 1260 mm ⁇ 6 mm in which the width in the longitudinal direction (outer dimension A) of the foamed resin molded body 10 is an allowable value, and satisfy the product standards. there were.
- a force required to pull out the first protrusion 23 from the foamed resin molded body 10 was defined as “pullout strength”.
- the pull-out strength was measured after 24 hours had elapsed after demolding by setting a push-pull gauge on the first protrusion 23, pulling the first protrusion 23 with the foamed resin molded body 10 fixed, and measuring the pull-out strength.
- the fastening strength (vehicle fastening strength) of the vehicle seat member 30 to the vehicle via the first protrusion 23 is separately defined.
- the vehicle seat member 30 having the form described in the embodiment was manufactured by in-mold foam molding.
- the mold 100 used had an internal dimension (internal dimension B in FIG. 5) corresponding to the width in the longitudinal direction of the vehicle seat member 30 of 1263.8 mm.
- the foamed resin the above polystyrene resin having a resin molding shrinkage of about 3/1000 was used.
- the outer dimension after molding of the foamed resin molded body 10 including the frame material 20 is smaller than the inner dimension of the molding die 100 by 3/1000.
- the width of the molded body 10 in the longitudinal direction (outer dimension A in FIG. 6) is 1260 mm.
- the inner dimension of the mold 100 is designed so that the width of the foamed resin molded body 10 in the short direction is 550 mm and the thickness is 160 mm.
- the allowable value as a product of the width (outside dimension A) in the longitudinal direction of the foamed resin molded body 10 is 1260 mm ⁇ 6 mm.
- the polystyrene resin pre-foamed resin particles (bulk multiple of 30 times) were produced by the same procedure as the pre-foamed resin particles used in Example 1 except that the resin and the bulk multiple were different.
- the mold 100 in which the frame material 20 is arranged in the cavity in the same manner as in Example 1 is filled with the polystyrene resin pre-expanded resin particles (bulk multiple of 30 times) and clamped, and the mold 100 is filled with water vapor.
- the interior was heated and foamed to fill the gaps between the pre-foamed resin particles, and the pre-foamed resin particles were integrated by fusing each other, and then demolded to produce the vehicle seat member 30.
- the expansion ratio of the foamed resin molded body 10 was 30 times, and the fusion rate was 98%.
- the outer dimensions of the foamed resin molded body 10 in the vehicle seat member 30 were measured.
- All of the 10 manufactured vehicle seat members 30 are within the range of 1260 mm ⁇ 6 mm in which the width in the longitudinal direction (outer dimension A) of the foamed resin molded body 10 is an allowable value, and satisfy the product standards. there were.
- the pullout strength measured after 24 hours from demolding was compared with the required vehicle fastening strength.
- the pullout strength exceeded the vehicle fastening strength. This is because the base end portions 231 and 251 of the projecting portions 23 and 25 and the main body portion 21 of the frame material 20 are more sufficient than the surrounding foamed resin molded body 10 due to the shrinkage of the foamed resin molded body 10 in the manufacturing process. It is considered that the result is held at the strength.
- the outer dimensions of the foamed resin molded body 10 were measured 24 hours after the demolding.
- the width of the foamed resin molded body 10 in the longitudinal direction (outer dimension A in FIG. 6) was 1260 mm, and the width in the lateral direction was 550 mm. That is, when the outer dimension of the foamed resin molded body 10 is A and the inner dimension of the mold 100 corresponding to the outer dimension is B, (BA) / B is 3/1000.
- the distance between the vertices of the two first protrusions 23 and 23 was measured and found to be 699.0 mm.
- the change rate of the distance was 1/1000.
- the vehicle seat member 30 having the form described in the embodiment was manufactured by in-mold foam molding.
- the used mold 100 had an inner dimension (inner dimension B in FIG. 5) corresponding to the width in the longitudinal direction of the vehicle seat member 30 of 1270.1 mm.
- As the foamed resin a composite resin of the above-mentioned polystyrene resin and polyolefin resin having a resin molding shrinkage of about 8/1000 was used.
- the outer dimension after molding of the foamed resin molded body 10 including the frame material 20 is smaller than the inner dimension of the molding die 100 by 8/1000.
- the width of the molded body 10 in the longitudinal direction (outer dimension A in FIG. 6) is 1260 mm.
- the inner dimension of the mold 100 is designed so that the width of the foamed resin molded body 10 in the short direction is 550 mm and the thickness is 160 mm.
- the allowable value as a product of the width (outside dimension A) in the longitudinal direction of the foamed resin molded body 10 is 1260 mm ⁇ 6 mm.
- Pre-foamed resin particles (bulk ratio 30 times) of the composite resin of polystyrene resin and polyolefin resin are produced by the same procedure as the pre-foamed resin particles used in Example 1 except that the resin and the bulk multiple are different. did.
- the mold material 100 in which the frame material 20 is arranged in the cavity in the same manner as in Example 1 is filled with the pre-foamed resin particles (bulk multiple of 30 times) of the composite resin, and the mold is clamped.
- the vehicle seat member 30 was manufactured by heating and foaming, filling the gaps between the pre-foamed resin particles, and fusing the pre-foamed resin particles together to remove them. At this time, the expansion ratio of the foamed resin molded body 10 was 30 times, and the fusion rate was 98%.
- the outer dimensions of the foamed resin molded body 10 in the vehicle seat member 30 were measured.
- All of the 10 manufactured vehicle seat members 30 are within the range of 1260 mm ⁇ 6 mm in which the width in the longitudinal direction (outer dimension A) of the foamed resin molded body 10 is an allowable value, and satisfy the product standards. there were.
- the pullout strength measured after 24 hours from demolding was compared with the required vehicle fastening strength.
- the pullout strength exceeded the vehicle fastening strength. This is because the base end portions 231 and 251 of the projecting portions 23 and 25 and the main body portion 21 of the frame material 20 are more sufficient than the surrounding foamed resin molded body 10 due to the shrinkage of the foamed resin molded body 10 in the manufacturing process. It is considered that the result is held at the strength.
- the outer dimensions of the foamed resin molded body 10 were measured 24 hours after the demolding.
- the width of the foamed resin molded body 10 in the longitudinal direction (outer dimension A in FIG. 6) was 1260 mm, and the width in the lateral direction was 550 mm. That is, when the outer dimension of the foamed resin molded body 10 is A and the inner dimension of the mold 100 corresponding to the outer dimension is B, (BA) / B is 8/1000.
- the distance between the vertices of the two first protrusions 23 and 23 was measured 24 hours after the demolding, it was 696.5 mm.
- the change rate of the distance was 5/1000.
- the vehicle seat member 30 having the form described in the embodiment was manufactured by in-mold foam molding.
- the used mold 100 had an inner dimension (inner dimension B in FIG. 5) corresponding to the width in the longitudinal direction of the vehicle seat member 30 of 1282.7 mm.
- the foamed resin the above polypropylene resin having a resin molding shrinkage of about 18/1000 was used. Assuming that when the molding die 100 is used, it is assumed that the outer dimension after molding of the foamed resin molded body 10 including the frame material 20 is smaller than the inner dimension of the molding die 100 by 18/1000.
- the width of the molded body 10 in the longitudinal direction (outer dimension A in FIG. 6) is 1260 mm.
- the inner dimension of the mold 100 is designed so that the width of the foamed resin molded body 10 in the short direction is 550 mm and the thickness is 160 mm.
- the allowable value as a product of the width (outside dimension A) in the longitudinal direction of the foamed resin molded body 10 is 1260 mm ⁇ 6 mm.
- the pre-foamed resin particles (bulk multiple of 30 times) of the polypropylene resin were produced by the same procedure as the pre-foamed resin particles used in Example 1 except that the resin and the bulk multiple were different.
- the mold 100 in which the frame material 20 is arranged in the cavity in the same manner as in Example 1 is filled with the pre-expanded resin particles (bulk multiple of 30 times) of the polypropylene resin and clamped, and the cavity of the mold 100 with water vapor
- the interior was heated and foamed to fill the gaps between the pre-foamed resin particles, and the pre-foamed resin particles were integrated by fusing each other, and then demolded to produce the vehicle seat member 30.
- the expansion ratio of the foamed resin molded body 10 was 30 times, and the fusion rate was 98%.
- the outer dimensions of the foamed resin molded body 10 in the vehicle seat member 30 were measured.
- the pullout strength measured after 24 hours from demolding was compared with the required vehicle fastening strength. As a result, the pullout strength was partially lower than the vehicle fastening strength. This means that in the foam molded body 10 using a resin having a resin molding shrinkage of about 18/1000, the base end portions 231 and 251 of the projecting portions 23 and 25 and the main body portion 21 of the frame material 20 are sufficiently strong. Suggest that it may not be possible.
- the distance between the vertices of the two first protrusions 23 and 23 was measured and found to be 694.5 mm.
- the change rate of the distance [(distance before molding) ⁇ (distance after demolding)] / (distance before molding) was 7.9 / 1000.
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- Aviation & Aerospace Engineering (AREA)
- Transportation (AREA)
- Mechanical Engineering (AREA)
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- Chair Legs, Seat Parts, And Backrests (AREA)
- Seats For Vehicles (AREA)
Abstract
Description
発泡樹脂成形体に埋設される本体部と前記本体部から突起しており先端側が発泡樹脂成形体から外部に突出する突出部とからなるフレーム材が発泡樹脂成形体に一体成形されている車両用シート部材の製造方法であって、
成形型内に、前記フレーム材を、前記本体部が成形型の内部に位置するように配置するとともに、樹脂と発泡剤とを含む発泡性樹脂粒子を予備発泡させた予備発泡樹脂粒子を充填した後、前記成形型内で前記予備発泡樹脂粒子を発泡させて型内発泡成形により前記発泡樹脂成形体を成形する型内発泡成形工程と、
前記成形型を脱型して前記車両用シート部材を得る脱型工程と
を含み、
前記型内発泡成形工程において、前記脱型工程で得られる前記車両用シート部材における前記発泡樹脂成形体の外寸をA、前記外寸に対応する前記成形型の内寸をBとしたとき、(B-A)/Bが13/1000以下となるように、前記発泡樹脂成形体を成形することを特徴とする、前記方法に関する。
発泡樹脂成形体に埋設される本体部と前記本体部から突起しており先端側が発泡樹脂成形体から外部に突出する突出部とからなるフレーム材が発泡樹脂成形体に一体成形されている車両用シート部材の製造方法であって、
成形型内に、前記フレーム材を、前記本体部が成形型の内部に位置するように配置するとともに、樹脂と発泡剤とを含む発泡性樹脂粒子を予備発泡させた予備発泡樹脂粒子を充填した後、前記成形型内で前記予備発泡樹脂粒子を発泡させて型内発泡成形により前記発泡樹脂成形体を成形する型内発泡成形工程と、
前記成形型を脱型して前記車両用シート部材を得る脱型工程と
を含み、
前記型内発泡成形工程が、発泡倍率が10~60倍であり、前記予備発泡樹脂粒子に由来する発泡粒子間の融着率が50~100%となるように前記発泡樹脂成形体を成形する工程であり、
前記樹脂が、所定の型内形状を有する標準成形型を用いて、前記発泡倍率及び前記融着率となるように型内発泡成形し、脱型して標準発泡樹脂成形体を製造した場合に、前記標準発泡樹脂成形体の外寸をC、前記外寸に対応する前記標準成形型の内寸をDとしたときに、(D-C)/Dが13/1000以下となる樹脂であることを特徴とする、前記方法に関する。
前記車両用シート部材と、前記車両用シート部材の上部に配置された上シート部材とを備え、前記上シート部材は荷重がかかることによって弾性変形するクッション材を含み、前記車両用シート部材における前記発泡樹脂成形体は前記上シート部材よりも圧縮強度が高い、車両用シートの製造方法であって、
本発明の第一の態様又は第二の態様に係る方法により前記車両用シート部材を製造する車両用シート部材製造工程と、
前記車両用シート部材製造工程で得られた前記車両用シート部材の上部に前記上シート部材を配置して前記車両用シートを製造する車両用シート製造工程と
を含むことを特徴とする前記方法に関する。
発泡樹脂成形体に埋設される本体部と前記本体部から突起しており先端側が発泡樹脂成形体から外部に突出する突出部とからなるフレーム材が発泡樹脂成形体に一体成形されている車両用シート部材であって、
前記発泡樹脂成形体が、成形型を用いた型内発泡成形により得られたものであり、前記発泡樹脂成形体の外寸をA、前記外寸に対応する前記成形型の内寸をBとしたとき、(B-A)/Bが13/1000以下であることを特徴とする、前記車両用シート部材に関する。
発泡樹脂成形体に埋設される本体部と前記本体部から突起しており先端側が発泡樹脂成形体から外部に突出する突出部とからなるフレーム材が発泡樹脂成形体に一体成形されている車両用シート部材であって、
前記発泡樹脂成形体が、樹脂と発泡剤とを含む発泡性樹脂粒子を予備発泡させた予備発泡樹脂粒子を成形型内に充填し型内発泡成形して得られたものであり、
前記発泡樹脂成形体において、発泡倍率が10~60倍であり、前記予備発泡樹脂粒子に由来する発泡粒子間の融着率が50~100%であり、
前記樹脂が、所定の型内形状を有する標準成形型を用いて、前記発泡倍率及び前記融着率となるように型内発泡成形し、脱型して標準発泡樹脂成形体を製造した場合に、前記標準発泡樹脂成形体の外寸をC、前記外寸に対応する前記標準成形型の内寸をDとしたときに、(D-C)/Dが13/1000以下となる樹脂である、前記車両用シート部材に関する。
発泡樹脂成形体に埋設される本体部と前記本体部から突起しており先端側が発泡樹脂成形体から外部に突出する突出部とからなるフレーム材が発泡樹脂成形体に一体成形されている車両用シート部材であって、
前記発泡樹脂成形体が、ポリスチレン系樹脂とポリオレフィン系樹脂とを含む複合樹脂の発泡成形体、又は、ポリスチレン系樹脂の発泡成形体であることを特徴とする、前記車両用シート部材に関する。
本発明の第四の態様、第五の態様又は第六の態様に係る車両用シート部材と、前記車両用シート部材の上部に配置された上シート部材とを備え、前記上シート部材は荷重がかかることによって弾性変形するクッション材を含み、前記車両用シート部材における前記発泡樹脂成形体は前記上シート部材よりも圧縮強度が高い、車両用シートに関する。
<車両用シート部材および車両用シートの構造>
図1に示すように、車両用シート50は、基本構成として、発泡樹脂成形体10と該発泡樹脂成形体10内に一体成形により埋設されたフレーム材20とからなる車両用シート部材30を有する。車両用シート部材30の全体形状に特に制限はないが、平面視で概略長方形である形状が一般的であり、このとき車両用シート部材30は、概ね平面に沿った方向に広がりを有する全体形状を有することが一般的である。もちろん、発泡樹脂成形体10の平面視での形状および厚みは、当該車両用シート50が取り付けられる車両本体側の形状によって種々変化する。
<第一の態様>
本発明の第一の態様は、車両用シート部材30の製造方法であって、
成形型100内に、フレーム材20を、本体部21が成形型100の内部に位置するように配置するとともに、樹脂と発泡剤とを含む発泡性樹脂粒子を予備発泡させた予備発泡樹脂粒子を充填した後、前記成形型100内で前記予備発泡樹脂粒子を発泡させて型内発泡成形により発泡樹脂成形体10を成形する型内発泡成形工程と、
成形型100を脱型して車両用シート部材30を得る脱型工程と
を含み、
前記型内発泡成形工程において、前記脱型工程で得られる車両用シート部材30における発泡樹脂成形体10の外寸をA、前記外寸に対応する成形型100の内寸をBとしたとき、(B-A)/Bが13/1000以下、より好ましくは2.5/1000以上、13/1000以下、より好ましくは3/1000以上、より好ましくは11/1000以下、より好ましくは10/1000以下、より好ましくは9/1000以下となるように、発泡樹脂成形体10を成形することを特徴とする。
(樹脂)
樹脂としては特に限定されず、ポリスチレン系樹脂とポリオレフィン系樹脂とを含む複合樹脂、ポリスチレン系樹脂、ポリスチレン系樹脂とポリフェニレンエーテル樹脂とを含む複合樹脂、ポリオレフィン系樹脂、ポリエステル系樹脂等が使用できるが、ポリスチレン系樹脂とポリオレフィン系樹脂とを含む複合樹脂、ポリスチレン系樹脂、又は、ポリスチレン系樹脂とポリフェニレンエーテル樹脂とを含む複合樹脂を用いるときは、後述するような一般的な発泡倍率及び融着率となる条件で型内発泡成形を行えば(B-A)/Bが上記の所定範囲とすることができるため特に好ましい。
(ポリスチレン系樹脂とポリオレフィン系樹脂とを含む複合樹脂粒子)
該複合樹脂粒子は、ポリオレフィン系樹脂と、ポリスチレン系樹脂とを含んでいる。
ポリオレフィン系樹脂としては、例えば、ポリプロピレン、ポリエチレン等の炭素数2~10のオレフィンモノマー由来の単位を含む樹脂が挙げられる。ポリオレフィン系樹脂は、オレフィンモノマーの単独重合体でもよく、オレフィンモノマーと、オレフィンモノマーと共重合しうる他のモノマーとの共重合体であってもよい。更に、ポリオレフィン系樹脂は、架橋していてもよい。共重合体としては、酢酸ビニルとエチレンとの共重合体(EVA)が挙げられる。ポリオレフィン系樹脂は、例えば、18~50万の重量平均分子量を有する樹脂を使用できる。
ポリスチレン系樹脂としては、例えば、スチレン、置換スチレン(置換基は、低級アルキル、ハロゲン原子(特に塩素原子)等)のスチレン系モノマーに由来する樹脂が挙げられる。置換スチレンとしては、例えば、α-メチルスチレン、p-メチルスチレン、t-ブチルスチレン、クロロスチレン等が挙げられる。更に、ポリスチレン系樹脂は、スチレン系単量体の単独重合体であってもよいし、スチレン系単量体と、スチレン系単量体と共重合可能な他のモノマーとの共重合体であってもよい。他のモノマーとしては、例えば、アクリロニトリル、(メタ)アクリル酸アルキルエステル(アルキル部分の炭素数1~8程度)、ジビニルベンゼン、エチレングリコールのモノ又はジ(メタ)アクリル酸エステル、無水マレイン酸、N-フェニルマレイミド等が挙げられる。
ポリスチレン系樹脂の含有量は、ポリオレフィン系樹脂100質量部に対して、120~400質量部とすることができる。ポリスチレン系樹脂の含有量が120質量部未満の場合、発泡性樹脂粒子の発泡性、発泡成形体の耐薬品性及び耐熱性が低下することがある。一方、ポリスチレン系樹脂の含有量が400質量部より多い場合、発泡成形体の剛性が低下することがある。より好ましいポリスチレン系樹脂の含有量は、ポリオレフィン系樹脂100質量部に対して、150~250質量部である。
複合樹脂粒子には、他の添加剤が含まれていてもよい。他の添加剤としては、核剤、着色剤、難燃剤、難燃助剤、酸化防止剤、紫外線吸収剤、鱗片状珪酸塩等が挙げられる。
複合樹脂粒子は、ポリオレフィン系樹脂とポリスチレン系樹脂とを粒子中に含ませることができさえすれば、どのような方法で製造してもよい。例えば、両樹脂を押出機中で混練し、混練物をカットする方法、ポリオレフィン系樹脂を含む種粒子に、水性媒体中で、スチレン系モノマーを含浸させ、次いでそのモノマーを重合させる方法等が挙げられる。この内、後者の方法は、より均一に両樹脂を混合でき、かつより球形に近い粒子が得られる観点から好ましい。ここで、後者の方法により得られた複合樹脂粒子をポリオレフィン改質ポリスチレン系樹脂粒子と、また単に改質樹脂粒子とも称する。後者の方法は、例えば、下記工程
(i)ポリオレフィン系樹脂を含む種粒子100質量部を水性媒体中に分散させてなる分散液中で、スチレン系モノマー120~400質量部を種粒子に含浸させるモノマー含浸工程と、
(ii)含浸と同時に又は含浸後、スチレン系モノマーを重合させる重合工程と
を含む。
(a-1)種粒子は、公知の方法で得ることができる。例えば、まず、押出機を使用してポリオレフィン系樹脂を溶融押出した後、水中カット、ストランドカット、ホットカット等により造粒することで、種粒子を作製できる。通常、使用する種粒子の形状は、例えば、真球状、楕円球状(卵状)、円柱状、角柱状、ペレット状又はグラニュラー状とできる。
重合工程は、含浸と同時に又は含浸後、行われる。
ポリスチレン系樹脂とポリオレフィン系樹脂とを含む複合樹脂粒子としては市販品を購入して用いることもできる。ポリスチレン系樹脂とポリオレフィン系樹脂とを含む複合樹脂粒子の市販品としては積水化成品工業株式会社製のピオセラン(登録商標):OP-30EU、OP-30ELV等が例示できる。
(ポリスチレン系樹脂粒子)
(1)ポリスチレン系樹脂
ポリスチレン系樹脂粒子を構成するポリスチレン系樹脂としては、特に限定されず、例えば、スチレン、α-メチルスチレン、ビニルトルエン、クロロスチレン、エチルスチレン、i-プロピルスチレン、ジメチルスチレン、ブロモスチレン等のスチレン系モノマーの単独重合体又はこれらのモノマーのうち2種以上の共重合体等が挙げられ、スチレン成分を50質量%以上含有するポリスチレン系樹脂が好ましく、ポリスチレンがより好ましい。
発泡性ポリスチレン系樹脂粒子の材料となるポリスチレン系樹脂粒子の製造方法としては、汎用の方法が用いられ、例えば、バージン原料、回収品を押出機に供給して溶融混練し、押出機からストランド状に押出して冷却してから所定長さ毎に切断してポリスチレン系樹脂粒子を製造する方法(ストランドカット法)、押出機の先に取り付けた口金の孔から水中に押し出すと同時に切断し冷却してポリスチレン系樹脂粒子を製造する方法(水中ホットカット法)などが挙げられる。また、この押出機内の樹脂に鱗片状珪酸塩や金属酸化物を分散させた後、所定長さ毎に切断してポリスチレン系樹脂粒子としても良い。
ポリスチレン系樹脂粒子としては市販品を購入して用いることもできる。ポリスチレン系樹脂粒子の市販品としては積水化成品工業株式会社製のエスレンビーズ:FDK-40LV、ESDK等が例示できる。
(他の樹脂粒子)
他の樹脂粒子についても、上記で詳述したポリスチレン系樹脂とポリオレフィン系樹脂とを含む複合樹脂粒子又はポリスチレン系樹脂粒子と同様の形状の樹脂粒子を用いることができ、同様の他の添加物を適宜含有することができる。
(発泡性樹脂粒子)
発泡性樹脂粒子に含まれる発泡剤としては、特に限定されず、公知のものをいずれも使用できる。特に、沸点が使用樹脂の軟化点以下であり、常圧でガス状又は液状の有機化合物が適している。例えばプロパン、n-ブタン、イソブタン、n-ペンタン、イソペンタン、ネオペンタン、シクロペンタン、シクロペンタジエン、n-ヘキサン、石油エーテル等の炭化水素、アセトン、メチルエチルケトン等のケトン類、メタノール、エタノール、イソプロピルアルコール等のアルコール類、ジメチルエーテル、ジエチルエーテル、ジプロピルエーテル、メチルエチルエーテル等の低沸点のエーテル化合物、トリクロロモノフルオロメタン、ジクロロジフルオロメタン等のハロゲン含有炭化水素、炭酸ガス、窒素、アンモニア等の無機ガス等が挙げられる。これらの発泡剤は、単独で使用してもよく、2種以上を併用してもよい。これらのうち炭化水素を使用するのが、オゾン層の破壊を防止する観点、及び空気と速く置換し、発泡成形体の経時変化を抑制する観点で好ましい。炭素水素の内、沸点が-45~40℃の炭化水素がより好ましく、プロパン、n-ブタン、イソブタン、n-ペンタン、イソペンタン等が更に好ましい。
(発泡性樹脂粒子の製造方法)
発泡剤の含浸は、樹脂の重合後の粒子に行ってもよく、重合途中の粒子に行ってもよい。重合の途中での含浸は、水性媒体中で含浸させる方法(湿式含浸法)により行うことができる。重合後の含浸は、湿式含浸法か、又は媒体非存在下で含浸させる方法(乾式含浸法)により行うことができる。また、重合の途中での含浸は、通常重合後期に行うことが好ましい。重合後期は、構成モノマーの70質量%が重合してから後であることが好ましい。また、構成モノマーの99質量%が重合してから発泡剤を重合に続けて含浸させることも可能である。
(予備発泡樹脂粒子)
発泡性樹脂粒子は、発泡機(予備発泡機)で水蒸気等を用いて発泡(予備発泡)されて多数の小孔を有する予備発泡樹脂粒子(単に発泡樹脂粒子ともいう)とされる。予備発泡樹脂粒子の嵩倍数は、好ましくは10~60倍の範囲、より好ましくは10~50倍の範囲、より好ましくは20~50倍の範囲、より好ましくは25~45倍の範囲である。予備発泡樹脂粒子は、予備発泡後、通常24時間程度20~60℃で保存して熟成させることが好ましい。
嵩密度(g/cm3)=測定試料の質量(W)/測定試料の体積(V)
(型内発泡成形)
本発明の型内発泡成形工程では、成形型100内に、フレーム材20を既述のように配置し、更に予備発泡樹脂粒子を充填した後、成形型100内で前記予備発泡樹脂粒子を発泡させて型内発泡成形により発泡樹脂成形体10を成形する。成形型100としては多数の小孔を有する閉鎖成形型を用いる。前記予備発泡樹脂粒子の発泡は、水蒸気等で成形型100のキャビティ内を加熱して発泡させ、予備発泡樹脂粒子間の空隙を埋めるとともに、予備発泡樹脂粒子を相互に融着させることにより一体化する。
密度(g/cm3)=試験片質量(g)/試験片体積(cm3)
試験片状態調節:試験片は、成形後72時間以上経過した発泡樹脂成形体の試料から切り取り、温度23℃±2℃相対湿度50%±5%または温度27℃±2℃相対湿度65%±5%の雰囲気条件に16時間以上放置したものである。
(脱型工程)
脱型工程は、成形型100を脱型して車両用シート部材30を得る工程である。成形型100は、図5に示すように、第一の成形型101と第二の成形型102とを組み合わせたものである場合、第一の成形型101と第二の成形型102とを分割して車両用シート部材30を取り出すことができる。
<第二の態様>
本発明の第二態様は、車両用シート部材30の製造方法であって、
成形型100内に、フレーム材20を、本体部21が成形型100の内部に位置するように配置するとともに、樹脂と発泡剤とを含む発泡性樹脂粒子を予備発泡させた予備発泡樹脂粒子を充填した後、成形型100内で前記予備発泡樹脂粒子を発泡させて型内発泡成形により発泡樹脂成形体10を成形する型内発泡成形工程と、
成形型100を脱型して車両用シート部材30を得る脱型工程と
を含み、
前記型内発泡成形工程が、発泡倍率が10~60倍であり、前記予備発泡樹脂粒子に由来する発泡粒子間の融着率が50~100%となるように発泡樹脂成形体10を成形する工程であり、
前記樹脂が、所定の型内形状を有する標準成形型を用いて、前記発泡倍率及び前記融着率となるように型内発泡成形し、脱型して標準発泡樹脂成形体を製造した場合に、前記標準発泡樹脂成形体の外寸をC、前記外寸に対応する前記標準成形型の内寸をDとしたときに、(D-C)/Dが13/1000以下となる樹脂であることを特徴とする。
<第三の態様>
本発明の第三の態様は、車両用シート50の製造方法であって、本発明の第一の態様又は第二の態様に係る方法により車両用シート部材30を製造する車両用シート部材製造工程と、
車両用シート部材製造工程で得られた車両用シート部材30の上部に上シート部材40を配置して車両用シート50を製造する車両用シート製造工程と
を含む。
<第四の態様>
本発明の第四の態様は、
車両用シート部材30であって、
発泡樹脂成形体10が、成形型100を用いた型内発泡成形により得られたものであり、発泡樹脂成形体10の外寸をA、前記外寸に対応する成形型100の内寸をBとしたとき、(B-A)/Bが13/1000以下、より好ましくは2.5/1000以上、13/1000以下、より好ましくは3/1000以上、より好ましくは11/1000以下、より好ましくは10/1000以下、より好ましくは9/1000以下であることを特徴とする、車両用シート部材30に関する。
<第五の態様>
本発明の第五の態様は、
車両用シート部材30であって、
発泡樹脂成形体10が、樹脂と発泡剤とを含む発泡性樹脂粒子を予備発泡させた予備発泡樹脂粒子を成形型内に充填し型内発泡成形して得られたものであり、
発泡樹脂成形体10において、発泡倍率が10~60倍であり、前記予備発泡樹脂粒子に由来する発泡粒子間の融着率が50~100%であり、
前記樹脂が、所定の型内形状を有する標準成形型を用いて前記発泡倍率及び前記融着率となるように型内発泡成形し、脱型して標準発泡樹脂成形体を製造した場合に、前記標準発泡樹脂成形体の外寸をC、前記外寸に対応する前記標準成形型の内寸をDとしたときに、(D-C)/Dが13/1000以下、より好ましくは2.5/1000以上、13/1000以下、より好ましくは3/1000以上、より好ましくは11/1000以下、より好ましくは10/1000以下、より好ましくは9/1000以下となる樹脂である、車両用シート部材30に関する。
<第六の態様>
本発明の第六の態様は、
車両用シート部材30であって、
発泡樹脂成形体10が、ポリスチレン系樹脂とポリオレフィン系樹脂とを含む複合樹脂の発泡成形体、又は、ポリスチレン系樹脂の発泡成形体であることを特徴とする、車両用シート部材30に関する。
<第七の態様>
本発明の第七の態様は、
本発明の第四の態様、第五の態様又は第六の態様に係る車両用シート部材30と、車両用シート部材30の上部に配置された上シート部材40とを備える車両用シート50に関する。
[樹脂成形収縮率]
フレーム材を用いず発泡樹脂のみを用いて、所定の型内形状を有する標準成形型を用いて型内発泡成形して標準発泡樹脂成形体を製造した場合の、前記標準発泡樹脂成形体の外寸をC、前記外寸に対応する前記標準成形型の内寸をDとしたときの(D-C)/Dを当該樹脂の「樹脂成形収縮率」とする。
[実施例1]
実施の形態で説明した形態の車両用シート部材30を型内発泡成形により製造した。使用した成形型100は、車両シート部材30の長手方向の幅に対応する内寸(図5での内寸B)が1262.5mmであった。発泡樹脂として、樹脂成形収縮率が約2/1000の上記のポリスチレン変性ポリフェニレンエーテル樹脂を用いた。フレーム材20には、直径4.5mmの鉄線(SWM-B)を用いた。上記の成形型100を用いた場合に、仮に、フレーム材20を含む発泡樹脂成形体10の成形後の外寸が成形型100の内寸に対して2/1000だけ小さいと仮定すると、発泡樹脂成形体10の長手方向の幅(図6での外寸A)が1260mmとなる。同様に、発泡樹脂成形体10の短手方向の幅は550mm、厚さは160mmとなるように、成形型100の内寸が設計されている。発泡樹脂成形体10の長手方向の幅(外寸A)の製品としての許容値は1260mm±6mmである。
[実施例2]
実施の形態で説明した形態の車両用シート部材30を型内発泡成形により製造した。使用した成形型100は、車両シート部材30の長手方向の幅に対応する内寸(図5での内寸B)が1263.8mmであった。発泡樹脂として、樹脂成形収縮率が約3/1000の上記のポリスチレン系樹脂を用いた。上記の成形型100を用いた場合に、仮に、フレーム材20を含む発泡樹脂成形体10の成形後の外寸が成形型100の内寸に対して3/1000だけ小さいと仮定すると、発泡樹脂成形体10の長手方向の幅(図6での外寸A)が1260mmとなる。同様に、発泡樹脂成形体10の短手方向の幅は550mm、厚さは160mmとなるように、成形型100の内寸が設計されている。発泡樹脂成形体10の長手方向の幅(外寸A)の製品としての許容値は1260mm±6mmである。
[実施例3]
実施の形態で説明した形態の車両用シート部材30を型内発泡成形により製造した。使用した成形型100は、車両シート部材30の長手方向の幅に対応する内寸(図5での内寸B)が1270.1mmであった。発泡樹脂として、樹脂成形収縮率が約8/1000の上記のポリスチレン系樹脂とポリオレフィン系樹脂の複合樹脂を用いた。上記の成形型100を用いた場合に、仮に、フレーム材20を含む発泡樹脂成形体10の成形後の外寸が成形型100の内寸に対して8/1000だけ小さいと仮定すると、発泡樹脂成形体10の長手方向の幅(図6での外寸A)が1260mmとなる。同様に、発泡樹脂成形体10の短手方向の幅は550mm、厚さは160mmとなるように、成形型100の内寸が設計されている。発泡樹脂成形体10の長手方向の幅(外寸A)の製品としての許容値は1260mm±6mmである。
[比較例1]
実施の形態で説明した形態の車両用シート部材30を型内発泡成形により製造した。使用した成形型100は、車両シート部材30の長手方向の幅に対応する内寸(図5での内寸B)が1282.7mmであった。発泡樹脂として、樹脂成形収縮率が約18/1000の上記のポリプロピレン系樹脂を用いた。上記の成形型100を用いた場合に、仮に、フレーム材20を含む発泡樹脂成形体10の成形後の外寸が成形型100の内寸に対して18/1000だけ小さいと仮定すると、発泡樹脂成形体10の長手方向の幅(図6での外寸A)が1260mmとなる。同様に、発泡樹脂成形体10の短手方向の幅は550mm、厚さは160mmとなるように、成形型100の内寸が設計されている。発泡樹脂成形体10の長手方向の幅(外寸A)の製品としての許容値は1260mm±6mmである。
20…フレーム材
21…フレーム材の本体部
23…第1の突出部
25…第2の突出部
30…車両用シート部材
40…上シート部材
50…車両用シート
本明細書で引用した全ての刊行物、特許及び特許出願はそのまま引用により本明細書に組み入れられるものとする。
Claims (13)
- 発泡樹脂成形体に埋設される本体部と前記本体部から突起しており先端側が発泡樹脂成形体から外部に突出する突出部とからなるフレーム材が発泡樹脂成形体に一体成形されている車両用シート部材の製造方法であって、
成形型内に、前記フレーム材を、前記本体部が成形型の内部に位置するように配置するとともに、樹脂と発泡剤とを含む発泡性樹脂粒子を予備発泡させた予備発泡樹脂粒子を充填した後、前記成形型内で前記予備発泡樹脂粒子を発泡させて型内発泡成形により前記発泡樹脂成形体を成形する型内発泡成形工程と、
前記成形型を脱型して前記車両用シート部材を得る脱型工程と
を含み、
前記型内発泡成形工程において、前記脱型工程で得られる前記車両用シート部材における前記発泡樹脂成形体の外寸をA、前記外寸に対応する前記成形型の内寸をBとしたとき、(B-A)/Bが13/1000以下となるように、前記発泡樹脂成形体を成形することを特徴とする、前記方法。 - 前記型内発泡成形工程において、(B-A)/Bが2.5/1000以上、13/1000以下となるように、前記発泡樹脂成形体を成形する、請求項1に記載の方法。
- 発泡樹脂成形体に埋設される本体部と前記本体部から突起しており先端側が発泡樹脂成形体から外部に突出する突出部とからなるフレーム材が発泡樹脂成形体に一体成形されている車両用シート部材の製造方法であって、
成形型内に、前記フレーム材を、前記本体部が成形型の内部に位置するように配置するとともに、樹脂と発泡剤とを含む発泡性樹脂粒子を予備発泡させた予備発泡樹脂粒子を充填した後、前記成形型内で前記予備発泡樹脂粒子を発泡させて型内発泡成形により前記発泡樹脂成形体を成形する型内発泡成形工程と、
前記成形型を脱型して前記車両用シート部材を得る脱型工程と
を含み、
前記型内発泡成形工程が、発泡倍率が10~60倍であり、前記予備発泡樹脂粒子に由来する発泡粒子間の融着率が50~100%となるように前記発泡樹脂成形体を成形する工程であり、
前記樹脂が、所定の型内形状を有する標準成形型を用いて、前記発泡倍率及び前記融着率となるように型内発泡成形し、脱型して標準発泡樹脂成形体を製造した場合に、前記標準発泡樹脂成形体の外寸をC、前記外寸に対応する前記標準成形型の内寸をDとしたときに、(D-C)/Dが13/1000以下となる樹脂であることを特徴とする、前記方法。 - 前記樹脂が、(D-C)/Dが2.5/1000以上、13/1000以下となる樹脂である、請求項3に記載の方法。
- 前記発泡樹脂成形体は平面視で概略長方形であり、フレーム材の前記本体部は一部に前記発泡樹脂成形体の長手方向に沿う部分を有しており、前記突出部は前記本体部の前記長手方向に沿う部分に形成されている、請求項1~4のいずれか1項に記載の方法。
- 発泡樹脂成形体に埋設される本体部と前記本体部から突起しており先端側が発泡樹脂成形体から外部に突出する突出部とからなるフレーム材が発泡樹脂成形体に一体成形されている車両用シート部材と、前記車両用シート部材の上部に配置された上シート部材とを備え、前記上シート部材は荷重がかかることによって弾性変形するクッション材を含み、前記車両用シート部材における前記発泡樹脂成形体は前記上シート部材よりも圧縮強度が高い、車両用シートの製造方法であって、
請求項1~5のいずれか1項に記載の方法により前記車両用シート部材を製造する車両用シート部材製造工程と、
前記車両用シート部材製造工程で得られた前記車両用シート部材の上部に前記上シート部材を配置して前記車両用シートを製造する車両用シート製造工程と
を含むことを特徴とする前記方法。 - 発泡樹脂成形体に埋設される本体部と前記本体部から突起しており先端側が発泡樹脂成形体から外部に突出する突出部とからなるフレーム材が発泡樹脂成形体に一体成形されている車両用シート部材であって、
前記発泡樹脂成形体が、成形型を用いた型内発泡成形により得られたものであり、前記発泡樹脂成形体の外寸をA、前記外寸に対応する前記成形型の内寸をBとしたとき、(B-A)/Bが13/1000以下であることを特徴とする、前記車両用シート部材。 - (B-A)/Bが2.5/1000以上、13/1000以下である、請求項7に記載の車両用シート部材。
- 発泡樹脂成形体に埋設される本体部と前記本体部から突起しており先端側が発泡樹脂成形体から外部に突出する突出部とからなるフレーム材が発泡樹脂成形体に一体成形されている車両用シート部材であって、
前記発泡樹脂成形体が、樹脂と発泡剤とを含む発泡性樹脂粒子を予備発泡させた予備発泡樹脂粒子を成形型内に充填し型内発泡成形して得られたものであり、
前記発泡樹脂成形体において、発泡倍率が10~60倍であり、前記予備発泡樹脂粒子に由来する発泡粒子間の融着率が50~100%であり、
前記樹脂が、所定の型内形状を有する標準成形型を用いて、前記発泡倍率及び前記融着率となるように型内発泡成形し、脱型して標準発泡樹脂成形体を製造した場合に、前記標準発泡樹脂成形体の外寸をC、前記外寸に対応する前記標準成形型の内寸をDとしたときに、(D-C)/Dが13/1000以下となる樹脂である、前記車両用シート部材。 - 前記樹脂が、(D-C)/Dが2.5/1000以上、13/1000以下となる樹脂である、請求項9に記載の車両用シート部材。
- 発泡樹脂成形体に埋設される本体部と前記本体部から突起しており先端側が発泡樹脂成形体から外部に突出する突出部とからなるフレーム材が発泡樹脂成形体に一体成形されている車両用シート部材であって、
前記発泡樹脂成形体が、ポリスチレン系樹脂とポリオレフィン系樹脂とを含む複合樹脂の発泡成形体、又は、ポリスチレン系樹脂の発泡成形体であることを特徴とする、前記車両用シート部材。 - 前記発泡樹脂成形体は平面視で概略長方形であり、フレーム材の前記本体部は一部に前記発泡樹脂成形体の長手方向に沿う部分を有しており、前記突出部は前記本体部の前記長手方向に沿う部分に形成されている、請求項7~11のいずれか1項に記載の車両用シート部材。
- 請求項7~12のいずれか1項に記載の車両用シート部材と、前記車両用シート部材の上部に配置された上シート部材とを備え、前記上シート部材は荷重がかかることによって弾性変形するクッション材を含み、前記車両用シート部材における前記発泡樹脂成形体は前記上シート部材よりも圧縮強度が高い、車両用シート。
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