WO2019069842A1 - 伝動ベルト - Google Patents
伝動ベルト Download PDFInfo
- Publication number
- WO2019069842A1 WO2019069842A1 PCT/JP2018/036649 JP2018036649W WO2019069842A1 WO 2019069842 A1 WO2019069842 A1 WO 2019069842A1 JP 2018036649 W JP2018036649 W JP 2018036649W WO 2019069842 A1 WO2019069842 A1 WO 2019069842A1
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- WO
- WIPO (PCT)
- Prior art keywords
- transmission belt
- cloth
- cellulose
- belt
- pulley
- Prior art date
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Classifications
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F16—ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
- F16G—BELTS, CABLES, OR ROPES, PREDOMINANTLY USED FOR DRIVING PURPOSES; CHAINS; FITTINGS PREDOMINANTLY USED THEREFOR
- F16G1/00—Driving-belts
- F16G1/22—Driving-belts consisting of several parts
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F16—ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
- F16G—BELTS, CABLES, OR ROPES, PREDOMINANTLY USED FOR DRIVING PURPOSES; CHAINS; FITTINGS PREDOMINANTLY USED THEREFOR
- F16G1/00—Driving-belts
- F16G1/06—Driving-belts made of rubber
- F16G1/08—Driving-belts made of rubber with reinforcement bonded by the rubber
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B29—WORKING OF PLASTICS; WORKING OF SUBSTANCES IN A PLASTIC STATE IN GENERAL
- B29D—PRODUCING PARTICULAR ARTICLES FROM PLASTICS OR FROM SUBSTANCES IN A PLASTIC STATE
- B29D29/00—Producing belts or bands
- B29D29/10—Driving belts having wedge-shaped cross-section
- B29D29/103—Multi-ribbed driving belts
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- D—TEXTILES; PAPER
- D03—WEAVING
- D03D—WOVEN FABRICS; METHODS OF WEAVING; LOOMS
- D03D1/00—Woven fabrics designed to make specified articles
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- D—TEXTILES; PAPER
- D04—BRAIDING; LACE-MAKING; KNITTING; TRIMMINGS; NON-WOVEN FABRICS
- D04B—KNITTING
- D04B1/00—Weft knitting processes for the production of fabrics or articles not dependent on the use of particular machines; Fabrics or articles defined by such processes
- D04B1/14—Other fabrics or articles characterised primarily by the use of particular thread materials
- D04B1/16—Other fabrics or articles characterised primarily by the use of particular thread materials synthetic threads
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F16—ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
- F16G—BELTS, CABLES, OR ROPES, PREDOMINANTLY USED FOR DRIVING PURPOSES; CHAINS; FITTINGS PREDOMINANTLY USED THEREFOR
- F16G1/00—Driving-belts
- F16G1/06—Driving-belts made of rubber
- F16G1/08—Driving-belts made of rubber with reinforcement bonded by the rubber
- F16G1/10—Driving-belts made of rubber with reinforcement bonded by the rubber with textile reinforcement
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F16—ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
- F16G—BELTS, CABLES, OR ROPES, PREDOMINANTLY USED FOR DRIVING PURPOSES; CHAINS; FITTINGS PREDOMINANTLY USED THEREFOR
- F16G1/00—Driving-belts
- F16G1/28—Driving-belts with a contact surface of special shape, e.g. toothed
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F16—ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
- F16G—BELTS, CABLES, OR ROPES, PREDOMINANTLY USED FOR DRIVING PURPOSES; CHAINS; FITTINGS PREDOMINANTLY USED THEREFOR
- F16G5/00—V-belts, i.e. belts of tapered cross-section
- F16G5/04—V-belts, i.e. belts of tapered cross-section made of rubber
- F16G5/06—V-belts, i.e. belts of tapered cross-section made of rubber with reinforcement bonded by the rubber
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F16—ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
- F16G—BELTS, CABLES, OR ROPES, PREDOMINANTLY USED FOR DRIVING PURPOSES; CHAINS; FITTINGS PREDOMINANTLY USED THEREFOR
- F16G5/00—V-belts, i.e. belts of tapered cross-section
- F16G5/04—V-belts, i.e. belts of tapered cross-section made of rubber
- F16G5/06—V-belts, i.e. belts of tapered cross-section made of rubber with reinforcement bonded by the rubber
- F16G5/08—V-belts, i.e. belts of tapered cross-section made of rubber with reinforcement bonded by the rubber with textile reinforcement
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F16—ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
- F16G—BELTS, CABLES, OR ROPES, PREDOMINANTLY USED FOR DRIVING PURPOSES; CHAINS; FITTINGS PREDOMINANTLY USED THEREFOR
- F16G5/00—V-belts, i.e. belts of tapered cross-section
- F16G5/20—V-belts, i.e. belts of tapered cross-section with a contact surface of special shape, e.g. toothed
Definitions
- the present invention relates to a transmission belt.
- a transmission belt is known in which the pulley contact surface is covered with a woven fabric or the like.
- the V-rib surface is covered with a reinforcing cloth having an opening, the surface of the reinforcing cloth on the belt main body side is in contact with the base layer of thermoplastic resin, and the reinforcing cloth has an opening under it.
- a V-ribbed belt with exposed formations discloses a V-ribbed belt in which a V-rib surface is covered with a warp-knitted fabric formed of cellulose fibers and polyester fibers.
- the present invention is a transmission belt comprising a belt main body and a covering cloth made of a cloth material mainly composed of synthetic fibers provided so as to cover the pulley contact side surface of the belt main body,
- the surface of the coated fabric on the side of the belt main body is in contact with a cellulosic short fiber-containing rubber composition in which cellulosic short fibers are dispersed in a rubber component, and the coated fabric and the cellulosic short fiber containing rubber composition Exposed to the pulley contact surface.
- V ribbed belt It is a perspective view of one piece of V ribbed belt concerning an embodiment. It is a cross-sectional view of a part of V-ribbed belt which concerns on embodiment. It is a longitudinal cross-sectional view of a belt mold. It is a longitudinal cross-sectional enlarged view of a part of belt mold. It is 1st explanatory drawing of the 1st manufacturing method of V ribbed belt concerning an embodiment. It is 2nd explanatory drawing of the 1st manufacturing method of V ribbed belt concerning an embodiment. It is 3rd explanatory drawing of the 1st manufacturing method of V ribbed belt concerning an embodiment. It is 4th explanatory drawing of the 1st manufacturing method of V ribbed belt concerning an embodiment.
- V-ribbed belt B transmission belt
- the V-ribbed belt B according to the embodiment is, for example, an endless power transmission member used for an accessory drive belt transmission and the like provided in an engine room of a car.
- the V-ribbed belt B according to the embodiment has, for example, a belt length of 700 mm or more and 3000 mm or less, a belt width of 10 mm or more and 36 mm or less, and a belt thickness of 4.0 mm or more and 5.0 mm or less.
- the V-ribbed belt B includes a rubber belt body 10 having a compression rubber layer 11 on the inner circumferential side, an adhesive rubber layer 12 in the middle, and an extension rubber layer 13 on the outer circumferential side.
- a core 14 is embedded at an intermediate portion in the thickness direction of the adhesive rubber layer 12 in the belt body 10 so as to form a spiral having a pitch in the belt width direction.
- the inner circumferential surface, which is the pulley contact surface of the compression rubber layer 11 in the belt body 10 is covered with a covering cloth 15.
- a back reinforcing cloth may be provided instead of the stretch rubber layer 13, and the belt body 10 may be configured of the compression rubber layer 11 and the adhesive rubber layer 12.
- each V rib 16 has, for example, a rib height of 2.0 mm or more and 3.0 mm or less, and a width between base ends of 1.0 mm or more and 3.6 mm or less.
- the number of V ribs 16 is, for example, three or more and six or less (six in FIG. 1).
- the compression rubber layer 11 has a surface rubber layer 11a provided in a layer along the inner circumferential surface which is the pulley contact side surface, and an inner rubber layer 11b provided inside the surface rubber layer 11a.
- the thickness of the surface rubber layer 11a is preferably 0.5 mm or more and 1.5 mm or less, more preferably 0.7 mm or more and 1.0 mm or less.
- the surface rubber layer 11a is obtained by heat and pressure of an uncrosslinked rubber composition obtained by blending and kneading a cellulose short fiber and various rubber compounding agents into a rubber component, and thereby obtaining a rubber It is formed of a cellulose-based short fiber-containing rubber composition in which a cellulose-based short fiber is dispersed in a component. Therefore, the cellulose-based short fiber-containing rubber composition forms a portion of the surface rubber layer 11 a in the compressed rubber layer 11 covered with the covering cloth 15 in the belt main body 10.
- Examples of the rubber component of the cellulose-based short fiber-containing rubber composition forming the surface rubber layer 11 a include ethylene-propylene copolymer (EPR), ethylene-propylene-diene terpolymer (hereinafter referred to as “EPDM”), and ethylene-octene.
- EPR ethylene-propylene copolymer
- EPDM ethylene-propylene-diene terpolymer
- ethylene-octene ethylene-octene
- ethylene- ⁇ -olefin elastomers such as ethylene-butene copolymers; chloroprene rubber (CR); chlorosulfonated polyethylene rubber (CSM); hydrogenated acrylonitrile rubber (H-NBR), natural rubber (NR), styrene butadiene rubber ( SBR), butadiene rubber (BR), nitrile rubber (NBR), silicone rubber (Q), fluororubber (FKM) and the like.
- the rubber component of the cellulose-based short fiber-containing rubber composition forming the surface rubber layer 11a preferably contains one or two or more of them, and more preferably ethylene- ⁇ -olefin elastomer, and EPDM More preferably,
- the cellulosic short fibers include cotton, natural cellulose fibers such as hemp, regenerated cellulose fibers such as rayon, and short fibers such as acetate fibers.
- the cellulose-based staple fiber preferably contains one or more of these, and more preferably cotton.
- the fiber length of the cellulosic short fiber is preferably 0.1 mm or more and 1 mm or less, and more preferably 0.3 mm or more and 0.7 mm or less.
- the fiber diameter of the cellulosic short fibers is preferably 10 ⁇ m to 50 ⁇ m, and more preferably 20 ⁇ m to 40 ⁇ m.
- the content of the cellulose-based short fiber in the cellulose-based short fiber-containing rubber composition is preferably 5 parts by mass or more and 60 parts by mass or less, more preferably 10 parts by mass or more and 50 parts by mass or less with respect to 100 parts by mass of the rubber component is there.
- the rubber compounding agent may, for example, be a reinforcing material such as carbon black or silica, an oil, a processing aid, a vulcanization accelerating aid, a crosslinking agent of sulfur or organic oxide, a co-crosslinking agent, a vulcanization accelerator and the like.
- the cellulose-based short fiber-containing rubber composition forming the surface rubber layer 11a may contain short fibers other than the cellulose-based short fibers such as nylon fibers, aramid fibers, and polyester fibers, for example.
- the inner rubber layer 11 b is formed of a rubber composition in which a rubber component is crosslinked by heating and pressing an uncrosslinked rubber composition obtained by mixing and kneading various rubber compounding agents into the rubber component.
- a rubber component of the inner rubber layer 11b the same one as the surface rubber layer 11a can be mentioned.
- the rubber component of the inner rubber layer 11b is preferably the same as the rubber component of the surface rubber layer 11a.
- examples of the rubber compounding agent include a reinforcing material, an oil, a processing aid, a vulcanization acceleration aid, a crosslinking agent, a co-crosslinking agent, a vulcanization accelerator and the like.
- the adhesive rubber layer 12 is formed in a strip shape having a rectangular cross section, and has a thickness of, for example, 1.0 mm or more and 2.5 mm or less.
- the stretchable rubber layer 13 is also formed in a strip shape having a rectangular cross section, and has a thickness of, for example, 0.4 mm or more and 0.8 mm or less. It is preferable that a woven fabric pattern be provided on the surface of the stretch rubber layer 13 from the viewpoint of suppressing the generation of sound at the time of back surface drive.
- the adhesive rubber layer 12 and the extension rubber layer 13 are formed of a rubber composition in which a rubber component is crosslinked by heating and pressing an uncrosslinked rubber composition in which various rubber compounding agents are blended with the rubber component and kneaded. There is.
- the rubber component of the adhesive rubber layer 12 and the stretch rubber layer 13 may be the same as the rubber component of the surface rubber layer 11a or the inner rubber layer 11b.
- a reinforcing material similar to the surface rubber layer 11a and the inner rubber layer 11b, a reinforcing material, an oil, a processing aid, a vulcanization acceleration aid, a crosslinking agent, a co-crosslinking agent, a vulcanization accelerator and the like can be mentioned.
- the core wire 14 is made of a twisted yarn of polyamide fiber, polyester fiber, aramid fiber, polyamide fiber or the like.
- the diameter of the core wire 14 is, for example, 0.5 mm or more and 2.5 mm or less, and the dimension between the cores 14 adjacent to each other in the cross section is, for example, 0.05 mm or more and 0.20 mm or less.
- the cord 14 is subjected to an adhesion treatment with a resorcin-formalin-latex aqueous solution (hereinafter referred to as "RFL aqueous solution”), a rubber paste or the like.
- RTL aqueous solution resorcin-formalin-latex aqueous solution
- the coated cloth 15 is made of a cloth material mainly composed of synthetic fibers.
- the covering cloth 15 covers the inner peripheral side surface which is the pulley contact side surface along the inner peripheral side surface which is the pulley contact side surface of the surface rubber layer 11a of the compressed rubber layer 11 in the belt main body 10
- the surface on the main body 10 side is provided in contact with the cellulose-based short fiber-containing rubber composition of the surface rubber layer 11 a.
- the thickness of the covering cloth 15 is preferably 0.3 mm or more and 1 mm or less, more preferably 0.5 mm or more and 0.8 mm or less.
- polyamide fiber, polyester fiber, aramid fiber etc. are mentioned, for example.
- nylon 6 fiber, nylon 6, 6 fiber etc. are mentioned, for example.
- the synthetic fiber which forms the cloth material which comprises the covering fabric 15 contains 1 type, or 2 or more types in these, It is more preferable to include the polyamide fiber which is excellent in abrasion resistance, and nylon 6,6 fiber More preferably,
- the textile material which forms the cloth material which constitutes covering textiles 15 may also contain natural textiles, such as cellulosic textiles, other than a synthetic fiber.
- Examples of the cloth material constituting the coated cloth 15 include knitted cloths, woven cloths, and non-woven cloths.
- Knitted fabrics include weft knitted fabrics and warp knitted fabrics.
- Examples of the weft knitted fabric include plain knitted fabric, rubber knitted fabric, pearl knitted fabric and the like.
- Examples of warp-knitted cloths include Denbi-knitted cloth, cord-knitted cloth, tricot-knitted cloth such as atlas knitted cloth, and the like.
- Examples of the woven fabric include plain woven fabrics, twill woven fabrics, satin woven fabrics and the like.
- the number of stitches in the wale direction and the course direction is preferably 20 to 80 and more preferably 40 to 60 per 2.54 cm.
- the number of stitches in the wale direction of the knitted fabric is preferably equal to or less than the number of stitches in the course direction, and more preferably less than the number of stitches in the course direction.
- the coated cloth 15 is subjected to an adhesion treatment by immersion in an RFL aqueous solution, a rubber paste or the like in order to impart adhesiveness to the belt main body 10.
- the cellulose-based short fiber-containing rubber composition of the surface rubber layer 11a exudes from the gaps of the fibers of the coated fabric 15, and as a result, the coated fabric is applied to the surface of the V rib 16 which is the pulley contact surface. 15 and the cellulose-based short fiber-containing rubber composition of the surface rubber layer 11a are exposed.
- V-ribbed belts are generally used as transmission belts in automobile accessory drive belt transmissions, and when they slip in the WET atmosphere, in addition to transmission performance falling, stick-slip noise is generated, and fuel consumption is further improved. There is a problem of causing deterioration.
- the cellulose-based short fiber-containing rubber is provided on the surface of the V rib 16 which is the pulley contact surface, together with the covering cloth 15 composed of a cloth material mainly composed of synthetic fibers.
- the composition Since the composition is exposed, while having high abrasion resistance by the coated fabric 15 of synthetic fibers, the cellulosic short fibers absorb water in the WET atmosphere, and the pulley contact surface approaches the DRY atmosphere, as a result, the WET It is possible to suppress the reduction of the transmission performance in the atmosphere.
- the surface occupancy of the coated cloth 15 on the surface of the V rib 16 which is a pulley contact surface is preferably 40% or more and 90% or less. More preferably, it is 50% or more and 80% or less.
- the surface occupancy rate of the coated cloth 15 is obtained by obtaining an image of the surface of the V rib 16 which is the pulley contacting surface, and binarizing the density of the image, that is, the coated cloth 15 is white and a cellulose short fiber containing rubber composition It is obtained as an area fraction of white of the coated cloth 15 by image analysis as black.
- the surface occupancy rate of the coated fabric 15 is determined by the structure of the fabric material forming the coated fabric 15, the thickness and density of the yarns forming the fabric material, the stretch ratio and stretching direction of the fabric material, and the cellulose short fiber-containing rubber composition It can be controlled by adjusting the exudation condition of the cellulose-based short fiber-containing rubber composition from the gaps of the fibers of the coated cloth 15 according to the viscosity at the time of non-crosslinking of the article.
- FIGS. 2A and 2B show a belt forming die 20 used when manufacturing the V-ribbed belt B according to the embodiment.
- the belt mold 20 comprises concentric inner and outer cylindrical molds 21 and 22, respectively.
- the inner mold 21 is formed of a flexible material such as rubber.
- the outer mold 22 is formed of a rigid material such as metal.
- the inner peripheral surface of the outer mold 22 is a molding surface, and on the inner peripheral surface of the outer mold 22, V rib forming grooves 23 having the same shape as the V rib 16 are provided at a constant pitch in the axial direction .
- the outer mold 22 is provided with a temperature control mechanism for controlling the temperature by circulating a heat medium such as water vapor or a coolant such as water.
- a pressurizing means is provided for pressurizing and expanding the inner mold 21 from the inside.
- the first method of manufacturing the V-ribbed belt B according to the embodiment includes a material preparation step, a forming step, a crosslinking step, and a finishing step.
- the rubber component is masticated with a kneader such as a kneader or a Banbury mixer, and the cellulose short fibers and various rubber compounding agents are added thereto and kneaded, and the obtained uncrosslinked rubber composition is formed into a sheet by a calender or the like. It shape
- a kneader such as a kneader or a Banbury mixer
- the rubber component is masticated with a kneader such as a kneader or a Banbury mixer, various rubber compounding agents are added thereto and kneaded, and the obtained uncrosslinked rubber composition is formed into a sheet by a calender or the like. Then, uncrosslinked rubber sheets 11 b ′, 12 ′, 13 ′ that will form the inner rubber layer of the belt body 10, the adhesive rubber layer 12, and the stretch rubber layer 13 are produced.
- a kneader such as a kneader or a Banbury mixer
- an adhesion process is performed with respect to the twist yarn 14 'which will constitute the core wire 14.
- an RFL adhesion process is performed in which the twisted yarn 14 'is immersed and heated in an RFL aqueous solution.
- a base adhesion treatment of immersing and heating in a base adhesion treatment solution before RFL adhesion treatment and / or a rubber paste adhesion treatment of immersing in rubber paste and drying after RFL adhesion treatment is performed.
- an adhesion process is performed on the cloth material 15 'which is to constitute the coated cloth 15.
- the fabric material 15 ' is subjected to an RFL bonding process in which the fabric material 15' is immersed in an RFL aqueous solution and heated.
- a base adhesion treatment of immersing and heating in a base adhesion treatment solution before the RFL adhesion treatment and / or a soaking adhesion treatment of immersing in rubber paste and drying after the RFL adhesion treatment is performed. Then, the end sides of the cloth material 15 ′ subjected to the RFL bonding process and the soaking bonding process are joined to form a cylindrical shape.
- a rubber sleeve 25 is placed on a cylindrical drum 24 having a smooth surface, and on the outer periphery thereof, an uncrosslinked rubber sheet 13 'for the stretch rubber layer 13 and an uncrosslinked rubber sheet for the adhesive rubber layer 12. 12 'are sequentially wound and laminated in a predetermined number of times respectively, and the twisted yarn 14' for the core wire 14 is spirally wound around the cylindrical inner mold 21 from above, and further uncrosslinked for the adhesive rubber layer 12 from above.
- the rubber sheet 12 ′, the non-crosslinked rubber sheet 11b ′ for the inner rubber layer, and the non-crosslinked rubber sheet 11a ′ are sequentially wound around a predetermined number of times and laminated, and a cloth material 15 ′ for the covering cloth 15 is further covered.
- an uncrosslinked slab S ' is formed on the rubber sleeve 25.
- the uncrosslinked rubber sheet 11a 'for the surface rubber layer containing cellulosic short fibers may be used so that the grain direction corresponds to the belt length direction, and the grain direction is the belt width direction. It may be used to correspond to
- the outer mold 22 is heated, and high pressure air or the like is injected into the sealed interior of the inner mold 21 to pressurize it.
- the inner mold 21 expands, and the cloth material 15 'and the uncrosslinked rubber sheet 11a' for the surface rubber layer in the uncrosslinked slab S 'are provided along the molding surface of the outer mold 22
- the non-crosslinked rubber sheet 11b ', 12', 13 ' is compressed and enters, and the cross-linking of the non-crosslinked rubber sheet 11a', 11b ', 12', 13 'proceeds to be integrated, and the twisted yarn 14' and
- the cloth material 15 ' is compositely integrated with it, and finally, as shown in FIG. 3D, a cylindrical belt slab S is formed.
- the molding temperature of the belt slab S is, for example, 100 ° C. to 180 ° C.
- the molding pressure is, for example, 0.5 MPa to 2.0 MPa
- the molding time is, for example, 10 minutes to 60 minutes.
- the uncrosslinked rubber sheet for the surface rubber layer is not prepared, and the same uncrosslinked rubber composition is dissolved in an organic solvent.
- a rubber paste of viscosity is prepared, and as shown in FIG. 4A, a coating adhesion process of coating and drying the rubber paste is performed on the surface of the cloth material 15 ′ subjected to the RFL adhesion process and the soaking adhesion process.
- the rubber paste layer 11a ′ ′ which will constitute the surface rubber layer of the belt main body 10 is laminated on the cloth material 15 ′.
- the cloth material 15 ′ subjected to the coating bonding treatment is a rubber paste layer 11a ′ ′
- the end sides are joined so as to be the inner side to form a cylindrical shape.
- the rubber sleeve 25 is covered on the cylindrical drum 24 having a smooth surface, and the non-crosslinked rubber sheet 13 'for the stretch rubber layer 13 and the adhesive rubber layer
- the uncrosslinked rubber sheet 12 'for 12 is sequentially wound around the predetermined number of times and laminated, and the twisted yarn 14' for the core wire 14 is spirally wound around the cylindrical inner mold 21 from above, and further adhesion is further performed from above
- a cloth in which a non-crosslinked rubber sheet 12 'for the rubber layer 12 and a non-crosslinked rubber sheet 11b' for the inner rubber layer are sequentially wound around a predetermined number of times and laminated, and a rubber paste layer 11a "is provided further inside
- the material 15 ' is put on the rubber sleeve 25 to form an uncrosslinked slab S'.
- the uncrosslinked slab S ' is set in the belt forming die 20 and heated and pressed in the same manner as in the first manufacturing method.
- the inner mold 21 expands, and the cloth material 15 ′ and the rubber paste layer 11a ′ ′ in the uncrosslinked slab S ′ are provided along the molding surface of the outer mold 22 and the uncrosslinked rubber sheet 11b ′, 12
- the ', 13' is compressed and enters, and the cross-linking of the rubber paste layer 11a '' and the non-crosslinked rubber sheet 11b ', 12', 13 'proceeds to be integrated, and the twisted yarn 14' and the cloth material 15 '
- a cylindrical belt slab is molded.
- FIG. 5 shows a pulley layout of the accessory drive belt transmission 30 of the automobile using the V-ribbed belt B according to the embodiment.
- the accessory drive belt transmission 30 is a serpentine drive type in which a V-ribbed belt B is wound around six pulleys of four rib pulleys and two flat pulleys to transmit power.
- a power steering pulley 31 of a rib pulley is provided at the uppermost position, and an AC generator pulley 32 of a rib pulley is provided below the power steering pulley 31.
- a tensioner pulley 33 of a flat pulley is provided below the left of the power steering pulley 31, and a water pump pulley 34 of the flat pulley is provided below the tensioner pulley 33.
- a crankshaft pulley 35 of a rib pulley is provided below the left of the tensioner pulley 33, and an air conditioner pulley 36 of the rib pulley is provided below the right side of the crankshaft pulley 35.
- pulleys are made of, for example, a pressed product of metal or a cast product, or a resin molded product such as nylon resin or phenol resin, and the pulley diameter is, for example, 50 mm or more and 150 mm or less.
- the V-ribbed belt B is wound around the power steering pulley 31 so that the V rib 16 side contacts, and then wound around the tensioner pulley 33 so that the belt back surface contacts.
- the V rib 16 side is sequentially wound around the crankshaft pulley 35 and the air conditioner pulley 36 so as to be in contact with each other, and is further wound around the water pump pulley 34 so that the belt back surface is in contact, and the V rib 16 side is in contact It is wound around the AC generator pulley 32 and finally returned to the power steering pulley 31.
- the belt span length which is the length of the V-ribbed belt B stretched between the pulleys, is, for example, 50 mm or more and 300 mm or less.
- the misalignment that may occur between the pulleys is between 0 ° and 2 °.
- the compressed rubber layer 11 has a two-layer structure of the surface rubber layer containing cellulose short fibers and the inner rubber layer, the present invention is not particularly limited to this, and the compression rubber layer 11 is not particularly limited.
- the rubber layer 11 may have a single layer structure containing cellulosic staple fibers.
- the V-ribbed belt B of the friction transmission belt is shown in the above embodiment, it is not particularly limited to this, and it is a transmission belt in which the covering cloth 15 and the cellulose short fiber-containing rubber composition are exposed on the pulley contact surface. If it is, it may be another friction transmission belt such as a wrapped V belt or a flat belt, or may be a mesh transmission belt such as a toothed belt.
- V-ribbed belt V-ribbed belts of the following Examples 1 to 3 and Comparative Examples 1 to 2 were produced.
- Example 1 A V-ribbed belt having a belt length of 1257 mm and a V-rib number of 6 and a V-ribbed belt having a belt length of 1257 mm and a V-rib number of 3 were prepared in the same configuration as the above embodiment. These two V-ribbed belts are referred to as Example 1.
- the coated fabric a flat-knitted fabric in which the number of stitches in the wale direction and the course direction formed of bulky yarns of nylon 6, 6 fibers was 40 and 60, respectively was used.
- the molding pressure of the belt slab was 1.4 MPa, as shown in FIG. 6, the coated cloth and the cellulose short fiber-containing rubber composition were exposed on the V-rib surface of the pulley contact surface.
- the inner rubber layer, the adhesive rubber layer, and the stretch rubber layer were formed of a rubber composition in which the rubber component is EPDM, and polyester fiber yarn was used for the core wire.
- Example 2 Two kinds of the same constitution as Example 1 except that the number of stitches in the wale direction and the course direction formed of bulky yarns of nylon 6, 6 fibers was 40 and 40 respectively for the coated cloth.
- the V-ribbed belts of Example 2 were produced.
- the surface occupancy of the coated cloth was 72% and the surface occupancy of the cellulose-based short fiber-containing rubber composition was 28% on the V-rib surface of the pulley contact surface.
- Example 3 The number of stitches in the wale direction and course direction formed of bulky yarns of nylon 6, 6 fibers is 40 and 40, respectively, and the forming pressure of the belt slab is 1.6 MPa as the covering cloth.
- Two types of V-ribbed belts having the same configuration as in Example 1 except for the above were prepared and used as Example 3.
- the surface occupancy of the coated cloth was 57% and the surface occupancy of the cellulose-based short fiber-containing rubber composition was 43% on the V-rib surface of the pulley contact surface.
- Comparative Example 1 Using a flat knitted fabric with 40 and 60 stitches in the wale direction and course direction formed by bulky yarns of nylon 6, 6 fibers as the covering fabric, and setting the molding pressure of the belt slab to 1.2 MPa Two types of V-ribbed belts having the same configuration as in Example 1 except for the above were manufactured, and they were referred to as Comparative Example 1. In the V-ribbed belt of Comparative Example 1, only the coated cloth was exposed on the V-rib surface of the pulley contact surface, and the surface occupancy of the coated cloth was 100%.
- Comparative Example 2 Two types of the same configuration as Comparative Example 1 except that the number of stitches in the wales direction and the course direction formed of 50th count cotton yarn was used as the coated fabric for the 40th and 60th flat knitted fabrics respectively V-ribbed belts were produced, which were referred to as Comparative Example 2.
- the surface occupancy of the coated cloth was 100% on the V-rib surface of the pulley contact surface.
- FIG. 7A shows the pulley layout of the belt travel tester 40 for the WET atmosphere transferability test.
- the belt traveling test machine 40 for the WET atmosphere transferability test is provided with a first drive pulley 41 of a rib pulley with a pulley diameter of 121.6 mm at the lower left, and a second drive rib of the rib pulley with a pulley diameter of 141.5 mm to the right.
- a drive pulley 42 is provided.
- a first driven pulley 43 of a rib pulley having a diameter of 77.0 mm is provided obliquely above the right of the second drive pulley 42, and a second follower of a rib pulley having a diameter of 61.0 mm is disposed above the second drive pulley 42.
- a pulley 44 is provided.
- a first idler pulley 45 of a flat pulley having a diameter of 76.2 mm is provided between the first driven pulley 43 and the second driven pulley 44
- a second idler pulley 46 of a flat pulley having a pulley diameter of 76.2 mm is provided.
- the second driven pulley 44 is provided to be movable up and down, and is configured to be able to load an axial load.
- the first and second drive pulleys 41 and 42 and the first and second drive pulleys 41 and 42 for the V-ribbed belt B having six V-ribs in each of Examples 1 to 3 and Comparative Examples 1 and 2 are in contact with each other.
- the first and second idler pulleys 45 and 46 are wound around the driven pulleys 43 and 44 while the stretchable rubber layer side is in contact, and an axial load of 706 N is applied to the second driven pulley 44 upward to tension the belt. Gave.
- the winding angle of the V-ribbed belt B on the second drive pulley 42 was 39 °.
- the first drive pulley 41 is rotated at 800 rpm and the second drive pulley 42 in the same direction at a rotational speed of 931 rpm under a temperature atmosphere of 21 ° C., thereby forcing the V-ribbed belt B on the second drive pulley 42. Slipped. Further, on the V-rib surface of the portion of the first drive pulley 41 on the right side of the V-ribbed belt B at the start of winding, a water droplet was dropped at a rate of 300 ml per minute. Then, the maximum value of the generated torque was measured by a torque meter provided on the second drive pulley.
- FIG. 7B shows the pulley layout of the belt travel tester 50 for the abrasion resistance test.
- a drive pulley 51 of a rib pulley having a diameter of 60 mm is provided on the right side, and a driven pulley 52 of a rib pulley having a diameter of 60 mm is provided on the left side.
- the drive pulley 51 is provided movably to the left and right, and is configured to be able to load an axial load.
- the driven pulley 52 is given a rotational load of 3.8 kW (5.2 PS).
- V-ribbed belt B of each of Examples 1 to 3 and Comparative Examples 1 and 2 has three V-ribbed belts B
- the drive pulley 51 and the driven pulley 52 are wound on the drive pulley 51 and the drive pulley 51 is
- An axial load of 1176 N was applied to the right to apply a belt tension, and at room temperature, the drive pulley 51 was rotated at a rotation speed of 3500 rpm and allowed to run for 170 hours. Then, the mass change before and after the belt travel was determined, and the wear rate was calculated using it as the weight loss.
- FIG. 8A shows the maximum torque in the WET atmosphere transferability test of each of Examples 1 to 3 and Comparative Examples 1 and 2. According to this, while the maximum torque is the lowest in Comparative Example 1 in which the surface occupancy on the V-rib surface of the pulley contact surface of the coated cloth of nylon 6, 6 fiber is 100%, the pulley contact surface of the coated cloth of cotton yarn is the lowest Comparative Example 2 in which the surface occupancy on the V rib surface is 100% is the highest, and in Examples 1 to 3 in which the coated cloth and the cellulose short fiber-containing rubber composition are exposed on the V rib surface of the pulley contact surface It is understood that it is between. In addition, among the examples 1 to 3, it is understood that the example 2 is the highest.
- FIG. 8B shows the wear rate in the wear resistance test of each of Examples 1 to 3 and Comparative Examples 1 and 2. According to this, while the wear rate is the lowest in Comparative Example 1 in which the surface occupancy on the V-rib surface of the pulley contact surface of the coated cloth of nylon 6, 6 fiber is 100%, the pulley contact surface of the coated cloth of cotton yarn is the lowest. Comparative Example 2 in which the surface occupancy on the V rib surface is 100% is the highest, and in Examples 1 to 3 in which the coated cloth and the cellulose short fiber-containing rubber composition are exposed on the V rib surface of the pulley contact surface It is understood that it is between. In addition, among the examples 1 to 3, it is understood that the example 3 is the highest.
- the invention is useful in the technical field of transmission belts.
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Abstract
Description
実施形態に係るVリブドベルトBの第1の製造方法は、材料準備工程、成形工程、架橋工程、及び仕上げ工程を有する。
ニーダー、バンバリーミキサー等の混練機でゴム成分を素練りし、そこにセルロース系短繊維及び各種のゴム配合剤を投入して混練し、得られた未架橋ゴム組成物をカレンダ等によってシート状に成形して、ベルト本体10の表面ゴム層を形成することとなる未架橋ゴムシート11a’を作製する。
図3Aに示すように、表面が平滑な円筒ドラム24上にゴムスリーブ25を被せ、その外周上に、伸張ゴム層13用の未架橋ゴムシート13’及び接着ゴム層12用の未架橋ゴムシート12’を順にそれぞれ所定回数巻き付けて積層し、その上から心線14用の撚り糸14’を円筒状の内型21に対して螺旋状に巻き付け、その上から更に接着ゴム層12用の未架橋ゴムシート12’、内部ゴム層用の未架橋ゴムシート11b’、及び未架橋ゴムシート11a’を順にそれぞれ所定回数巻き付けて積層し、その上から更に被覆布15用の布材15’を被せる。このとき、ゴムスリーブ25上には未架橋スラブS’が形成される。なお、セルロース系短繊維を含有する表面ゴム層用の未架橋ゴムシート11a’は、列理方向がベルト長さ方向に対応するように使用してもよく、また、列理方向がベルト幅方向に対応するように使用してもよい。
未架橋スラブS’を設けたゴムスリーブ25を円筒ドラム24から外し、図3Bに示すように、それを外型22の内周面側に内嵌め状態にセットした後、図3Cに示すように、内型21を外型22にセットされたゴムスリーブ25内に位置付けて密閉する。
内型21の内部を減圧して密閉を解き、内型21と外型22との間でゴムスリーブ25を介して成型されたベルトスラブSを取り出し、所定幅に輪切りして表裏を裏返すことによりVリブドベルトBが製造される。
実施形態に係るVリブドベルトBの第2の製造方法では、材料準備工程において、表面ゴム層用の未架橋ゴムシートを作製せず、それと同様の未架橋ゴム組成物を有機溶剤に溶解させた高粘度のゴム糊を調製し、図4Aに示すように、RFL接着処理及びソーキング接着処理した布材15’のベルト本体10側となる表面に、そのゴム糊をコーティングして乾燥させるコーティング接着処理を施すことにより、布材15’上にベルト本体10の表面ゴム層を構成することとなるゴム糊層11a”を積層する。コーティング接着処理を施した布材15’は、ゴム糊層11a”が内側となるように端辺同士を接合して円筒状に形成する。
以下の実施例1~3及び比較例1~2のVリブドベルトを作製した。
上記実施形態と同様の構成のベルト長さが1257mmでVリブ数が6個のVリブドベルト及びベルト長さが1257mmでVリブ数が3個のVリブドベルトを作製した。それらの2種のVリブドベルトを実施例1とした。
被覆布に、ナイロン6,6繊維の嵩高糸で形成したウェール方向及びコース方向の編目数がそれぞれ40目及び40目の平編布を用いたことを除いて実施例1と同一構成の2種のVリブドベルトを作製し、それらを実施例2とした。実施例2のVリブドベルトでは、プーリ接触表面のVリブ表面において、被覆布の表面占有率が72%及びセルロース系短繊維含有ゴム組成物の表面占有率が28%であった。
被覆布に、ナイロン6,6繊維の嵩高糸で形成したウェール方向及びコース方向の編目数がそれぞれ40目及び40目の平編布を用い、ベルトスラブの成型圧力を1.6MPaとしたことを除いて実施例1と同一構成の2種のVリブドベルトを作製し、それらを実施例3とした。実施例3のVリブドベルトでは、プーリ接触表面のVリブ表面において、被覆布の表面占有率が57%及びセルロース系短繊維含有ゴム組成物の表面占有率が43%であった。
被覆布に、ナイロン6,6繊維の嵩高糸で形成したウェール方向及びコース方向の編目数がそれぞれ40目及び60目の平編布を用い、ベルトスラブの成型圧力を1.2MPaとしたことを除いて実施例1と同一構成の2種のVリブドベルトを作製し、それらを比較例1とした。比較例1のVリブドベルトでは、プーリ接触表面のVリブ表面において、被覆布のみが露出し、被覆布の表面占有率が100%であった。
被覆布に、太さが50番手の綿糸で形成したウェール方向及びコース方向の編目数がそれぞれ40目及び60目の平編布を用いたことを除いて比較例1と同一構成の2種のVリブドベルトを作製し、それらを比較例2とした。比較例2のVリブドベルトでは、プーリ接触表面のVリブ表面において、被覆布の表面占有率が100%であった。
<WET雰囲気伝動能力試験>
図7Aは、WET雰囲気伝動能力試験用ベルト走行試験機40のプーリレイアウトを示す。
図7Bは、耐摩耗性試験用ベルト走行試験機50のプーリレイアウトを示す。
図8Aは、実施例1~3及び比較例1~2のそれぞれのWET雰囲気伝動能力試験における最大トルクを示す。これによれば、最大トルクは、ナイロン6,6繊維の被覆布のプーリ接触表面のVリブ表面における表面占有率が100%である比較例1が最も低い一方、綿糸の被覆布のプーリ接触表面のVリブ表面における表面占有率が100%である比較例2が最も高く、プーリ接触表面のVリブ表面に被覆布とセルロース系短繊維含有ゴム組成物とが露出した実施例1~3がそれらの間であることが分かる。また、実施例1~3の中では、実施例2が最も高いことが分かる。
10 ベルト本体
15 被覆布
Claims (12)
- ベルト本体と、
前記ベルト本体のプーリ接触側表面を被覆するように設けられた合成繊維を主成分とする布材で構成された被覆布と、
を備えた伝動ベルトであって、
前記被覆布の前記ベルト本体側の表面が、ゴム成分にセルロース系短繊維が分散したセルロース系短繊維含有ゴム組成物に接触しており、
前記被覆布と前記セルロース系短繊維含有ゴム組成物とがプーリ接触表面に露出している伝動ベルト。 - 請求項1に記載された伝動ベルトにおいて、
前記セルロース系短繊維含有ゴム組成物が、前記ベルト本体における前記被覆布で被覆された部分を形成している伝動ベルト。 - 請求項1又は2に記載された伝動ベルトにおいて、
前記セルロース系短繊維含有ゴム組成物の前記ゴム成分がエチレン-α-オレフィンエラストマーを含む伝動ベルト。 - 請求項1乃至3のいずれかに記載された伝動ベルトにおいて、
前記セルロース系短繊維含有ゴム組成物における前記セルロース系短繊維の含有量が、前記ゴム成分100質量部に対して5質量部以上60質量部以下である伝動ベルト。 - 請求項1乃至4のいずれかに記載された伝動ベルトにおいて、
前記セルロース系短繊維の繊維長が0.1mm以上1mm以下である伝動ベルト。 - 請求項1乃至5のいずれかに記載された伝動ベルトにおいて、
前記セルロース系短繊維の繊維径が10μm以上50μm以下である伝動ベルト。 - 請求項1乃至6のいずれかに記載された伝動ベルトにおいて、
前記セルロース系短繊維が綿を含む伝動ベルト。 - 請求項1乃至7のいずれかに記載された伝動ベルトにおいて、
前記プーリ接触表面における前記被覆布の表面占有率が40%以上90%以下である伝動ベルト。 - 請求項1乃至8のいずれかに記載された伝動ベルトにおいて、
前記被覆布を構成する布材を形成する合成繊維がポリアミド繊維を含む伝動ベルト。 - 請求項1乃至9のいずれかに記載された伝動ベルトにおいて、
前記被覆布を構成する布材が編布である伝動ベルト。 - 請求項10に記載された伝動ベルトにおいて、
前記被覆布を構成する布材の編布は、ウェール方向及びコース方向の編目数が2.54cm当たり20目以上80目以下である伝動ベルト。 - 請求項10又は11に記載された伝動ベルトにおいて、
前記被覆布を構成する布材の編布は、ウェール方向の編目数がコース方向の編目数以下である伝動ベルト。
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JP7387664B2 (ja) * | 2021-03-05 | 2023-11-28 | バンドー化学株式会社 | Vリブドベルト |
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