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US3906570A - Method of making an insole - Google Patents

Method of making an insole Download PDF

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Publication number
US3906570A
US3906570A US473273A US47327374A US3906570A US 3906570 A US3906570 A US 3906570A US 473273 A US473273 A US 473273A US 47327374 A US47327374 A US 47327374A US 3906570 A US3906570 A US 3906570A
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Prior art keywords
insole
assembly
making
heat
layers
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US473273A
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Howard B Revill
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DVSG Holding GmbH
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USM Corp
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Priority claimed from US00342999A external-priority patent/US3835558A/en
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Assigned to EMHART INDUSTRIES, INC. reassignment EMHART INDUSTRIES, INC. MERGER (SEE DOCUMENT FOR DETAILS). Assignors: EMHART ENTERPRISES CORP., A NJ CORP.
Assigned to EMHART ENTERPRISES CORP. reassignment EMHART ENTERPRISES CORP. CHANGE OF NAME (SEE DOCUMENT FOR DETAILS). EFFECTIVE DATE: MAY 8, 1987 Assignors: USM CORPORATION
Assigned to TEXON FOOTWEAR INC., A CORP. OF DE reassignment TEXON FOOTWEAR INC., A CORP. OF DE ASSIGNMENT OF ASSIGNORS INTEREST. Assignors: EMHART INDUSTRIES, INC.
Assigned to EMHART HOLDINGS INC. reassignment EMHART HOLDINGS INC. ASSIGNMENT OF ASSIGNORS INTEREST. Assignors: TEXON FOOTWEAR INC., A CORP OF DE
Assigned to TEXON FOOTWEAR INVESTMENTS INC. reassignment TEXON FOOTWEAR INVESTMENTS INC. ASSIGNMENT OF ASSIGNORS INTEREST. Assignors: EMHART HOLDINGS INC., A CORP. OF DELAWARE
Assigned to DVSG HOLDING GMBH reassignment DVSG HOLDING GMBH ASSIGNMENT OF ASSIGNORS INTEREST. Assignors: TEXON FOOTWEAR INVESTMENTS INC., A CORP. OF DE
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    • BPERFORMING OPERATIONS; TRANSPORTING
    • B32LAYERED PRODUCTS
    • B32BLAYERED PRODUCTS, i.e. PRODUCTS BUILT-UP OF STRATA OF FLAT OR NON-FLAT, e.g. CELLULAR OR HONEYCOMB, FORM
    • B32B5/00Layered products characterised by the non- homogeneity or physical structure, i.e. comprising a fibrous, filamentary, particulate or foam layer; Layered products characterised by having a layer differing constitutionally or physically in different parts
    • B32B5/22Layered products characterised by the non- homogeneity or physical structure, i.e. comprising a fibrous, filamentary, particulate or foam layer; Layered products characterised by having a layer differing constitutionally or physically in different parts characterised by the presence of two or more layers which are next to each other and are fibrous, filamentary, formed of particles or foamed
    • B32B5/24Layered products characterised by the non- homogeneity or physical structure, i.e. comprising a fibrous, filamentary, particulate or foam layer; Layered products characterised by having a layer differing constitutionally or physically in different parts characterised by the presence of two or more layers which are next to each other and are fibrous, filamentary, formed of particles or foamed one layer being a fibrous or filamentary layer
    • B32B5/26Layered products characterised by the non- homogeneity or physical structure, i.e. comprising a fibrous, filamentary, particulate or foam layer; Layered products characterised by having a layer differing constitutionally or physically in different parts characterised by the presence of two or more layers which are next to each other and are fibrous, filamentary, formed of particles or foamed one layer being a fibrous or filamentary layer another layer next to it also being fibrous or filamentary
    • AHUMAN NECESSITIES
    • A43FOOTWEAR
    • A43BCHARACTERISTIC FEATURES OF FOOTWEAR; PARTS OF FOOTWEAR
    • A43B7/00Footwear with health or hygienic arrangements
    • A43B7/14Footwear with health or hygienic arrangements with foot-supporting parts
    • A43B7/1405Footwear with health or hygienic arrangements with foot-supporting parts with pads or holes on one or more locations, or having an anatomical or curved form
    • A43B7/141Footwear with health or hygienic arrangements with foot-supporting parts with pads or holes on one or more locations, or having an anatomical or curved form having an anatomical or curved form
    • AHUMAN NECESSITIES
    • A43FOOTWEAR
    • A43BCHARACTERISTIC FEATURES OF FOOTWEAR; PARTS OF FOOTWEAR
    • A43B13/00Soles; Sole-and-heel integral units
    • A43B13/38Built-in insoles joined to uppers during the manufacturing process, e.g. structural insoles; Insoles glued to shoes during the manufacturing process
    • AHUMAN NECESSITIES
    • A43FOOTWEAR
    • A43BCHARACTERISTIC FEATURES OF FOOTWEAR; PARTS OF FOOTWEAR
    • A43B13/00Soles; Sole-and-heel integral units
    • A43B13/38Built-in insoles joined to uppers during the manufacturing process, e.g. structural insoles; Insoles glued to shoes during the manufacturing process
    • A43B13/41Built-in insoles joined to uppers during the manufacturing process, e.g. structural insoles; Insoles glued to shoes during the manufacturing process combined with heel stiffener, toe stiffener, or shank stiffener
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B32LAYERED PRODUCTS
    • B32BLAYERED PRODUCTS, i.e. PRODUCTS BUILT-UP OF STRATA OF FLAT OR NON-FLAT, e.g. CELLULAR OR HONEYCOMB, FORM
    • B32B1/00Layered products having a non-planar shape
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B32LAYERED PRODUCTS
    • B32BLAYERED PRODUCTS, i.e. PRODUCTS BUILT-UP OF STRATA OF FLAT OR NON-FLAT, e.g. CELLULAR OR HONEYCOMB, FORM
    • B32B5/00Layered products characterised by the non- homogeneity or physical structure, i.e. comprising a fibrous, filamentary, particulate or foam layer; Layered products characterised by having a layer differing constitutionally or physically in different parts
    • B32B5/02Layered products characterised by the non- homogeneity or physical structure, i.e. comprising a fibrous, filamentary, particulate or foam layer; Layered products characterised by having a layer differing constitutionally or physically in different parts characterised by structural features of a fibrous or filamentary layer
    • B32B5/022Non-woven fabric
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B32LAYERED PRODUCTS
    • B32BLAYERED PRODUCTS, i.e. PRODUCTS BUILT-UP OF STRATA OF FLAT OR NON-FLAT, e.g. CELLULAR OR HONEYCOMB, FORM
    • B32B5/00Layered products characterised by the non- homogeneity or physical structure, i.e. comprising a fibrous, filamentary, particulate or foam layer; Layered products characterised by having a layer differing constitutionally or physically in different parts
    • B32B5/22Layered products characterised by the non- homogeneity or physical structure, i.e. comprising a fibrous, filamentary, particulate or foam layer; Layered products characterised by having a layer differing constitutionally or physically in different parts characterised by the presence of two or more layers which are next to each other and are fibrous, filamentary, formed of particles or foamed
    • B32B5/24Layered products characterised by the non- homogeneity or physical structure, i.e. comprising a fibrous, filamentary, particulate or foam layer; Layered products characterised by having a layer differing constitutionally or physically in different parts characterised by the presence of two or more layers which are next to each other and are fibrous, filamentary, formed of particles or foamed one layer being a fibrous or filamentary layer
    • B32B5/28Layered products characterised by the non- homogeneity or physical structure, i.e. comprising a fibrous, filamentary, particulate or foam layer; Layered products characterised by having a layer differing constitutionally or physically in different parts characterised by the presence of two or more layers which are next to each other and are fibrous, filamentary, formed of particles or foamed one layer being a fibrous or filamentary layer impregnated with or embedded in a plastic substance
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B32LAYERED PRODUCTS
    • B32BLAYERED PRODUCTS, i.e. PRODUCTS BUILT-UP OF STRATA OF FLAT OR NON-FLAT, e.g. CELLULAR OR HONEYCOMB, FORM
    • B32B2262/00Composition or structural features of fibres which form a fibrous or filamentary layer or are present as additives
    • B32B2262/02Synthetic macromolecular fibres
    • B32B2262/0261Polyamide fibres
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B32LAYERED PRODUCTS
    • B32BLAYERED PRODUCTS, i.e. PRODUCTS BUILT-UP OF STRATA OF FLAT OR NON-FLAT, e.g. CELLULAR OR HONEYCOMB, FORM
    • B32B2262/00Composition or structural features of fibres which form a fibrous or filamentary layer or are present as additives
    • B32B2262/04Cellulosic plastic fibres, e.g. rayon
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B32LAYERED PRODUCTS
    • B32BLAYERED PRODUCTS, i.e. PRODUCTS BUILT-UP OF STRATA OF FLAT OR NON-FLAT, e.g. CELLULAR OR HONEYCOMB, FORM
    • B32B2437/00Clothing
    • B32B2437/02Gloves, shoes

Definitions

  • the insole including the heel and shank region may be given a contour approximating the contour of a bottom of a foot in a pressing operation and may also incorporate a layer of stiff plastic sheet material.
  • This invention relates to improvements in methods of making materials for use in the manufacture for shoes.
  • Known insoles for incorporation in a shoe include those having a forepart which is flexible to permit the shoe to bend as a wearer walks and a more rigid heel seat and waist portion which gives strength to the shoe in the heel seat and waist region thereof and to which the heel of a shoe is commonly attached using suitable fastening members, for example nails or staples.
  • the forepart portion of such insoles comprises a suitable flexible insoling material, for example water laid fibrous sheet material bonded with natural or synthetic rubber.
  • the heel seat and waist portion of such an insole comprises a more rigid fiberboard, commonly known as shankboard.
  • Insoles of this type may'be cut from a composite board made by sticking together a rectangular piece of flexible forepart maaterial and shankboard; an edge portion of each piece of board is skived, thus giving a tapered edge portion, and suitable adhesive is applied to the skived edge portion of each material, the skived edge portions are then brought into contact and the adhesive thereon bonds the two pieces together.
  • the adhesive has set, insoles are cut from the soformed composite board.
  • the insoles cut from the board have a lap joint in the region of the ball of the foot. After the insoles have been cut out it is a known practice to impart a shape corresponding approximately to the contour of the bottom of a foot to the insoles by subjecting them to pressure applied by dies having a suitable shape in a suitable machine.
  • One of the various objects of the present invention is to provide an improved method of manufacturing a unitary shoe insole having a stiff rear portion and a flexible forepart.
  • a unitary shoe insole is formed by assembling through and partial layers of non-woven bonded fiber and combining them with a unitary insole by heat and pressure.
  • FIG. 1 is a showing of the completed insole.
  • FIG. 2 is an exploded view of the insole and pressing means.
  • FIG. 3 is a cross-section of the insole taken on line [IL-Ill of FIG. 1.
  • An insole according to the present invention is a non-woven bonded fiber sheet having an outline shape for incorporation in footwear and is constructed to have a rear portion 12 of greater density and rigidity than the fore part 14.
  • the insole may be formed from one or more through layers 16 having an outline shape corresponding to that of the insole and one or more short layers 18 bonded to a rear portion 20 of the through layer.
  • Each of the through layers is a nonwoven bonded fiber batt which may be made by first forming an intermediate batt by garnetting, crosslaying and ncedling fibers and then introducing a binder into this intermediate batt.
  • Suitable binders include heat softenable resinous materials such as the vinyl polymer and copolymer resins, polystyrene, polyacrylatcs and methacrylates, polymers and copolymers of isobutylic and butadiene, natural resins and mixtures of these.
  • the melting point of these resinous materials must be high enough not to soften in use but low enough to be softened for bonding together of layers in the press.
  • the bindermay be applied as an aqueous emulsion or as a volatile organic solvent solution or in powder form.
  • each illustrative insole also consists of a similar non-woven bonded fiber batt.
  • the rear, heel seat and waist portion of the illustrative insoles Comprising both the through layer or layers and the short layer or layers, has greater density and rigidity and is at least as thick as and preferably is thicker than the forepart of the insole.
  • the non-woven bonded fiber layers which are to form the insole are assembled in face-toface relation.
  • the assembly may comprise at least one through layer consisting of a non-woven bonded fiber batt having an outline shape corresponding to that of the insole and one or more short layers at least one of which consists of a non-woven bonded fiber batt and each of which has an outline shape corresponding with the outline shape of a rear portion of the through layer.
  • the assembly may be prepared by arranging a number of layers of non-woven bonded fiber batt in face-toface relation and cutting the insole assembly from the assembled layers. so that the outline shape of the short layers correspond with the rear portions of the through layer.
  • the assembly may be made by cutting the through layer or layers, cutting the short layers separately and assembling the pre-eut layers to provide the insole assembly.
  • a short layer portion may be made of a non-woven bonded fiber material having a thickness double or three times the thickness of the through layer rather than by use of a plurality of short layers.
  • the insole assembly is subjected to heat and pressure in either a high-frequency welding press or a press having electrically heated platens.
  • the heat and pressure causes the layers to bond together through the action of the bonding agent in the fiber layers in the rear por tion of the insole assembly, and the rear portion is con solidated or densified so that it has a greater density and rigidity than the forepart portion. It is preferred that the density of the rear portion be at least 50 percent greater than in the forepart portion.
  • one or two short layers (of the same outline shape as the bonded fiber batt short layer) of a stiff, heat softenable sheet material suitably a sheet of resin plastic such as polyvinyl chloride, vinyl chloride copolymers, polypropylene, polystyrene, polyamides or other thermoplastic or stiff sheet material.
  • the sheet material other than non-woven bonded fiber batt is preferably selected to be resistant to nails being pulled therethrough.
  • the plastic sheet material is of a type of plastic material which is heated when subjected to a high-frequency electric field.
  • thermoplastic resin sheet e.g.
  • the heat and pressure is preferably supplied by a high-frequency welding press because the resin such as polyvinyl chloride is heated rapidly by the high-frequency fields and would be difficult to heat at a sufficiently fast rate to achieve adequate bonding in a reasonable length of time if a press of the heated platen type were to be used.
  • the presser members 24, 26 by which the insoles are heated and pressed are shaped to impart to the insoles a shape corresponding approximately to the bottom of a foot.
  • One of the presser members may conveniently be a suitably shaped metal member and the other of the presser members may be a partially shaped resilient member having a flexible electrode embedded therein, the resilient presser member being such that as the two presser members are pressed toward each other so that the resilient member forces the insole assembly against the rigid metal member and molds it to the shape of the metal member.
  • the insole assembly is to be shaped at 'the same time as the layers thereof are bonded together a shank member 28 of metal or other strong stiff material be bonded to the insole assembly in the heating and pressing step.
  • the press is a high-frequency welding press.
  • the shank member may be coated with polyvinyl chloride powder or the like as a bonding agent.
  • parts. at least. of the insole assembly comprise material which is heated by application of a high-frequency electric field.
  • the insole assembly comprises a non-woven fiber batt the fibers of which are bonded by a binder.
  • the binder will comprise a material which is heated by application of a high-frequency electric field.
  • insoles in accordance with the invention may have a suitable finish, for example a material comprising 50 parts by weight of an aqueous dispersion of carboxylated high nitrile content synthetic rubber having a solids content of about 42 percent by Weight and containing zinc oxide as a curing agent, 50 percent by weight of an aqueous dispersion of a vinyl chloride copolymer having a solids content of from about 55 to about 59 percent by weight, parts by weight of 10 percent sodium carboxymcthyl cellulose as a thickening agent and 5 parts by weight of a suitable color dispersion, for example a water based dispersion.
  • a suitable finish for example a material comprising 50 parts by weight of an aqueous dispersion of carboxylated high nitrile content synthetic rubber having a solids content of about 42 percent by Weight and containing zinc oxide as a curing agent, 50 percent by weight of an aqueous dispersion of a vinyl chloride copolymer having a solids content
  • a non-woven fiber batt was formed by garnetting a mixture of fibers in the ratio of about one third by weight of4 denier nylon staple fibers from 1 to 4 inches in average length with no staple exceeding 7 /2inches and about two thirds by weight of viscous rayon fibers of mixed denier up to 11 (most fibers having a denier of about 3) and having a mixed staple length between 1 /2 inches and 3 inches.
  • the resulting light-weight, non-woven fiber web was cross-laid to form a thicker web and this thicker web was passed through a needle loom to consolidate the web and form an intermediate non-woven batt.
  • the intermediate batt had a weight of about 480 grams per square meter, and was between 2.5 and 3.0 millimeters in thickness.
  • This intermediate batt was then passed through an impregnating bath composed of an aqueous dispersion of vinyl chloride copolymer having a solids content of from to 59%. From the bath the impregnated material was passed be.- tween stripper rolls to remove excess impregnant and was dried by passing it through a drying oven and round heated drying drums (the drums being heated by steam at 40 psi).
  • the non-woven bonded fiber batt so formed consisted of 1 part by weight fiber to 1 part by weight of binder.
  • the impregnated and dried material was about 2.5 millimeters in thickness.
  • a third piece of the nonwoven bonded fiber batt measuring 7 /4 inches by 8 inches was laid on top of the second piece, in alignment therewith.
  • a cutting die having the outline shape of an insole to be made.
  • the press was then operated to cause the die to cut the material to form an assembly comprising a through layer (cut from the first piece) having an outline shape corresponding to that of the insole and two short layers (each having an outline shape corresponding to that of a rear. heel seat and waist portion of the insole), the assembly being such that the outline shape of the short layers corresponded to the outline shape of the rear portion of the through layer.
  • the resulting assembly was placed between the platens of a high-frequency welding press, resting on a silicone rubber sheet three-sixteenths of an inch thick having a flexible electrode embedded in it, the sheet being secured to the lower platen and the assembly was covered by a foam silicone rubber sheet one-half .inch
  • the silicone rubber was provided to prevent loss
  • the air line pressure. applied was 80 p.s.i. and the ram diameter was 4 inches.
  • the input power applied was 1.9 amps and thc.frequency of the high-frequency field was 39 MH
  • the assembly wasallowed to remain in the press under pressure for seconds and was subject to thclhighfrequency electric field for the first 9 seconds of this time.
  • the assembly was next removed from the highfre'quency press and the three layers were found to be firmly bonded together.
  • the forepart portion of the insole thus formed was about 2 millimeters in thickness and had a density of about 0.45 grams per cc. (the initial density of the forepart was about 0.40- grams per cc.).
  • the heel seat and waist. portion ofthe insole was about 3.10 millimeters inthickncss and its density was about 0.78 grams per cc.
  • the flcxural rigidity of the material of the heel seat and waist portion ofthe insole was found to be of the sameorder as the flexural rigidity of Grade 1 shankboard 3 millimeters thick and was found to be considerably greater than the flexural rigid ity of the forepart portion of the insole.
  • Heel-attaching pins were driven through the heel seatand waist portion of the first illustrative insole and through Grade 1' shankboard 3 millimeters thick: slightly greater loads were needed to pull the heel pin out of the insole made according to the Example than were required topull the pin from the Grade 1 shankboard.
  • the insole of the Example was subjected to heating and was then subjected to an insole molding operation.
  • Insoles made as described above were suitable for use in the manufacture of mens shoes without any additional-tre atement: for use in the manufacture of womens shoes the heel seat and waist portion was reinforced in known manner by attaching a metal shank member, using eye lets.
  • Example 2 The general procedure of Example 1 was repeated, except that three short layers of the non-woven bonded fiber batt were used in the heel seat and waist portion.
  • the forepart portion of the insole (which consisted of only one layer, the through layer, of the non-woven bonded fiber batt) was slightly over 2 millimeters in thickness and slightly over 0.4 grams per cc. in density.
  • the rear, heel seat and waist portion of the insole was 3.6 millimeters thick and had a density of 0.86 grams per cc.
  • the forepart portion of this insole had a flcxural rigidity similar to that of the forepart portion of the insole of Example 1.
  • the flcxural rigidity of the heel seat and waist portion of the insole made in this Example was noticeably greater than that of the insole of the first Example and was of the same order as Grade 1 shankboard 3.5 millimeters thick.
  • the flcxural rigidity of the heel seat and waist portion of the insole was considerably better then that of a Grade 1 shankboard 3.5 millimeters thick after both had been subjected to soaking in Water for 6 hours.
  • the load per millimeter thickness of the material required to remove heel attaching nails from the heel seat and waist portion of the insole was significantly greatcrthan that required to remove nails from Grade 1 shankboard 3.5 millimeters thick. especially after. both had been subjected to soaking in water for 6 hours.
  • EXAMPLE 4 lnsoles were made by methods corresponding toExamplcs 1 to 3 with the exception that the different impregantcomposition was used; namely. a plasticized polystyrene dispersion having a solids content of about 50'percent.
  • the insoles were similar in properties to the corresponding one of the Examples 1 through 4, except thatthose rnade using highfrequenc'y heating correspondirig to Examples 1 and 2 wasc' slightly less dense than the insoles according to Examples 1 and 2.
  • EXAMPLE 5 Further insoles were prepared using a non-woven bonded fiber batt such as in Example 1 but using an impregant composition comprising parts by weight of an aqueous dispersion of a vinyl chloride copolymer having a solids content of about 55 to about 59 percent by weight 20 parts by weight of an aqueous dispersion of earboxylated high nitrile-content synthetic rubber having a solids content of about 42 percent by weight and containing zinc oxide as a curing agent.
  • the impregnated batt was dried as described in Example 1 and the impregnating conditions were so chosen that the ratio of fiber to binder in .the dried non-woven bonded fiber batt was 1:1 by weight.
  • a piece 12 inches by 8 inches of the non-woven fiber batt was placed on the cutting block of a cutting press and a sheet of stiff polyvinyl chloride resin 7Ai inches by 8 inches was laid on top of the non-woven fiber batt with an 8 inch side in alignment with one of the 8 inch sides of the non-woven fiber piece and with the 7% sides in alignment with the 12 inch sides of the bonded fiber sheet.
  • a further piece of nonwovcn bonded fiber batt 7%. inch by 8 inches was laid on top of the polyvinyl chloride sheet.
  • An insole assembly was cut from this and the assembly treated in the high frequency press in the manner described in Example 1. In this case the polyvinyl chloride sheet was slightly over one half mm. thick and had a weight of 900 grams of square meter.
  • the resulting insole had a forepart portion, which was 2 mm. thick and had a density of about 0.4 grams per cc. and had a rear, heel seat and waist portion which was about 3 mm. thick and had a density of about 1 gram per cc.
  • the heel seat and waist portion of this insole had a slightly greater flcxural rigidity than the heel seat and waist portion of the product of the first example.
  • the load per millimeter thickness required to pull a heel-attaching nail through the heel seat and waist portion of this insole were considerably greater than that required for the product of Example A further insole was made in a manner similar to that just described except that two layers of the polyvinyl chloride sheet material were used.
  • the forepart portion of this insole was 2 mm.
  • the rear. heel seat and waist portion of the insole was 3 mm. and had a density of slightly over 1 gram per cc. This insole had a slightly greater flexural rigidity than did the product of Example 2 and a considerably greater load was required to pull the heel-attaching nails through the heel seat and waist portion.
  • EXAMPLE 6 Insoles were made by procedures corresponding to Examples 1 and 2 with the exception that a small piece of polyvinyl chloride sheet material. one-half mm. thick and having a weight of 900 grams per square meter was placed in the heel seat region prior to assembly under heat and pressure in the high-frequency press so that the polyvinyl chloride sheet becomes an integral part of the insole in the heel seat region into which the heel attaching nails are to be driven.
  • the method of making an insole comprising forming an assembly in face to face relation of a through layer of non-woven bonded fiber comprising a thermoplastic bonding agent having a softening point below the melting point of the fiber of said layers and above the temperatures to which said insole will be subjected in use and having an outline shape corresponding to that of the insole and at least one short layer or a nonwoven bonded fiber having an outline shape corresponding with or lying within the outline shape of a rear portion of a through layer and subjecting the assembly to heat and pressure to bond said through and short lay- (ill ers together through the action of said bonding agent and to densify portions of said assembly comprising both through and short layers so that said portions have greater density and rigidity than portions not comprising both through and short layers.

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  • Health & Medical Sciences (AREA)
  • Epidemiology (AREA)
  • General Health & Medical Sciences (AREA)
  • Public Health (AREA)
  • Engineering & Computer Science (AREA)
  • Mechanical Engineering (AREA)
  • Textile Engineering (AREA)
  • Footwear And Its Accessory, Manufacturing Method And Apparatuses (AREA)

Abstract

Method of making insole of non-woven bonded fiber sheet material including a shank portion of greater stiffness and density than the forward portion in which a through layer of non-woven fiber sheet including a heat-softenable binder is associated with one or more layers of non-woven fiber sheet including binder in the heel and shank or waist portion of the insole and the layers in the heel and shank or waist portion are consolidated by heat and pressure to a unitary board-like state in the heel and shank region. The insole including the heel and shank region may be given a contour approximating the contour of a bottom of a foot in a pressing operation and may also incorporate a layer of stiff plastic sheet material.

Description

United States Patent [191 Revill [451 Sept. 23, 1975 METHOD OF MAKING AN INSOLE Howard B. Revill, Oadby, England [73] Assignee: USM Corporation, Boston, Mass.
[22] Filed: May 24, 1974 [21] Appl. No.: 473,273
Related US. Application Data [62] Division of Ser. No. 342,999, March 20, 1973, Fat.
[75] Inventor:
OTHER PUBLICATIONS CrispinProgress Edition; Section Ill-Processes & Methods; February 1937; page 33.
Primary Examiner-Patrick D. Lawson Attorney, Agent, or FirmBenjamin C. Pollard; Vincent A. White; Richard B. Megley [57] ABSTRACT Method of making insole of non-woven bonded fiber sheet material including a shank portion of greater stiffness and density than the forward portion in which a through layer of non-woven fiber sheet including a heat-softenable binder is associated with one or more layers of non-woven fiber sheet including binder in the heel and shank or waist portion of the insole and the layers in the heel and shank or waist portion are consolidated by heat and pressure to a unitary board-like state in the heel and shank region. The insole including the heel and shank region may be given a contour approximating the contour of a bottom of a foot in a pressing operation and may also incorporate a layer of stiff plastic sheet material.
8 Claims, 3 Drawing Figures METHOD OF MAKING AN INSOLE This is a division of application Ser. No. 342,999, filed Mar. 20, 1973, now US. Pat. No. 3,835,558 dated Sept. 17, 1974.
FIELD OF THE INVENTION This invention relates to improvements in methods of making materials for use in the manufacture for shoes.
BACKGROUND OF THE INVENTION Known insoles for incorporation in a shoe include those having a forepart which is flexible to permit the shoe to bend as a wearer walks and a more rigid heel seat and waist portion which gives strength to the shoe in the heel seat and waist region thereof and to which the heel of a shoe is commonly attached using suitable fastening members, for example nails or staples. The forepart portion of such insoles comprises a suitable flexible insoling material, for example water laid fibrous sheet material bonded with natural or synthetic rubber. The heel seat and waist portion of such an insole comprises a more rigid fiberboard, commonly known as shankboard. Insoles of this type may'be cut from a composite board made by sticking together a rectangular piece of flexible forepart maaterial and shankboard; an edge portion of each piece of board is skived, thus giving a tapered edge portion, and suitable adhesive is applied to the skived edge portion of each material, the skived edge portions are then brought into contact and the adhesive thereon bonds the two pieces together. When the adhesive has set, insoles are cut from the soformed composite board. The insoles cut from the board have a lap joint in the region of the ball of the foot. After the insoles have been cut out it is a known practice to impart a shape corresponding approximately to the contour of the bottom of a foot to the insoles by subjecting them to pressure applied by dies having a suitable shape in a suitable machine.
SUMMARY OF THE INVENTION One of the various objects of the present invention is to provide an improved method of manufacturing a unitary shoe insole having a stiff rear portion and a flexible forepart.
To this end and in accordance with a feature of the preseent invention a unitary shoe insole is formed by assembling through and partial layers of non-woven bonded fiber and combining them with a unitary insole by heat and pressure.
BRIEF DESCRIPTION OF DRAWINGS FIG. 1 is a showing of the completed insole.
FIG. 2 is an exploded view of the insole and pressing means.
FIG. 3 is a cross-section of the insole taken on line [IL-Ill of FIG. 1.
DESCRIPTION OF THE PREFERRED EMBODIMENTS An insole according to the present invention is a non-woven bonded fiber sheet having an outline shape for incorporation in footwear and is constructed to have a rear portion 12 of greater density and rigidity than the fore part 14. The insole may be formed from one or more through layers 16 having an outline shape corresponding to that of the insole and one or more short layers 18 bonded to a rear portion 20 of the through layer. Each of the through layers is a nonwoven bonded fiber batt which may be made by first forming an intermediate batt by garnetting, crosslaying and ncedling fibers and then introducing a binder into this intermediate batt. Any of the usual fibers employed in making non-woven fabrics may be used including nylon, rayon, polyester and cotton and mixtures of these. Suitable binders include heat softenable resinous materials such as the vinyl polymer and copolymer resins, polystyrene, polyacrylatcs and methacrylates, polymers and copolymers of isobutylic and butadiene, natural resins and mixtures of these. The melting point of these resinous materials must be high enough not to soften in use but low enough to be softened for bonding together of layers in the press. The bindermay be applied as an aqueous emulsion or as a volatile organic solvent solution or in powder form. The amount of binder is not particularly critical and an amount of the order of about equal parts by weight of fibers and binder in the non-woven layer has been found useful. At least one short layer of each illustrative insole also consists of a similar non-woven bonded fiber batt. The rear, heel seat and waist portion of the illustrative insoles, Comprising both the through layer or layers and the short layer or layers, has greater density and rigidity and is at least as thick as and preferably is thicker than the forepart of the insole.
In a preferred method of making the insoles of the present invention, the non-woven bonded fiber layers which are to form the insole are assembled in face-toface relation. The assembly may comprise at least one through layer consisting of a non-woven bonded fiber batt having an outline shape corresponding to that of the insole and one or more short layers at least one of which consists of a non-woven bonded fiber batt and each of which has an outline shape corresponding with the outline shape of a rear portion of the through layer. The assembly may be prepared by arranging a number of layers of non-woven bonded fiber batt in face-toface relation and cutting the insole assembly from the assembled layers. so that the outline shape of the short layers correspond with the rear portions of the through layer. It will be understood that the assembly may be made by cutting the through layer or layers, cutting the short layers separately and assembling the pre-eut layers to provide the insole assembly. If desired, a short layer portion may be made of a non-woven bonded fiber material having a thickness double or three times the thickness of the through layer rather than by use of a plurality of short layers.
The insole assembly is subjected to heat and pressure in either a high-frequency welding press or a press having electrically heated platens. The heat and pressure causes the layers to bond together through the action of the bonding agent in the fiber layers in the rear por tion of the insole assembly, and the rear portion is con solidated or densified so that it has a greater density and rigidity than the forepart portion. It is preferred that the density of the rear portion be at least 50 percent greater than in the forepart portion.
In a modified form ofthe invention, in addition to the one or more short layers of non-wover fiber batt, there is used one or two short layers (of the same outline shape as the bonded fiber batt short layer) of a stiff, heat softenable sheet material suitably a sheet of resin plastic such as polyvinyl chloride, vinyl chloride copolymers, polypropylene, polystyrene, polyamides or other thermoplastic or stiff sheet material. The sheet material other than non-woven bonded fiber batt is preferably selected to be resistant to nails being pulled therethrough. Also, it is desirable that the plastic sheet material is of a type of plastic material which is heated when subjected to a high-frequency electric field. Where thermoplastic resin sheet, e.g. polyvinyl chlo ride, short layers are used, the heat and pressure is preferably supplied by a high-frequency welding press because the resin such as polyvinyl chloride is heated rapidly by the high-frequency fields and would be difficult to heat at a sufficiently fast rate to achieve adequate bonding in a reasonable length of time if a press of the heated platen type were to be used.
ln carrying out the methods of the invention, it is preferred that the presser members 24, 26 by which the insoles are heated and pressed are shaped to impart to the insoles a shape corresponding approximately to the bottom of a foot.
One of the presser members may conveniently be a suitably shaped metal member and the other of the presser members may be a partially shaped resilient member having a flexible electrode embedded therein, the resilient presser member being such that as the two presser members are pressed toward each other so that the resilient member forces the insole assembly against the rigid metal member and molds it to the shape of the metal member. Where the insole assembly is to be shaped at 'the same time as the layers thereof are bonded together a shank member 28 of metal or other strong stiff material be bonded to the insole assembly in the heating and pressing step. Where the press is a high-frequency welding press. the shank member may be coated with polyvinyl chloride powder or the like as a bonding agent. Where a metal shank is to be incorporated in this way it may be unnecessary to provide a recess for the shank as, provided there is a sufficient thickness of compressible material, for example nonwoven bonded fiber batt present. the pressure exerted by the press will force the shank into the layers of the insole assembly and embed it therein.
In the method using a high-frequency welding press, it is necessary that parts. at least. of the insole assembly comprise material which is heated by application of a high-frequency electric field. Preferably where the insole assembly comprises a non-woven fiber batt the fibers of which are bonded by a binder. the binder will comprise a material which is heated by application of a high-frequency electric field.
Conveniently, insoles in accordance with the invention may have a suitable finish, for example a material comprising 50 parts by weight of an aqueous dispersion of carboxylated high nitrile content synthetic rubber having a solids content of about 42 percent by Weight and containing zinc oxide as a curing agent, 50 percent by weight of an aqueous dispersion of a vinyl chloride copolymer having a solids content of from about 55 to about 59 percent by weight, parts by weight of 10 percent sodium carboxymcthyl cellulose as a thickening agent and 5 parts by weight of a suitable color dispersion, for example a water based dispersion. instead of a stuck-in sock such as is used in many shoes at present.
The above and other of the various objects and several features of the present invention will become more clear from the following description of illustrative shoe insoles and methods of manufacture thereof aforementioned, hereinafter set out as Examples 1 to 5. It will be realized that these illustrative insoles and methods have been selected for description to illustrate theinvcntion by way of example and not of limitation of the invention.
EXAMPLE 1 A non-woven fiber batt was formed by garnetting a mixture of fibers in the ratio of about one third by weight of4 denier nylon staple fibers from 1 to 4 inches in average length with no staple exceeding 7 /2inches and about two thirds by weight of viscous rayon fibers of mixed denier up to 11 (most fibers having a denier of about 3) and having a mixed staple length between 1 /2 inches and 3 inches. The resulting light-weight, non-woven fiber web was cross-laid to form a thicker web and this thicker web was passed through a needle loom to consolidate the web and form an intermediate non-woven batt. The intermediate batt had a weight of about 480 grams per square meter, and was between 2.5 and 3.0 millimeters in thickness. This intermediate batt was then passed through an impregnating bath composed of an aqueous dispersion of vinyl chloride copolymer having a solids content of from to 59%. From the bath the impregnated material was passed be.- tween stripper rolls to remove excess impregnant and was dried by passing it through a drying oven and round heated drying drums (the drums being heated by steam at 40 psi). The non-woven bonded fiber batt so formed consisted of 1 part by weight fiber to 1 part by weight of binder. The impregnated and dried material was about 2.5 millimeters in thickness.
Next, a piece of non-woven bonded fiber batt. prepared as described above, measuring 12 inches by 8 inches. was laid on a cutting block of a cutting press. A second piece of the non-woven bonded fiber batt measuring 7 /4 inches by 8 inches was placed on top of the first piece with one of its 8 inch long edges in alignment with an 8 inch edge of the first piece and with the 7% inch long edges in alignment with the 12 inch edges of the first piece. 'Finally. a third piece of the nonwoven bonded fiber batt measuring 7 /4 inches by 8 inches was laid on top of the second piece, in alignment therewith. A cutting die, having the outline shape of an insole to be made. was placed on the materials, positioned so that the region of the die which was to cut out a forepart portion of an insole overlay only the first piece of the non-woven bonded fiber batt, the line marking the front edges of the second and third pieces of material lay in a ball region of an insole cut by the die and a rear region of the die (which was to cut out a heel seat and waist portion of the insole) overlay the first, second and third pieces of the material. The press was then operated to cause the die to cut the material to form an assembly comprising a through layer (cut from the first piece) having an outline shape corresponding to that of the insole and two short layers (each having an outline shape corresponding to that of a rear. heel seat and waist portion of the insole), the assembly being such that the outline shape of the short layers corresponded to the outline shape of the rear portion of the through layer.
The resulting assembly was placed between the platens of a high-frequency welding press, resting on a silicone rubber sheet three-sixteenths of an inch thick having a flexible electrode embedded in it, the sheet being secured to the lower platen and the assembly was covered by a foam silicone rubber sheet one-half .inch
thick. The silicone rubber was provided to prevent loss,
of heat from the assembly to the-metal platens of the press, silicone rubber being a thermally insulatingmaterial of low dielectric loss. The air line pressure. applied was 80 p.s.i. and the ram diameter was 4 inches. The input power applied was 1.9 amps and thc.frequency of the high-frequency field was 39 MH The assembly wasallowed to remain in the press under pressure for seconds and was subject to thclhighfrequency electric field for the first 9 seconds of this time. w
The assembly was next removed from the highfre'quency press and the three layers were found to be firmly bonded together. The forepart portion of the insole thus formed was about 2 millimeters in thickness and had a density of about 0.45 grams per cc. (the initial density of the forepart was about 0.40- grams per cc.). The heel seat and waist. portion ofthe insole was about 3.10 millimeters inthickncss and its density was about 0.78 grams per cc. The flcxural rigidity of the material of the heel seat and waist portion ofthe insole was found to be of the sameorder as the flexural rigidity of Grade 1 shankboard 3 millimeters thick and was found to be considerably greater than the flexural rigid ity of the forepart portion of the insole. Heel-attaching pins were driven through the heel seatand waist portion of the first illustrative insole and through Grade 1' shankboard 3 millimeters thick: slightly greater loads were needed to pull the heel pin out of the insole made according to the Example than were required topull the pin from the Grade 1 shankboard.
The insole of the Example was subjected to heating and was then subjected to an insole molding operation.
using a commercial twin sole molding machine. The
molded insole so formed was found to be suitable'for use as an insole in the manufacture of shoes. Insoles made as described above were suitable for use in the manufacture of mens shoes without any additional-tre atement: for use in the manufacture of womens shoes the heel seat and waist portion was reinforced in known manner by attaching a metal shank member, using eye lets.
EXAMPLE 2 The general procedure of Example 1 was repeated, except that three short layers of the non-woven bonded fiber batt were used in the heel seat and waist portion. The forepart portion of the insole (which consisted of only one layer, the through layer, of the non-woven bonded fiber batt) was slightly over 2 millimeters in thickness and slightly over 0.4 grams per cc. in density. The rear, heel seat and waist portion of the insole was 3.6 millimeters thick and had a density of 0.86 grams per cc. The forepart portion of this insole had a flcxural rigidity similar to that of the forepart portion of the insole of Example 1. However, the flcxural rigidity of the heel seat and waist portion of the insole made in this Example was noticeably greater than that of the insole of the first Example and was of the same order as Grade 1 shankboard 3.5 millimeters thick. The flcxural rigidity of the heel seat and waist portion of the insole was considerably better then that of a Grade 1 shankboard 3.5 millimeters thick after both had been subjected to soaking in Water for 6 hours. The load per millimeter thickness of the material required to remove heel attaching nails from the heel seat and waist portion of the insole was significantly greatcrthan that required to remove nails from Grade 1 shankboard 3.5 millimeters thick. especially after. both had been subjected to soaking in water for 6 hours.
EXAMPLE 4 lnsoles were made by methods corresponding toExamplcs 1 to 3 with the exception that the different impregantcomposition was used; namely. a plasticized polystyrene dispersion having a solids content of about 50'percent. The insoles were similar in properties to the corresponding one of the Examples 1 through 4, except thatthose rnade using highfrequenc'y heating correspondirig to Examples 1 and 2 werc' slightly less dense than the insoles according to Examples 1 and 2.
EXAMPLE 5 Further insoles were prepared using a non-woven bonded fiber batt such as in Example 1 but using an impregant composition comprising parts by weight of an aqueous dispersion of a vinyl chloride copolymer having a solids content of about 55 to about 59 percent by weight 20 parts by weight of an aqueous dispersion of earboxylated high nitrile-content synthetic rubber having a solids content of about 42 percent by weight and containing zinc oxide as a curing agent. The impregnated batt was dried as described in Example 1 and the impregnating conditions were so chosen that the ratio of fiber to binder in .the dried non-woven bonded fiber batt was 1:1 by weight.
In making one of these insoles, a piece 12 inches by 8 inches of the non-woven fiber batt was placed on the cutting block of a cutting press and a sheet of stiff polyvinyl chloride resin 7Ai inches by 8 inches was laid on top of the non-woven fiber batt with an 8 inch side in alignment with one of the 8 inch sides of the non-woven fiber piece and with the 7% sides in alignment with the 12 inch sides of the bonded fiber sheet. A further piece of nonwovcn bonded fiber batt 7%. inch by 8 inches was laid on top of the polyvinyl chloride sheet. An insole assembly was cut from this and the assembly treated in the high frequency press in the manner described in Example 1. In this case the polyvinyl chloride sheet was slightly over one half mm. thick and had a weight of 900 grams of square meter.
The resulting insole had a forepart portion, which was 2 mm. thick and had a density of about 0.4 grams per cc. and had a rear, heel seat and waist portion which was about 3 mm. thick and had a density of about 1 gram per cc. The heel seat and waist portion of this insole had a slightly greater flcxural rigidity than the heel seat and waist portion of the product of the first example. The load per millimeter thickness required to pull a heel-attaching nail through the heel seat and waist portion of this insole were considerably greater than that required for the product of Example A further insole was made in a manner similar to that just described except that two layers of the polyvinyl chloride sheet material were used. The forepart portion of this insole was 2 mm. thick and had a density of about 0.4 grams per cc. The rear. heel seat and waist portion of the insole was 3 mm. and had a density of slightly over 1 gram per cc. This insole had a slightly greater flexural rigidity than did the product of Example 2 and a considerably greater load was required to pull the heel-attaching nails through the heel seat and waist portion.
Both insoles of this example were suitable for use in the manufacture of shoes.
EXAMPLE 6 Insoles were made by procedures corresponding to Examples 1 and 2 with the exception that a small piece of polyvinyl chloride sheet material. one-half mm. thick and having a weight of 900 grams per square meter was placed in the heel seat region prior to assembly under heat and pressure in the high-frequency press so that the polyvinyl chloride sheet becomes an integral part of the insole in the heel seat region into which the heel attaching nails are to be driven.
Having thus described our invention what we claim as new and desire to secure as Letters Patent of the United States is:
l. The method of making an insole comprising forming an assembly in face to face relation of a through layer of non-woven bonded fiber comprising a thermoplastic bonding agent having a softening point below the melting point of the fiber of said layers and above the temperatures to which said insole will be subjected in use and having an outline shape corresponding to that of the insole and at least one short layer or a nonwoven bonded fiber having an outline shape corresponding with or lying within the outline shape of a rear portion of a through layer and subjecting the assembly to heat and pressure to bond said through and short lay- (ill ers together through the action of said bonding agent and to densify portions of said assembly comprising both through and short layers so that said portions have greater density and rigidity than portions not comprising both through and short layers.
2. The method of making an insole as defined in claim 1 in which said assembly is subjected to heat and pressure between heated platens.
3. The method of making an insole defined in claim 2 in which said platens are shaped to impart to the insole a contour corresponding approximately to a bottom of a foot.
4. The method of making an insole as defined in claim 1 in which said assembly is subjected to heat and pressure between platens at least one of the platens including a resilient surface having an electrode embedded therein and in which heat to bond said layers together and to densify portions of the assembly are generated by establishing a high frequency field from said electrode to heat the bonded fiber.
5. The method of making an insole as defined in claim 3 in which said platens are shaped to impart to the insole a contour corresponding approximately to a bottom of a foot.
6. The method of making an insole as defined in claim 1 in which a layer of stiff resin material is disposed in the region of the heel seat of the insole portion of the non-woven bonded fiber material in said assembly and is joined to a bonded fiber layer by said heat and pressure to provide a region in which heel attaching nails may be driven.
7. The method of making an insole as defined in claim 1 in which a shank stiffener member is disposed in the waist portion of said assembly and is embedded in and bonded to a nonwvoven bonded fiber layer by said heat and pressure.
8. The method of making an insole as defined in claim 7 in which said shank stiffener is coated with a thermoplastic resin prior to assembly with said layers of nonwoven bonded fiber.

Claims (8)

1. THE METHOD OF MAKING AN INSOLE COMPRISING FORMING AN ASSEMBLY IN FACE TO FACE RELATION OF A THROUGH LAYER OF NONWOVEN BONDED FIBER COMPRISING A THERMOPLASTC BONDING AGENT HAVING A SOFTENING POINT BELOW THE MELTING POINT OF THE FIBER OF SAID LAYERS AND ABOVE THE TEMPERATURES TO WHICH SAID INSOLE WILL BE SUBJECTED IN USE AND HAVING AN OUTLINE SHAPE CORRESPONDING TO THAT OF THE INSOLE AND AT LEAST ONE SHORT LAYER OR A NON-WOVEN BONDED FIBER HAVING AN OUTLINE SHAPE CORRESPONDING WITH OR LYING WITHIN THE OUTLINE SHAPE OF A REAR PORTION OF A THROUGH LAYER AND SUBJECTING THE ASSEMBLY TO HEAT AND PRESSURE TO BOND SAID THROUGH AND SHORT LAYERS TOGETHER THROUGH THE ACTION OF SAID BONDING AGENT AND TO DENSIFY PORTIONS OF SAID ASSEMBLY COMPRISING BOTH THROUGH AND SHORT LAYERS SO THAT SAID PORTIONS HAVE GREATER DENSITY AND RIGIDITY THAN PORTIONS NOT COMPRISING BOTH THROUGH AND SHORT LAYERS.
2. The method of making an insole as defined in claim 1 in which said assembly is subjected to heat and pressure between heated platens.
3. The method of making an insole as defined in claim 2 in which said platens are shaped to impart to the insole a contour corresponding approximately to a bottom of a foot.
4. The method of making an insole as defined in claim 1 in which said assembly is subjected to heat and pressure between platens at least one of the platens including a resilient surface having an electrode embedded therein and in which heat to bond said layers together and to densify portions of the assembly are generated by establishing a high frequency field from said electrode to heat the bonded fiber.
5. The method of making an insole as defined in claim 3 in which said platens are shaped to impart to the insole a contour corresponding approximately to a bottom of a foot.
6. The method of making an insole as defined in claim 1 in which a layer of stiff resin material is disposed in the region of the heel seat of the insole portion of the non-woven bonded fiber material in said assembly and is joined to a bonded fiber layer by said heat and pressure to provide a region in which heel attaching nails may be driven.
7. The method of making an insole as defined in claim 1 in which a shank stiffener member is disposed in the waist portion of said assembly and is embedded in and bonded to a non-woven bonded fiber layer by said heat and pressure.
8. The method of making an insole as defined in claim 7 in which said shank stiffener is coated with a thermoplastic resin prior to assembly with said layers of non-woven bonded fiber.
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Cited By (14)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
FR2505625A1 (en) * 1981-05-12 1982-11-19 Astra Ab Shoe inner sole reinforced at back by heel pieces - is made from cardboard impregnated with plastic material
EP0916278A1 (en) * 1997-11-11 1999-05-19 Forestali srl Assembly insole for assembling shoes, shoe assembled on the insole and preparation method
US5994245A (en) * 1995-11-24 1999-11-30 Texel Inc. Laminated product for use in footwear manufacturing
US20120040583A1 (en) * 2009-04-21 2012-02-16 Juergen Heumueller Fire-lighter
US20120189803A1 (en) * 2011-01-21 2012-07-26 Albany International Corp. Ultra-resilient pad and method of making thereof
US9730485B2 (en) * 2014-02-18 2017-08-15 Enrico Cuini Signed Srl Shoe
IT201800006773A1 (en) * 2018-06-28 2019-12-28 FOOTWEAR, AND PROCEDURE FOR ITS REALIZATION
WO2021016189A1 (en) * 2019-07-25 2021-01-28 Nike Innovate C.V. Article of footwear
KR102275449B1 (en) * 2020-02-27 2021-07-09 김상규 Customized insole
US11096444B2 (en) 2015-09-24 2021-08-24 Nike, Inc. Particulate foam with partial restriction
US11607009B2 (en) 2019-07-25 2023-03-21 Nike, Inc. Article of footwear
US11627778B2 (en) 2017-03-16 2023-04-18 Nike, Inc. Cushioning member for article of footwear
US11744321B2 (en) 2019-07-25 2023-09-05 Nike, Inc. Cushioning member for article of footwear and method of making
US12137768B2 (en) 2022-04-20 2024-11-12 Nike, Inc. Particulate foam stacked casings

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US2106279A (en) * 1936-07-31 1938-01-25 United Shoe Machinery Corp Manufacture of reinforced shoe bottom units
US2644250A (en) * 1951-11-23 1953-07-07 Joseph A Ciaio Laminated shoe sole

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Publication number Priority date Publication date Assignee Title
US2106279A (en) * 1936-07-31 1938-01-25 United Shoe Machinery Corp Manufacture of reinforced shoe bottom units
US2644250A (en) * 1951-11-23 1953-07-07 Joseph A Ciaio Laminated shoe sole

Cited By (25)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
FR2505625A1 (en) * 1981-05-12 1982-11-19 Astra Ab Shoe inner sole reinforced at back by heel pieces - is made from cardboard impregnated with plastic material
US5994245A (en) * 1995-11-24 1999-11-30 Texel Inc. Laminated product for use in footwear manufacturing
EP0916278A1 (en) * 1997-11-11 1999-05-19 Forestali srl Assembly insole for assembling shoes, shoe assembled on the insole and preparation method
US20120040583A1 (en) * 2009-04-21 2012-02-16 Juergen Heumueller Fire-lighter
US20120189803A1 (en) * 2011-01-21 2012-07-26 Albany International Corp. Ultra-resilient pad and method of making thereof
US9730485B2 (en) * 2014-02-18 2017-08-15 Enrico Cuini Signed Srl Shoe
US11490681B2 (en) 2015-09-24 2022-11-08 Nike, Inc. Particulate foam with other cushioning
US12082644B2 (en) 2015-09-24 2024-09-10 Nike, Inc. Particulate foam with partial restriction
US12053047B2 (en) 2015-09-24 2024-08-06 Nike, Inc. Particulate foam with other cushioning
US11096444B2 (en) 2015-09-24 2021-08-24 Nike, Inc. Particulate foam with partial restriction
US11229260B2 (en) 2015-09-24 2022-01-25 Nike, Inc. Particulate foam in coated carrier
US11304475B2 (en) 2015-09-24 2022-04-19 Nike, Inc. Particulate foam with partial restriction
US11317675B2 (en) 2015-09-24 2022-05-03 Nike, Inc. Particulate foam with flexible casing
US11324281B2 (en) 2015-09-24 2022-05-10 Nike, Inc. Particulate foam stacked casings
US11627778B2 (en) 2017-03-16 2023-04-18 Nike, Inc. Cushioning member for article of footwear
IT201800006773A1 (en) * 2018-06-28 2019-12-28 FOOTWEAR, AND PROCEDURE FOR ITS REALIZATION
EP3586665A1 (en) * 2018-06-28 2020-01-01 Calzaturificio Navayos S.r.l. Footwear and method for its production
TWI770563B (en) * 2019-07-25 2022-07-11 荷蘭商耐克創新有限合夥公司 Article of footwear
US11607009B2 (en) 2019-07-25 2023-03-21 Nike, Inc. Article of footwear
US11622600B2 (en) 2019-07-25 2023-04-11 Nike, Inc. Article of footwear
US11744321B2 (en) 2019-07-25 2023-09-05 Nike, Inc. Cushioning member for article of footwear and method of making
EP4278920A1 (en) * 2019-07-25 2023-11-22 NIKE Innovate C.V. Article of footwear
WO2021016189A1 (en) * 2019-07-25 2021-01-28 Nike Innovate C.V. Article of footwear
KR102275449B1 (en) * 2020-02-27 2021-07-09 김상규 Customized insole
US12137768B2 (en) 2022-04-20 2024-11-12 Nike, Inc. Particulate foam stacked casings

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