MLchartDataset catalogue

Patent · WO2022125861A1 · A1 · WO

System and method of manufacturing fiber based articles with steam molding

(11) Publication number
WO2022125861A1
(21) Application number
US-2021062753-W
(22) Filing date
2021-12-10
(30) Priority date
2020-12-10
(43) Publication date
2022-06-16
(51) IPC
B29C 33/02; B29C 43/32; B29C 43/34; B29C 51/26; B29C 61/04
(52) CPC
  • B29C Shaping or joining of plastics; shaping of material in a plastic state, not otherwise provided for; after-treatment of the shaped products, e.g. repairing: 37/0007, 2043/5046, 35/049, 43/14, 43/50, 51/004, 51/424, 51/44, 59/02
  • B25J Manipulators; chambers provided with manipulation devices: 15/0616, 15/0691
  • D04H Making textile fabrics, e.g. from fibres or filamentary material; fabrics made by such processes or apparatus, e.g. felts, non-woven fabrics; cotton-wool; wadding {; non-woven fabrics from staple fibres, filaments or yarns, bonded with at least one web-like material during their consolidation}: 1/541, 1/542, 1/558, 1/58
(73) Assignee
PIANA NONWOVENS LLC
(72) Inventors
DEFRANKS MICHAEL; MCCANN ERIC; HOLLIS ANDY
(54) Title
System and method of manufacturing fiber based articles with steam molding
(57) Abstract

In a method, a molding blank, including a non-woven material held in compression by a binder, is placed in a separable mold, and heated to a melting temperature of the binder. The molding blank expands, forming as an intermediate NWM object with a 3D form. The object is cooled through a temperature band with an upper boundary lower than the binder melting temperature, and a lower boundary above the solidifying temperature, and further cooled to a solidifying temperature of the binder. While in the temperature band, the mold is separated, the object is then transported to. a contoured forming surface of a base, via vacuum suction by an actuatable arm having an end effector. The actuatable arm compresses the intermediate NWM object against the contoured forming surface, and the optional end effector final forming feature and continues compressing until cooling to the solidifying temperature.

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Claims (1)

  1. CLAIMS We claim: 1. A method for molding an object, comprising: heat expanding a compressed nonwoven material (NWM) molding blank within a separable mold, forming an intermediate NWM molded three-dimensional (3D) object; cooling the intermediate NWM molded 3D object, through a temperature band having an upper boundary and a lower boundary, and further cooling to a solidifying temperature of the binder, the lower boundary being higher than a solidifying temperature of the binder and the upper boundary being lower than the binder melting temperature; while in the temperature band: separating the separable mold, making accessible an exposed surface of the intermediate NWM molded 3D object, gripping the intermediate NWM molded 3D object, by vacuum suction from an end effector of an actuatable arm, transporting the gripped intermediate NWM molded 3D object to a forming surface of a forming base, by transport movements of the actuatable arm, and compressing at least a portion of the intermediate NWM molded 3D object against the forming surface; and finishing the intermediate NWM molded 3D object, by continuing the compressing at least the portion of the intermediate NWM molded 3D object against the forming surface until cooling to the solidifying temperature. 2. The method of claim 1, further comprising: further finishing the intermediate NWM 3D molded object, by compressing at least another portion, or the at least the portion, or both, of the intermediate NWM 3D molded object against another finishing surface. 3. The method of claim 1, wherein transporting the intermediate NWM molded 3D further comprises: a performing a movement sequence by the actuatable arm, effectuating a contact with the exposed surface, by a contact surface of the end effector; establishing the vacuum gripping, by the contact surface end effectors, by a vacuum suction into openings on the contact surface, from a vacuum source that is fluidly connected, via fluid path conduits, to the openings on the contact surface; and performing another movement sequence by the actuatable arm, configured to lift the gripped intermediate NWM molded 3D object from the separated mold, and transport the removed and gripped intermediate NWM molded 3D object to the forming surface of the forming base. 4. The method of claim 1, wherein: the compressed NWM molding blank comprises a non-woven material held in compression by a binder; and the heat expanding includes heating the compressed NWM molding blank to a melting temperature of the binder, 5. The method of claim 4, wherein the heat expanding includes heating the mold blank within an interior of the separable mold, the heating including a flowing of steam onto the mold blank, via steam heat conduits carried by the upper component, or the lower component, or both; and the method of further comprises: cooling the first form intermediate NWM molded 3D object from above the melting temperature of the binder includes an intra-mold cooling, within the separable mold, down to at least the upper boundary of the temperature band, the intra mold cooling including a vacuuming of steam or of condensation of steam, or of both, from within the interior of the separable mold. 6. The method of claim 1, wherein: the exposed surface of the intermediate NWM molded 3D has an object surface contour; the contact surface of the end effector is configured as a contoured contact surface conforming to the object surface contour, having an end effector final forming feature; and finishing the intermediate NWM molded 3D object includes compressing another portion of the intermediate NWM molded 3D object against the end effector final forming feature, continuing the compressing against the end effector final forming feature until cooling to the solidification temperature. 7. The method of claim 6, wherein: the contact surface of the end effector includes an end effector final forming feature; and finishing the intermediate NWM molded 3D object includes compressing another portion of the intermediate NWM molded 3D object against the end effector final forming feature, and continuing the compressing against the end effector final forming feature until colling to the solidification temperature. 8. The method of claim 1, wherein finishing the intermediate NWM molded 3D object includes: arranging an embeddable attachment device in the end effector prior to the contact surface contacting the upper surface of the intermediate NWM molded 3D object; configuring the contacting of the contact surface against the exposed surface of the intermediate NWM molded 3D object to embed or to partially embed the embeddable attachment device in the intermediate NWM molded 3D object. 9. The method of claim 1, wherein finishing the intermediate NWM molded 3D object includes: arranging an embeddable attachment device on the contoured forming surface of the forming base prior to placing the NWM molded 3D object on the contoured forming surface; and configuring the contacting of the contact surface against the exposed surface of the intermediate NWM molded 3D object to embed or to partially embed the embeddable attachment device in the intermediate NWM molded 3D object. 10. The method of claim 1, wherein heating the molding blank within the interior of the separable mold comprises: routing a received steam into the interior of the separable mold, including a routing through steam conduits carried by the upper component of the separable mold, or steam conduits carried by the lower component, or both. 11. The method of claim 1, wherein: the lower component comprising surface that has at least some non- vertical sidewalls; and the finishing the intermediate NWM molded 3D object includes a compressing of a wall of the intermediate NWM molded 3D object, said wall having been formed by the surface that has at least some non-vertical sidewalls. 12. The method of claim 11, wherein the compressing further forms said wall to a vertical wall. 13. The method of claim 1, wherein: the lower component provides, within the interior of the separable mold when assembled, a lower component interior molding surface that includes a relief-angled molding sidewall, having surface hat extends in a plane that deviates by, a relief angle, from a true 90 degrees relative to a molding horizontal reference plane; heat expanding the compressed NWM molding blank within the interior of the separable mold expands a portion of the compressed NWM against the relief-angled molding sidewall, forming the intermediate NWM molded 3D object with a relief-angled sidewall; and finishing the intermediate NWM molded 3D object includes providing the forming surface with a vertical 90 degree forming sidewall, and the compressing being configured to press the relief-angled sidewall against the vertical 90 degree forming sidewall, in manner re-forming the relief-angled sidewall to a vertical 90 degree NWM sidewall, and continuing the compressing the vertical 90 degree NWM sidewall against the vertical 90 degree forming sidewall until cooling to the solidifying temperature. 14. A method of molding an object, comprising: providing a mold, wherein the mold has a top portion and a bottom portion, wherein the mold is configured to deliver heat from steam to the top portion and the bottom portion of the mold, and wherein the mold is configured to exhaust moisture from inside the mold by vacuum suction; placing the expandable object in the mold to form a configuration using the heat from steam when the top portion is placed on the bottom portion of the mold with the expandable object positioned between the top portion and the bottom portion of the mold; withdrawing the heat and moisture from the mold by applying vacuum suction to the mold during and/or after molding; opening the mold so that the top portion separates from the bottom portion of the mold to expose at least some portion of the expandable object while the expandable object remains positioned on the bottom portion of the mold; placing an expandable object contacting surface of an end effector apparatus onto the exposed portion of the expandable object while applying vacuum suction sufficient to cool and hold the expandable object against the expandable object contacting surface of the end effector apparatus, wherein the expandable object contacting surface of the end effector apparatus sets the configuration to a first configuration by cooling and holding; and retrieving the first configuration expandable object from the bottom portion of the mold. 15. The method of claim 14, wherein: the lower component comprising surface that has at least some non- vertical sidewalls; and the finishing the intermediate NWM molded 3D object includes a compressing of a wall of the intermediate NWM molded 3D object, said wall having been formed by the surface that has at least some non-vertical sidewalls. 16. The method of claim 15, wherein the compressing further forms said wall to a vertical wall 17. The method of claim 14, further comprising: further forming the first configuration expandable object to a second configuration expandable object. 18. The method of claim 14, wherein the expandable object is a fiber-based nonwoven material. 19. The method of claim 14, further comprising imparting one or more contours into one or more of a top surface and a side surface of the expandable object using one or more contoured expandable object contacting surfaces of the end effector which contact the first configuration expandable object during the retrieving step, wherein the one or more contours project into the one or more of the top surface and the side surface of the expandable object during the retrieving step. 20. The method of claim 14, wherein the retrieving step is performed using a robotic arm of the end effector apparatus which retrieves the first configuration expandable object held there against, and which moves the first configuration expandable object to a location away from the bottom portion of the mold. 21. The method of claim 14, further comprising a step of adding one or more connectors to a surface of the expandable object by placing the one or more connectors on the expandable object contacting surface of the end effector apparatus. 22. The method of claim 21, wherein the one or more connectors are selected from temperature activated fasteners or adhesives. 23. An end effector apparatus for retrieving an expandable object from a mold, wherein the mold has a top inner surface and a bottom inner surface, and each surface faces the expandable object, comprising an expandable object contacting surface resembling at least a portion of the top inner surface of the mold; at least one robotic arm connected to the expandable object contacting surface, wherein the robotic arm is configured to move the expandable object contacting surface to contact a top portion of the expandable object; and at least one vacuum suction system connected to the expandable object contacting surface, wherein the at least one vacuum suction system is configured to withdraw heat and moisture while providing sufficient vacuum to hold the expandable object against the expandable object contacting surface. 21. The end effector apparatus of claim 19, wherein the expandable object contacting surface is contoured so as to impart one or more contours to the expandable object. 22. The end effector apparatus of claim 19, wherein the expandable object contacting surface is substantially identical to the top inner surface of the mold. 23. The end effector apparatus of claim 19, wherein the expandable object contacting surface includes a geometric contour different from the top inner surface of the mold.

Description

System and Method of Manufacturing Fiber Based Articles With Steam Molding

CROSS-REFERENCE TO RELATED APPLICATIONS

This application claims priority to U.S. Provisional Application 63/123,567 filed December 10, 2020, which is hereby incorporated by reference in its entirety.

Technical Field

This invention generally relates to molding three dimensional objects or portions thereof, and more particularly to molding objects or portions thereof using blanks of compressed heat expanding nonwoven materials.

BACKGROUND

U.S. Patent Publication PCT/US2020/022893 (“the ‘893 publication”), the entire disclosure of which is included in U.S. Provisional Application 63/123,567, describes techniques for molding heatexpanding blanks (e.g., boards) comprising certain nonwoven materials held in compression by certain solidified binders, into objects of various three-dimensional (3D) shape. As described in the ‘893 publication, the compression state in which the solidified binders hold the nonwoven material stores substantial kinetic energy. As also described, the melting temperature of the binders is lower than the melting temperature of the nonwoven materials. Therefore, heating the blanks to a temperature between the two melting points releases the nonwoven material to expand toward its precompression state.

Citations (3)

  • US2009321002A1
  • WO2020012721A1
  • WO2020190831A1
Record as JSON
{
  "publication_number": "WO2022125861A1",
  "country": "WO",
  "kind": "A1",
  "title": "System and method of manufacturing fiber based articles with steam molding",
  "abstract": "In a method, a molding blank, including a non-woven material held in compression by a binder, is placed in a separable mold, and heated to a melting temperature of the binder. The molding blank expands, forming as an intermediate NWM object with a 3D form. The object is cooled through a temperature band with an upper boundary lower than the binder melting temperature, and a lower boundary above the solidifying temperature, and further cooled to a solidifying temperature of the binder. While in the temperature band, the mold is separated, the object is then transported to. a contoured forming surface of a base, via vacuum suction by an actuatable arm having an end effector. The actuatable arm compresses the intermediate NWM object against the contoured forming surface, and the optional end effector final forming feature and continues compressing until cooling to the solidifying temperature.",
  "claims": [
    "1. CLAIMS We claim: 1. A method for molding an object, comprising: heat expanding a compressed nonwoven material (NWM) molding blank within a separable mold, forming an intermediate NWM molded three-dimensional (3D) object; cooling the intermediate NWM molded 3D object, through a temperature band having an upper boundary and a lower boundary, and further cooling to a solidifying temperature of the binder, the lower boundary being higher than a solidifying temperature of the binder and the upper boundary being lower than the binder melting temperature; while in the temperature band: separating the separable mold, making accessible an exposed surface of the intermediate NWM molded 3D object, gripping the intermediate NWM molded 3D object, by vacuum suction from an end effector of an actuatable arm, transporting the gripped intermediate NWM molded 3D object to a forming surface of a forming base, by transport movements of the actuatable arm, and compressing at least a portion of the intermediate NWM molded 3D object against the forming surface; and finishing the intermediate NWM molded 3D object, by continuing the compressing at least the portion of the intermediate NWM molded 3D object against the forming surface until cooling to the solidifying temperature. 2. The method of claim 1, further comprising: further finishing the intermediate NWM 3D molded object, by compressing at least another portion, or the at least the portion, or both, of the intermediate NWM 3D molded object against another finishing surface. 3. The method of claim 1, wherein transporting the intermediate NWM molded 3D further comprises: a performing a movement sequence by the actuatable arm, effectuating a contact with the exposed surface, by a contact surface of the end effector; establishing the vacuum gripping, by the contact surface end effectors, by a vacuum suction into openings on the contact surface, from a vacuum source that is fluidly connected, via fluid path conduits, to the openings on the contact surface; and performing another movement sequence by the actuatable arm, configured to lift the gripped intermediate NWM molded 3D object from the separated mold, and transport the removed and gripped intermediate NWM molded 3D object to the forming surface of the forming base. 4. The method of claim 1, wherein: the compressed NWM molding blank comprises a non-woven material held in compression by a binder; and the heat expanding includes heating the compressed NWM molding blank to a melting temperature of the binder, 5. The method of claim 4, wherein the heat expanding includes heating the mold blank within an interior of the separable mold, the heating including a flowing of steam onto the mold blank, via steam heat conduits carried by the upper component, or the lower component, or both; and the method of further comprises: cooling the first form intermediate NWM molded 3D object from above the melting temperature of the binder includes an intra-mold cooling, within the separable mold, down to at least the upper boundary of the temperature band, the intra mold cooling including a vacuuming of steam or of condensation of steam, or of both, from within the interior of the separable mold. 6. The method of claim 1, wherein: the exposed surface of the intermediate NWM molded 3D has an object surface contour; the contact surface of the end effector is configured as a contoured contact surface conforming to the object surface contour, having an end effector final forming feature; and finishing the intermediate NWM molded 3D object includes compressing another portion of the intermediate NWM molded 3D object against the end effector final forming feature, continuing the compressing against the end effector final forming feature until cooling to the solidification temperature. 7. The method of claim 6, wherein: the contact surface of the end effector includes an end effector final forming feature; and finishing the intermediate NWM molded 3D object includes compressing another portion of the intermediate NWM molded 3D object against the end effector final forming feature, and continuing the compressing against the end effector final forming feature until colling to the solidification temperature. 8. The method of claim 1, wherein finishing the intermediate NWM molded 3D object includes: arranging an embeddable attachment device in the end effector prior to the contact surface contacting the upper surface of the intermediate NWM molded 3D object; configuring the contacting of the contact surface against the exposed surface of the intermediate NWM molded 3D object to embed or to partially embed the embeddable attachment device in the intermediate NWM molded 3D object. 9. The method of claim 1, wherein finishing the intermediate NWM molded 3D object includes: arranging an embeddable attachment device on the contoured forming surface of the forming base prior to placing the NWM molded 3D object on the contoured forming surface; and configuring the contacting of the contact surface against the exposed surface of the intermediate NWM molded 3D object to embed or to partially embed the embeddable attachment device in the intermediate NWM molded 3D object. 10. The method of claim 1, wherein heating the molding blank within the interior of the separable mold comprises: routing a received steam into the interior of the separable mold, including a routing through steam conduits carried by the upper component of the separable mold, or steam conduits carried by the lower component, or both. 11. The method of claim 1, wherein: the lower component comprising surface that has at least some non- vertical sidewalls; and the finishing the intermediate NWM molded 3D object includes a compressing of a wall of the intermediate NWM molded 3D object, said wall having been formed by the surface that has at least some non-vertical sidewalls. 12. The method of claim 11, wherein the compressing further forms said wall to a vertical wall. 13. The method of claim 1, wherein: the lower component provides, within the interior of the separable mold when assembled, a lower component interior molding surface that includes a relief-angled molding sidewall, having surface hat extends in a plane that deviates by, a relief angle, from a true 90 degrees relative to a molding horizontal reference plane; heat expanding the compressed NWM molding blank within the interior of the separable mold expands a portion of the compressed NWM against the relief-angled molding sidewall, forming the intermediate NWM molded 3D object with a relief-angled sidewall; and finishing the intermediate NWM molded 3D object includes providing the forming surface with a vertical 90 degree forming sidewall, and the compressing being configured to press the relief-angled sidewall against the vertical 90 degree forming sidewall, in manner re-forming the relief-angled sidewall to a vertical 90 degree NWM sidewall, and continuing the compressing the vertical 90 degree NWM sidewall against the vertical 90 degree forming sidewall until cooling to the solidifying temperature. 14. A method of molding an object, comprising: providing a mold, wherein the mold has a top portion and a bottom portion, wherein the mold is configured to deliver heat from steam to the top portion and the bottom portion of the mold, and wherein the mold is configured to exhaust moisture from inside the mold by vacuum suction; placing the expandable object in the mold to form a configuration using the heat from steam when the top portion is placed on the bottom portion of the mold with the expandable object positioned between the top portion and the bottom portion of the mold; withdrawing the heat and moisture from the mold by applying vacuum suction to the mold during and/or after molding; opening the mold so that the top portion separates from the bottom portion of the mold to expose at least some portion of the expandable object while the expandable object remains positioned on the bottom portion of the mold; placing an expandable object contacting surface of an end effector apparatus onto the exposed portion of the expandable object while applying vacuum suction sufficient to cool and hold the expandable object against the expandable object contacting surface of the end effector apparatus, wherein the expandable object contacting surface of the end effector apparatus sets the configuration to a first configuration by cooling and holding; and retrieving the first configuration expandable object from the bottom portion of the mold. 15. The method of claim 14, wherein: the lower component comprising surface that has at least some non- vertical sidewalls; and the finishing the intermediate NWM molded 3D object includes a compressing of a wall of the intermediate NWM molded 3D object, said wall having been formed by the surface that has at least some non-vertical sidewalls. 16. The method of claim 15, wherein the compressing further forms said wall to a vertical wall 17. The method of claim 14, further comprising: further forming the first configuration expandable object to a second configuration expandable object. 18. The method of claim 14, wherein the expandable object is a fiber-based nonwoven material. 19. The method of claim 14, further comprising imparting one or more contours into one or more of a top surface and a side surface of the expandable object using one or more contoured expandable object contacting surfaces of the end effector which contact the first configuration expandable object during the retrieving step, wherein the one or more contours project into the one or more of the top surface and the side surface of the expandable object during the retrieving step. 20. The method of claim 14, wherein the retrieving step is performed using a robotic arm of the end effector apparatus which retrieves the first configuration expandable object held there against, and which moves the first configuration expandable object to a location away from the bottom portion of the mold. 21. The method of claim 14, further comprising a step of adding one or more connectors to a surface of the expandable object by placing the one or more connectors on the expandable object contacting surface of the end effector apparatus. 22. The method of claim 21, wherein the one or more connectors are selected from temperature activated fasteners or adhesives. 23. An end effector apparatus for retrieving an expandable object from a mold, wherein the mold has a top inner surface and a bottom inner surface, and each surface faces the expandable object, comprising an expandable object contacting surface resembling at least a portion of the top inner surface of the mold; at least one robotic arm connected to the expandable object contacting surface, wherein the robotic arm is configured to move the expandable object contacting surface to contact a top portion of the expandable object; and at least one vacuum suction system connected to the expandable object contacting surface, wherein the at least one vacuum suction system is configured to withdraw heat and moisture while providing sufficient vacuum to hold the expandable object against the expandable object contacting surface. 21. The end effector apparatus of claim 19, wherein the expandable object contacting surface is contoured so as to impart one or more contours to the expandable object. 22. The end effector apparatus of claim 19, wherein the expandable object contacting surface is substantially identical to the top inner surface of the mold. 23. The end effector apparatus of claim 19, wherein the expandable object contacting surface includes a geometric contour different from the top inner surface of the mold."
  ],
  "description_excerpt": "System and Method of Manufacturing Fiber Based Articles With Steam Molding\n\nCROSS-REFERENCE TO RELATED APPLICATIONS\n\nThis application claims priority to U.S. Provisional Application 63/123,567 filed December 10, 2020, which is hereby incorporated by reference in its entirety.\n\nTechnical Field\n\nThis invention generally relates to molding three dimensional objects or portions thereof, and more particularly to molding objects or portions thereof using blanks of compressed heat expanding nonwoven materials.\n\nBACKGROUND\n\nU.S. Patent Publication PCT/US2020/022893 (“the ‘893 publication”), the entire disclosure of which is included in U.S. Provisional Application 63/123,567, describes techniques for molding heatexpanding blanks (e.g., boards) comprising certain nonwoven materials held in compression by certain solidified binders, into objects of various three-dimensional (3D) shape. As described in the ‘893 publication, the compression state in which the solidified binders hold the nonwoven material stores substantial kinetic energy. As also described, the melting temperature of the binders is lower than the melting temperature of the nonwoven materials. Therefore, heating the blanks to a temperature between the two melting points releases the nonwoven material to expand toward its precompression state.",
  "cpc": [
    "B29C 37/0007",
    "B25J 15/0616",
    "B25J 15/0691",
    "B29C 2043/5046",
    "B29C 35/049",
    "B29C 43/14",
    "B29C 43/50",
    "B29C 51/004",
    "B29C 51/424",
    "B29C 51/44",
    "B29C 59/02",
    "D04H 1/541",
    "D04H 1/542",
    "D04H 1/558",
    "D04H 1/58"
  ],
  "ipc": [
    "B29C 33/02",
    "B29C 43/32",
    "B29C 43/34",
    "B29C 51/26",
    "B29C 61/04"
  ],
  "assignees": [
    "PIANA NONWOVENS LLC"
  ],
  "inventors": [
    "DEFRANKS MICHAEL",
    "MCCANN ERIC",
    "HOLLIS ANDY"
  ],
  "filing_date": "2021-12-10",
  "publication_date": "2022-06-16",
  "priority_date": "2020-12-10",
  "application_number": "US-2021062753-W",
  "family_id": "81943207",
  "citations": [
    "US2009321002A1",
    "WO2020012721A1",
    "WO2020190831A1"
  ]
}

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