Retention Clip for Sheet Assembly and Assembly Method
The retaining clip with an anchor and retaining mechanism addresses the inefficiencies of attaching trim covers to three-dimensional mesh seat cushions by gripping the mesh material, providing a secure and flexible attachment solution.
Patent Information
- Application Number
- JP2024574655
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2023-01-19
- Filing Date
- 2023-06-15
- Publication Date
- 2025-07-10
AI Technical Summary
Existing methods for attaching trim covers to seat cushions, particularly those with three-dimensional mesh structures, are inefficient and require pre-formed recesses, limiting flexibility and ease of assembly.
A retaining clip with an anchor and retaining mechanism that grips the mesh cushion material and attaches to the trim cover, allowing secure attachment without pre-formed recesses, using barbs and a push-pin type base for enhanced grip.
Facilitates easy and secure attachment of trim covers to seat cushions with three-dimensional mesh structures, enhancing assembly efficiency and versatility.
Smart Images

Figure 2025521509000001_ABST
Abstract
Description
Technical Field
[0001] [Cross - Reference to Related Applications] This application claims the benefit of U.S. Provisional Patent Application No. 63 / 366,675, filed on June 20, 2022, and Danish Patent Application No. PA202370024, filed on January 19, 2023. The entire disclosures of both of those applications are hereby incorporated by reference in their entireties as part of this specification.
[0002] This disclosure relates to a retaining clip, a sheet assembly having the retaining clip, and a method of assembly.
Brief Description of the Drawings
[0003]
Figure 1
Figure 2
Figure 3A
Figure 3B
Figure 4
Figure 5
Mode for Carrying Out the Invention
[0004] Next, refer to the embodiments in detail. Examples thereof are shown in the accompanying drawings. In the following detailed description, numerous specific details are set forth in order to provide a thorough understanding of the various described embodiments. However, it will be apparent to those skilled in the art that the various described embodiments may be practiced without these specific details. In other instances, well-known methods, procedures, components, features, and elements have not been described in detail so as not to obscure aspects of the embodiments unnecessarily.
[0005] It should be understood that the disclosed embodiments are merely exemplary and that various alternative forms are possible. The drawings are not necessarily drawn to an exact scale, and some features may be exaggerated or minimized in order to show details of particular components. Accordingly, the specific structural and functional details disclosed herein should not be construed as limiting, but rather as a representative basis for those skilled in the art to variously adopt the embodiments according to the present disclosure.
[0006] "One or more" and / or "at least one" includes that a function is performed by one element, that a function is performed by two or more elements in a distributed manner, for example, that multiple functions are performed by one element, that multiple functions are performed by multiple elements, or any combination of the above.
[0007] Also, terms such as first, second, etc. are used herein in some instances to describe various elements, but it will be understood that these elements should not be limited by these terms. These terms are only used to distinguish one element from another. For example, without departing from the scope of the various described embodiments, the first contact may be referred to as the second contact, and similarly, the second contact may be referred to as the first contact. The first contact and the second contact are both contacts, but not the same contact.
[0008] In the description of the embodiments of the various descriptions in this specification, the terms used are for the purpose of describing specific embodiments only and are not intended to be limiting. When used in the description of the embodiments of the various descriptions and the appended claims, the singular forms ("a", "an", and "the") are intended to include the plural forms as well, unless the context clearly dictates otherwise. Also, the term "and / or" as used in this specification, when used, refers to any and all possible combinations of one or more of the associated listed items and is understood to be used to encompass this. Further, the terms "comprising" or "including" as used in this specification, when used, specify the presence of the stated features, steps, operations, elements, and / or components, but do not preclude the presence or addition of one or more other features, steps, operations, elements, components, and / or groups thereof.
[0009] As used in this specification, the term "when" is optionally interpreted, depending on the context, to mean "when", or "as soon as", or "in response to a determination", or "in response to a detection". Similarly, the phrase "when determined" or "when [stated condition or event] is detected" is optionally interpreted, depending on the context, to mean "as soon as determined", or "in response to a determination", or "as soon as [stated condition or event] is detected", or "in response to a detection of [stated condition or event]".
[0010] Referring to FIG. 1, an example of a seat assembly 10 is shown. The seat assembly 10 can be configured to be used in a vehicle such as an automobile like a passenger car or a truck. The seat assembly 10 can include a seat back 12 and a seat bottom 14. The seat back 12 can be configured to support the back of a seat occupant. The seat bottom 14 can be configured to support a seat occupant. In a vehicle application, the seat bottom 14 can be attached to a support surface such as a vehicle floor.
[0011] The seat back 12 can pivot about an axis 16 relative to the seat bottom 14. For example, one or more reclining chair mechanisms, pivot pins, etc. can connect the seat back 12 to the seat bottom 14 pivotally. Alternatively, the seat back 12 or a part thereof may not be pivotally connected to the seat bottom 14. For example, the seat back 12 may be pivotally attached to the vehicle body structure so as to be a part of some bench seat configurations.
[0012] The seat back 12 can include a headrest 20 configured to support the head of a seat occupant. The headrest 20 can be disposed at the top of the seat back 12. The headrest 20 may be integral with the seat back 12 or may be a separate component that can be adjustably positioned relative to the top of the seat back 12.
[0013] The seat back 12 and the seat bottom 14 can each have at least one seat cushion 30. The seat back 12 and the seat bottom 14 can each also have a side bolster 32 and a central seating portion 34 of the cushion 30. As will be described in more detail later, one or more retainers can be used to fix the seat component 36 to the cushion 30.
[0014] The seat component 36 can be disposed to cover or on top of the cushion 30. The seat component 36 can have any suitable configuration and can be of any suitable type. For example, the seat component 36 can be a trim cover, trim cover material, or trim cover assembly that provides at least a portion of the visible outer surface of the seat assembly 10. The trim cover 36 can include a plurality of trim panels that can be assembled by any suitable method such as sewing. The trim panels can be made of any suitable single or plural materials such as fabric, leather, vinyl, or combinations thereof. The seat component 36 can also be or alternatively be a component that is hidden by or disposed under the trim cover and disposed on top of the cushion 30, such as a temperature adjustment device like a heating pad or heating mat, an inflatable device for improving the comfort of the seat occupant like a lumbar support, or a ventilation material that promotes air flow for a ventilated seat, or provides a massage function.
[0015] The cushion 30 can be at least partially hidden by the seat component 36 and can be supported directly or indirectly by the support structure of the seat assembly 10 such as a frame, panel, support wire, etc. The cushion 30 includes a three-dimensional mesh structure formed by filaments 70 that are randomly looped and joined, and only a few examples of the filaments 70 are depicted in FIG. 4 by lines randomly drawn for simplicity. For example, the filaments 70 can be extruded filaments made from a polymer material such as a thermoplastic resin that is polyamide-based, polyester-based, polyimide-based, polyolefin-based, polypropylene-based, polystyrene-based, or a combination thereof. As one example, the filaments 70 can be made of linear low-density polyethylene (LLDPE). The extruded filaments 70 can be randomly looped, bent, or intertwined and joined together where one filament 70 contacts another filament 70, thereby obtaining a lightweight and breathable cushion having openings or voids between the filaments 70. A method of manufacturing an extruded filament mesh cushion is disclosed in U.S. Patent Application No. 17 / 555,875, filed on December 20, 2021, entitled "System and Method of Making a Mesh Cushion", and a copy thereof is attached as Appendix A. Thus, the cushion 30 does not have to be made of a foam such as urethane foam and can partially or completely replace a conventional urethane foam cushion. Alternatively, the cushion can be a conventional foam cushion such as a urethane foam cushion.
[0016] FIG. 2 is a perspective view of a non-limiting exemplary embodiment of the retaining clip 40 according to the present disclosure. FIGS. 3A and 3B are, respectively, a front view and a side view of a non-limiting exemplary embodiment of the retaining clip 40 according to the present disclosure.
[0017] As can be seen in FIGS. 2, 3A and 3B and with continued reference to FIG. 1, the retaining clip 40 includes an anchor 42 having a body 44 with a first end 46 and a second end 48 opposite the first end, the second end 48 terminating in a tip. The anchor 42 has a plurality of barbs 50, each barb 50 extending from the body 44 in a direction away from the tip. The retaining clip 40 also includes a retaining mechanism 52 extending in a direction away from the first end 46 of the anchor 42. When the anchor 42 is inserted into the cushion 30, the material of the cushion 30 is gripped between the body 44 and each of the plurality of barbs 50 (see FIG. 4), thereby attaching the retaining clip 40 to the cushion 30. In this regard, the retaining clip 40 can be inserted or installed from the "A" side of the cushion 30. Further, the tip of the second end 48 of each anchor 42 can serve to pierce or function to pierce the material of the cushion 30, which may include the surface of the cushion.
[0018] The retaining clip 40 further includes a base 54. The anchor 42 and the retaining mechanism 52 are disposed on opposite sides of the base 54 having a width greater than the width of the body 44. The anchor 42, the retaining mechanism 52 and the base 54 are formed as an integral member, but alternatively may be individual components attached to each other. In this regard, the retaining clip 40 including the anchor 42, the retaining mechanism 52 and the base 54 can be formed by injection molding.
[0019] As shown in FIGS. 2 and 3A, the retaining mechanism 52 includes a pair of spaced arms 56 extending from a base 54, and each arm 56 terminates in a retaining member 58. The arms 56 and the retaining member 58 are configured to cooperate with a mating attachment mechanism (not shown) of the trim cover 36, such as a beaded Duon (trademark) attached to the trim cover 36. More specifically, the retaining member 58 has an angled guide surface 60 that serves or functions to guide the mating attachment mechanism of the trim cover 36 into the space 62 between the arms 56. In this regard, the arms 56 elastically deform to receive the mating attachment mechanism of the trim cover 36. After the mating attachment mechanism of the trim cover 36 is inserted into the space 62 in this way, the arms 56 return to the positions shown in FIGS. 2 and 3A, and the retaining member 58 serves or functions to hold the mating mechanism of the trim cover 36 within the space 62, thereby attaching the trim cover 36 to the retaining clip 40. In this regard, after the anchor 42 of the retaining clip 40 is inserted into the cushion 30, the retaining mechanism 52 of the retaining clip 40 can be attached to the trim cover 36.
[0020] Similarly, as seen in FIGS. 2, 3A and 3B, the body 44 of the anchor 42 includes a plurality of arms 64, and each of the arms 64 includes a plurality of returns 50. As shown, the body 44 of the anchor 42 has six arms 64, but alternatively, any number of arms 64 may be provided. It is noted that the anchor 42, the retaining mechanism 52 and / or the base 54 are merely exemplary, and generally, may take any shape and / or size, or any shape and / or size may be given to them. For example, the retaining mechanism 52 may be of any known, suitable or preferred type, and the returns 50 may generally take any shape and / or size, or any shape and / or size may be given to the returns 50. It is also noted that a pointed tip may be provided at the second end 48 of the anchor 42. In this regard, an anchor 42 having a second end 48 terminating in a pointed tip having a sharp or acute angle, and having a relatively small cross-sectional area (for a cross-section across the body 44 of the anchor 42 in a direction parallel to the base 54), requires less force to be applied to insert the anchor 42 into the material of the cushion 30 than an anchor 42 having a second end 48 terminating in a flat tip, or a pointed tip having a larger angle, and having a larger cross-sectional area.
[0021] It is further noted that the number of returns 50 of the anchor 42 shown in FIGS. 2, 3A and 3B is also merely exemplary, and any number of returns 50 may be provided. Further, the number of returns 50 on each side of the anchor 42 may be different, and the returns 50 on each arm 64 need not be positioned directly opposite each other (i.e., mirror images), the returns 50 along the arm 64 need not be spaced equidistant from each other, and each return 50 may take a different shape, or a different shape may be given to each return 50. In this regard, the larger the size and / or the greater the number of returns 50 of the anchor 42, the more effective the anchor 42 is in gripping the material of the cushion 30, and the higher the resistance of the anchor 42 to coming out of or retracting from the cushion 30.
[0022] However, it should be noted that the optimal size and shape of the anchor 42 including the return 50 may be determined by the properties of the material of the cushion 30. In this regard, as described above, in the case of the cushion 30 including a three-dimensional mesh structure formed by filaments 70 randomly looped and joined of one or more extruded polymer materials, depending on the manufacturing process, cushions 30 with larger or smaller cell structures may be obtained. As a result, the size and shape of the anchor 42 shown in FIGS. 2, 3A and 3B, or an anchor 42 having a size or shape different from that shown, may be most suitable for the material of a particular cushion 30.
[0023] FIG. 4 is another side view of a non-limiting exemplary embodiment of the retaining clip 40 according to the present disclosure. As can be seen in FIG. 4, the retaining clip 40 is partially disposed within the material of the cushion 30. More specifically, the anchor 42 of the retaining clip 40 is shown in phantom lines with the anchor 42 of the retaining clip 40 inserted into the material of the cushion 30, and the base 54 of the retaining clip 40 is located on the surface of the cushion 30. As described above, by inserting the anchor 42 of the retaining clip 40 into the material of the cushion 30, the retaining clip 40 is attached to the cushion 30. Thereafter, the retaining clip 40 can be attached to the trim cover 36 by attaching the retaining mechanism 52 to the cooperating attachment mechanism of the trim cover 36. In such a manner, the trim cover 36 is thereby attached to the cushion 30.
[0024] Accordingly, the retaining clip 40 of the present disclosure can replace any known mechanism, device, system, means or method for attaching a trim cover 36 to a cushion 30, such as a clip, hog ring and wire fastener, and / or a form-embedded clip, etc., including any known attachment system including an attachment mechanism or fastener formed or molded within the cushion 30, such as a conventional polyurethane foam cushion. In this regard, it is noted that the retaining clip 40 of the present disclosure need not be formed or molded within the material of the cushion 30. With the retaining clip 40 of the present disclosure, as described above, it is also noted that the attachment of the trim cover 36 to a cushion 30, such as a cushion 30 having a three-dimensional mesh structure formed by randomly looped and joined filaments 70 of one or more extruded polymeric materials, is made easier and / or possible to a cushion 30 without any formed, created or made recesses. However, the retaining clip 40 of the present disclosure is also suitable for attaching the trim cover 36 to a cushion 30 including one or more recesses such as elongated channels, holes, depressions or grooves provided, formed or made therein to receive the anchor 42, and these one or more recesses can be provided at any suitable location, for example, at the location where the side bolster 32 contacts the central seating portion 34 of the cushion 30 (see FIG. 1).
[0025] In this regard, as seen in FIG. 4, the cushion 30 includes a three-dimensional mesh structure formed by filaments 70 that are randomly looped and joined, and only a few examples of the filaments 70 are represented in the drawing by lines randomly drawn for simplicity. As described above, the second end 48 of the anchor 42 terminates at a tip, and a plurality of barbs 50 extend from the body 44 in a direction away from the tip of the anchor 42, and they can serve to pierce or function to pierce the material of the cushion 30. Similarly, as described above, when the anchor 42 is inserted into the cushion 30, the material of the cushion 30 (i.e., the looped and joined filaments 70) is gripped between the body 44 and each of the plurality of barbs 50. Thus, the retaining clip 40 of the present disclosure provides a trim clip having a push-pin type base, where the retaining clip 40 grips the material of the cushion 30, such as strands or filaments of a mesh cushion or pad without a form. The retaining clip 40 of the present disclosure also provides barbs or barb attachments and trim clips that enable or facilitate the adhesion of the trim cover 36 to the cushion 30, such as strands or filaments of a mesh cushion or pad without a form.
[0026] Next, referring to FIG. 5, an exemplary flowchart showing a non-limiting exemplary embodiment of method 80 according to the present disclosure is shown. As seen in FIG. 5 and continuing to refer to FIGS. 1-4, method 80 of assembling a seat assembly includes providing a retaining clip 40 that includes an anchor 42 (82), the anchor 42 having a body 44 with a first end 46 and a second end 48 opposite the first end 46, the second end 48 terminating in a tip, the anchor 42 having a plurality of returns 50, each return 50 extending from the body 44 in a direction away from the tip, and the retaining clip 40 further including a retaining mechanism 52 extending in a direction away from the first end 46 of the body 44. Method 80 includes inserting the anchor 42 into the cushion 30 (84), the material of the cushion 30 being gripped between the body 44 and each of the plurality of returns 50, and further including attaching the retaining mechanism 52 to the trim cover 36, thereby attaching the trim cover 36 to the cushion 30.
[0027] According to the assembly method 80 of the present disclosure, inserting the anchor 42 into the cushion (84) can include piercing the material of the cushion 30 with the tip of the anchor 42 (88). As described above, the retaining clip 40 can further include a base 54, and the anchor 42 and the retaining mechanism 52 can be disposed on both sides of the base 54. Similarly as described above, the anchor 42, the retaining mechanism 52 and / or the base 54 can be an integral member or can be formed as an integral member. Further, the retaining mechanism 52 can be attached to the trim cover 36 after the anchor 42 is inserted into the cushion 30, as similarly described above.
[0028] As described above, the assembly method 80 of the present disclosure can further include preparing (90) a cushion 30 which is a three-dimensional mesh structure formed of filaments looped and joined. As described above, such filaments can be extruded and formed as a three-dimensional mesh structure. Further, as described above, according to the assembly method 80 of the present disclosure, as described above, a cushion 30 having a three-dimensional mesh structure formed of filaments 70 randomly looped and joined of one or more extruded polymer materials, etc., is provided in the cushion to receive an anchor 42, formed, or fabricated, and the attachment of the trim cover 36 to the cushion 30 without one or more recesses becomes easy and / or possible. However, the retaining clip 40 of the present disclosure is also suitable for attaching the trim cover 36 to a cushion 30 including one or more recesses provided, formed, or fabricated therein.
[0029] Item 1. According to one embodiment, the present disclosure provides an anchor having a body with a first end and a second end opposite the first end, the second end terminating in a tip, the anchor having a plurality of returns, each return extending from the body in a direction away from the tip, and a retaining mechanism extending in a direction away from the first end of the anchor, wherein the material of the cushion is gripped between the body and each of the plurality of returns when the anchor is inserted into the cushion.
[0030] Item 2. In another embodiment, the present disclosure provides the retaining clip according to Item 1, further comprising a base, wherein the anchor and the retaining mechanism are disposed on both sides of the base.
[0031] Item 3. In another embodiment, the present disclosure provides the retaining clip according to Item 2, wherein the base has a width greater than the width of the body.
[0032] Item 4. In another embodiment, the present disclosure provides the retaining clip according to any one of Items 1 to 3, wherein the anchor and the retaining mechanism are an integral member.
[0033] Item 5. In another embodiment, the present disclosure provides the retaining clip according to any one of Items 2 to 4, wherein the anchor, the retaining mechanism, and the base are an integral member.
[0034] Item 6. In another embodiment, the present disclosure provides the retaining clip according to any one of Items 1 to 5, wherein the retaining mechanism is attached to the trim cover after the anchor is inserted into the cushion.
[0035] Item 7. In another embodiment, the present disclosure provides the retaining clip according to any one of Items 1 to 6, wherein the tip pierces the cushion material.
[0036] Item 8. In another embodiment, the present disclosure provides the retaining clip according to any one of Items 1 to 7, wherein the cushion material includes a mesh formed of filaments looped and joined together.
[0037] Item 9. In another embodiment, the present disclosure provides the retaining clip according to Item 8, wherein the filaments are extruded and formed as a three-dimensional structure.
[0038] Item 10. In another embodiment, the present disclosure provides the retaining clip according to any one of Items 1 to 9, wherein the cushion material has no recess formed to receive the anchor.
[0039] Item 11. In another embodiment, the present disclosure provides a seat assembly including a cushion, a trim cover, and the retaining clip according to any one of Items 1 to 10 for attaching the trim cover to the cushion.
[0040] Item 12. According to one embodiment, the present disclosure provides a method of assembling a seat assembly, comprising providing a retaining clip including an anchor, the anchor having a body with a first end and a second end opposite the first end, the second end terminating in a tip, the anchor having a plurality of barbs, each barb extending from the body in a direction away from the tip, the retaining clip further including a retaining mechanism extending in a direction away from the first end of the body, inserting the anchor into a cushion, the material of the cushion being gripped between the body and each of the plurality of barbs, and attaching the retaining mechanism to a trim cover, thereby attaching the trim cover to the cushion.
[0041] Item 13. In another embodiment, the present disclosure provides the method according to Item 12, wherein inserting the anchor into the cushion includes piercing the material of the cushion with the tip of the anchor.
[0042] Item 14. In another embodiment, the present disclosure provides the method according to Item 12 or 13, wherein the retaining clip further includes a base, and the anchor and the retaining mechanism are disposed on both sides of the base.
[0043] Item 15. In another embodiment, the present disclosure provides the method according to any one of Items 12 to 14, wherein the anchor and the retaining mechanism are an integral member.
[0044] Item 16. In another embodiment, the present disclosure provides the method according to any one of Items 13 to 15, wherein the anchor, the retaining mechanism, and the base are an integral member.
[0045] Item 17. In another embodiment, the present disclosure provides the method according to any one of Items 12 to 16, wherein the retaining mechanism is attached to the trim cover after the anchor is inserted into the cushion.
[0046] Item 18. In another embodiment, the present disclosure provides the method according to any one of Items 12 to 17, further including providing a cushion that is a three-dimensional mesh structure formed of filaments looped and joined together.
[0047] Item 19. In another embodiment, the present disclosure provides the method according to Item 18, wherein the filaments are extruded and formed as a three-dimensional mesh structure.
[0048] Item 20. In another embodiment, the present disclosure provides the method according to any one of Items 12 to 19, wherein the material of the cushion has no recesses formed to receive anchors.
[0049] Exemplary embodiments have been described above, but these embodiments are not intended to describe all possible forms according to the present disclosure. In this regard, the language used herein is for explanatory purposes rather than limitation, and it is understood that various changes may be made without departing from the spirit and scope of the present disclosure. Further, unless otherwise indicated clearly from the context, the various features, elements, components, methods, procedures, steps, and / or functions of the various embodiments to be implemented may be combined or utilized in any single or multiple combinations to form further embodiments according to the present disclosure, and / or may be executed in any order other than that specifically described herein. Appendix A [Document Name] Specification [Title of the Invention] System and Method for Manufacturing a Mesh Cushion [Technical Field]
[0050] This relates to a system and method for manufacturing a mesh cushion such as a mesh cushion for a seat. [Background Art]
[0051] An apparatus for manufacturing a three-dimensional filament connection structure is disclosed in U.S. Patent No. 10,806,272. [Summary of the Invention]
[0052] In at least one embodiment, a method of manufacturing a mesh cushion is provided. The method can include extruding a material through a plurality of filament-forming openings in a die plate to form a plurality of filaments. The filaments can be deposited onto a first roller and a second roller. The first roller can be rotatable about a first axis and can define a first recess. The second roller can be rotatable about a second axis and can define a second recess. Rotating the first roller and the second roller guides the filaments into the first and second recesses and through a gap located between the first roller and the second roller, whereby the filaments can be formed into a mesh cushion having a variable cross-sectional shape.
[0053] The first roller and the second roller can be spaced apart from the die plate and positioned below the die plate.
[0054] The filaments can be deposited while the first roller and the second roller are rotating.
[0055] The first recess and the second recess may not have mirror symmetry.
[0056] The first roller can include a first central portion and a first end plate. The first recess can extend from the first central portion. The first end plate can be rotatable about the first axis together with the first central portion. The first end plate can extend further from the first axis than the first central portion. The first end plate can overlap the second roller and guide the filaments into the gap between the first roller and the second roller.
[0057] The second roller can include a second central portion and second end plates. The second recess can extend from the second central portion. The second end plates can be rotatable about a second axis together with the second central portion. The second end plates can extend further from the second axis than the second central portion. The second end plates can overlap the first roller to direct the filament into the gap between the first roller and the second roller.
[0058] The first end plate of the first roller and the second end plate of the second roller can overlap each other to direct the filament into the gap.
[0059] At least a portion of the first roller and the second roller can be positioned above a funnel that defines a funnel opening through which the material can pass.
[0060] The filament extruded through the die plate can be provided to a chamber that is partially defined by a housing extending between the die plate and the funnel. The first roller and the second roller can be at least partially received within the chamber.
[0061] An environmental control subsystem can control the temperature and humidity of the air within the chamber to control the thickness of the filament. The environmental control subsystem can be attached to the housing. The environmental control subsystem can maintain the temperature of the air within the chamber within a predetermined temperature range. The predetermined temperature range can be up to 10°F lower than the melting temperature of the material.
[0062] A method of manufacturing a mesh cushion can include extruding a material through a plurality of filament-forming openings in a die plate to form a plurality of filaments. The filaments can be guided into a funnel to solidify and engage them. The filaments can then be deposited into a mold. The mold can be at least partially immersed in a fluid to cool and cure the filaments into a mesh cushion.
[0063] The mold can be disposed on a conveyor. The conveyor can move or lower the mold into the fluid.
[0064] The mold can be partially received in the fluid when the filaments are deposited.
[0065] The filaments extruded through the die plate can be provided to a chamber that includes a housing and extends between the die plate and the funnel.
[0066] A method of manufacturing a mesh cushion can include providing a die set that includes a first die plate and a second die plate disposed adjacent to each other. The material can be extruded through a first set of filament-forming openings in the first die plate and through a second set of filament-forming openings in the second die plate to form a plurality of filaments. The relative position of the second die plate with respect to the first die plate can be changed such that the second die plate prevents the material from passing through some of the elements of the first set of filament-forming openings, thereby reducing the number of filaments formed by the die set. The filaments formed by the die set can be immersed in a fluid to cool and cure the filaments into a mesh cushion.
[0067] The second set of filament-forming openings can have fewer elements than the first set of filament-forming openings.
[0068] The second die plate can be movable between a first position and a second position. The second die plate can enable material to pass through some of the elements of the first set of filament-forming apertures when the die plate is in the first position and when it is in the second position.
[0069] At least one element of the second set of filament-forming apertures is larger than the elements of the first set of filament-forming apertures, and can enable material to flow through the elements of the first set of filament-forming apertures when the second die plate is in the first position and when it is in the second position.
[0070] Before dipping the filaments, the filaments can be guided into a funnel to solidify and engage them.
[0071] A method of manufacturing a mesh cushion can include extruding material through a plurality of filament-forming apertures of a die plate to form a plurality of filaments. The die plate can be coupled to a robotic manipulator configured to move the die plate along a plurality of axes. The filaments can be deposited within a mold. The mold can be at least partially immersed in a fluid to cool and cure the filaments, thereby forming the filaments as a mesh cushion. The robotic manipulator can move the die plate when depositing the filaments to vary the filament density of the mesh cushion.
[0072] The material can be extruded through the plurality of filament-forming apertures at a substantially constant flow rate.
[0073] The robotic manipulator can move the die plate away from the mold to reduce the diameter of the filaments when the filaments reach and deposit within the mold.
[0074] The robot manipulator can move the die plate toward the mold and increase the diameter of the filament when the filament reaches and deposits into the mold.
[0075] The robot manipulator can repeatedly move the die plate toward and then away from the mold to change the filament density.
[0076] The robot manipulator can move the die plate at high speed in a horizontal plane to reduce the filament density and at low speed to increase the filament density. [Brief Description of the Drawings]
[0077] [Fig. 1] is a schematic diagram of an example of a system for manufacturing a mesh cushion. [Fig. 2] is a partial plan view of Fig. 1 as viewed from below the die plate and above the roller that can be provided in the system. [Fig. 3] is a schematic diagram of a second example of a system for manufacturing a mesh cushion. [Fig. 4] is a schematic diagram of a third example of a system for manufacturing a mesh cushion. [Fig. 5A] is a diagram showing an example of filaments of different sizes. [Fig. 5B] is a diagram showing an example of filaments of different sizes. [Fig. 6A] is a diagram of an example of a die plate that can be provided in any system associated with Figs. 1 - 4. [Fig. 6B] is a diagram of an example of a die plate that can be provided in any system associated with Figs. 1 - 4. [Fig. 7] is a side view showing stacked die plates. [Fig. 8A] is a plan view of the stacked die plates in the first position. [Fig. 8B] is a plan view of the stacked die plates in the second position. [Embodiments for Carrying Out the Invention]
[0078] If necessary, detailed embodiments of the present invention are disclosed herein, but it should be understood that the disclosed embodiments are merely examples of the present invention that can be embodied in various alternative forms. The drawings are not necessarily drawn to an exact scale, and some features may be exaggerated or minimized to show details of specific components. Accordingly, the specific structural and functional details disclosed herein should not be construed as limiting, but rather should be construed merely as a representative basis for teaching those skilled in the art how to employ the present invention in various ways.
[0079] In the following description, terms such as "front", "rear", "top", "bottom", "left", "right", etc., which modify absolute positions, or terms such as "above", "below", "upper side", "lower side", etc., which modify relative positions, or terms such as "horizontal", "vertical", etc., which modify directions, refer to the orientation of the drawings. Unless otherwise specified, the expressions "about", "substantially", and "on the order of" mean within 10%, preferably within 5%.
[0080] Referring to FIG. 1, an example of a system 10 for manufacturing a mesh cushion 12 is shown. This system can include an extrusion machine subsystem 20, an environmental control subsystem 22, a material handling subsystem 24, and a control subsystem 26.
[0081] The extrusion machine subsystem 20 can be configured to extrude a material 30 as a filament 32. In at least one configuration, the extrusion machine subsystem 20 can include a container 40, a feeder 42, a manifold 44, and an extrusion machine 46. The extrusion machine subsystem 20 can also include a first roller 50, a second roller 52, and a roller drive unit 54.
[0082] Container 40 can accommodate and store fragments of the material 30 to be extruded. For example, container 40 can be configured as a hopper that can hold beads, granules, flakes, pellets, or powder made from material 30. Material 30 can be a polymer material such as polyester or polyethylene. Container 40 may be directly attached to feeder 42 or positioned at a location remote from feeder 42.
[0083] Feeder 42 can receive material 30 from container 40. Feeder 42 can gradually melt the material and transfer it to manifold 44. Feeder 42 can have any suitable configuration. For example, feeder 42 can include a barrel that can accommodate a rotatable screw. The rotation of the screw can force material 30 to move through the barrel, and the friction generated as the screw rotates can help heat material 30. A heating element such as a thermocouple can be arranged proximate to the barrel, and the heating element can provide thermal energy that can heat the barrel and material 30. Optionally, the heating elements can be arranged to provide a heating profile having a plurality of zones in which the temperature of material 30 gradually increases as material 30 progresses through the barrel. Cooling equipment can also be provided to help maintain the temperature below a predetermined value if excessive heat is generated. Material 30 can exit feeder 42 in a molten plastic state.
[0084] Manifold 44 can receive molten material 30 from feeder 42 under pressure. Manifold 44 can direct material 30 from feeder 42 to extruder 46.
[0085] Extruder 46 can extrude material 30 as filament 32. Extruder 46 can have any suitable configuration. For example, extruder 46 can include one or more die plates 60, a housing 62, and a hopper 64.
[0086] One or more die plates 60 can be provided that can include a plurality of filament-forming openings 70. The filament-forming openings 70 can be spaced apart from each other and can be small through-holes sized to create backpressure within the manifold 44 and the barrel. The material 30 provided by the manifold 44 can pass through the filament-forming openings 70 under pressure (i.e., be extruded from the die plate 60), thereby forming filaments 32. Filaments can be formed by each filament-forming opening 70 through which the material 30 passes under pressure.
[0087] The housing 62 can receive and support the die plate 60. Additionally, the housing 62 can extend between the die plate 60 and the funnel 64. The housing 62 can cooperate with the die plate 60 and the funnel 64 to fully or partially define a chamber 80. The chamber 80 can be disposed below the die plate 60 and above the funnel 64. Thus, the filaments 32 formed by or extruded through the die plate 60 can be provided to the chamber 80. The chamber 80 can be a sealed region that is at least partially separated or isolated from the surrounding environment. In FIGS. 1, 3, and 4, the side of the housing 62 closest to the viewer from the illustrated perspective is omitted to better show the internal features of the housing 62. The environmental control subsystem 22 can be useful for controlling the environment within the chamber 80, as will be discussed in more detail later.
[0088] The funnel 64, if provided, can be disposed proximate to the bottom of the housing 62. The funnel 64 can define a funnel opening 90 through which the material 30, or the mesh cushion 12 made from the material 30, can pass. The funnel opening 90 can have a width smaller than the filament forming opening 70 extends along the die plate 60, or can extend along a short distance. Thus, the funnel opening 90 can serve to solidify or compress the filaments 32 in one or more configurations. In at least one configuration, the funnel 64 can extend into the fluid provided by the material handling subsystem 24, which can serve to isolate the chamber 80 from the ambient air and the surrounding environment. In one or more configurations, it is also contemplated that the funnel 64 may be omitted. When the funnel 64 is omitted, it is also contemplated that the housing 62 can extend into the fluid within the material handling subsystem 24. In the configuration shown in FIG. 1, the funnel 64 passes between the first roller 50 and the second roller 52 and receives the material 30 formed by the first roller 50 and the second roller 52.
[0089] The first roller 50 can be positioned between the die plate 60 and the funnel 64. For example, the first roller 50 can be positioned below the die plate 60 and spaced apart from the die plate 60. At least a portion of the first roller 50 can be disposed above the funnel 64 and spaced apart from the funnel 64. Thus, the first roller 50 can be at least partially housed within the chamber 80. The first roller 50 is rotatable about the first shaft 100. In at least one configuration, as best shown in FIG. 2, the first roller 50 can have a first central portion 110, at least one recess 112, one or more end plates 114, or a combination thereof.
[0090] The first central portion 110 can extend around or surround the first axis 100. In at least one configuration, the first central portion 110 can be disposed at a constant or substantially constant radial distance from the first axis 100. The first central portion 110 can be positioned above the funnel 64.
[0091] At least one recess 112 can extend from the first central portion 110 toward the first axis 100. In the illustrated configuration, a single recess 112 is shown, but it is contemplated that a plurality of recesses may be provided. Further, the plurality of recesses may be spaced apart from each other.
[0092] One or more end plates 114 can be provided on the first roller 50. In the illustrated configuration, two end plates 114 are shown disposed adjacent to both ends of the first central portion 110. The end plates 114 can be rotatable about the first axis 100 together with the first central portion 110. Additionally, the end plates 114 can extend further from the first axis 100 than the first central portion 110. The end plates 114 can serve to accommodate the filament 32 so that the filament 32 does not roll off the ends of the first roller 50 and can serve to guide the filament 32 into the gap 116 located between the first roller 50 and the second roller 52. The size and configuration of the gap 116 can change as the first roller 50 and the second roller 52 rotate.
[0093] Referring to FIGS. 1 and 2, the second roller 52 can be generally aligned with the first roller 50. Thus, the second roller 52 can be positioned between the die plate 60 and the hopper 64, can be positioned below the die plate 60, and can be spaced apart from the die plate 60. At least a portion of the second roller 52 can be disposed above the hopper 64. Thus, the second roller 52 can be at least partially received within the chamber 80. The second roller 52 is rotatable about a second axis 100'. In at least one configuration, as best shown in FIG. 2, the second roller 52 can have a second central portion 110', at least one recess 112', one or more end plates 114', or a combination thereof.
[0094] The second central portion 110' can extend around or surround the second axis 100'. In at least one configuration, the second central portion 110' can be disposed at a constant or substantially constant radial distance from the second axis 100'. The second central portion 110' can be positioned above the hopper 64.
[0095] At least one recess 112' can extend from the second central portion 110' toward the second axis 100'. In the illustrated configuration, a single recess 112' is shown, but it is contemplated that multiple recesses may be provided and the recesses may be spaced apart from each other. In at least one configuration, the recesses 112' provided in the second roller 52 may not have mirror symmetry with corresponding recesses provided in the first roller 50, thereby forming a mesh cushion having opposing side surfaces with different configurations.
[0096] One or more end plates 114' can be provided on the second roller 52. In the illustrated configuration, two end plates 114' are shown disposed adjacent to both ends of the second central portion 110'. The end plates 114' can be rotatable about the second axis 100' together with the second central portion 110'. In addition, the end plates 114' can extend further from the second axis 100' than the second central portion 110'. The end plates 114' can serve to accommodate the filament 32 so that the filament 32 does not roll off the end of the second roller 52, and can serve to guide the filament 32 into the gap 116.
[0097] The end plate 114 provided on the first roller 50 can engage with an adjacent end plate 114' provided on the second roller 52, overlap with the end plate 114', and can serve to guide the filament 32 into the gap 116. In addition, the end plate can overlap a roller on which the end plate is not attached. For example, the end plate 114 provided on the first roller 50 can overlap the second roller 52 and can serve to guide the filament into the gap 116. Additionally or alternatively, the end plate 114 provided on the first roller 50 can have an outer circumference or outer surface facing away from the first axis 100 and disposed closer to the second axis 100' than the second central portion 110' is disposed relative to the second axis 100'. The end plate 114' provided on the second roller 52 can have an outer circumference or outer surface facing away from the second axis 100' and disposed closer to the first axis 100 than the first central portion 110 is disposed relative to the first axis 100. The end plates 114, 114' may be received inside the funnel 64 or may be disposed outside the funnel 64. The outer circumference or outer surface of the end plates 114, 114' may or may not be positioned above the funnel 64.
[0098] The roller drive unit 54 can be configured to rotate the first roller 50 and the second roller 52. For example, the roller drive unit 54 can rotate the first roller 50 and the second roller 52 in opposite directions about their respective axes. In FIG. 1, as represented by the curved arrow lines, the first roller 50 can be rotated clockwise about the first axis 100 as viewed from the illustrated perspective, while the second roller 52 can be rotated counterclockwise about the second axis 100' as viewed from the illustrated perspective. Additionally, the roller drive unit 54 can synchronize the rotations of the first roller 50 and the second roller 52 such that the recess 112 of the first roller 50 aligns with the recess 112' of the second roller 52 during each roller rotation, thereby enabling the formation of both sides of the mesh cushion 12 to have a desired cross-section at each point along its length. If the synchronization of the rollers is inappropriate, the position of the recesses may shift, and the mesh cushion 12 may be inappropriately formed.
[0099] It should be noted that in various extrusion machine sub-assembly configurations such as the configurations shown in FIGS. 3 and 4, the first roller 50, the second roller 52, and the roller drive unit 54 may be omitted.
[0100] The filament 32 can be deposited on the first roller 50 and the second roller 52 while the first roller 50 and the second roller 52 are rotating. The rotation of the first roller 50 and the second roller 52 can guide the filament 32 toward and through the gap 116, thereby solidifying the filament 32 and bringing each filament 32 into contact with one or more other filaments 32. The filaments 32 can bend or twist in an irregular manner, generally in a non-patterned or non-repeating fashion. The recesses 112, 112' can further form the filament 32 as the undulating outer surface of that portion of the filament 32 that contacts the surface of each roller defining the corresponding recesses 112, 112'. Thus, since the cross-sectional area of each roller varies depending on the presence and configuration of the corresponding recesses 112, 112', the first roller 50 and the second roller 52 can form the filament 32 as the mesh cushion 12 having a variable cross-sectional shape.
[0101] Referring to FIG. 1, the environmental control subsystem 22 can control one or more attributes or characteristics of the air inside the chamber 80. For example, the environmental control subsystem 22 can control the temperature of the air in the chamber 80, the humidity of the air in the chamber 80, the flow of the air in the chamber 80, the recirculation of the air in the chamber 80, the exhaust of the air from the chamber 80, or a combination thereof, to help control the thickness of the filament 32. In at least one configuration, the environmental control subsystem 22 can include fans 120 and one or more temperature-changing devices.
[0102] In FIGS. 1, 3, and 4, two temperature changing devices 122, 124 are shown, but it is contemplated that a different number of temperature changing devices may be provided. The temperature changing device can have any suitable configuration. For example, the temperature changing device can be configured as a heat exchanger, a heating element, a cooling element, etc. As one example, the first temperature changing device 122 can be configured to heat air, while the second temperature changing device 124 can be configured to cool and / or dehumidify the air circulated by the fan 120 from the chamber 80 through the environmental control subsystem 22 and back to the chamber 80.
[0103] The environmental control subsystem 22 can be used to maintain the temperature of the air within the chamber 80 within a predetermined temperature range. The predetermined temperature range may be slightly lower than the melting temperature of the material 30. As an example, the predetermined temperature range may be 10°F or less lower than the melting temperature of the material 30. Similarly, the environmental control subsystem 22 can be used to maintain the humidity of the air within the chamber 80 within a predetermined humidity range.
[0104] The components of the environmental control subsystem 22 such as the fan 120 and the temperature changing devices 122, 124 may be attached to the housing 62 or positioned remotely from the extruder subsystem 20 and fluidly connected to the chamber 80 by any suitable conduit such as a hose or duct.
[0105] The material handling subsystem 24 can receive the material 30 after the material 30 exits the extruder subsystem 20. The material handling subsystem 24 can be provided in various configurations. In the configuration shown in FIG. 1, the material handling subsystem 24 includes a tank 130 and a conveyor 132.
[0106] Tank 130 can receive the material 30 coming from the extrusion machine subsystem 20. In addition, tank 130 can contain a fluid 134 such as water. The fluid 134 can be provided in a liquid state and at a temperature significantly lower than the melting temperature of the material 30. Thus, the fluid 134 can cool and harden the filament 32 to form the mesh cushion 12. Thus, the fluid 134 can cool the filament 32 so that the filament 32 is no longer in a sticky molten state.
[0107] Conveyor 132 can convey the mesh cushion 12. In at least one configuration, conveyor 132 or a part thereof can be housed within tank 130 and can be at least partially immersed in the fluid 134. The length of the conveyor 132 disposed in the fluid 134 can be made sufficient to provide adequate cooling and hardening of the filament 32 for subsequent material handling operations.
[0108] In the configuration shown in FIG. 1, a part of the conveyor 132 located below the extrusion machine subsystem 20 and immersed in the fluid 134 is shown. The conveyor 132 can be spaced apart from the extrusion machine subsystem 20 and the funnel 64 such that there is sufficient space for the filament 32 to exit the funnel 64. The conveyor 132 may be disposed closer to the surface of the fluid 134 than shown. Further, it is contemplated that a part of the conveyor 132 can exit the fluid 134 to facilitate removal of the mesh cushion 12 from the tank 130.
[0109] In the configuration shown in FIG. 3, the material handling subsystem 24 can also include at least one mold 140. The mold 140 can be positioned on the belt of the conveyor 132, and the conveyor 132 can be configured to move the mold 140 relative to the extrusion machine subsystem 20. The mold 140 can define a mold cavity 142 that can deposit or discharge the filament 32 therein. The mold cavity 142 can open upward or in a direction facing the extrusion machine subsystem 20.
[0110] The mold 140 may or may not be positioned within the tank 130 when the filament 32 is deposited into the mold cavity 142. FIGS. 3 and 4 show an example where the mold 140 is partially contained within the fluid 134 when the filament 32 is deposited into the mold cavity 142. In a configuration where the extrusion machine subsystem 20 is stationary, the conveyor 132 can advance the mold 140 under the hopper 64 and relative to the hopper 64, thereby filling the mold cavity 142 with the filament 32. Thereafter, the mold 140 can be lowered into the fluid 134.
[0111] The mold 140 can be lowered into or at least partially immersed in the fluid 134 in various ways. In the illustrated configuration, the conveyor 132 is configured to lower the mold 140 into the fluid 134. The conveyor 132 is inclined below the tank 130 such that as the mold 140 moves away from the hopper 64, the mold 140 descends into the fluid 134, thereby causing the fluid 134 to circulate through the filament 32 and the mold cavity 142 to cool and cure the filament 32. As another example, the mold 140 can be lowered into or lifted out of the fluid 134 without using the conveyor 132, such as by moving the mold 140 generally vertically or in a rotating loop that can access the fluid 134. It is also contemplated that the conveyor 132 may be omitted, or the mold 140 may be moved manually or in another way, such as during small batch production.
[0112] In the configuration shown in FIG. 4, the material handling subsystem 24 can be the same as or similar to that shown in FIG. 3. However, in FIG. 4, the extrusion machine subsystem 20 is attached to or connected to a robot manipulator 150.
[0113] The robot manipulator 150 can be movable along a plurality of axes and can have a plurality of degrees of freedom. For example, the robot manipulator 150 can be configured to move the extrusion machine subsystem 20 along a first axis 152, a second axis 154, and a third axis 156.
[0114] The first axis 152 can be a vertical axis.
[0115] The second axis 154 can be arranged perpendicular to the first axis 152 and can be a horizontal axis that extends in the left-right direction as viewed from the illustrated perspective.
[0116] The third axis 156 can be arranged perpendicular to the first axis 152 and the second axis 154 and can extend in the front-rear direction as viewed from the illustrated perspective.
[0117] The extrusion machine subsystem 20 can deposit the filament 32 into the mold cavity 142 when the mold 140 is stationary or moving. It is also contemplated that the conveyor 132 may be omitted during small lot production or the like, or the mold 140 may be moved manually or by another method. The configuration shown in FIG. 4 and related attributes will be considered in more detail later.
[0118] Referring to FIG. 1, control subsystem 26 can monitor and control the operation of system 10. For example, control subsystem 26 can include one or more control modules or electronic controllers 200 that can monitor and / or control the operation of one or more subsystems of system 10. For example, controller 200 can be an electrically connected to or communicate with components of extrusion machine subsystem 20 such as feeder 42 and roller drive unit 54, environmental control subsystem 22, material handling subsystem 24, or combinations thereof, or a microprocessor-based controller. If robot manipulator 150 is provided, controller 200 can also control its operation. For simplicity, FIG. 1 shows a single controller, but it is contemplated that control subsystem 26 may be provided with multiple control modules or controllers, or a distributed control architecture. Control subsystem 26 is also provided in the configurations shown in FIGS. 3 and 4, but is omitted from these figures for clarity only.
[0119] Controller 200 can also process input signals or data from various input devices or sensors. Input devices that can be provided in system 10 can include temperature sensor 160 and humidity sensor 162.
[0120] Temperature sensor 160 can provide a signal indicating the temperature of the air within chamber 80. Temperature sensor 160 can be of any suitable type, such as a thermistor, thermocouple, semiconductor-based temperature sensor, infrared sensor, etc. Temperature sensor 160 can be provided at any suitable location. For example, temperature sensor 160 can be provided within chamber 80 or in environmental control subsystem 22.
[0121] The humidity sensor 162 can provide a signal indicating the humidity of the air within the chamber 80. The humidity sensor 162 can be of any suitable type, such as a capacitance-type humidity sensor, a resistance-type humidity sensor, or a thermal conductivity-type humidity sensor. The humidity sensor 162 can be provided at any suitable location. For example, the humidity sensor 162 may be provided within the chamber 80 or may be provided in the environmental control subsystem 22.
[0122] Referring again to FIG. 4, the robotic manipulator 150 can be configured to move the extrusion machine subsystem 20 to vary the filament density of the mesh cushion 12. For example, the material 30 can be extruded through the filament-forming openings 70 of one or more die plates 60 at a substantially constant flow rate. Thus, it can be expected that the filaments 32 will have substantially the same diameter or thickness when the filament-forming opening size is constant. However, the filaments 32 become thinner as the distance from the die plate 60 and the filament-forming openings 70 increases. This is best understood with reference to FIGS. 5A and 5B.
[0123] FIG. 5A shows an enlarged view of a portion of the die plate 60 and the filament-forming openings 70. The die plate 60 is positioned at a first distance Z1 above the surface S.
[0124] In FIG. 5B, the die plate 60 is positioned at a second distance Z2 above the surface S, and Z1 is smaller than Z2. The filament 32 extends over an increased distance and becomes thinner because the material 30 is in a molten and uncured state, so in FIG. 5B it is thinner or has a smaller diameter at the surface S. These properties can be used to vary the filament density of the mesh cushion 12. For example, the robotic manipulator 150 can move the die plate 60 upwardly or away from the mold 140 to reduce the size, thickness or diameter of the filament 32 when deposited within the mold 140. Conversely, the robotic manipulator 150 can move the die plate 60 towards the mold 140 to increase the size, thickness or diameter of the filament 32 when deposited within the mold 140.
[0125] The robotic manipulator 150 can also vary the filament density in other ways by moving the die plate 60 while the filament 32 is being deposited. For example, the robotic manipulator 150 can repeatedly move the die plate 60 towards and then away from the mold 140, and / or reduce its speed of movement, and / or increase its dwell time at rest to increase the filament density. As another example, the robotic manipulator 150 can move the die plate 60 at a higher speed in the horizontal plane (i.e., along the second axis 154 and / or the third axis 156) or spend less time in a particular area to reduce the filament density. Conversely, the robotic manipulator 150 can move the die plate 60 at a lower speed in the horizontal plane or spend more time in a particular area to increase the filament density. Thus, the filament density increases as the time spent in a particular area increases, thereby allowing more filaments to be deposited, and the filament density can decrease as the time spent in a particular area decreases.
[0126] It should also be noted that in FIG. 4, various components of the environmental control subsystem 22 and the extrusion machine subsystem 20, such as a portion of the housing 62 located below the die plate 60, the hopper 64, or both, may be omitted.
[0127] Here, with reference to FIGS. 6A - 8B, an example of an extrusion machine subsystem configuration having an exchangeable die plate or a plurality of die plates will be considered. The plurality of die plates can be given any of the previously considered extrusion machine subsystem configurations, such as the configurations shown in FIGS. 1, 3, and 4.
[0128] FIGS. 6A and 6B show examples of two different die plates. The die plates 60, 60' have the same size and shape but do not have the same number of filament - forming openings 70. The die plate 60 in FIG. 6A has more filament - forming openings 70 than the die plate 60' in FIG. 6B. Therefore, the number of filaments 32 that can be provided by the die plate 60 in FIG. 6A is more than the number of filaments 32 that can be provided by the die plate 60' in FIG. 6B. Thus, when there is a certain material flow rate and discharge time, by using the die plate 60' in FIG. 6B as compared with the die plate 60 in FIG. 6A, a mesh cushion 12 with a lower filament density can be provided.
[0129] Referring to FIG. 7, a configuration having two stacked die plates is shown. It is noted that it is contemplated that three or more die plates may be provided in a stacked arrangement initially.
[0130] The configuration of FIG. 7 is mainly considered in the context of a first die plate and a second die plate that are directly stacked on each other. For clarity, the lower die plate is referred to as the first die plate, and the die plate placed on the first die plate is referred to as the second die plate, but it is contemplated that the positioning of the first die plate and the second die plate may be changed or reversed, or additional die plates may be provided.
[0131] As an example, the first die plate 60 can be configured as shown in FIG. 6A. The first die plate 60 can have a first set of filament-forming openings 70. In at least one configuration, elements of the first set of filament-forming openings 70 can be given the same configuration.
[0132] Referring to FIGS. 7 and 8A, an example of a second die plate 260 is shown. The second die plate 260 can be disposed adjacent to the first die plate 60 and can have a second set of filament-forming openings 270. Elements of the second set of filament-forming openings 270 may or may not have the same configuration. For example, in FIG. 8A, not all elements of the second set of filament-forming openings 270 have the same configuration. Instead, some of the filament-forming openings 270 have the same configuration as the filament-forming openings 70 of the first die plate 60 (represented as circles in FIG. 8A), and some of the filament-forming openings 270 are larger than the filament-forming openings 70 of the first die plate 60 (represented as elongated oval slots in FIG. 8A). It is also contemplated that the second set of filament-forming openings 270 may have fewer elements than the first set of filament-forming openings 70.
[0133] The relative positioning of the second die plate 260 with respect to the first die plate 60 can be adjusted to change the alignment of the filament-forming openings 70, 270 relative to each other. The change in alignment can be achieved by moving the first die plate 60 or a portion thereof relative to the second die plate 260, by moving the second die plate 260 or a portion thereof relative to the first die plate 60, or by both. As an example, the first die plate 60 can be held in a stationary position and the second die plate 260 can be slid or moved along the first die plate 60 such that the second die plate 260 closes at least a portion of the filament-forming openings 70 of the first die plate 60. This is best understood by comparing FIGS. 8A and 8B.
[0134] In FIG. 8A, the second die plate 260 is shown in an example in a first position. In this example, when the second die plate 260 is in the first position, it does not block any of the filament-forming openings 70 of the first die plate 60. Thus, the material 30 can be extruded through the second set of filament-forming openings 270 and then through the corresponding elements of the first set of filament-forming openings 70 that are aligned with the elements of the second set of filament-forming openings 270 to form the filaments 32.
[0135] In FIG. 8B, as compared with FIG. 8A, the relative positioning of the first die plate 60 and the second die plate 260 is changed. In the example of FIG. 8B, the first die plate 60 remains in the same position as in FIG. 8A, and the second die plate 260 has moved to a second position different from the first position. As a result, some of the elements of the second set of filament-forming openings 270 remain aligned with the corresponding elements of the first set of filament-forming openings 70, while other elements of the second set of filament-forming openings 270 are no longer aligned with the elements of the first set of filament-forming openings 70. Accordingly, the second die plate 260 is positioned so as to prevent the material from reaching and passing through the elements of the first set of filament-forming openings 70.
[0136] More specifically, in the illustrated example, the elements of the second set of filament-forming openings 270 having a circular shape are no longer aligned with any of the elements of the first set of filament-forming openings 70, whereas the elongated elliptical-shaped elements of the second set of filament-forming openings 270 have been repositioned but still remain sufficiently aligned with the corresponding elements of the first set of filament-forming openings 70 to allow the material 30 to be extruded through the aligned filament-forming openings 70. Accordingly, the larger elements (i.e., the elliptical-shaped elements) of the second set of filament-forming openings 270 can allow the material 30 to flow through the corresponding elements of the first set of filament-forming openings 70 when the second die plate 260 is in the first position and when it is in the second position. As a result, filaments 32 are extruded when the second die plate 260 is in the first position and when it is in the second position, but when the second die plate 260 is in the second position, the number of filaments 32 formed by the die set is reduced.
[0137] It is contemplated that the die plate may move in a manner different from that previously described. As one example, the die plate may be divided into a plurality of parts that can move independently. For example, the second die plate 260 may be divided in half, and each half of the second die plate 260 may be movable to selectively block or enable the flow of material 30 through a subset of the first set of filament-forming openings 70.
[0138] As another example, the die plate may be rotatable about an axis rather than movable in a linear direction.
[0139] As another example, a plurality of die plate regions may be integrated into a single plate that can be rotated about an axis. Each die plate region may have a different pattern of filament-forming openings. Next, the single plate can be rotated about the axis to align a particular die plate region with another die plate. As a result, each die plate region can provide a different number of filaments when positioned adjacent to or aligned with another die plate.
[0140] It is also contemplated that the second die plate 260 may be movable to a position that blocks all of the elements of the first set of filament-forming openings 70 of the first die plate 60, thereby ending the flow of material through the die plate and ending the extrusion of the filaments 32.
[0141] Although exemplary embodiments have been described above, it is not intended that these embodiments represent all possible forms of the invention. In that regard, the language used herein is for descriptive purposes rather than limitation, and it is understood that various changes can be made without departing from the spirit and scope of the present disclosure. Additionally, the features of various embodiments can be combined to form further embodiments of the invention. [Document Name]Claims [Claim 1] A method of manufacturing a mesh cushion, comprising: Extruding a material through a plurality of filament-forming openings in a die plate to form a plurality of filaments; Depositing the filaments onto a first roller and a second roller, wherein the first roller is rotatable about a first axis and defines a first recess, and the second roller is rotatable about a second axis and defines a second recess; Rotating the first roller and the second roller to guide the filaments into the first recess and the second recess and through a gap between the first roller and the second roller, thereby forming the filaments as the mesh cushion having a variable cross-sectional shape; A method comprising the above steps. [Claim 2] The method according to claim 1, wherein the first roller and the second roller are spaced apart from the die plate and positioned below the die plate. [Claim 3] The method according to claim 1, wherein the filaments are deposited while the first roller and the second roller are rotating. [Claim 4] The method according to claim 1, wherein the first recess and the second recess do not have mirror symmetry. [Claim 5] The first roller includes a first central portion that is a starting point where the first recess extends, and a first end plate that is rotatable about the first axis together with the first central portion and extends further from the first axis than the first central portion, and the first end plate overlaps the second roller to guide the filaments into the gap between the first roller and the second roller. The method according to claim 1. [Claim 6] The second roller includes a second central portion that is a starting point from which the second recess extends, and a second end plate that is rotatable about the second axis together with the second central portion and extends further from the second axis than the second central portion. The second end plate overlaps the first roller and guides the filament into the gap between the first roller and the second roller. The method according to claim 5. [Claim 7] The first end plate of the first roller and the second end plate of the second roller overlap each other and guide the filament into the gap between the first roller and the second roller. The method according to claim 6. [Claim 8] At least a part of the first roller and the second roller is positioned above a funnel that defines a funnel opening through which the material passes. The method according to claim 1. [Claim 9] The filament extruded through the die plate is provided in a chamber that is partially defined by a housing that extends between the die plate and the funnel. The method according to claim 8. [Claim 10] The first roller and the second roller are at least partially received within the chamber. The method according to claim 9. [Claim 11] An environmental control subsystem controls the temperature and humidity of the air within the chamber to control the thickness of the filament. The method according to claim 9. [Claim 12] A method of manufacturing a mesh cushion, extruding a material through a plurality of filament-forming openings in a die plate to form a plurality of filaments, guiding the filament into a funnel to solidify and engage the filament, depositing the filament within a mold, Dipping the mold at least partially into the fluid to cool and cure the filament to form the mesh cushion; A method comprising. [Claim 13] The method according to claim 12, wherein the mold is disposed on a conveyor, and the conveyor moves the mold into the fluid. [Claim 14] The method according to claim 12, wherein the mold is partially accommodated in the fluid when the filament is deposited. [Claim 15] The method according to claim 12, wherein the filament extruded through the die plate is provided in a chamber including a housing extending between the die plate and the funnel. [Claim 16] A method of manufacturing a mesh cushion, comprising: Extruding a material through a plurality of filament-forming openings of a die plate to form a plurality of filaments, wherein the die plate is connected to a robotic manipulator configured to move the die plate along a plurality of axes; Depositing the filaments into a mold; Dipping the mold at least partially into a fluid to cool and cure the filaments, thereby forming the filaments as the mesh cushion, wherein the robotic manipulator moves the die plate when depositing the filaments to vary the filament density of the mesh cushion; A method comprising. [Claim 17] The method according to claim 16, wherein the material is extruded through the plurality of filament-forming openings at a substantially constant flow rate. [Claim 18] The method according to claim 16, wherein the robotic manipulator moves the die plate away from the mold to reduce the diameter of the filaments when depositing into the mold. [Claim 19] The method according to claim 16, wherein the robot manipulator moves the die plate towards the mold to increase the diameter of the filament when depositing in the mold. [Claim 20] The method according to claim 16, wherein the robot manipulator moves the die plate at high speed in a horizontal plane to reduce the filament density and at low speed to increase the filament density. [Document Name] Abstract [Abstract] A method of manufacturing a mesh cushion. The method includes extruding a material through a plurality of filament-forming openings of at least one die plate to form a plurality of filaments. The filaments can be at least partially immersed in a fluid to cool and cure the filaments into a mesh cushion. [Figure 1] JPEG2025521509000002.jpg201139[Figure 2] JPEG2025521509000003.jpg147140[Figure 3] JPEG2025521509000004.jpg171119[Figure 4] JPEG2025521509000005.jpg151125[Figure 5A] JPEG2025521509000006.jpg66106[Figure 5B] JPEG2025521509000007.jpg59126[Figure 6A] JPEG2025521509000008.jpg9948[Figure 6B] JPEG2025521509000009.jpg10052[Figure 7] JPEG2025521509000010.jpg48108[Figure 8A] JPEG2025521509000011.jpg70110[Figure 8B] JPEG2025521509000012.jpg7891
Claims
1. An anchor having a body with a first end and a second end opposite the first end, the second end terminating in a tip, the anchor having a plurality of barbs, each barb extending from the body in a direction away from the tip, the anchor; A holding mechanism extending in a direction away from the first end of the anchor, the cushion material being gripped between the body and each of the plurality of barbs when the anchor is inserted into the cushion, the holding mechanism; A retaining clip comprising.
2. Further comprising a base, the anchor and the holding mechanism being disposed on opposite sides of the base, the retaining clip according to claim 1.
3. The base has a width greater than the width of the body, the retaining clip according to claim 2.
4. The anchor and the holding mechanism are an integral member, the retaining clip according to any one of claims 1 to 3.
5. The anchor, the holding mechanism and the base are an integral member, the retaining clip according to any one of claims 2 to 4.
6. The holding mechanism is attached to a trim cover after the anchor is inserted into the cushion, the retaining clip according to any one of claims 1 to 5.
7. The tip pierces the cushion material, the retaining clip according to any one of claims 1 to 6.
8. The material of the cushion includes a mesh formed of filaments looped and joined together, the retaining clip according to any one of claims 1 to 7.
9. The filaments are extruded and formed as a three-dimensional structure, the retaining clip according to claim 8.
10. There is no recess formed in the material of the cushion to receive the anchor, the retaining clip according to any one of claims 1 to 9.
11. A cushion; A trim cover; A retaining clip according to any one of claims 1 to 10, attaching the trim cover to the cushion, the retaining clip; A seat assembly comprising.
12. A method of assembling a seat assembly, Providing a retaining clip including an anchor, wherein the anchor has a body having a first end and a second end opposite the first end, the second end terminating in a tip, the anchor having a plurality of barbs, each barb extending from the body in a direction away from the tip, and the retaining clip further including a retaining mechanism extending in a direction away from the first end of the body; Inserting the anchor into a cushion, wherein the material of the cushion is gripped between the body and each of the plurality of barbs; Attaching the retaining mechanism to a trim cover, thereby attaching the trim cover to the cushion; A method including the above.
13. The method according to claim 12, wherein inserting the anchor into the cushion includes piercing the material of the cushion with the tip of the anchor.
14. The method according to claim 12 or 13, wherein the retaining clip further includes a base, and the anchor and the retaining mechanism are disposed on both sides of the base.
15. The method according to any one of claims 12 to 14, wherein the anchor and the retaining mechanism are an integral member.
16. The method according to any one of claims 13 to 15, wherein the anchor, the retaining mechanism and the base are an integral member.
17. The method according to any one of claims 12 to 16, wherein the retaining mechanism is attached to the trim cover after the anchor is inserted into the cushion.
18. The method according to any one of claims 12 to 17, further including providing a cushion that is a three-dimensional mesh structure formed of a filament looped and joined.
19. The method according to claim 18, wherein the filament is extruded and formed as the three-dimensional mesh structure.
20. The method according to any one of claims 12 to 19, wherein the material of the cushion has no recess formed to receive the anchor.
Citation Information
Patent Citations
Cushion body and its production
JP2001070106A