Mold for forming integral articles from pulp

A mold with varying porous zones and a 3D printed insert facilitates the production of complex paper pulp bottles with enhanced design flexibility and uniformity, addressing the limitations of existing methods.

JP7772063B2Active Publication Date: 2025-11-18DIAGEO GREAT BRITAIN LTD
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Patent Information

Application Number
JP2023524760
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-12-08
Filing Date
2021-11-04
Publication Date
2025-11-18
Estimated Expiration
2041-11-04

AI Technical Summary

Technical Problem

Existing technologies face challenges in forming complex three-dimensional containers, such as bottles, from paper pulp, as they often require additional steps and materials to achieve uniform wall thickness and are limited in design flexibility.

Method used

A mold with varying porous zones of different permeabilities is used to form bottles, featuring a high-density zone on the article-facing surface and a lower-density zone for support, combined with a 3D printed insert, allowing for continuous porosity and efficient suspension removal and pressure application.

Benefits of technology

This method enables the production of single-piece bottles with improved design flexibility and surface features, reducing material waste and operational complexity.

✦ Generated by Eureka AI based on patent content.

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Abstract

A mold (14) for forming an article from a fiber suspension. The mold includes an insert having a cavity (27) in the negative shape of the article to be formed and two regions (28, 29) of different porosity / permeability around the cavity (27). In use, the mold conveys a suspending fluid of the fiber suspension, for example by a vacuum pump, through at least two regions of different porosity / permeability around the cavity. A formed shape (22) of the fibers is left on the cavity.
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Description

[Technical Field]

[0001] The present invention relates to a mold for use in a system for forming a molded article. In particular, the invention relates to forming a container from a fiber suspension, such as paper pulp. The article / container may be consumer packaging useful for holding a liquid. [Background technology]

[0002] It is desirable to reduce the use of plastic in consumable items, especially packaging. While trays and simple shapes are commonly made from paper pulp, more complex three-dimensional forms, such as bottles required to hold liquids, are more difficult to design.

[0003] Published patents U.S. Pat. Nos. 5,629,999, 5,749,102, 5,829,113, and 5,929,123 each describe forming an article from paper pulp in a mold. The mold features a negative / remote impression of the article and either has openings that penetrate the article or is porous so that a suspension introduced into the mold to mix the pulp can be removed by applying suction. The pulp remaining after the liquid is removed conforms to the shape of the mold. In a second step, a collapsed expandable member is introduced into the mold and expanded to apply pressure to the interior wall of the article being formed, thereby distributing the pulp to a more uniform wall thickness and expelling additional suspension from the article and mold. The formed article is then released from the mold and dried to remove any remaining liquid. Summary of the Invention [Problem to be solved by the invention]

[0004] The present invention relates to an advancement of the above-mentioned technology to improve the specifications of the resulting articles formed, or at least to provide an alternative to the public. The present invention is particularly suitable for producing bottles for holding liquids such as cleaning products and beverages. [Means for solving the problem]

[0005] In a broad embodiment of the present invention, a mold structure is defined according to claim 1. A corresponding system and method according to the present invention is defined in claim 13. Other useful configurations are outlined in the dependent claims. An embodiment of the present invention may also extend to the combination of a mold structure with a particular pulp slurry mixture.

[0006] The present invention contemplates ultimately producing an improved pulp bottle structure that is made into a single piece. Accordingly, novel bottles obtained by the present process are also contemplated. The process herein is primarily intended to form bottle-shaped articles, which also encompasses jars or similarly shaped closable containers.

[0007] The mold of the present invention is characterized by a substantial volume having at least two porous zones (e.g., and / or zones of variable permeability). For example, a first porous (or permeable) zone located on at least the article-facing surface of the mold may have a high density (i.e., less permeability and less total free space within its volume), and a second zone communicating with the first zone but remote from contact with the article may have a lower density (i.e., more permeability and more free space within its volume than the first zone). Each zone has a generally continuous porosity throughout its volume. A third zone and subsequent zones may communicate with at least two porous zones. Furthermore, the present invention is embodied by a first porous region located in contact with the article during molding and a second porous region remote from the first porous region, where the porosity varies throughout the volume of the mold. In other words, the mold defines a transitional volume between the first porosity and the second porosity.

[0008] In one aspect, the invention is embodied in a mold for forming a bottle-shaped article from a fiber suspension, the mold including a cavity in the negative shape of the bottle-shaped article to be formed, the mold configured to conduct the suspension of the fiber suspension through at least two regions of different porosity around the cavity, a first porous region having a porosity of 90% or less (preferably 70% or less) being a first layer comprising a substantial article-facing surface of the cavity, and a second porous region having a porosity greater than the first porous region being a second layer acting as a support structure for the first porous region. In a particular aspect, the mold is a 3D printed (or other form of additive manufacturing) removable insert, which may be block-shaped, for insertion into a mold block.

[0009] "Continuous porosity" in the context of the present invention refers to a volume / surface area of ​​a consistently and uniformly distributed pore structure, as opposed to a surface having a relatively small number of intermittent "pores" or channels through a mold from the entry side / article-forming surface to the exit side of the mold, for example of the type known from U.S. Pat. No. 5,629,499. The porosity between zones may be continuous in the sense that it changes gradually from one density to another, or it may change abruptly at their boundaries.

[0010] The present invention may alternatively or additionally be described in terms of the overall pressure drop and / or permeability through the mold. In other words, the present invention relates to a "variable permeable mold" that is designed with the flow characteristics therethrough in mind, for example, in combination with a particular concentration of slurry. The practical unit of permeability is the darcy (d), or more commonly, the millidarcy (md).

[0011] A particular advantage of this molding method is that it allows for multiple brand design options and surface features. In contrast, traditional square cartons can only be decorated by changing the ink color.

[0012] The method according to the present invention involves preparing a fiber suspension in a suspension. The preparation may include a tank for hydration in a shear or paddle mixer and a pulp quality refiner such as a valley beater. This step may be performed continuously in a process or batch. A concentrated form of the suspension may be prepared for dilution immediately prior to molding. The most effective concentration for delivery to the mold is expected to be less than 1%, e.g., about 0.7% fiber.

[0013] A two-part (or more than two-part) porous mold according to the present invention (configured with a negative 3D image of a desired molded article, such as a bottle) is continuously fed to a predetermined volume while the suspension is removed through the holes in the porous mold, for example, by vacuum / pump, differential pressure, or positive pressure. The predetermined volume may be monitored by measuring the weight of the suspension removed from the mold. As an example, 10 to 50 liters of process water may be collected in a tank outside the porous mold, leaving the pulp fibers on the mold surface.

[0014] After substantially all of the suspension has been removed, a pressure means, e.g., an impermeable surface (such as an inflatable bladder in a collapsed state), may be applied to the molded article to apply pressure to the interior walls of the article (e.g., pneumatic or hydraulic pressure; by inflation with air, water, or oil), thereby expelling additional suspension through the pores of the porous mold. The molded article is removed for drying.

[0015] The walls of the porous / permeable mold are preferably cleaned after removal of the article, for example, by inverting the discharged suspension back through the mold and / or by using a water jet on the mold walls. Cleaning removes residual fibers from the porous surface and reconditions the mold for repeated use. In particular, the permeability of the mold, which would otherwise be impaired after use, is restored.

[0016] The drying step of the method / system may utilize microwave energy, for example, in a continuous or batch delivery system. The article may be dried before or after the non-porous mold, or both.

[0017] A coating step may apply a protective layer to the surface of the molded article. For example, the coating step may involve spraying the base and sides of the molded article internally and / or externally.

[0018] After coating / drying, a closure element may be applied to the opening in the molded article. The closure element may include a neck fitment having an annular configuration that seals the opening.

[0019] The invention may be embodied by a system for forming a molded article, the system comprising a source of fiber suspension in a liquid suspension, a delivery line for delivering the fiber suspension to a porous mold according to the invention, a suction pump for removing the suspension through holes in the porous mold, and a pressure means for applying pressure to the inner wall of the article (e.g. an inflatable pressure member configured to be inserted into the mold in a collapsed state and then inflated).

[0020] The mold system designed to utilize the present invention is particularly beneficial because it can utilize a 3D printing process (in plastic) to manufacture the porous insert of the mold. In this way, rapid prototyping and development for process improvement can be achieved. The mold can also be made using other processes, such as other additive manufacturing techniques. [Brief explanation of the drawings]

[0021] [Figure 1] 1 illustrates a process for implementing a mold according to the present invention. [Figure 2] 1 illustrates a 3D porous mold according to the present invention. [Figure 3] 1 illustrates the molded article as it is removed from the 3D porous mold. [Figure 4] 1 shows an overall view of the mold and pulp dispensing nozzle. [Figure 5] 5 illustrates a side view and a cross-sectional elevation view of the pulp nozzle of FIG. 4. [Figure 6] 1 shows a close-up of the mold surface. [Figure 7] 1 illustrates a perspective view of a mold. [Figure 8] 8 illustrates a perspective view of the mold of FIG. 7. [Figure 9] 1 illustrates a diagram of the surface configuration of a mold. DETAILED DESCRIPTION OF THE INVENTION

[0022] The following description presents exemplary embodiments and, together with the drawings, serves to explain the principles of the present invention. However, the scope of the present invention is not intended to be limited to the precise details of the embodiments or to exact adherence to all features and steps, as variations will be apparent to those skilled in the art and are considered to be covered by the present description. Terms relating to components used in this specification should be given a broad interpretation that encompasses equivalent functions and features. In some cases, several alternative terms (synonyms) for structural features are provided, but such terms are not intended to be exhaustive.

[0023] Additionally, descriptive terms should be given the broadest possible interpretation. For example, when interpreting each statement herein containing the term "comprising," the term "comprising" means "consisting at least in part of," even though other features or features preceded by the term may also exist. Related terms such as "comprise" and "comprises" should be interpreted similarly. Directional terms such as "vertical," "horizontal," "up," "down," "upper," and "lower" are used for convenience of description, generally with reference to the drawings, and are ultimately not intended to be limiting, provided that equivalent functions can be achieved with alternative dimensions and / or orientations.

[0024] The descriptions herein refer to embodiments having specific combinations of steps or features. However, it is contemplated that further combinations and intercombinations of compatible steps or features between embodiments are possible. In fact, separate features may function independently as inventions from other features and do not necessarily require implementation as a complete combination.

[0025] To understand the context and use of a mold according to the present invention, Figure 1 outlines an example of a process for manufacturing a pulp article, such as a bottle, that includes preparing a pulp suspension, introducing it into a porous mold, and expelling the suspension therefrom.

[0026] In the first stage of pulping and storage, raw pulp fibers are rehydrated and passed between the plates of a valley beater 11. This process promotes fibrillation, i.e., the partial detachment of cell walls, resulting in the hairy appearance of the wet fiber surface. The resulting "hairs," also called fibrillation, increase the relative strength of the bonds between fibers in the dry product.

[0027] During this process, desired additives are used to modify the structure, strength, and molding properties of the bottle, potentially lowering costs. Sizing, fillers, and buffer additives can be evaluated as needed.

[0028] The treated pulp in concentrated form can be stored in vats 12 (vat) until needed, which reduces the total amount of storage space.

[0029] Dilution of the solid fibers in the aqueous suspension, e.g., 0.1-5%, less than 1%, most preferably 0.7%, is performed in mixing station 13 just prior to forming. Mixing at this stage ensures that the slurry is homogenized without altering the properties of the pulp. As shown, the air bubbles rise upward, displacing the slurry above them and pulling the bottom-level liquid upward.

[0030] Molding step 14 features tool 15 (e.g., a 3D-printed insert) in which two or more cooperating pieces are clamped together using a hydraulic ram to form a cavity in which the article is formed. Slurry is top-filled into tool 15 (with an inlet tube, described further below), as opposed to molding processes in which a mold is submerged in the slurry. The pulp slurry is then drawn under vacuum (or positive / differential pressure) through porous tool 15, similar to an injection molding machine, via line 16. Shot mass may be controlled by measuring (weighing) the mass / volume of water drawn into tank 17. Once the required mass is reached, the tool is opened to ambient air. A weight scale platform supporting tank 17 is visible in Figure 1.

[0031] The suspension drawn with the fiber suspension in line 16 is water. The water drawn under vacuum through line 18 into tank 17 is substantially free of fibers because some are left behind on the walls of porous tool 15. By way of example, drawing suspension 18 through mold 15 is continuous until a predetermined amount of water (e.g., 10 liters) is collected in tank 17.

[0032] The "article" in tool 15 is now in a shaped but wet form and is held against the inner walls of the mold.

[0033] A pressurizing means is activated to remove additional suspension (water) and solidify the 3D article shape. In the illustrated embodiment, a collapsible bladder 19 is inserted into the mold 15 to act as an internal high-pressure core structure for the tool. As previously mentioned, this process strengthens the wet "embryo" bottle so it can be handled (or transported by mechanized means) before drying, displacing water between the cellulose fibers and thereby improving the efficiency of the drying process. The bladder 19 is actuated using a hydraulic pump 20 with a cylinder that displaces fluid in line 21 into the bladder 19, expanding it and conforming it to the tool cavity. The fluid in line 21 is preferably incompressible, like water. The use of water has the advantage that any leak or rupture of the bladder does not introduce new material into the system (since the suspension is already water). Any bladder failure can be quickly cleaned up.

[0034] 2 and 3 show the exterior of a two-part mold block 14 that houses a porous mold 15 insert according to the present invention. A channel through block 14 communicates with the back of porous mold 15, providing a passageway for suspension liquid that is drawn through the mold via line 18, and also providing backflow during the washing step (described below).

[0035] Demoulding occurs when the forming tool 15 opens for removal of the self-supporting article 22 (illustrated in FIG. 3). A cleaning step 23 is performed to remove small fibers and maintain the porosity / permeability of the tool. In the illustrated embodiment, a high-pressure jet firing is inserted radially into the forming chamber while the tool is open. This removes surface fibers. Alternatively or additionally, water from tank 17 is pressurized through the rear of the tool 15 to remove trapped fibers. The water may be drained for circulation back to the upstream steps of the system. It is worth noting that cleaning is a critical step for conditioning the tool for reuse. The tool may appear visually clean after article removal, but without the cleaning step, its performance will be impaired.

[0036] The self-supporting article 22 may be transported for further processing, drying, etc., although such details are outside the scope of this disclosure.

[0037] 4 illustrates the mold casing 14 and the upper portion of the porous tool 15. It can be seen that the casing 14 includes a channel 24 for receiving a seal, and a fill tube 25 extends from a tool plug 26 to close the opening to the tool 15. The length of the tube 25 is sufficient to extend substantially within the open volume of the mold cavity 27, i.e., adjacent the shoulder region of the article.

[0038] The tube 25 overcomes problems associated with the buildup of pulp material around the neck. For example, without this fill tube, the pulp neck could be washed away by the incoming slurry, resulting in poor formation. It is apparent that the tube 25 provides a hard outer surface against which the pulp can pack and form the neck region of the formed article. The inner surface of the bottle neck is pressed against the outer surface of the tube 25.

[0039] FIG. 5 shows the internal details of the plug 26 and tube 25 , which may include threads for coupling to the fiber suspension delivery line 16 .

[0040] For example, the surface structure of a tool 15 made by additive manufacturing is illustrated by FIG. 6. The image shows the application of 3D printer software "slicer" to create holes in the tooling. The porous surface is composed of a criss-cross structure that resembles a relatively consistent mesh. The tool 15 includes a cut-away cavity 27 that provides a negative image of the shape the article walls will take. The porosity and permeability should be generally consistent across the cavity.

[0041] The interior surface 28 of the mold tool 15 as shown, i.e., the surface that comes into direct contact with the article to be formed, has a relatively high density of pores in accordance with this embodiment.

[0042] This high detail layer 28 serves as the first zone of the tool 15 and in the example shown is 5 mm thick around the entire outer body of the bottle.

[0043] Figure 7 zooms out from the image of Figure 6 to show a second zone 29 surrounding the first zone 28. The second zone 29 is a support layer of lower pore density that prevents the structure in intimate contact with the article from failing due to bladder expansion (19).

[0044] The first / inner layer 28 typically has a porosity of 40% to 70% and the second / outer layer 29 has a typical porosity of 80 to 90% to allow the suspension to be quickly pumped out of the mold from the fibers deposited against the cavity 27.

[0045] The illustrated embodiment is preferred for achieving the desired results in the molded article. However, the principles can be adapted to provide an additively manufactured mold (insert 14) with different porosity zones. For example, a mixture of high-density and low-density regions may contact the article during molding to provide different surface effects. In some future embodiments, three or more zones may be found to optimize the process. Furthermore, assuming good control over the 3D printing, the porosity may transition from a first porosity at the cavity / entrance surface to a second porosity at the exit surface.

[0046] Figure 8 is a cross-sectional view of the half mold shown in Figure 7. High density zone 28 is clearly seen as a layer relative to second zone 29, which forms the substantial volume of tool insert 15. Layer 28 includes lip 30, which forms a flange at the edge where the two halves of tool 15 meet. However, alternative configurations are possible in which layer 28 is completely contained within cavity 27. Additionally, there may be multiple cavities within a mold half to simultaneously produce more than one bottle from the same mold tool.

[0047] FIG. 9 shows the 3D printed textured porous surface of the bottleneck in more detail.

[0048] Tool 15 may include a neck insert associated with the closure of the molded article. For example, a ring structure may be separately formed from pulp fibers by a compression molding process and inserted into the mold to serve as a finishing step for the mouth of bottle 22, preferably providing a flat surface 39 onto which a heat-sealed film may be applied. However, such an option is not shown.

[0049] In summary, the present invention can be generally considered to be a mold (14) for forming an article from a fiber suspension. The mold includes a porous insert having a cavity (27) in the negative shape of the article to be formed and two regions (28, 29) of different porosity around the cavity (27). In use, the mold conveys a suspending fluid of the fiber suspension, for example, by a vacuum pump, through at least two regions of different porosity around the cavity, leaving a formed shape on the cavity. [Prior art documents] [Patent documents]

[0050] [Patent Document 1] European Patent Application Publication No. 1081285A1 [Patent Document 2] European Patent Application Publication No. 1195466A1 [Patent Document 3] European Patent Application Publication No. 2198088A1 [Patent Document 4] International Publication No. 2018 / 020219

Claims

1. 1. A mold for forming a bottle-shaped article from a fiber suspension, comprising: the mold includes a cavity in the negative shape of the bottle-shaped article to be formed; the mold is configured to transmit the fiber suspension through at least two regions of different porosity around the cavity; a first porous region having a first porosity of 90% or less is a first layer that includes a substantial article-facing surface of the cavity; and a second porous region having a second porosity greater than that of the first porous region is a second layer that functions as a support structure for the first porous region; the different porosities of the at least two regions transition from the first porosity at an entrance surface of the cavity to the second porosity at an exit surface of the cavity. Mold.

2. The mold of claim 1 including a third porous region.

3. 3. The mold of claim 1 or 2, wherein the mold is a removable insert for insertion into a mold block.

4. The mold of claim 3 , wherein the removable insert is 3D printed or made by another additive manufacturing technique.

5. A mold as described in claim 1, wherein the first porosity is 40% to 70% and the second porosity is 80% to 90%.

6. 6. A mold according to any one of claims 1 to 5, comprising two or more cooperating parts, each part comprising a portion of the cavity configured to open apart for removal of the molded article.

7. A mould according to any preceding claim, including an opening into the cavity for receiving a fibre suspension dispenser nozzle.

8. 8. The mold of claim 7, wherein in combination with a fiber suspension dispenser nozzle, the cavity is configured to mold a bottle including a neck, a shoulder, and a body, and the fiber suspension dispenser nozzle includes a tube extendable through the opening to a position adjacent to the shoulder.

9. 1. A method of forming an article, comprising: preparing a fiber suspension in a suspension; feeding the fiber suspension into a mould according to any one of claims 1 to 8; removing the suspension through the at least two regions of different porosity; applying pressure to the interior wall of the article to expel additional suspension through the at least two regions of different porosity; and removing the molded article from the mold. method.

10. 10. The method of claim 9, including cleaning the mold walls after removing the article.

11. 11. The method of claim 10, wherein the cleaning comprises the use of a water jet against the walls of the mold and / or back pumping the ejected suspension through the mold.

12. A method according to any one of claims 9 to 11, wherein the fibre suspension delivered to the porous mould comprises 0.1% to 1% solids, preferably 0.7% solids.

Citation Information

Patent Citations

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