Molded article having connecting elements

JP2024533925A5Inactive Publication Date: 2025-06-10PAPACKS SALES GMBH
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Patent Information

Application Number
JP2023575886
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Priority Date
2022-02-14
Filing Date
2022-06-08
Publication Date
2025-06-10
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

Existing containers made from fibrous materials lack reliable and permanent connections with connecting elements, resulting in low mechanical stability and non-biodegradability, which limits their airtightness and increases environmental impact.

Method used

A connecting element with a connecting wall featuring holes is integrated into the fibrous material during molding, allowing it to be firmly attached by depositing fibrous material around the connecting wall, using a suction mold process, and optionally coated with biodegradable materials to enhance strength and impermeability.

Benefits of technology

The solution provides a biodegradable container with high mechanical stability, airtightness, and reduced environmental footprint, achieved through flexible and cost-effective production methods using biodegradable materials and coatings.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to a moulded article made from a fibre material having a connecting element (11"'). To achieve a particularly secure fixation of the connecting element (11"') in the fibre material of the moulded article, the connecting element (11"') has a connecting wall (17) having a hole (18) through which the fibre material of the moulded article protrudes.
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Description

[Technical field]

[0001] The present invention relates to a moulded article made from a fibrous material having connecting elements.

[0002] The invention particularly relates to a receptacle made of a textile material and having a container with at least one opening and a cover for the opening, the container having a biodegradable or bioinert coating and an injection-molded connecting element locally reinforcing at least the area of ​​the opening, although the problem of fixed connection of the connecting element to a moulded article made of textile material is not limited to the application of local reinforcement of the container opening. [Background technology]

[0003] EP2573008B1 discloses a container, in particular a coffee capsule, formed from a paper material and having a flange at an open end. A reinforcing ring is arranged on the flange and extends radially from the flange, which may be glued or welded to a cover. The reinforcing ring is made of paper and / or another material, in particular including at least one resin or rubber.

[0004] DE 102019101545 A1 discloses a container, in particular a coffee capsule, having a cup-shaped container made of a textile material and which can be closed by a cover designated as a cap. At the opening, the container has a flange designated as an annular peripheral rim. The flange is surrounded by a reinforcing ring, in particular made of an uncoated cardboard material.

[0005] A container for holding cosmetic products is known from FR 2741042 A1. The container has a cup-shaped container and an injection-molded outer housing. The container is made in particular from polypropylene or another suitable material that does not react chemically with the contents of the container. The housing is made in particular from plexiglas or another material that combines an aesthetic impression with the technical properties required for the housing.

[0006] The containers known in the state of the art are not made exclusively from biodegradable components and their mechanical stability is relatively low. Summary of the Invention

[0007] The problem underlying the present invention is to reliably and permanently connect a molded article made of a fiber material with a connecting element, which can achieve the objective of providing a container made exclusively of biodegradable components, with high tightness and high mechanical stability, the manufacture of which is particularly flexible and cost-effective. However, the technique described herein is also advantageous for any other molded article made of a fiber material connected to any connecting element.

[0008] This object is achieved in that the connecting element has a connecting wall which has a hole through which the fibrous material of the moulding protrudes.

[0009] The connecting element may have a thin connecting wall in which several holes are arranged. The holes are preferably uniformly distributed over the surface of the connecting wall. In particular, the connecting wall may be in the form of a grid, whereby the area of ​​the holes is approximately equal to or greater than the area of ​​the web remaining between the holes. The connecting element may be inserted into a suction mold in which a moulded article is formed from the fibrous material. The suction mold is immersed in the pulp, i.e. in a mixture of fibrous material and water. Water is drawn through the porous walls of the suction mold, whereby the fibrous material is deposited in a layer on the surface of the suction mold. During this process, the connecting wall with holes is kept at a short distance, for example a distance of 1 mm, from the porous walls of the suction mold. In the region of the connecting wall of the connecting element with holes, the fibrous material is deposited around the connecting wall and protrudes from the openings, whereby the connecting element is firmly fixed to the resulting layer of fibrous material forming the moulded article. The drawn in fibrous material is pressurised, whereby the layer of formed fibrous material is dewatered together with the moulded part of the connecting element.

[0010] The connecting element may have any shape and fulfill any function. It may be made of any solid material, for example wood or light metal, but in particular made of biodegradable plastic. The connecting element has a part designed as a thin connecting wall with holes for fastening to the fiber layer of the fiber molding. The connecting wall may be embedded in the layer of fiber material of the fiber molding in the manner described above.

[0011] As mentioned above, the molded article made of fiber material is developed starting from the container. The container has a container made of fiber material with at least one opening and a cover for the opening, and the container can be a molded article made of fiber material according to the present invention and can have a biodegradable coating. Alternatively or additionally, the container can have a bioinert coating, in particular a SiO2 coating, deposited on the inside of the container by a sol-gel process. If the molded article made of fiber material does not have a sealing function, there can be no coating.

[0012] Molded articles, i.e., containers made of fibrous materials, may be produced from aqueous pulp containing cellulose fibers as described above. The cellulose fibers are brought into a mold for forming the molded article, for example by a simple sieving process using a suction mold. Water is sucked out through the pores of the suction mold, and the cellulose fibers are deposited on the surface of the suction mold with pores. In a transfer process, the molded article formed by the suction mold is transferred to a transfer mold, whereby the molded article is molded from both sides. Further heat treatment and pressure methods may be used to improve the surface quality of the molded article. The molded article thus formed, made of fibrous materials, is robust and dimensionally stable.

[0013] The container thus produced, made of a fiber material, may have an opening, a base opposite the opening, and a peripheral wall surrounding the opening and the base. The opening and the base may be, for example, circular, elliptical, or polygonal. A cover may be attached or attached to the opening of the container, whereby the opening of the container may be closed or closed. The cover interacts with the container such that the interior of the container is closed or may be closed from the environment. The cover may also be biodegradable.

[0014] The fiber material without coating has some gas and moisture. This is desirable or at least not disadvantageous in some applications of the molded article. One embodiment of the enclosure made from the fiber material described herein has a biodegradable coating, which increases the impermeability to gas and water, especially when the cover interacts with the enclosure. Coating of fiber materials is basically known in the prior art. The coating may be, for example, sprayed. Alternatively or additionally, the coating may be applied by immersing the fiber material in a coating bath and then drying it. For example, the applicant's publication WO2020 / 216719A1 discloses a biodegradable barrier coating on a cellulose substrate, which is well suited for coating the fiber material enclosure described herein.

[0015] A connecting element may be arranged on the receptacle, which may locally reinforce the receptacle at least in the region of the opening. That is to say, the receptacle and the connecting element may form a container that is locally reinforced at least in the region of the opening. The connecting element may be injection molded and / or made of a biodegradable material.

[0016] In other words, injection-molded connecting elements may be used that interact with the receptacle in such a way that the receptacle is particularly hard and dimensionally stable at least in the region of the opening. For this purpose, the material of the connecting elements has a higher strength than the fiber material from which the receptacle is formed. The container can therefore absorb higher mechanical loads overall than a receptacle without such connecting elements. The connecting elements may be made of biodegradable materials, so that the container may consist exclusively of biodegradable materials. Biodegradable means that the material can decompose under certain anaerobic or aerobic conditions. The biodegradable material of the connecting elements is also injection-moldable. In particular, it may be thermoplastic for this purpose. This means that the material from which the connecting elements are formed is flowable in the heated state and solidifies when cooled. Such a change in consistency is reversible in thermoplastic materials. Alternatively, the injection-moldable material may be flowable only during processing and irreversibly solidify in the injection-molded state in the manner of a duromer or elastomer. It is expressly pointed out that the injection-moldable material of the connecting elements may additionally or alternatively be printable, in particular 3D-printable, and / or have multiple parts. The fact that the material of the connecting elements is injection-moldable and / or printed means that different shapes can be cost-effectively produced using a single production system and, if necessary, adapted tooling, making the production of the connecting elements particularly flexible and cost-effective.

[0017] In practice, for example thermoplastically processable starch is suitable for forming connecting elements, as described in EP 0118240 A2 or EP 0397819 B1.

[0018] If the connecting element consists of several parts, different parts can be assembled according to a modular principle to form different connecting elements, which increases the flexibility and cost-effectiveness of production. In particular, if the connecting element is injection molded, a high surface quality of the connecting element is achieved and it can be easily reproduced.

[0019] On the other hand, the connecting elements may also be made from materials other than injection-moldable materials: the proposed connecting walls have holes through which the deposited fibrous material forming the moulded part protrudes, and can serve any purpose in the resulting fibrous material layer, securing the connecting elements.

[0020] In practice, the coating of the moulding, in particular of the housing, may be a primer comprising at least one of the following components: - cellulose fibres, - Casein, - Whey, - Agar, - Psyllium husk, - SiO2.

[0021] The primer may be applied to the surface facing the interior (inside) of the enclosure. Additionally or alternatively, the primer may be applied to the surface facing the exterior (outside) of the enclosure. As mentioned above, the coating improves the airtightness of the enclosure. It may also increase its strength.

[0022] The cellulose nanofibrils or microfibrils may be dissolved in water, for example, and sprayed onto the container. Nanocellulose has cellulose microfibrils with a median diameter in the range of 30-100 nm and / or cellulose nanofibrils with a median diameter in the range of 5-20 nm. Industrially available cellulose fibrils are often a mixture of microfibrils and nanofibrils. In practice, a mixture of 2% by weight of nanocellulose in 98% by weight of water has proven effective as a primer. If a higher content of cellulose is selected, deformation of the container due to moisture is reduced or avoided and the drying time of the primer can be shortened. In practice, a cellulose content of 2-10% by weight in the primer solution is suitable.

[0023] There are other organic materials used in the primer to increase the impermeability of the enclosure to gas penetration. For example, casein powder may be mixed with water and modified with calcium hydroxide. Casein increases the airtightness and mechanical strength of the enclosure. Casein modified with calcium hydroxide also becomes water repellent to some extent. It is also possible to modify casein with sodium bicarbonate, but this does not make it water repellent.

[0024] In practice, 30 g of casein powder was left to swell in 100 ml of water for about 8-10 hours, and then 30 g of calcium hydroxide was added and stirred. After adding another 50 ml of water, the solution was sieved and used for priming. This primer may be applied after a primer with cellulose fibers or as an alternative to a primer containing cellulose fibers. The primer may contain both cellulose fibers and casein.

[0025] Whey is also suitable as a component of the primer. It can be denatured by heat (90-100°C). Whey as a component of the primer also increases the strength of the coated enclosure. The whey coating itself is not water repellent and therefore must be made water resistant by a second coating.

[0026] Finally, gel-forming ingredients such as agar (gelatin from algae) or psyllium husk (seed husk of the plantago species Plantago indica and Plantago afra) are suitable for addition to the primer. For this purpose, for example, agar powder is mixed with water and denatured at 100°C for 1 minute. It solidifies into a gel when cooled. The gel can be applied to the recess, forming a thin layer that seals the pores of the fibrous material, increases its strength and repels water.

[0027] A similar effect can be achieved by soaking crushed psyllium husk in water and allowing it to swell for about 20 minutes before applying it to the container.

[0028] As mentioned above, the components of the primer may be combined, dissolved in water and applied as a mixture. However, the primer can also be applied to the housing in several layers of different components. All of the possible components of the primer mentioned above are biodegradable.

[0029] A coating of silicon dioxide SiO2 may also be applied. This is particularly dense and resistant. Depending on the degree of modification or ordering of the silicon dioxide, it is only slightly soluble in water. In any case, it is bioinert, i.e. there is no chemical and / or biological interaction between the silicon dioxide and other substances. The coating may be deposited on the inside of the container, for example, using a sol-gel process. The coating may be applied only to the container or to the container and the connecting element simultaneously.

[0030] In practice, the material of the connecting elements may be water-soluble and / or compostable. Water-soluble means that the connecting elements dissolve in water within one week, preferably within one day, particularly preferably within a few hours. This means that the connecting elements can be biodegraded particularly quickly. The polymer is compostable according to the European standard EN13432 if it is converted into CO2 by microorganisms in an industrial composting plant within 6 months, where the initial mass contains a maximum of 1% additives classified as non-hazardous. Preferably, not only the connecting elements are compostable, but also all parts, i.e. the connecting elements, the container and possibly the cover. In practice, all parts may be compostable without industrially defined conditions. This means that composting is possible even without an industrial composting plant. Even if the fiber moldings and the connecting elements are not disposed of with the separated compost waste but are released into the environment, they decompose within a few months. In contrast, most compostable polymers, including the frequently used polylactides, are usually only biodegradable under industrially defined conditions or over long periods of several years. Therefore, the ecological footprint of moldings and connecting elements made from fibrous materials is significantly smaller than that of containers made from many other materials with similar mechanical stability.

[0031] A connecting wall with holes can achieve a particularly stable positive-locking connection. If the moulding made of the fibre material is designed as a receptacle with an opening and the connecting element has a connecting wall with holes surrounding the opening of the receptacle and through which the fibre material of the receptacle protrudes, the connecting element is fixed in the area of ​​the opening. The connecting element can have an annular thin connecting wall in which the holes are arranged. In particular, the connecting wall can be lattice-like, whereby the area of ​​the holes is approximately equal to or greater than the area of ​​the web remaining between the holes. The connecting element can be inserted into a suction mould in which the receptacle is formed from the fibre material. As a result, the connecting wall has a short distance of, for example, 1 mm from the porous wall of the suction mould. Water is sucked out of the pulp through the porous wall of the suction mould, whereby the fibre material is deposited on the porous wall of the suction mould. In the area of ​​the connecting wall with holes of the connecting element, the deposited fibre material protrudes from the holes, thereby firmly fixing the connecting element in the resulting pulp layer forming the receptacle. When pressing the accumulated pulp, the pressing is carried out, for example, by means of an inflatable pressing tool which presses against the inside of the formed cavity of fibrous material, thereby dewatering the cavity wall made of fibrous material having the molded portion of the connecting element.

[0032] Also, the fibrous moulding can be pressed with the connecting element at a temperature at which, in the case of a thermoplastic connecting element, the injection moulded material softens or melts on its surface and penetrates into the pores of the fibrous material.

[0033] If the fiber moldings and the connecting elements form a container with a cover, the cover of the container may in fact be designed as a sealing film. The sealing film may consist of a densely coated fiber material. They are on the other hand thin, flexible and airtight. In particular, the coating of the sealing film may be identical to the coating of the container. However, it may also have a different composition. If the coating of the cover is identical to the coating of the container and / or if these two coatings are dissolved using the same solvent, the container and the cover can be particularly easily and firmly connected by a bonding material. For example, a coated and not yet completely dried cover may be applied to the opening of the container so that the opening is completely covered. The container and the cover may then be pressed against each other, whereby the coating of the container dissolves and later dries together with the coating of the cover. By covering and connecting in this way, the material consumption of the container is minimized, and only a few different materials are required, which is advantageous for biodegradability and / or compostability.

[0034] Additionally or alternatively, the cover may be made from the same material as the connecting element. In this case, the cover may be a cap, in particular a screw-on cap. The cap covers the opening of the container, may be removed from the opening and may be reattached. For this purpose, the cover is positively connected to the container and / or the connecting element, for example by screwing a cover with an internal thread onto an external thread of the container or the connecting element. Of course, a positive connection may also be achieved by other suitable design means, for example a latch-like projection and a complementary receiving part or a bayonet clasp. If the cover, like the connecting element, is made from an injection-molded material, the container is particularly robust and leak-proof.

[0035] Of course, the container may also have multiple covers, for example a sealing film as described above, and further a cap arranged on the top end which is screwed onto a recess or a connecting element.

[0036] In practice, the primer is the first coating and the moulding / enclosure may have at least a locally applied coating. The second coating may be applied to the primer. If the primer is applied only to one side of the enclosure, i.e. the inside or the outside, the second coating may also or alternatively be applied to the side of the enclosure not to which the primer is applied. The second coating may increase the tightness and / or strength of the enclosure. In particular, the second coating may be applied to the enclosure in such a way that the strength of the enclosure is increased at least in the areas where the connecting elements and / or covers are not arranged. Due to the increased strength, the enclosure can better absorb high or cyclic loads from the connecting elements and / or covers, especially in this area.

[0037] In practice, the second coating may be made from linseed oil, carnauba wax, and / or beeswax, i.e. natural waxes and / or oils / fats, which consist mainly of esters of fatty acids and are readily biodegradable as oil-soluble products according to the CEC-L-33-A-93 test method.

[0038] Linseed oil is used to improve the malleability of the oil / wax mixture that forms the second coating and to minimize brittleness after drying. Pure linseed oil of medicinal grade, i.e. fully clarified, should be used. Linseed oil is one of the few hardened oils and has been used for centuries to impregnate wood. However, linseed oil coatings alone are porous, i.e. water and air can pass through to some extent, and are not suitable for permanently waterproof food packaging.

[0039] Carnauba wax is a very hard tropical wax with a high melting temperature (approximately 85-89°C). It has almost no odor or flavor of its own and is water resistant. It is extremely brittle when dry and hardens within seconds. Due to its hardness, it is also extremely resistant to abrasion. It is approved for food packaging and has long been used as a coating to extend the shelf life of e.g. mangoes, sweet foods, etc.

[0040] Beeswax is produced in Europe, among other places, and is not as hard as carnauba wax. Beeswax helps reduce brittleness in mixtures with carnauba wax. It has little odor or flavor of its own and is approved for use in food combinations. Its melting point is about 65°C.

[0041] In practice, the connecting element may be designed as a reinforcing ring. The reinforcing ring may have an axially extended portion in the form of a sleeve or a pipe section. The extended portion may form a connecting wall, for example with a hole. The reinforcing ring may be embedded with the extended portion, in particular in the peripheral wall of the receiving part. This allows the connecting element to fit more closely into the receiving part.

[0042] In practice, the receptacle may have a flange, which is integrally formed with the receptacle of coated fibre material, and in particular, the flange may run around the peripheral wall in the area of ​​the opening, thereby providing a large surface on which the cover can be attached.

[0043] If the container has a flange and the connecting element is designed as a reinforcing ring, the reinforcing ring may be located on the side of the flange facing the base of the container or on the side of the flange facing it (i.e. the side facing upwards). Such a design of the fiber molding and the connecting element is particularly suitable for packaging, for example, for the powder part of a beverage, in particular as a coffee capsule. The adjacent area of ​​the flange and the container is mechanically reinforced by the reinforcing ring. Such reinforcement is particularly advantageous for coffee capsules with a container made of fiber material, since the gripping mechanism of the coffee machine for the coffee capsule engages with the flange in order to move the coffee capsule from the first position to the second position. The reinforcing ring on the flange provides the necessary strength for the coffee capsule made of fiber material.

[0044] The coffee portion packs in the form of capsules made of fiber mouldings with connecting elements as described herein have a high degree of impermeability, which is much higher than that of conventional coffee pods made of uncoated cellulose fibres, and a better environmental compatibility than conventional aluminium coffee capsules. As a result, coffee can be stored for long periods without generating large amounts of waste. The coffee capsules described herein are made exclusively of natural raw materials and are easily biodegradable and / or compostable.

[0045] Of course, it is also possible to form the fiber moldings with the above-mentioned connecting elements as containers with a resealable screw cap and fill them with cosmetic products, for example creams, or non-perishable products, for example screws.

[0046] The invention also relates to a method for producing a moulded article with connecting elements according to claims 8 to 12. In the case of a container comprising a recess made of a fibre material, the cover and the biodegradable coating, the connecting elements arranged on the recess may be made of a biodegradable material and reinforce the recess at least locally. The method may comprise at least one of the following method steps: - sucking the fibrous material from the pulp using a suction mould and compacting it into a pocket of fibrous material; - dehydrating and drying the storage compartment; - coating the container with a primer; - producing, in particular injection moulding, the connecting element, - Steps to install the cover.

[0047] For details of each of the process steps, reference is made to the above description of the features presented herein, the advantages mentioned in connection with these features apply accordingly to the method.

[0048] As mentioned above, when the moulding forms a recess, the recess may have two coatings. In particular, the second coating is applied by immersing the recess in a warm bath of natural wax and / or oil or fat. The immersed recess is then hot pressed and cooled. Hot pressing of the impregnated recess fixes its shape and allows the second coating to penetrate into the unfilled pores of the fibre material.

[0049] Further practical embodiments and advantages of the invention are described below in conjunction with the drawings. [Brief description of the drawings]

[0050] [Figure 1] 1 shows a container according to the invention in an embodiment as a coffee capsule in an exploded view in vertical section without the connecting wall with the hole. [Diagram 2] The container of FIG. 1 without the cover is shown in an oblique view from above. [Diagram 3] The vessel in FIG. 1 is shown as an oblique view from below. [Figure 4] A second embodiment of the container as a jar for cosmetic products is shown in an exploded view in vertical section, also without the connecting wall having the hole. [Diagram 5]A container of a third embodiment as a jar for cosmetic products is shown again in an exploded view in vertical section without the connecting wall with holes. [Figure 6] FIG. 2 shows a side view of a connecting element with connecting walls and an opening for a molding made of a fiber material designed as a container. [Figure 7] 7 shows a cross-sectional view of the connecting element of FIG. 6 along section line VII-VII. [Figure 8] 8 shows a bottle-shaped embodiment of the fiber molding with the connecting element of FIG. 6 and FIG. 7 with a cover. [Figure 9] 9 shows an enlarged plan view of a cross section of a suction mold for producing the bottle of FIG. 8. [Figure 10] 10 shows a cross section of the suction mold of FIG. 9 into which the connecting element of FIG. 6 and FIG. 7 made from injection molded material has been inserted. [Figure 11] 10 shows a cross section of the aspirated mold of FIG. 9 with a connecting element inserted and a fiber layer aspirated. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0051] In figures 1 to 3 a container 1 designed as a coffee capsule is shown. The container 1 has a storage part 2 and is essentially rotationally symmetric. It has a base part 3 and a peripheral wall 4 surrounding the base part 3. A central rotationally symmetric recess 5 with a perforated area 6 is formed in the base part 3, which is rotationally symmetric and located in the center of the recess 5. The perforated area is intended to be pierced by at least one needle in order to allow the liquid supplied to the container 1 under pressure to escape. The recess 5 is oriented towards the inside of the storage part, i.e. towards an opening 7 of the storage part 2 facing the base part 3. The storage part 2 has at the opening 7 a flange 8 which surrounds the opening 7 and the peripheral wall 4 in a rotationally symmetric manner. The flange 8 extends radially outwards from the peripheral wall 4 and is oriented essentially parallel to the base part 3.

[0052] The housing 2 having a base 3, a peripheral wall 4 and a flange 8 is integrally formed from a fibrous material. A primer (not shown) is applied to the inner side 9 of the housing 2 and to the upwardly facing surface of the flange 8 facing the interior of the housing. The primer may be formed, for example, from cellulose and casein and is biodegradable, however, the primer may additionally or alternatively contain other biodegradable components, for example whey, agar, and / or psyllium husk. The primer increases the airtightness and mechanical stability of the housing 2.

[0053] As shown in Figure 1, the opening 7 is covered by a cover 10, which is designed as a sealing film. The sealing film 10 is flexible and airtight. The sealing film 10 is fixed in place on the flange 8, thereby sealing the interior of the housing from the environment. To be fixed on the flange, the sealing film 10 has on its surface oriented towards the flange 8 the same coating (not shown) as the inside 9 of the housing and the upwardly facing surface of the flange 8. The coatings of the sealing film 10 and the flange 8 are bonded to each other.

[0054] In the region of the opening 7, the container 1 has an injection-molded connecting element 11, which is made of a water-soluble and biodegradable thermoplastic resin. The biodegradable thermoplastic resin may be a thermoplastically processable starch as described in publications EP 0118240 A2 or EP 0397819 B1. The connecting element is designed as a reinforcing ring 11 with a vertical ring portion 12 and a horizontal ring portion 13. By means of the vertical ring portion 12, the reinforcing ring 11 is located on the outside of the upper part of the peripheral wall 4. As can be clearly seen in FIG. 3, a notch 14 is arranged on the vertical ring portion 12, by means of which the coffee capsule 1 is locked in a holding device (not shown) of the coffee machine. The vertical ring portion 12 may be designed as a connecting wall with a hole or may be embedded in the fiber material during the production of the fiber material molding (receptacle 2) in a fiber molding process.

[0055] The horizontal ring portion 13 projects radially outward from the upper end of the vertical ring portion 12 beyond the flange 8. A radial recess is formed in the upper end of the horizontal ring portion 13 for receiving the flange 8. The flange 8 and the horizontal ring portion 13 are complementary in design, and the flange 8 and the horizontal ring portion 13 terminate in a common plane. The flange 8 is completely surrounded by the horizontal ring portion 13 and the sealing film 10.

[0056] The sealing film and the reinforcing ring may be bonded to one another by an adhesive, preferably a biodegradable adhesive.

[0057] For a connection conforming to the form between the connecting element 11 and the storage part 2 shown here, it is alternatively possible to connect the connecting element 11 to the storage part 2 by injection molding the connecting element 11 into the storage part 2.

[0058] In Fig. 4 an alternative embodiment of the container 1' is shown as a jar for holding cosmetic products. Unless otherwise indicated, the structural elements in Fig. 4 are given the same reference symbols as those described above, with a single dash to distinguish them from the structural elements of the coffee capsule. The jar 1' has a container 2' with a base 3', a peripheral wall 4', a central recess 5' in the base 3', an opening 7' facing the base 3', and a flange 8' extending radially outward from the peripheral wall 4'. The jar 1' is essentially rotationally symmetrical. It should be noted that, although not shown, a primer made of a biodegradable material is also applied to the inside 9' of the container 2', which increases its airtightness and mechanical stability.

[0059] The cover of the jar 1' shown here is designed as a cap 10'. To attach the cap 10' to the receptacle 2' and to reinforce the receptacle 2' in the area of ​​the opening 7', a two-part connecting element 11' is positively connected to the receptacle 2'.

[0060] The two-part connecting element 11' consists of a lower support ring 11'a and an upper screw ring 11'b. As described above in connection with the coffee capsule 1, the lower support ring 11'a is located on the outside of the peripheral wall 4' by means of a vertical ring portion 12' and on the flange 8' by means of a horizontal ring portion 13'. The vertical ring portion 12' may be designed as a connecting wall with a hole or may be embedded in the fiber material during the manufacture of the fiber material molded body (receptacle 2') in a fiber molding process. The horizontal ring portion 13' projects radially beyond the flange 8'. The horizontal ring portion 13' also has a recess at its end oriented towards the cap 10', in which the flange 8' is received. That is to say, the surface of the flange 8' oriented towards the cap 10' and the surface of the horizontal ring portion 13' oriented towards the cap 10' are coplanar. The upper screw ring 11'b has the same outer diameter as the lower support ring 11'a. The inner diameter of the upper screw ring 11'b essentially corresponds to the diameter of the opening 7'. The upper screw ring 11'b is attached to a horizontal ring portion 13' of the lower support ring 11'a, which extends radially beyond the flange 8', so that the flange 8' is surrounded by the horizontal ring portion 13' of the lower support ring 11'a and the upper screw ring 11'b. To attach the two-part connecting element 11' to the housing 2', for example, the lower support ring 11'a may be pressed from below, i.e. past the base 3' and past the peripheral wall 4' of the housing 2', until the lower support ring 11'a comes into contact with the flange 8' and the upper screw ring 11'b is pressed from above against the flange 8' and the lower support ring 11'a. A tongue and groove connection 15' between the lower support ring 11'a and the upper screw ring 11'b may form a positive connection. The grooves and tongues of the tongue joint 15' are latched or glued together. After joining, the lower support ring 11'a and the upper screw ring 11'b are flush with each other in the radially outward direction.

[0061] The cap 10' can be connected to and removed from the upper threaded ring 11'b via a threaded connection 16'. For this purpose, an external thread is arranged on the upper threaded ring 11'b and an internal thread is arranged on the cap 10'. When the cap 10' and the upper threaded ring 11'b are screwed together via the threads 16', the cap 10' and the upper threaded ring 11'b are radially flush on the outside and the inside of the housing is hermetically sealed against the environment. When the cap 10' is unscrewed relative to the upper threaded ring 11'b, the inside of the housing communicates with the environment via an opening in the upper threaded ring 11'b.

[0062] FIG. 5 shows a further alternative embodiment of a container 1″ as a jar for holding a cosmetic product. Unless otherwise indicated, the structural elements in FIG. 5 are given the same reference symbols as those described above and are given a double prime to distinguish them from other embodiments. The jar 1″ has a base 3″, a peripheral wall 4″, a recess 5″ in the base 3″, an opening 7″ facing the base 3″ and a recess 2″ having a flange 8″ extending radially outwardly from the peripheral wall 4″. The recess 2″ is slightly wider in the region of the opening to accommodate a connecting element 11″. The jar 1″ is essentially rotationally symmetrical. Although not shown, a primer made from a biodegradable material is also applied to the inside 9" of the container 2", which increases its airtightness and mechanical stability. A connecting element 11" in the area of ​​the opening 7" is made from two parts and is form- and material-compatible connected to the container 2'. The cover of the jar 1" shown here is also designed as a cap 10", which interacts with the connecting element 11".

[0063] The two-part connecting element 11" consists of an inner support ring 11"a and an outer threaded ring 11"b. The inner support ring 11"a has a vertical ring portion 12" and a horizontal ring portion 13", the latter surrounding the vertical ring portion 12" approximately halfway and at a right angle to the outside. In the region above the horizontal ring portion 13", the vertical ring portion 12" has an external thread 16"a. The region of the vertical ring portion 12" below the horizontal ring portion 13" has an essentially smooth cylindrical outer surface complementary to the surface of the widened region of the receptacle 2". The inner support ring 11"a is thus inserted into the receptacle 2". The inner support ring 11"a is located inside the peripheral wall 4" by means of a vertical ring portion 12" and on the flange 8" by means of a horizontal ring portion 13". The abutting surfaces are bonded to one another to ensure a high level of tightness and mechanical stability. The bond can be achieved, for example, by fitting the housing 2" and the vertical ring portion 12" to one another and pressing them together at a temperature at which the injection-molded material softens or melts. The molten material of the vertical ring portion 12" can then adhere to the housing 2" and penetrate its pores. The bond is however optional and a secure joint can be achieved, for example, by means of a pressurized water heater. This may be achieved by a press fit. Instead of inserting the inner support ring 11"a into the housing 2", the vertical ring portion 12" below the horizontal ring portion 13" may be designed as a connecting wall with a hole and embedded in the fiber material of the housing wall during production of the fiber material molding (housing 2') by means of a fiber molding process. Radially outwardly, the horizontal ring portion 13" is flush with the flange 8". The inner diameter of the upper threaded ring 11'b essentially corresponds to the diameter of the opening 7'. The area of ​​the vertical ring portion 12" with the external thread 16"a protrudes upwards from the housing 2".

[0064] The outer threaded ring 11"b has on its inwardly facing side an internal thread 16"b which is complementary to the external thread 16"a of the inner support ring 11"a. The outer facing surface of the outer threaded ring 11"b is smooth cylindrical and its diameter is smaller than that of the horizontal ring portion 13". Thus, when the outer threaded ring 11"b is screwed onto the inner support ring 11"a, the horizontal ring portion 13" protrudes radially beyond the outer threaded ring 11"b.

[0065] The cap 10" has a curved upper surface 10"a and a ring portion 10"b surrounding it. The inner diameter of the ring portion 10"b corresponds to the outer diameter of the outer threaded ring 11"b. This means that the cap 10" is fitted onto the outer threaded ring 11"b from above and removed again.

[0066] In such a case, the cap 10', 10", the lower support ring 11'a, the inner support ring 11"a, the upper screw ring 11'b and the outer screw ring 11"b are injection molded from a water-soluble and compostable thermoplastic resin. As an alternative to the conformal connection between the two-part connecting element 11', 11" and the housing 2', 2" shown here, the connecting element 11', 11" can be connected to the housing 2', 2" by integrally forming the connecting element 11', 11" and / or by injection molding the connecting element 11', 11" into the housing 2', 2".

[0067] 6 and 7 show a side view and a longitudinal section of a further embodiment of the connecting element 11''', and in FIG. 8 a container 1''' designed as a bottle with a connecting element 11''' and a container 2'''. The upper part of the connecting element 11''' again has an external thread 16''' onto which a cover 10''' is screwed in the form of a screw cap. The container 2''' can hold, for example, a beverage, a detergent or any other liquid, gel or powdery material. The container 1''' is tightly sealed by the screw cap 10'''. To ensure that the connecting element is connected particularly tightly and permanently to the container 2''', it has a thin, annular connecting wall 17 below the external thread 16''' which surrounds the opening 7''' of the container 2'''. The connecting wall 17 is provided with a number of holes 18, between which there are webs which form the connecting wall 17.

[0068] 9 to 11 show the top of a multi-part suction mold 19 with a porous wall 20 for producing the container of FIG. 8. The suction mold 19 has two, three, four or more parts to allow the removal of the moulded article formed in the suction mold 19. The porous wall of the suction mold is realised in a conventional manner by a base body made of plastic or metal with suction channels into which sieve-like structures are inserted to form the porous wall. In the embodiment shown, the porous wall 20 of the suction mold 19 is produced by means of a 3D printing process, whereby liquid-permeable channels are embedded in the material of the porous wall 20.

[0069] The suction mould 19 has an upper receiving part 21 for the injection moulded connecting element 11"'. To produce the pulp container 2"', the connecting element 11"' is inserted into the receiving part 21 of the suction mould 19 in such a way that the connecting wall 17 of the connecting element 11"' has a small distance d of the order of 1 mm from the porous wall 20 of the suction mould 19. The suction mould 19 is then immersed in the pulp and water is sucked out through the porous wall 20, whereby a layer of fibre material 22 is deposited on the porous wall 20 of the suction mould 19. The fibre material 22 permeates through the holes 18 in the connecting wall 17 of the connecting element 11"' and protrudes through the holes 18.

[0070] In practice, the fibrous layer of the container 2''' is then consolidated by pressing an inflatable pressure tool (not shown) against the inside of the accumulated fibrous layer, which causes it to be dewatered and consolidated, tightly enclosing the webs between the holes 18 of the connecting wall 17.

[0071] The container is shown in the figure with rotational symmetry. The opening has a circular, well-defined cross section. A person skilled in the art will recognize that the container and its opening may have shapes that deviate from circular. For example, the container and its opening may be rectangular. In this case, the connecting element also has the shape of a square ring surrounding the square opening.

[0072] The features of the invention disclosed in this specification, in the drawings and in the claims are essential, both individually and in any combination, for the realization of the invention in its various embodiments. The invention is not limited to the described embodiments. The invention may vary within the scope of the claims and in the light of the knowledge of a person skilled in the art. [List of reference numbers] 1 container, coffee capsules 2 Molded products made from textile materials, storage parts 3 Base 4 Periphery Wall 5. Recess 6 Drilling area 7 Storage compartment opening 8 Flanges 9 Inside the storage area 10 Cover, sealing film 11 Connecting element, reinforcing ring 12 Vertical ring section 13 Horizontal ring part 14 Notch 1' Container, cream jar 2' Molded article made of fiber material, storage part 3' base 4' Perimeter wall 5' Recess 7' Storage compartment opening 8' flange 9' Inside the storage area 10', 10"' Covers, Caps 11' Two-part connecting element 11'a Bottom Support Ring 11' Upper Screw Ring 12' Vertical Ring Section 13' Horizontal ring section 15' Fruit Joint 16' Screw connection 1” container, cream jar 2” Molding made of textile material, housing 3” base 4” Perimeter Wall 5” recess 7” storage opening 8” flange 9” Inside storage compartment 10” Cover, Cap 10”a Coverage Area 10”b Ring part 11” 2-piece connecting element 11”a Inner Support Ring 11”b outer threaded ring 12” Vertical Ring Section 13” horizontal ring section 16” threaded connection 16”a External Thread 16”b internal thread 1" container, bottle 2"' Molded product made of textile material, housing 7" opening 11"' connecting element 17 Connecting wall 18 holes 19 Suction Mold 20 Receptor 21 Porous Walls 22 Textile materials d Distance

Claims

1. A molded article (2”’) made of a fiber material having a connecting element (11”’), wherein the connecting element (11”’) has a connecting wall (17) having a hole (18) through which the fiber material of the molded article (2”’) protrudes, characterized in that it is a molded article made of a fiber material.

2. The following configurations, ・ The molded article (2”’) is a storage part (2”’) having at least one opening (7”’), ・ The connecting wall surrounds the opening (7”’), ・ The storage part (2”’) has a cover for the opening (7”’), ・ The storage part (2”’) has a biodegradable or biocompatible coating, ・ The connecting element (11”’) is injection molded, ・ The connecting element (11”’) is made of a biodegradable material, ・ The connecting element (11”’) locally reinforces at least the area of the opening (7”’) of the storage part (2”’), The molded article (2”’) made of a fiber material according to claim 1, characterized by having at least one of the above.

3. The coating is composed of the following components, - Cellulose fiber, - Casein, - Whey, - Agar, - Banana peel, - SiO 2 The molded article (2”’) made of a fiber material according to claim 2, characterized in that it is a primer containing at least one of the above.

4. The cover (10) has the following configurations, ・ Consisting of a sealing film, ・ Made of the same material as the connecting element (11”’), The molded article (2”’) made of a fiber material according to claim 2, characterized by having at least one of the above.

5. The molded article (2”’) made of a fiber material according to claim 2, characterized by having at least locally formed a second biodegradable coating.

6. The second coating is composed of the following components, ・ Linseed oil, ・ Carnauba wax, ・ Beeswax The molded article (2”’) made of a fiber material according to claim 5, characterized by containing one of the above.

7. The molded article (2”’) made of a fiber material according to claim 1, characterized in that the connecting element is designed as a reinforcing ring (11”’).

8. The following steps, Inserting a connecting element having a connecting wall with holes into a suction mold in which a molded article is formed from a fiber material such that the connecting wall has a short distance from the porous wall of the suction mold; Suctioning fiber material from pulp through the porous wall of the suction mold such that the fiber material is deposited on the porous wall and the deposited fiber material protrudes through the holes of the connecting wall, thereby firmly fixing the connecting element to the obtained layer of fiber material; A method for manufacturing a molded article made of a fiber material having a connecting element, characterized by the above.

9. The method according to claim 8, characterized in that the suctioned fiber material is pressurized and dehydrated.

10. The following steps: - Consolidating the fiber material into a storage part; - Dehydrating and drying the fiber material; - Coating the fiber material with a primer; - Injection molding the connecting element; - Attaching a cover The method according to claim 8, characterized by at least one of the above.

11. The method according to claim 10, characterized in that the molded article is coated with a second coating, hot pressed and cooled.

12. The method according to claim 8, characterized in that the molded article is coated together with the connecting element.