Screw cap

A pulp-based screw cap with a specific composition and molding process addresses the environmental issues of plastic caps by being recyclable and offering enhanced sealing and airtightness.

JP2026079690APending Publication Date: 2026-05-15DAIHO INDUSTRIAL CO LTD
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
DAIHO INDUSTRIAL CO LTD
Filing Date
2025-06-20
Publication Date
2026-05-15

AI Technical Summary

Technical Problem

Existing screw caps made of plastic are not environmentally friendly and lack recyclability, necessitating the development of a sustainable alternative.

Method used

A screw cap composed primarily of pulp and a binder, with a specific ratio of pulp to binder, fiber length and width, and containing certain binders, is injection molded to achieve recyclability and functionality.

Benefits of technology

The pulp-based screw cap is highly recyclable, provides a paper-like texture, exhibits a large opening-to-closing torque ratio for anti-loosening, and ensures excellent sealing and airtightness.

✦ Generated by Eureka AI based on patent content.

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Abstract

This product offers a revolutionary screw cap that is highly recyclable as a paper product while also being usable in the same way as conventional plastic caps. [Solution] A screw cap comprising pulp and a binder, wherein the ratio of the pulp to the binder is pulp:binder = 50% by mass or more and 80% by mass or less:20% by mass or more and 50% by mass or less.
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Description

Technical Field

[0001] The present invention relates to a screw cap.

Background Art

[0002] For example, screw caps used for PET bottles, glass bottles, etc. as disclosed in Patent Document 1 are generally made of plastic (made of polyethylene or polypropylene). However, due to the increasing awareness of environmental issues in recent years, alternatives to other materials with better environmental and recyclable properties are being considered.

Prior Art Documents

Patent Documents

[0003]

Patent Document 1

Summary of the Invention

Problems to be Solved by the Invention

[0004] The present invention has been made in view of the above-described current situation, and aims to provide a novel screw cap that is mainly composed of pulp, can be recycled well as a paper product, and can be used in the same manner as a conventional plastic cap.

Means for Solving the Problems

[0005] The gist of the present invention will be described.

[0006] A screw cap containing pulp and a binder, characterized in that the ratio of the pulp to the binder is pulp:binder = 50% by mass or more and 80% by mass or less: 20% by mass or more and 50% by mass or less.

[0007] Furthermore, the screw cap according to claim 1 is characterized in that the pulp has a fiber length of 0.3 mm or more and 2.5 mm or less and a fiber width of 15 μm or more and 32 μm or less.

[0008] Furthermore, the screw cap according to claim 2 is characterized in that the pulp includes dry-fiberized wood pulp.

[0009] Furthermore, the screw cap according to claim 1 is characterized in that the binder contains at least one of the following: starch, polyvinyl alcohol, carboxymethylcellulose, hydroxyethylcellulose, methylcellulose, and polysaccharides extracted from seaweed.

[0010] Furthermore, the screw cap according to claim 2 is characterized in that the binder contains at least one of the following: starch, polyvinyl alcohol, carboxymethylcellulose, hydroxyethylcellulose, methylcellulose, and polysaccharides extracted from seaweed.

[0011] Furthermore, the screw cap according to claim 3 is characterized in that the binder contains at least one of the following: starch, polyvinyl alcohol, carboxymethylcellulose, hydroxyethylcellulose, methylcellulose, and polysaccharides extracted from seaweed.

[0012] Furthermore, the screw cap according to any one of claims 4 to 6 is characterized in that the binder contains at least one of alginic acid, carrageenan, and agar as polysaccharides extracted from seaweed.

[0013] Furthermore, the present invention relates to a screw cap according to any one of claims 1 to 6, characterized in that the surface roughness Ra is 1 μm or more and 20 μm or less.

[0014] Furthermore, the screw cap according to claim 7 is characterized in that the surface roughness Ra is 1 μm or more and 20 μm or less.

[0015] Furthermore, the screw cap according to any one of claims 1 to 6 is characterized in that it is formed by injection molding a molding material containing the pulp and the binder in the aforementioned proportions and having a moisture content of 20% by mass or more and 60% by mass or less.

[0016] Furthermore, the screw cap according to claim 7 is characterized in that it is formed by injection molding a molding material containing the pulp and the binder in the aforementioned proportions and having a moisture content of 20% by mass or more and 60% by mass or less.

[0017] Furthermore, the screw cap according to claim 8 is characterized in that it is formed by injection molding a molding material containing the pulp and the binder in the aforementioned proportions and having a moisture content of 20% by mass or more and 60% by mass or less.

[0018] Furthermore, the screw cap according to claim 9 is characterized in that it is formed by injection molding a molding material containing the pulp and the binder in the aforementioned proportions and having a moisture content of 20% by mass or more and 60% by mass or less. [Effects of the Invention]

[0019] As described above, the present invention provides a screw cap that is primarily made of pulp, is highly recyclable as a paper product, and can be used in the same way as conventional plastic caps. [Modes for carrying out the invention]

[0020] Embodiments of the present invention considered to be suitable will be briefly described while showing the operation of the present invention.

[0021] The screw cap according to the present invention is formed of a material in which pulp and a binder are blended at a predetermined ratio, so that it can be recycled as a paper product.

[0022] Also, like a plastic cap, it can be suitably used as a screw cap for a PET bottle, a glass bottle, etc., and further has a unique soft appearance and touch presenting the texture of paper.

[0023] Moreover, the ratio of the opening torque to the closing torque becomes large, and an anti-loosening effect is exhibited, and good sealing and airtightness can be exhibited. This is presumably due to the fact that the voids formed after molding are crushed and caulked during closing when formed of the above material.

Example

[0024] Specific examples of the present invention will be described.

[0025] This example is a screw cap containing pulp and a binder (a lid member having an internal thread portion formed on the inner peripheral surface for screwing onto the male thread portion at the mouth of a PET bottle, a glass bottle, etc.), and the ratio of the pulp to the binder is pulp: binder = 50% by mass or more and 80% by mass or less: 20% by mass or more and 50% by mass or less.

[0026] Specifically, this example is formed by injection molding a molding material obtained by mixing and kneading pulp, a binder, water, and an auxiliary agent and molding it into a predetermined shape (for example, pellet shape or tablet shape).

[0027] Natural fibers can be used as pulp. Examples include wood pulp such as papermaking pulp, dissolved pulp, mercerized pulp, and fluff pulp; non-wood pulp obtained from cotton, linters, flax, Manila hemp, sisal hemp, bagasse, kenaf, straw, etc.; recycled paper pulp obtained from recycled paper; and plant-based materials such as rice husks and wood flour. In addition, lyocell fibers, which are refined cellulose fibers, and rayon fibers, which are regenerated natural cellulose fibers, can also be used within the category of natural fibers.

[0028] As the wood pulp, softwood pulp, hardwood pulp, or a mixture of both in a predetermined ratio can be used. When mixing hardwood pulp and softwood pulp, the ratio is preferably set to 20:80 to 80:20, and more preferably 50:50. Furthermore, it is preferable to use pulp with a fiber length of 0.3 mm to 2.5 mm and a fiber width of 15 μm to 32 μm.

[0029] In this embodiment, softwood pulp with a fiber length of 0.3 mm to 2.5 mm and a fiber width of 15 μm to 32 μm is used. The ratio of pulp to binder is pulp:binder = 50% to 80% by mass:20% to 50% by mass, preferably pulp:binder = 60% to 75% by mass:25% to 40% by mass. If the pulp content is less than 50% by mass, molding defects may occur in the screw threads of the cap, making it impossible to close the cap. If it exceeds 80% by mass, molding may not be possible at all, which is undesirable.

[0030] Furthermore, wood pulp that has been dry-processed may be used as the pulp. Specifically, wood pulp that has been dry-processed using a general dry-processing machine (for example, one comprising a defibration section that applies mechanical shear force to cellulose fibers to dissolve them, and a screen having a number of openings of a predetermined diameter through which the defibrated material passes) may be included in the components other than water in an amount of, for example, 30% by mass or more.

[0031] Dry-defibrated wood pulp refers to so-called cellulose fibers that have been defibrated by a dry-defibration machine, with a fiber length of 0.3 mm or more and 1.2 mm or less. Specifically, in the case of softwood pulp, the fiber length is 0.5 mm or more and 1.2 mm or less (preferably 0.65 mm or more and 1.05 mm or less) and the fiber width is 25 μm or more and 32 μm or less. In the case of hardwood pulp, the fiber length is 0.3 mm or more and 0.8 mm or less (preferably 0.49 mm or more and 0.64 mm or less) and the fiber width is 15 μm or more and 25 μm or less.

[0032] Furthermore, the product may contain both dry-fibrillated wood pulp and unfibrillated wood pulp. For example, the product may contain 30% to 70% by mass of dry-fibrillated wood pulp and 10% to 40% by mass of unfibrillated wood pulp among the components other than water.

[0033] Furthermore, un-defibrated wood pulp refers to wood chips that have been chemically pulped (for example, pulping by Kraft pulping), and in the case of softwood pulp, the fiber length is generally greater than 2.0 mm, and in the case of hardwood pulp, the fiber length is generally greater than 0.8 mm.

[0034] Furthermore, softwood pulp and hardwood pulp can be combined as appropriate, and may include dry-fiberized softwood pulp and unfiberized hardwood pulp, or dry-fiberized hardwood pulp and unfiberized softwood pulp.

[0035] In this embodiment, the fiber length refers to the average fiber length, and the fiber width refers to the average fiber width. The average fiber length and average fiber width can be measured using a fiber length measuring instrument (for example, the L&W Fiber Tester Plus manufactured by ABB).

[0036] As a binder, at least one of the following can be used: starch, polyvinyl alcohol (PVA), carboxymethylcellulose, hydroxyethylcellulose, methylcellulose, and polysaccharides extracted from seaweed. As the starch, corn starch, potato starch, or rice flour can be used. In this example, corn starch is used. In addition, in this example, polyvinyl alcohol is further included to make the surface smooth.

[0037] Furthermore, at least one of alginic acid, carrageenan, and agar can be used as the polysaccharide extracted from seaweed.

[0038] Furthermore, small amounts of additives such as zinc stearate (St-Zn) as a release agent and amolden as a fungicide may be included. For example, the mixture may contain 0.5% to 3% by mass of a release agent and 0.05% to 0.5% by mass of a fungicide, relative to 100% by mass of the components other than water and additives (pulp + binder).

[0039] The molding material in this embodiment contains, as components other than water and auxiliary agents (with pulp + binder accounting for 100% by mass), 50% to 80% by mass of pulp and 20% to 50% by mass of a water-soluble binder. Specifically, it contains 50% to 80% by mass of pulp, 5% to 45% by mass of starch, and 5% to 15% by mass of polyvinyl alcohol.

[0040] Furthermore, the moisture content of the molding material (the percentage of water relative to the total molding material) is set to be between 20% by mass and 60% by mass.

[0041] The molding material of this embodiment can be obtained by kneading a mixture of wood pulp, starch, polyvinyl alcohol, and an auxiliary agent with water (while heating) until the moisture content is between 20% by mass and 60% by mass.

[0042] If the moisture content of the molded material after kneading (including in pellet or tablet form) is less than 20% by mass, the fluidity of the molded material decreases significantly, making molding difficult, which is undesirable. Furthermore, if the moisture content exceeds 60% by mass, molding becomes difficult due to low viscosity, and during injection molding, it takes a long time to degas and release water vapor, resulting in a longer molding time and reduced production efficiency, which is also undesirable.

[0043] This embodiment can be manufactured by filling the above molding material into a heated injection molding die, vaporizing and removing the added water, drying and solidifying it, and then removing it. During drying and solidification, tiny voids are formed as the internal moisture (evaporation of water vapor) evaporates. When removing from the mold, it is possible to release it by forcibly removing it or by rotating the mold core, but it is preferable to release it by grasping the cap from the outside with a removal machine (robot hand) and rotating it (because it is difficult to use a mechanism to rotate the core when the mold temperature is 180°C or higher).

[0044] The surface roughness Ra of the screw cap formed as described above is between 1 μm and 20 μm (in the experimental examples described later, it is generally 4 μm or more).

[0045] As this embodiment is constructed as described above, the material formed from pulp and binder in predetermined proportions can be recycled as a paper product.

[0046] Furthermore, like plastic caps, it can be suitably used as a screw cap for PET bottles, glass bottles, etc., and it also has a unique soft appearance and texture that resembles paper.

[0047] Furthermore, the ratio of the opening torque to the closing torque becomes larger, resulting in an anti-loosening effect and excellent sealing and airtightness.

[0048] Therefore, this embodiment provides a screw cap that is primarily composed of pulp, is highly recyclable as a paper product, and can be used in the same way as conventional plastic caps.

[0049] Experiments 1-3, which support the effectiveness of this embodiment, will be described below.

[0050] [Experiment 1] The surface roughness, surface appearance, and opening torque of screw caps (outer diameter approximately 58 mm, inner diameter approximately 56 mm, height approximately 15 mm, thread height approximately 0.5 mm, screw standard: DIN168 GL56) were evaluated by feeding a molding material (NEX5000 manufactured by Nissei Plastic Industrial Co., Ltd.) made by blending predetermined amounts of pulp (NBKP (coniferous pulp), defibrated pulp, or powdered pulp (Sanyo Chemical Co., Ltd. #4000 pure pulp FP-150)) and binder (starch and PVA) as shown in Tables 1 and 2, with a predetermined moisture content (approximately 35%), into an injection molding machine (NEX5000 manufactured by Nissei Plastic Industrial Co., Ltd.).

[0051] Table 1 shows Experimental Examples 1-4, and Table 2 shows Comparative Examples 1-5. The Experimental Examples are those in which the pulp and binder formulations are within the numerical range of the above-described embodiment. The Comparative Examples are those in which the pulp and binder formulations are outside the above-described numerical range, as well as examples made of plastic and stainless steel instead of pulp molded products.

[0052] Surface roughness was measured in accordance with JIS B0633 (the arithmetic mean roughness Ra and the maximum height Rz were calculated from the measured roughness curve). The surface appearance was evaluated visually. For opening torque, the opening torque (the torque required to turn the screw cap in the opening direction from the closed position) was measured for closing torques from 0.5 N to 3.0 N in 0.5 N increments. A digital torque meter TNP-5 manufactured by NIDEK Corporation was used for torque measurement.

[0053] [Table 1]

[0054] [Table 2]

[0055] Tables 1 and 2 show that in all experimental examples, the surface roughness was significantly greater than that of the plastic cap in Comparative Example 4 and the stainless steel cap in Comparative Example 5 (both on the outer and inner surfaces), and the appearance resembled that of paper (surface roughness Ra of 1 μm or more, Rz of 30 μm or more).

[0056] Furthermore, for Comparative Examples 1 to 3, which had formulations outside the numerical range of this embodiment, Comparative Examples 1 and 3 could not be molded, and Comparative Example 2 could be molded but broke during closure, making torque measurement impossible.

[0057] Furthermore, regarding the opening torque, in all experimental examples it exceeded 60% of the closing torque. At closing torques of 0.5N and 1.0N, the experimental example and comparative examples 4 and 5 were roughly equivalent. However, at closing torques of 1.5N or higher, it was confirmed that the opening torque was greater than that of comparative examples 4 and 5. As mentioned above, this is presumed to be due to the formation of minute voids in the molding material according to this embodiment during drying and solidification as internal moisture (evaporation of water vapor) evaporates. These voids formed by the molding material are crushed and crimped during closing.

[0058] From the above, it was confirmed that by using a formulation within the numerical range of the above-described embodiment, it is possible to realize a screw cap that exhibits a unique paper-like texture and has excellent airtightness and sealing properties.

[0059] [Experiment 2] The oil and water resistance of screw caps (outer diameter approximately 58 mm, inner diameter approximately 56 mm, height approximately 15 mm, thread height approximately 0.5 mm, screw standard: DIN168 GL56) were evaluated by feeding a molding material, prepared by blending predetermined amounts of pulp (NBKP (coniferous pulp) or defibrated pulp) and binder (starch and PVA) as shown in Table 3, to a predetermined moisture content (approximately 35%), into an injection molding machine (NEX5000 manufactured by Nissei Plastic Industrial Co., Ltd.).

[0060] Experimental Examples 5 and 6 are examples in which the pulp and binder formulations are within the numerical range of the above-described embodiment. The comparative example is Comparative Example 5 (stainless steel cap) from Experiment 1.

[0061] The oil resistance test was conducted by dropping various commercially available oils (castor oil, sesame oil, butter, lard, grease (concentration 2), and moisturizing cream) onto the inside of the screw cap and observing the penetration of the droplets after 0.5 hours, 1 hour, 2 hours, 4 hours, 8 hours, and 24 hours (maintained at 23°C during the test).

[0062] The water resistance test involved filling the inside of the screw cap with water and measuring the increase in weight after 24 hours as the amount of water absorbed. The water absorption rate was calculated by dividing the amount of water absorbed by the weight of the screw cap in its dry state before the test.

[0063] [Table 3]

[0064] Table 3 shows that experimental examples 5 and 6 did not absorb any oil for 24 hours, demonstrating sufficient oil resistance and confirming that they can be used as caps for various oil storage containers.

[0065] Furthermore, in Experimental Examples 5 and 6, even after continuous contact with water for 24 hours, water penetration was limited, and although there was some deformation, the caps did not collapse, confirming that they are practical for use as caps for bottles and jars used to store beverages and other items in an upright position.

[0066] [Experiment 3] The aroma was evaluated when a screw cap was attached to a commercially available 200ml glass bottle container, which was made by mixing predetermined amounts of pulp (NBKP (coniferous pulp) or defibrated pulp) and binder (starch and PVA) as shown in Table 4, and adjusting the molding material to a predetermined moisture content (approximately 35%), and then putting it into an injection molding machine (NEX5000 manufactured by Nissei Plastic Industrial Co., Ltd.).

[0067] Experimental Examples 7 and 8 show cases where the opening of a 200 ml container was closed with a screw cap in which the pulp and binder composition was within the numerical range of the above-described embodiment. Comparative Example 6 shows an example where the opening was closed with the stainless steel lid that came with the 200 ml container, and Comparative Example 7 shows an example where the opening of the 200 ml container was not closed.

[0068] In the fragrance test, 5g of undiluted fragrance solution was placed in 200ml containers of each experimental example and comparative example, and kept in a 60°C atmosphere for 6 hours. The scent was then checked both inside and outside the containers, and evaluated based on the intensity of the scent (◎: strong scent, ○: noticeable scent, △: faint scent, ×: no scent), the amount of fragrance released, and the rate of release. The intensity of the scent was evaluated by sensory evaluation.

[0069] [Table 4]

[0070] Table 4 shows that in Comparative Example 6, no fragrance leaked out to the outside and no volatilization occurred. In Comparative Example 7, the fragrance evaporated and dissipated. In contrast, Experimental Examples 7 and 8 were able to seal the inside to the extent that the fragrance did not weaken, while allowing a faint fragrance to evaporate gradually on the outside. This demonstrated a characteristic (sustained release) not found in conventional cap materials.

[0071] This sustained release property can be adjusted by changing the thickness of the cap, applying a coating, or attaching foil. Therefore, the screw cap according to this embodiment makes it possible to realize unprecedented products, such as air fresheners that can be used while the opening remains closed.

Claims

1. A screw cap comprising pulp and a binder, characterized in that the ratio of pulp to binder is pulp:binder = 50% by mass or more and 80% by mass or less:20% by mass or more and 50% by mass or less.

2. A screw cap according to claim 1, characterized in that the pulp has a fiber length of 0.3 mm or more and 2.5 mm or less and a fiber width of 15 μm or more and 32 μm or less.

3. The screw cap according to claim 2, characterized in that the pulp includes dry-fiberized wood pulp.

4. The screw cap according to claim 1, characterized in that the binder contains at least one of starch, polyvinyl alcohol, carboxymethylcellulose, hydroxyethylcellulose, methylcellulose, and polysaccharides extracted from seaweed.

5. The screw cap according to claim 2, characterized in that the binder contains at least one of starch, polyvinyl alcohol, carboxymethylcellulose, hydroxyethylcellulose, methylcellulose, and polysaccharides extracted from seaweed.

6. The screw cap according to claim 3, characterized in that the binder contains at least one of starch, polyvinyl alcohol, carboxymethylcellulose, hydroxyethylcellulose, methylcellulose, and polysaccharides extracted from seaweed.

7. A screw cap according to any one of claims 4 to 6, characterized in that the binder contains at least one of alginic acid, carrageenan, and agar as polysaccharides extracted from seaweed.

8. A screw cap according to any one of claims 1 to 6, characterized in that the surface roughness Ra is 1 μm or more and 20 μm or less.

9. A screw cap according to claim 7, characterized in that the surface roughness Ra is 1 μm or more and 20 μm or less.

10. A screw cap according to any one of claims 1 to 6, characterized in that it is formed by injection molding a molding material containing the pulp and the binder in the aforementioned proportions and having a moisture content of 20% by mass or more and 60% by mass or less.

11. The screw cap according to claim 7, characterized in that it is formed by injection molding a molding material containing the pulp and the binder in the aforementioned proportions and having a moisture content of 20% by mass or more and 60% by mass or less.

12. The screw cap according to claim 8, characterized in that it is formed by injection molding a molding material containing the pulp and the binder in the above proportions and having a moisture content of 20% by mass or more and 60% by mass or less.

13. The screw cap according to claim 9, characterized in that it is formed by injection molding a molding material containing the pulp and the binder in the aforementioned proportions and having a moisture content of 20% by mass or more and 60% by mass or less.