Note

The spout design with a flexible annular wall and protrusion absorption mechanism addresses breakage issues under impact and water hammer, ensuring structural integrity and cost-effectiveness.

JP7754672B2Active Publication Date: 2025-10-15NIPPON CLOSURES
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Patent Information

Application Number
JP2021159849
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-09-29
Publication Date
2025-10-15
Estimated Expiration
2041-09-29

AI Technical Summary

Technical Problem

Existing spouts are prone to breakage due to external forces from drops or water hammers, particularly at the weakened portion where the opening is formed, which is structurally unsupported and susceptible to stress concentration.

Method used

A spout design featuring a flexible annular vertical wall extending from the top plate, with a protrusion fixed to the inner surface of the lid, and a weakened portion positioned away from the annular wall, allowing the wall to flex and absorb external forces, preventing breakage.

Benefits of technology

The spout effectively prevents the weakened portion from breaking under impact or water hammer, reducing material usage and costs while maintaining ease of opening.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a spout device capable of effectively preventing a weakened part from being broken by an external force applied to an upper cover when impacted by drop, and also capable of effectively preventing the weakened part from being broken by collision of a content against a part configured to be opened from a lower side of a cap body when water hammering occurs.SOLUTION: A spout device comprises: a body comprising at least a top plate part, and a spouting nozzle formed at the top plate part; surrounding the bulkhead; and an upper lid comprising a top surface and a skirt part suspended from a circumference of the top surface, an inner surface of the top surface being formed with a cylindrical part for seal extending in an axial direction is formed, covering the top plate part of the body. The body top plate part has a recessed part formed of a flexible annular vertical wall extending downward in the axial direction from a root inner side portion of the spouting nozzle and a bottom part, and a part configured to be opened, partitioned by a weakened part is formed on the bottom part of the recessed part.SELECTED DRAWING: Figure 3
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Description

[Technical Field]

[0001] The present invention relates to a spout that can prevent breakage of a weakened portion due to a drop impact or water hammer. [Background technology]

[0002] When using a widely used pouring tool such as a cap or spout attached to a container for storing liquids such as seasonings, first the top lid is removed from the pouring tool body, and then the pull ring formed on the pouring tool body is pulled up, breaking the weakened portion that defines the intended opening, which is then removed to form the pouring opening. However, if the container is accidentally dropped on its top lid while in an inverted position, the impact of the fall may apply an external force to the top lid, causing the weakened portion to break. Furthermore, not only when the container is in an inverted position, but also when it is dropped on its bottom while upright, the weakened portion may break due to a water hammer caused by the contents suddenly impacting the intended opening portion from the underside of the cap body. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Patent No. 4330187 Summary of the Invention [Problem to be solved by the invention]

[0004] To solve this problem, for example, Patent Document 1 proposes a hinge cap with an arc-shaped protrusion formed on the top cover. In this hinge cap, the arc-shaped protrusion is located outside the cylindrical protrusion when the top cover is closed. Therefore, when an external force is applied to the cap, the arc-shaped protrusion abuts against the upper surface of the top plate, preventing breakage of the score. However, in the above Patent Document 1, if the contents collide suddenly from the underside of the cap body against the intended opening portion due to a water hammer, the arc-shaped protrusion is located outside the cylindrical protrusion, so it is structurally impossible to support the pressure acting on the intended opening portion, and there is a risk that the weakened portion will break.

[0005] Furthermore, the applicant's previous application (Patent Application No. 2021-030240) describes a hinge cap in which a protrusion is formed at the intended opening portion and the tip is fixed to the top cover, making it possible to reduce the initial opening force. However, in this type of configuration, the structure is prone to stress concentration in the weakened portion when subjected to a drop impact, etc., which creates the problem of the weakened portion being prone to breakage.

[0006] Therefore, the object of the present invention is to provide a spout that can effectively prevent the weakened portion from breaking due to external forces acting on the top lid when it is dropped and impacted, and that can effectively prevent the weakened portion from breaking due to the contents colliding with the intended opening portion from the underside of the cap body when a water hammer occurs. [Means for solving the problem]

[0007] According to the present invention, a pouring tool comprising a main body consisting of at least a top plate portion and a pouring nozzle formed on the top plate portion, a top surface and a skirt portion hanging down from the periphery of the top surface, and a sealing cylindrical portion extending in the axial direction formed on the inner surface of the top surface, and an upper lid covering the top plate portion of the main body, The main body and the upper cover are hingedly connected to each other, The top plate portion of the main body has a recessed portion consisting of a flexible annular vertical wall extending axially downward from an inner portion of the root of the pouring nozzle and a bottom portion, and an opening portion defined by a weakened portion is formed at the bottom of the recessed portion. 、 A protrusion extending in the axial direction is formed at a position opposite to the hinge of the intended opening portion, and a tip of the protrusion is fixed to the inner surface of the top surface of the upper cover when the upper cover is in a closed state. The present invention provides a dispensing tool characterized by the above-mentioned.

[0008] In the spout of the present invention, 、 1. The bottom portion is formed at a position lower than half the axial length of the annular vertical wall, 2. The weakened portion is formed at a distance from the inner surface of the annular vertical wall; 3 The tip of the protrusion is fixed to the upper cover by welding to the inner surface of the upper cover, 4 The shape of the intended opening portion has a shape in which the distance between the pouring direction and the direction perpendicular to the pouring direction decreases as the portion moves in the pouring direction, and the tip angle at the end portion on the pouring direction side is an acute angle; 5 .It is a hinge cap, is preferred. [Effects of the Invention]

[0009] In the spout of the present invention, the top plate of the main body has a recessed portion consisting of a flexible annular vertical wall extending axially downward from the inside of the base of the spout and a bottom, and an opening portion defined by a weakened portion is formed at the bottom of the recessed portion. Therefore, when the container is dropped upside down, the weakened portion is effectively prevented from breaking due to an external force acting on the top lid due to the impact of the drop, and the weakened portion is also effectively prevented from breaking due to the contents hitting the opening portion when a water hammer occurs. In other words, when the container is dropped upside down, the external force acting on the top lid is transmitted to the top plate, but the annular vertical wall flexes to absorb the external force, preventing the weakened portion from breaking. Furthermore, when a water hammer occurs, the pressure caused by the collision of the contents acts on the bottom portion having the opening from below the cap body, but the annular vertical wall flexes to absorb the pressure, preventing the weakened portion from breaking.

[0010] Furthermore, in the present invention, since the annular vertical wall flexes to relieve pressure when subjected to external forces, etc., unintended rupture of the weakened portion can be effectively prevented even if the intended opening portion is formed relatively thin, improving ease of opening. Furthermore, the amount of material used to construct the bottom portion can be reduced, thereby reducing costs. [Brief explanation of the drawings]

[0011] [Figure 1] This is a diagram to explain the state before the top lid and cap body are fixed together in an example where the spout of the present invention is a hinge cap, where (A) is a top view, (B) is a side cross-sectional view, and (C) is a bottom view. [Figure 2] 2 is a side cross-sectional view showing a state in which the top cover is fixed to the cap body in the hinge cap shown in FIG. 1. FIG. [Figure 3] 3 is a side cross-sectional view showing the hinge cap shown in FIG. 2 in a completely opened state. FIG. [Figure 4] 3 is a side cross-sectional view of the hinge cap shown in FIG. 2 at the moment when an external force is applied from diagonally above the hinge side of the upper cover. FIG. [Figure 5] 3 is a side cross-sectional view of the hinge cap shown in FIG. 2 at the moment when an external force is applied from diagonally above the flange side of the upper cover. FIG. DETAILED DESCRIPTION OF THE INVENTION

[0012] A case in which the spout of the present invention is a hinged cap will be described with reference to the accompanying drawings. The hinge cap shown in Figures 1 to 5 comprises a cap body 1 and an upper lid 3 hingedly connected to the cap body 1 (the hinge connection portion is indicated by 2). The cap body 1 comprises at least a top plate portion 11 and a dispensing nozzle 16 formed on the top plate portion. The top plate portion 11 has a recessed portion 51 consisting of an annular vertical wall 52 and a bottom portion 53.

[0013] In the illustrated example, as is clear from Fig. 1(B), an inner ring 13 is formed on the inner surface of the top plate portion 11, extending downward at a distance from the cylindrical side wall 12. The container opening is fitted into the space between this inner ring 13 and the cylindrical side wall 12, and the cap body 1 is attached to the container opening (not shown). As is clear from Figure 1(A), a planned opening portion 14, which serves as an opening for taking out the contents, is formed integrally with bottom portion 53 of depression 51 via an endless weakened portion 15. By tearing weakened portion 15 and peeling off planned opening portion 14, planned opening portion 14 becomes a pouring opening (shown as A in Figure 3). Planned opening portion 14 will be described later.

[0014] A dispensing nozzle 16 is formed on the upper surface of the recess 51 so as to surround the recess 51, and the contents taken out through an opening A formed in the bottom 53 of the recess 51 are guided along this dispensing nozzle 16. This dispensing nozzle 16 is formed with a low profile on the side of the hinge connection 2 with the top lid 3. A low circumferential protrusion 17 is formed outside the dispensing nozzle 16 to hold the top lid 3 in place. The cylindrical side wall 12 of the cap body 1 is divided into an inner wall 12a and an outer wall 12b by an arc-shaped slit 18 extending downward from the upper end, forming a double-wall structure in which the inner wall 12a and the outer wall 12b are connected at the lower end via a circumferential score 19. This double-wall structure is formed so that the cap body 1 can be easily removed from the container opening after the liquid in the container has been poured out.

[0015] On the other hand, the top cover 3 is hinged to the upper end portion of the cylindrical side wall 12 (outer wall 12b formed by the slit 18) of the cap body 1. As can be seen from Figure 1, this hinge connection portion 2 is formed from a wide band portion 2a in the center and narrow band portions 2b, 2b on both sides of the wide band portion 2a in the circumferential direction. Although not shown, an axial score extending from the upper end to the lower end or its vicinity is formed on the outer wall 12b near the hinge connection portion 2. As a result, when the top cover 3 is opened and pulled downward, the axial score is torn and the outer wall 12b is broken. Next, by forcing the top cover 3 counterclockwise (as viewed from the top view of FIG. 1(A)), the circumferential score 19 is broken, allowing the cap body 1 to be easily removed from the container opening. Such a means for removing a hinge cap from the container opening is known per se, and is described in detail, for example, in JP 2018-058622 A.

[0016] The top lid 3 is formed of a top plate portion 31 and a skirt portion 32 extending from the periphery of the top plate portion 31. A sealing cylinder portion 33 is formed on the inner surface of the top plate portion 31. As a result, as shown in Figure 2, when the top lid 3 is rotated and closed around the hinge connection portion 2 as an axis, the sealing cylinder portion 33 comes into close contact with the inner surface of the pouring nozzle 16, and this close contact ensures sealing after the intended opening portion 14 is peeled off to form the pouring opening A. In addition, a recess 34 is formed in the lower part of the inner surface of the skirt portion 32 of the top cover 3, and the upper end of the aforementioned circumferential protrusion 17 engages with this recess 34, thereby stably holding the closed top cover 3. Furthermore, a flange 35 for opening is provided on the outer surface of the lower end of the skirt portion of the top lid 3, on the side opposite the hinge connection portion 2, and the top lid 3 can be easily opened by hooking this flange 35 with a finger and lifting the top lid 3 upward. A wall portion 36 capable of accommodating the tip of a protrusion 20 formed in a portion intended for an opening of the cap body 1, which will be described later, is formed on the top plate portion 31 of the top lid 3. The wall portion 36 will be described later.

[0017] A protrusion 20 extending in the axial direction of the cap is formed at a position opposite to the hinge of the intended opening portion 14 of the bottom 53 of the cap body (on the pouring direction side), and the tip 20a of this protrusion 20 is fixed to the inner surface of the top plate portion 31 of the top lid 3 when the top lid 3 is closed, as is clear from Figure 2. The protrusion 20 has a hollow truncated cone shape, with a step 20b formed at the tip 20a. As is clear from Figure 2, the outer surface of the tip 20a is in close proximity to (or abuts against) the inner circumferential surface of a wall 36 of the top cover 3, which will be described later, and the upper surface of the tip 20a abuts against the inner surface of the top plate 31 of the top cover 3, so that the tip 20a is housed in a recess 37 defined by the wall 36. In the specific example shown in the figure, small protrusions 38 are further formed within the recess 37 of the top cover 3. The formation of these small protrusions 38 increases the welding surface area when welding the tip 20a to the upper surface, enabling stronger welding.

[0018] It is preferable that the protrusion 20 has a hollow truncated cone shape. This prevents a decrease in dimensional stability due to sink marks in the resin during molding. Also, an annular ridge (not shown) may be formed on the hollow inner surface of the protrusion 20 at approximately the midpoint of the axial height. When molding the cap, a pin is inserted into the hollow part of the protrusion. If the pin is removed while the protrusion is in close contact with the pin, there is a risk that the weakened part will break. However, the presence of the annular ridge effectively prevents such breakage of the weakened part.

[0019] An important feature of the present invention is that the top plate portion 11 has a recessed portion 51 consisting of a flexible annular vertical wall 52 and a bottom portion 53 extending axially downward from the inside portion of the root of the dispensing nozzle.

[0020] When the container is dropped in an inverted state and receives an impact, an external force acts from the upper lid 3 on the top plate portion 11 having the intended opening portion 14. At this time, the flexible annular vertical wall 52 bends radially as shown in Figures 4 and 5. Thus, the annular vertical wall 52 absorbs the external force, effectively preventing the weakened portion 15 from breaking. Furthermore, when the container bottom is subjected to a drop impact not only in the inverted state but also in the upright state, a water hammer occurs, and the contents suddenly collide from the underside of the cap body with the bottom 53 having the intended opening portion 14, exerting pressure on the bottom 53. At this time, the flexible annular vertical wall 52 bends radially, just as when the container is dropped in an inverted state. Thus, the annular vertical wall 52 absorbs the external force, effectively preventing the weakened portion 15 from breaking.

[0021] From the viewpoint of shock absorption, the position of the bottom 53 is preferably formed at a position lower than half the axial length of the annular vertical wall 52. This is because the presence of a certain or greater length of the annular vertical wall 52 in the axial length above the bottom 53 ensures that shock can be absorbed reliably. Note that the figure shows a case where the bottom 53 is located at the lowest position in the axial length of the annular vertical wall 52. The weakened portion 15 is preferably formed away from the inner surface of the annular vertical wall 52. If the weakened portion 15 is located near the base of the annular vertical wall 52 and the bottom portion 53, there is a risk that the weakened portion 15 will break when the annular vertical wall 52 bends radially to absorb an impact.

[0022] Furthermore, in the present invention, it is possible to form the bottom 53 relatively thin. That is, because the bending of the annular vertical wall 52 prevents unintended rupture of the weakened portion, the bottom 53 can be made thin, which is expected to improve the ease of opening, and it is also possible to reduce the amount of material used and keep costs down.

[0023] Furthermore, in the specific example shown in the figures, a rib 41 is formed on the top surface of the top lid 3, inside the sealing tube portion 33, and is positioned within the dispensing nozzle 16 in the closed state, and has an axial length such that at least its tip contacts or is close to the intended opening portion 14. Even if the container is dropped in an inverted state, this effectively prevents the weakened portion 15 from breaking due to external forces acting on the top lid 3 from the impact of the drop, and also effectively prevents the weakened portion 15 from breaking due to the contents hitting the intended opening portion 14 from below the cap body due to water hammer. The combination of these effects of the rib 41 and the impact-absorbing effect of the annular vertical wall 52 further enhances the effect of suppressing breakage of the weakened portion.

[0024] In the dispensing device of the present invention, as shown in Figure 1, the top lid 3 is molded in an open state, and then the top lid 3 is closed and the tip 20a of the protrusion 20 is housed in the recess 37 in the wall 36 of the top lid 3, and heated by means such as high-frequency induction heating, so that the tip 20a of the protrusion 20 and the inner top surface of the top lid 3 are fixed to each other in the pouring direction (Figure 2). In this way, by fixing the tip 20a of the protrusion 20 to the recess 37 in the wall portion 36, the protrusion 20 is stably fixed to the top lid 3, so that the protrusion 20 does not fall off when the top lid 3 is opened, making it easy to form an opening, and even if resin powder is generated when welding the tip of the protrusion to the top lid 3, the resin powder will not enter the cap.

[0025] When opening the cap, the top cover 3 is rotated from the closed state shown in Figure 2 around the hinge 2, causing the weakened portion 15 to begin breaking from the pouring direction side of the intended opening portion 14.As the top cover 3 continues to rotate, the intended opening portion 14 is completely peeled off from the bottom portion 53 together with the top cover 3, opening the intended opening portion 14 and forming a pouring opening A (Figure 3). When the top lid 3 is resealed to the cap body 1 from the open state shown in Figure 3, the intended opening portion 14 returns to the same position as before opening. This makes it possible to prevent the contents from leaking into the cap from the dispensing opening A. Furthermore, due to this characteristic, the contents do not remain inside the cap even when the container is shaken to mix them.

[0026] In the dispensing device of the present invention, as shown in the figure, the intended opening portion 14 formed on the cap body has a shape in which the distance from the direction perpendicular to the pouring direction decreases as it moves in the pouring direction, and it is preferable that the tip angle at the end on the pouring direction side is an acute angle. This makes it possible to concentrate stress at the end on the pouring direction side where the protrusion 20 is formed during initial opening, and allows the weakened portion to be smoothly broken. In addition, the acute angle at the end on the pouring direction side makes it easy to adjust the amount of content dispensed.

[0027] Furthermore, as shown in the specific example in the figure, it is preferable that the hinge end also has a generally teardrop shape in which the vertical distance decreases as it approaches the hinge end, which makes it possible to smoothly remove the intended opening portion 14 from the bottom portion 53 and effectively prevents the contents from spilling out. The shape of the intended opening portion can be various shapes, including, but not limited to, the roughly teardrop shape shown in the figure, roughly hexagonal shape (see, for example, Patent No. 4500626 [Figure 2]), roughly spindle shape, roughly four-leaf shape, roughly three-leaf shape, diamond shape, etc.

[0028] The spout of the present invention is not limited to the hinged cap described above, but may be a hinged cap with a pull ring, a screw cap, or a spout. The spout of the present invention can also be applied to the opening of a spout for a paper container, as shown in JP-A-2000-326972. In this case, the cap body 1 does not have a cylindrical side wall 12. The above configurations also have the same advantageous effect of preventing the weakened portion from breaking when subjected to external forces or pressures on the intended opening portion due to the impact of being dropped upside down or water hammer from the contents.

[0029] The spout of the present invention can be manufactured by integrally forming the top lid and the cap body by injection molding or the like with the top lid open as shown in Fig. 1, then closing the top lid and fixing the protruding part to the intended opening. Furthermore, by making the protruding part into a hollow truncated cone shape, it is easy to integrally mold the top lid and the cap body. The top lid and the cap body can be molded as a single unit and the material can be any material as long as the protrusion can be fixed to the top lid. However, since it is preferable to weld them by high-frequency heating or heat sealing, it is preferable that they be made of a heat-meltable thermoplastic resin. As such a thermoplastic resin, an olefin resin such as polypropylene or polyethylene can be suitably used. [Explanation of symbols]

[0030] 1 cap body, 2 hinge connection portion, 3 upper lid, 11 top plate portion, 12 cylindrical side wall, 13 inner ring, 14 intended opening portion, 15 weakened portion, 16 pouring nozzle, 17 circumferential convex portion, 18 slit, 19 circumferential score, 20 protrusion portion, 31 top plate portion, 32 skirt portion, 33 sealing cylindrical portion, 34 recess portion, 35 flange portion, 36 wall portion, 37 recess portion, 38 small protrusion, 41 rib, 51 recessed portion, 52 annular vertical wall, 53 bottom portion

Claims

1. A pouring tool comprising: a main body consisting of at least a top plate portion and a pouring nozzle formed on the top plate portion; and an upper lid covering the top plate portion of the main body, the upper lid comprising a top surface and a skirt portion hanging down from the periphery of the top surface, the inner surface of the top surface being formed with a sealing cylindrical portion extending in the axial direction. The main body and the upper cover are hingedly connected to each other, the main body top plate portion has a recessed portion consisting of a flexible annular vertical wall extending axially downward from an inner portion of a base of the pouring nozzle and a bottom portion, and an opening portion defined by a weakened portion is formed at the bottom of the recessed portion, A spouting device characterized in that a protrusion extending in the axial direction is formed at a position opposite the hinge of the intended opening portion, and the tip of the protrusion is fixed to the inner top surface of the top lid when the top lid is in a closed state.

2. 2. The spout according to claim 1, wherein the bottom is formed at a position lower than half the axial length of the annular vertical wall.

3. 3. The spout according to claim 1, wherein the weakened portion is formed at a distance from the inner surface of the annular vertical wall.

4. 4. The spout according to claim 3, wherein the tip of the protrusion is fixed to the top lid by welding to the inner surface of the top lid.

5. The shape of the intended opening portion has a shape in which the distance between the pouring direction and the direction perpendicular to the pouring direction decreases as it moves in the pouring direction, and the tip angle at the end on the pouring direction side is an acute angle.

6. The spout according to any one of claims 1 to 5, which is a hinged cap.

Citation Information

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