Discharge Cap

The discharge cap addresses the challenges of complex shapes, molding costs, and operational issues by using a guided check valve with a seal surface and intermittent grooves, ensuring reliable operation and preventing air infiltration, thereby enhancing performance and durability.

JP7672895B2Active Publication Date: 2025-05-08NIPPON CLOSURES +1
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Patent Information

Application Number
JP2021107238
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-06-29
Publication Date
2025-05-08
Estimated Expiration
2041-06-29

AI Technical Summary

Technical Problem

Existing discharge caps face challenges such as complex shape requirements, increased molding costs, risk of pin damage, and potential for excessive force to disrupt valve operation, as well as issues with recovery flow paths and air infiltration.

Method used

The discharge cap features a check valve with a seal surface that abuts the valve seat, guided by a guide pin, allowing reliable operation and retraction without separate biasing members. The design includes a discharge guidance portion and intermittent grooves on the valve seal surface to ensure secure sealing and prevent air infiltration.

Benefits of technology

This design ensures reliable and stable operation of the check valve, prevents excessive force on the valve seal surface, and effectively recovers contents while preventing outside air from entering the container, thus enhancing the overall performance and durability of the discharge cap.

✦ Generated by Eureka AI based on patent content.

Smart Images

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Patent Text Reader

Abstract

To provide a discharge cap in which a check valve operates reliably with a simple structure, and which can reliably collect only the contents in a valve chamber and prevent outside air from flowing into the inside of a container even in a configuration where suction force from the inside of the container to the valve chamber is strong.SOLUTION: A discharge cap 100 includes a fitting part 112, a discharge cylinder 113 for discharging a content P, and a valve chamber 130. The valve chamber 130 is provided with a bottom part 145 which has a supply cylinder 137 for taking out the content P and a valve seat 134, and a check valve 132. The check valve 132 is provided movably in the axial direction of the supply cylinder 137, and has a valve seal surface 138 that can contact the valve seat 134, the check valve 132 and the bottom part 145 are connected so as to be guided by a guide pin 139 extending in the axial direction of the supply cylinder 137, and at least part of the check valve 132 is in contact with a main body top surface 111 at a position where the connection by the guide pin 139 is not released during discharge.SELECTED DRAWING: Figure 1
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Description

[Technical field]

[0001] The present invention relates to a discharge cap that is fitted to a container mouth and discharges the contents contained inside the container. [Background technology]

[0002] 2. Description of the Related Art Conventionally, as a discharge cap for discharging liquid contents or viscous flowable contents contained inside a container, a discharge cap having a check valve provided between the inside of the container and a discharge port has been known. When the contents are discharged from the container, the contents are pressurized from outside the container, causing the check valve to separate from the valve seat, allowing the contents to pass from inside the container to the discharge outlet and be discharged. When the pressure on the contents is released, the check valve fits tightly against the valve seat, sealing the container, thus isolating the inside of the container from the outside air and preventing deterioration such as drying and oxidization of the contents remaining inside the container.

[0003] For example, the discharge cap (hinge cap 1) disclosed in Patent Document 1 has a fitting portion (assembly tube 3) that fits with the container mouth portion (mouth tube portion 28) and a discharge port (5) that discharges the contents (content liquid N) contained inside the container (container body 27), and further has a valve chamber (11) partitioned between the inside of the container (container body 27) and the discharge port (5). The valve chamber (11) is provided with a supply hole (valve port 12) and a valve seat (valve seat surface 14) that communicate with the inside of the container (container body 27) and that extracts the contents (content liquid N), a valve cylinder 10 that extends in the vertical direction from the periphery of the valve seat (valve seat surface 14), and a check valve (9). The inner surface of the valve cylinder 10 is provided with a number of vertical ribs 15 that allow the valve body (17) of the check valve (9) to move freely while restricting its displacement in the lateral direction.

[0004] The discharge cap (hinge cap 1) known from Patent Document 1 and other publications uses a sphere as a valve body (17). The valve body (17) separates from the valve seat (valve seat surface 14) when the contents (content liquid N) naturally flows down due to its own weight, or when the contents (content liquid N) is attached to a flexible container and pressure is applied by, for example, gripping the container, and the contents (content liquid N) is discharged from the discharge port (5) via the vertical rib (15). When the cap is closed, the valve body (17) is pressed by a pressing pin (24) provided on the top lid (lid body 21) and comes into close contact with the valve seat (valve seat surface 14) to block the supply hole (valve port 12), thereby maintaining the check valve (9) in a closed state, thereby making it possible to stably and reliably maintain the closed state of the container.

[0005] Furthermore, Patent Document 2 discloses a discharge cap that is capable of recovering the contents in the valve chamber into a container when the check valve is closed.

[0006] In the discharge cap known from Patent Document 2, in addition to the supply hole (135), a recovery passageway (142), which is a long and thin opening that connects the valve chamber (130) and the internal container, is provided on the lower part of the inner surface of the valve chamber (130). When the external container, which is made of an elastic body, attempts to return to its original shape, negative pressure is generated, and even if the supply hole (135) is blocked by the check valve (132), the content (P) in the valve chamber (130) can be recovered into the internal container through the recovery passageway (142). In addition, even after the content (P) in the valve chamber (130) is recovered, the content (P) remains in the recovery passageway (142) due to surface tension, so that outside air (G) does not flow into the internal container. [Prior art documents] [Patent documents]

[0007] [Patent Document 1] JP 2015-009816 A [Patent Document 2] JP 2018-154356 A Summary of the Invention [Problem to be solved by the invention]

[0008] However, there is still room for improvement in the discharge cap known from Patent Document 1 and the like. That is, the discharge cap known in Patent Document 1 requires the formation of a complex shape such as a vertical rib within the valve chamber, which may increase costs during molding, such as the creation of a mold. In addition, the discharge cap known from Patent Document 1 uses a pin to press the valve body from the top lid to close the supply hole, so the pin needs to be long enough to reach the valve body inside the valve chamber, and there is a risk that the pin will get caught on the discharge port, etc. and be damaged when the top lid is opened or closed.

[0009] In addition, the discharge cap known from Patent Document 1 uses a pin to press the valve body to block the supply hole, so if the force pressing the valve body is too strong, the valve body will get stuck in the supply hole, and there is a risk that the valve body will not operate even if the container is tilted the next time it is used. Also, if a flexible container is used, the container is pressed with more force than usual in order to operate the valve body, so there is a risk that more contents than necessary will be dispensed if the valve body comes off the supply hole. Furthermore, in the discharge cap known from Patent Document 2, the long and narrow recovery flow path is always open, so when the inner container is made of a material with strong resilience such as PET resin, the negative pressure generated after use becomes too large, making it impossible to retain the contents within the recovery flow path due to surface tension, and there is a risk that outside air will also flow into the inner container.

[0010] The present invention is devised to solve these problems, and aims to provide a discharge cap with a simple configuration that ensures reliable operation of the check valve, can reliably recover only the contents within the valve chamber even in a configuration in which there is strong suction force from inside the container to the valve chamber, and can prevent outside air from flowing into the container. [Means for solving the problem]

[0011] The discharge cap of the present invention is a discharge cap that fits into a container mouth and discharges the contents contained inside the container, the discharge cap having a main body top surface and a fitting portion that hangs down from the main body top surface and fits into the container mouth, a discharge tube that extends upward from the main body top surface and discharges the contents contained inside the container, and a valve chamber that is partitioned between the inside of the container and the main body top surface, and a discharge guide portion that is positioned downward when the discharge tube is tilted at the tip of the discharge tube, and the valve chamber is provided with a supply tube that communicates with the inside of the container and takes out the contents, a bottom having a valve seat, and a check valve, the check valve is provided to be movable in the axial direction of the supply tube, and the check valve is A valve body tubular portion having a hollow cylindrical shape extending in the vertical direction; a valve seal surface engageable with the valve seat and having the valve seal surface is formed as a surface that extends gradually upward from a lower outer peripheral surface of the valve body tubular portion as it extends radially outward, and a space is provided between one end of the valve seal surface and the outer peripheral surface of the valve body tubular portion, The check valve and the bottom are guidably connected by a guide pin extending in the axial direction of the supply tube, and at least a part of the check valve contacts the top surface of the main body in the valve chamber at a position where the connection between the check valve and the bottom by the guide pin is not released during discharge. The upper end of the valve seal surface is configured to be able to come into contact with the top surface of the main body, and valve-side intermittent grooves extending from the inside to the outside in the radial direction are arranged at predetermined intervals on the upper portion of the valve seal surface. By doing so, the above-mentioned problems are solved. Effect of the Invention

[0012] According to the discharge cap of claim 1, the check valve has a sealing surface that can abut against the valve seat, and the check valve and the bottom are connected in a guidable manner by a guide pin extending in the axial direction of the supply tube. Therefore, when the contents are discharged, the check valve reliably rises along the guide pin due to the force of the contents flowing from the supply tube into the valve chamber, and the valve sealing surface can be released from the abutment against the valve seat. In addition, even after the contents have been discharged, the check valve descends along the guide pin due to the momentum of the contents being recovered from the valve chamber through the supply tube into the inner container and the check valve's own weight, causing the valve sealing surface to abut against the valve seat again, ensuring a stable seal, and the supply tube can be closed without the need for a separate biasing member to bias the check valve. Furthermore, compared to using a sphere or the like for the check valve, the check valve can be set in the specified position while being guided in position by the guide pin, and since no excessive force is applied to the valve sealing surface when setting it, the valve sealing surface is not damaged. Furthermore, if no biasing member is used to bias the check valve, even if the check valve descends, it will not completely close the supply tube until the contents in the valve chamber pass between the valve seal surface and the valve seat and are sucked into the inner container. After the contents in the valve chamber are collected, the check valve is sucked in and closes the supply tube, so that the contents can be reliably collected and outside air can be prevented from flowing into the inner container. In addition, at least a part of the check valve contacts the top surface of the main body inside the valve chamber at a position where the connection between the check valve and the bottom by the guide pin is not released during discharge, so that the amount of movement of the check valve in the axial direction of the supply tube can be regulated without causing misalignment between the central axis of the check valve and the central axis of the bottom. In other words, the amount of movement of the valve sealing surface away from the valve seat can be kept within a specified range, preventing the check valve from rising excessively and blocking the discharge port, or the connection between the check valve and the valve seat via the guide pin from being released, and the supply hole can be reliably re-closed. In addition, the upper end of the valve sealing surface is configured to be able to come into contact with the top surface of the main body, and valve-side intermittent grooves extending from the radially inward to the radially outward are arranged at predetermined intervals on the upper part of the valve sealing surface. Therefore, even if the top surface of the main body is formed flat and the upper end of the valve sealing surface is in contact with the top surface of the main body, a flow path for the contents to pass through to the discharge outlet can be reliably secured.

[0013] Claim 2 According to the configuration described above, at least at the position on the top surface of the main body that contacts the upper end of the valve seal surface, top surface intermittent grooves extending from the radially inward to the outward are arranged at predetermined intervals. Therefore, the upper end of the valve seal surface is formed flat, and even if the upper end of the valve seal surface contacts the top surface of the main body, a flow path for the contents to pass through to the discharge outlet can be reliably secured.

[0014] Claim 3 According to the configuration described above, the guide pin is formed in a rod shape extending upward from the center of the bottom, and a guide portion is provided at the center of the check valve. Therefore, as long as the guide pin is inserted into the guide portion, it is possible to reliably prevent the central axis of the check valve and the central axis of the valve seat from becoming significantly misaligned even if the check valve rises. Claim 4 According to the configuration described above, the guide pin is formed in a rod shape extending downward from the center of the check valve, and a guide portion is provided at the center of the bottom. Therefore, as long as the guide pin is inserted into the guide portion, it is possible to reliably prevent the central axis of the check valve and the central axis of the valve seat from becoming significantly misaligned even if the check valve is raised.

[0015] Claim 5 According to the configuration described above, the guide pin is provided with an anti-slip portion, the guide portion is provided with an engagement portion, and the inner diameter of the engagement portion is smaller than the outer diameter of the anti-slip portion. Therefore, even if the check valve rises, the engagement portion interferes with and engages the anti-slip portion, thereby reliably preventing the guide pin from falling out of the guide portion. Claim 6 According to the configuration described above, the valve seat is formed by an inclined surface that slopes downward toward the center of the supply tube, and the valve sealing surface is formed by an arc-shaped surface, so that when the supply hole is closed, the valve sealing surface and the valve seat form a ring-shaped line seal and the contact area between the valve seat and the valve sealing surface is reduced, and the check valve can be easily pushed up when it is opened. In addition, since the valve seat is inclined downward toward the center of the supply cylinder, the contents in the valve chamber can be quickly collected after discharge.

[0016] Claim 7 According to the configuration described above, the valve chamber is formed by fitting the inside plug into the engagement wall portion of the cap body, so there is a high degree of freedom in designing the shape of each part. For example, when changing the shape of only the inside plug side to change the shape of the bottom, the same cap body can be used for inside plugs of different shapes. [Brief description of the drawings]

[0017] [Figure 1] 1 is a cross-sectional view of a dispensing cap 100 according to an embodiment of the present invention. [Diagram 2] 3A and 3B are a top view and a side cross-sectional view of a check valve 132 and an inner plug 131 according to one embodiment of the present invention. [Diagram 3] FIG. 2 is a cross-sectional view showing a state during discharging of the discharge cap 100 according to the embodiment of the present invention. [Figure 4] 1 is a cross-sectional view showing a state in which the content P of the discharge cap 100 according to an embodiment of the present invention is being collected. [Diagram 5] FIG. 2 is a cross-sectional view showing a state in which a check valve 132 of the discharge cap 100 according to an embodiment of the present invention is closed. [Figure 6]11 is a cross-sectional view showing an example of another embodiment of the check valve 132 and the inner plug 131 of the discharge cap 100 according to the embodiment of the present invention. FIG. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0018] A discharge cap 100 according to an embodiment of the present invention will be described below with reference to the drawings. It should be noted that only the periphery of the container mouth 201 of the container 200 that fits into the discharge cap 100 is shown. Moreover, the top cover 120 is not shown except in FIG.

[0019] The discharge cap 100 according to one embodiment of the present invention is adapted to fit into the container mouth 201 of the container 200 and discharge the contents P contained inside the container 200, which is a double container composed of a flexible inner container 200b that contains the contents P and an outer container 200a that has elasticity and faces the inner container 200b inward. As shown in Figures 1 and 2, the discharge cap 100 is provided with a cap body 110, an upper lid 120, and a valve chamber 130.

[0020] The cap body 110 has a body top surface 111, a discharge tube 113 protruding upward from the body top surface 111, a fitting portion 112 hanging downward from the body top surface 111, an engagement wall portion 114 hanging cylindrically downward from the body top surface 111 inside the fitting portion 112, and a skirt wall 115 hanging downward from the peripheral portion of the body top surface 111. The discharge cylinder 113 is formed in a cylindrical shape, and has a discharge port 113a that communicates between a valve chamber 130 (described later) and the outside of the container 200, and a discharge guide portion 113b.

[0021] An outside air supply valve 150 is attached to the main body top surface 111 between the fitting portion 112 of the cap main body 110 and the skirt wall 115 . The fitting portion 112 and the skirt wall 115 are configured to fit with the container mouth portion 201 , and the outside air supply valve 150 communicates with the space between the outer container 200 a and the inner container 200 b of the container 200 . The engaging wall portion 114 has a lower end formed with a protrusion 114a that protrudes inward.

[0022] The top lid 120 is hinged to the cap body 110 on the side opposite to the discharge direction, and has a top lid top surface 121 and a blocking plug 122 hanging down from the top lid top surface 121.

[0023] The inner plug 131 has a bottom 145 and an engaging tube portion 136 extending downward from near the outer periphery of the bottom 145. In the center of the bottom 145, there is a bottom surface portion 133 with a supply hole 135 that communicates with the inside of the container 200, a guide pin 139 extending upward from the center of the bottom surface portion 133, a supply tube 137 extending upward from the outer periphery of the bottom surface portion 133, and a connecting tube 140 extending further upward from the upper part of the supply tube 137. In this way, by providing the connecting tube 140 on the upper part of the valve seat 134, even if the inner stopper 131 is temporarily distorted when the engaging tube portion 136 overcomes the protrusion 114a when the inner stopper 131 is attached to the cap body 110, the distortion of the valve seat 134, which is moved downward away from the engaging tube portion 136 via the connecting tube 140, can be reliably suppressed to a level that does not affect the blocking of the supply hole 135 by the check valve 132.

[0024] Supply tube 137 is composed of a bottom surface 133 and a valve seat 134 that abuts against a valve seal surface 138 of a check valve 132 described later, and valve seal surface 138 is formed as an inclined surface that slopes downward toward the center of supply tube 137.

[0025] The check valve 132 is formed from a relatively soft synthetic resin such as an elastomer or low-density polyethylene, and has a valve body tubular portion 144 forming a guide portion 143 that is open downward, a valve seal surface 138 extending radially outward from the lower portion of the valve body tubular portion 144, and a contact protrusion 146 extending upward from the upper portion of the valve body tubular portion 144, and the valve seal surface 138 is composed of an arcuate surface that extends gradually upward as it extends radially outward. That is, when the supply hole 135 is closed by the check valve 132, the valve seal surface 138 and the valve seat 134 form a ring-shaped line seal. This makes it possible to reduce the area where the valve seal surface 138 and the valve seat 134 come into close contact with each other, so that the check valve 132 can be opened easily and quickly with a small force when opened.

[0026] Additionally, valve-side intermittent grooves 147 extending from the inner side to the outer side in the radial direction are arranged at predetermined intervals on the upper portion of the valve seal surface 138. The inner diameter of the guide portion 143 is larger than the outer diameter of the guide pin 139 , so that the guide pin 139 can be inserted into the guide portion 143 .

[0027] Also, as shown in FIG. 6, a configuration may be adopted in which a retaining portion 141 protruding radially outward from the outer circumferential surface of guide pin 139 is provided, and a locking portion 142 protruding radially inward from the inner circumferential surface of guide portion 143 and having an inner diameter smaller than the outer diameter of retaining portion 141 is provided, thereby regulating the amount of movement of check valve 132 in the axial direction of supply tube 137. As a result, even if the check valve 132 rises, the locking portion 142 interferes with and locks the stopper portion 141, and the guide pin 139 is reliably prevented from coming off the guide portion 143. Furthermore, when top cover 120 is closed, contact protrusion 146 comes into contact with block plug 122 located above discharge port 113a. This allows the check valve 132 to reliably bring the valve seal surface 138 into close contact with the valve seat 134 when the top lid 120 is closed, thereby preventing the contents P from flowing out from the supply hole 135.

[0028] The valve chamber 130 is provided on the underside of the main body top surface 111, and is formed as a space partitioned by the main body top surface 111, the engagement wall portion 114 (engagement cylindrical portion 136), and the inner plug 131 by engaging the lower end of the engagement cylindrical portion 136 with the protrusion 114a of the engagement wall portion 114. The container 200 restores the volume of the outer container 200a, which has decreased as the content P is discharged, by sucking outside air from the outside air supply valve 150 into between the inner container 200b and the outer container 200a.

[0029] Next, the operation of discharging the contents P and recovering the contents P remaining in the valve chamber 130 into the container 200 by the discharge cap 100 in this embodiment will be described with reference to FIGS. 3 to 5. FIG. For the sake of explanation, the container 200 is shown in a stationary state.

[0030] First, the procedure for discharging the content P will be described. When the container 200 is tilted toward the discharge guide portion 113b of the discharge tube 113, which is the discharge direction, and pressed from the outside, the container 200 deforms and the outside air supply valve 150 rises, sealing the space between the inner container 200b and the outer container 200a to prevent air from flowing in. Then, the pressurized contents P in the inner container 200b push up the valve seal surface 138 of the check valve 132, pass between the valve seal surface 138 and the valve seat , and flow into the valve chamber . At this time, since there is no biasing member that biases the check valve 132 downward, the valve seal surface 138 can be easily separated from the valve seat 134 without applying a large force, and the contents P will not fly out more than necessary when the container 200 is pressed with a large force to open the check valve 132.

[0031] When pressure on the container 200 is further continued, the contents P pass through the discharge port 113a and are discharged to the outside of the discharge cap 100 along the discharge guide portion 113b. At this time, the check valve 132 continues to be pushed up by the force of the contents P flowing into the valve chamber 130 from the supply hole 135, but the upper part of the valve sealing surface 138 is pressed against the top surface of the valve chamber 130 (the main body top surface 111), so that the check valve 132 does not come off the guide pin 139. In addition, since a valve side intermittent groove 147 is provided on the upper part of the valve sealing surface 138, even if the upper part of the valve sealing surface 138 is pressed against the main body top surface 111, the contents P can pass through the valve side intermittent groove 147, and therefore the discharge of the contents P is not hindered.

[0032] The force with which the contents P are discharged can also be adjusted by changing the intervals and shape of the valve-side intermittent grooves 147. Furthermore, if the anti-slip portion 141 and the locking portion 142 are not formed, the outer surface of the guide pin 139 and the inner surface of the guide portion 143 can be formed into straight surfaces. Therefore, by designing the clearance between the outer diameter of the outer surface of the guide pin 139 and the inner diameter of the inner surface of the guide portion 143 to be small, it is possible to reduce the occurrence of misalignment between the central axis of the check valve 132 and the central axis of the bottom portion 145.

[0033] Next, the operation of recovering the content P in the valve chamber 130 into the container 200 will be described. The discharge of the contents P stops when the pressure on the contents P in the container 200 is released, and the force pushing up the valve seal surface 138 of the check valve 132 disappears, causing the check valve 132 to gradually descend under its own weight along the guide pin 139. At this time, the outer container 200a, from which the pressure has been released, is made of an elastic material and attempts to return to its original shape, creating a negative pressure in the space between the outer container 200a and the inner container 200b, causing the outside air supply valve 150 to open and drawing in outside air between the outer container 200a and the inner container 200b.

[0034] In addition, the negative pressure in the space between the outer container 200a and the inner container 200b also serves as a force for recovering the contents P in the valve chamber 130 into the container 200. As a result, as shown in FIG. 4, the force of the contents P in the valve chamber 130 being recovered into the container 200 from the bottom 145 side through the supply hole 135 causes the check valve 132 to maintain a slight floating state without contact between the valve seal surface 138 and the valve seat 134.

[0035] In addition, valve seat 134 is formed by an inclined surface, and valve seal surface 138 is formed by an arc-shaped surface, so that contents P in valve chamber 130 can be quickly recovered into container 200 from the narrowest point between valve seat 134 and valve seal surface 138, i.e., the point where a line seal was formed when the check valve was closed. Furthermore, by slanting the entire bottom portion 145 downward toward the center of the supply tube 137, the contents P can flow quickly and reliably to the supply hole 135 side without accumulating in the valve chamber 130.

[0036] When the content P in the valve chamber 130 has been collected into the container 200, the check valve 132 descends to bring the valve seal surface 138 into contact with the valve seat 134, as shown in FIG. At this time, even if the contents P in the valve chamber 130 have been collected before sufficient air has been sucked into the space between the outer container 200a and the inner container 200b from the outside air supply valve 150, a force is generated from the supply hole 135 to suck the check valve 132, and the valve sealing surface 138 and the valve seat 134 are firmly attached to each other, so that air is not sucked into the container 200 through the supply hole 135. Furthermore, even without using a biasing member to bias the check valve 132 downward, the valve sealing surface 138 can be reliably brought into close contact with the valve seat 134 and the supply hole 135 can be reclosed, thereby preventing deterioration of the contents P in the container 200.

[0037] In addition, since the valve chamber 130 is formed by fitting the inner plug 131 into the engagement wall portion 114 of the cap body 110, there is a high degree of freedom in designing the shape of each part of the inner plug 131. For example, when changing the shape of only the inner plug 131 side to change the shape of the bottom 145, the same shape of the cap body 110 can be used for an inner plug of a different shape, and there is no need to create a separate mold for the entire discharge cap, which can suppress increases in mold manufacturing costs.

[0038] Although the embodiment of the present invention has been described in detail above, the present invention is not limited to the above embodiment, and various design modifications can be made without departing from the present invention described in the claims.

[0039] In the above-described embodiment, the container is described as being composed of a flexible inner container for accommodating the contents and an outer container having elasticity that faces the inner container inward. However, the configuration of the container is not limited to this. For example, the container may be configured so that the volume of the inner container is variable by providing a piston that can move up and down at the bottom of the non-flexible inner container. In addition, in the above-described embodiment, the ejection cap is described as having a hinged top lid, but the form of the ejection cap is not limited to this, and for example, the ejection cap may not have a top lid, and may be provided as a screw cap-type top lid separate from the cap body.

[0040] In addition, in the above-described embodiment, the top lid is described as being hingedly connected to the cap body on the side opposite the ejection direction, but the connection state between the top lid and the cap body is not limited to this, and for example, the top lid may be connected to the cap body at a position rotated 90 degrees from the ejection direction. Furthermore, in the above-described embodiment, the valve chamber has been described as being formed as a space partitioned by the top surface of the main body, the engagement wall portion, and the stopper, but the method of forming the valve chamber is not limited to this. For example, a valve chamber separate from the cap body may be prepared and the valve chamber may be fitted into a predetermined position of the cap body to form a discharge cap, or a stopper may be provided at the tip of the container mouth, and the valve chamber may be formed by fitting the cap body and the container mouth together.

[0041] In addition, in the above-described embodiment, the guide pin is formed on the bottom surface of the inner plug, and the guide portion is formed on the check valve. However, the positions at which the guide pin and guide portion are formed are not limited to this. For example, a guide pin may be formed extending downward from the center of the lower part of the check valve, and a guide portion of a size that allows the guide pin to pass through may be formed extending downward from the center of the bottom surface. In addition, in the above-described embodiment, a connecting tube extending upward is provided at the top of the supply tube of the inner plug, but the shape of the inner plug is not limited to this, and for example, there may be no connecting tube, and the supply tube may be configured to extend directly into and connect to the engaging tube portion.

[0042] In addition, in the above-described embodiment, the check valve is described as having a contact protrusion that contacts the blocking plug on the top lid above the discharge port, but the relationship between the check valve and the top lid is not limited to this, and for example, there may be no blocking plug or contact protrusion. In addition, in the above-described embodiment, valve-side intermittent grooves are formed on the upper part of the valve seal surface, and are described as functioning as a flow path when the contents pass between the check valve and the top surface of the main body. However, the method of forming the flow path is not limited to this. For example, a passing hole penetrating in the radial direction may be formed in the upper part of the valve seal surface, or instead of providing valve-side intermittent grooves, top surface-side intermittent grooves extending from the radially inward to the radially outward may be arranged at predetermined intervals at a position that contacts the upper end of the valve seal surface on the top surface of the main body.

[0043] In addition, in the above-described embodiment, when a slip-out prevention portion and a locking portion are provided, it has been described that the locking portion interferes with and locks the slip-out prevention portion when the check valve is raised; however, the configuration of the slip-out prevention portion and the locking portion is not limited to this, and for example, the slip-out prevention portion and the locking portion may be formed in positions where they do not interfere with each other even when the check valve is raised to its maximum extent, and may be provided to adjust the radial clearance between the guide pin and the guide portion. [Explanation of symbols]

[0044] 100 ··· Discharge cap 110 ··· Cap body 111 ··· Top of unit 112 .... Fitting part 113 ··· Discharge tube 113a...Discharge port 113b ··· Discharge guide part 114... Engagement wall part 114a... ridge 115 ··· Skirt wall 116 .... Locking rib 120...Top lid 121 ··· Top of the lid 122: Obstruction plug 130 Valve chamber 131 ··· Inner stopper 132 Check valve 133 ... bottom part 134 Valve seat 135 ... Supply hole 136 ... Engagement cylinder portion 137 ··· Supply cylinder 138 Valve sealing surface 139 Guide pin 140 Connection tube 141 .... Stopper part 142 .... Locking portion 143 ... Information Department 144 Valve body cylinder portion 145 ... bottom 146 ...Contact protrusion 147 Valve side intermittent groove 150 ··· Fresh air supply valve 200 ... container 200a... Outer container 200b Inner container 201 ··· Container opening P...Contents

Claims

1. A discharge cap that is fitted to a container mouth and discharges the contents contained inside the container, the discharge cap has a main body top surface, a fitting portion that hangs down from the main body top surface and fits into the container mouth portion, a discharge tube that extends upward from the main body top surface and discharges the contents contained inside the container, and a valve chamber that is partitioned between the inside of the container and the main body top surface, The tip of the discharge cylinder is provided with a discharge guide portion that is positioned downward when tilted during discharge, The valve chamber is provided with a supply tube communicating with the inside of the container and adapted to take out the contents, a bottom having a valve seat, and a check valve. The check valve is provided so as to be movable in the axial direction of the supply cylinder, The check valve has a hollow cylindrical valve body portion extending in a vertical direction and a valve seal surface capable of abutting against the valve seat, the valve seal surface is formed by a surface that extends gradually upward from the lower outer peripheral surface of the valve body cylindrical portion toward the radially outward direction, a space is provided between the valve seal surface and an outer circumferential surface of the valve body cylindrical portion, The check valve and the bottom are guidably connected by a guide pin extending in the axial direction of the supply tube, At least a portion of the check valve contacts the main body top surface in the valve chamber at a position where the connection between the check valve and the bottom portion by the guide pin is not released during discharge, The upper end of the valve seal surface is configured to be able to contact the main body top surface, A discharge cap characterized in that an upper portion of the valve seal surface is provided with valve-side intermittent grooves extending from the inner side to the outer side in the radial direction at predetermined intervals.

2. 2. The discharge cap according to claim 1, wherein intermittent grooves extending from the inner side to the outer side in the radial direction are arranged at predetermined intervals on the top surface of the main body at least at a position where the top surface of the main body contacts the upper end of the valve seal surface.

3. The guide pin is formed in a rod shape extending upward from the center of the bottom portion, 3. The discharge cap according to claim 1, wherein a guide portion that opens downward and allows the guide pin to be inserted therein and that can guide the guide pin is provided at the center of the check valve.

4. The guide pin is formed in a rod shape extending downward from the center of the check valve, 3. The discharge cap according to claim 1, wherein a guide portion that is open upward and allows the guide pin to be inserted therein and that can guide the guide pin is provided at the center of the bottom portion.

5. The guide pin is provided with a retaining portion protruding radially outward from an outer circumferential surface of the guide pin, The guide portion is provided with a locking portion protruding radially inward from an inner circumferential surface of the guide portion, 5. The discharge cap according to claim 3, wherein an inner diameter of the engagement portion is smaller than an outer diameter of the retaining portion.

6. The valve seat is formed of an inclined surface that is inclined downward toward the center of the supply cylinder, 6. The discharge cap according to claim 1, wherein the valve seal surface is formed as an arcuate surface.

7. The discharge cap is composed of a cap body, an inner plug, and a check valve, the cap body has a body top surface, a discharge tube extending upward from the body top surface, a fitting portion that hangs down from the body top surface and fits with a container mouth portion, and an engagement wall portion that hangs down from the body top surface, the inside plug is configured to be engageable with the engagement wall portion and has a bottom portion on which the valve seat and the supply tube are provided, the check valve has a valve seal surface that is configured to be able to abut against the valve seat and is movable in the axial direction of the supply cylinder, 7. The discharge cap according to claim 1, wherein the valve chamber is defined by the main body top surface, the engagement wall portion, and the bottom portion.

Citation Information

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