CLOSURE DEVICE FOR A CONTAINER
20200017263 ยท 2020-01-16
Assignee
Inventors
Cpc classification
B65D41/0485
PERFORMING OPERATIONS; TRANSPORTING
B65D51/2864
PERFORMING OPERATIONS; TRANSPORTING
B65D41/04
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A closure device for a container opening includes a lid element for closing the container opening, a chamber associated with the lid element, and an inner housing, the chamber and the inner housing also having mutually corresponding closure means and opening means which are in interaction with each other such that a discharge opening associated with the chamber as opening means can be released by rotationally moving the closure means connected to the lid element relative to the inner housing such that a medium stored in the chamber can exit into the container. The closure means is a closure pin which is fixedly connected to the chamber and which comprises a vertical extension provided with respect to a rotational axis and that the closure means are formed in the vertical extension, with different areas: a flow-through area and a closure area.
Claims
1. A closure device (1) for a container (2) with a container opening (3), wherein the closure device (1) comprises a lid element (4) for closing the container opening (3), a chamber (6) assigned to the lid element (4) and an inner housing (5), and wherein the chamber (6) and the inner housing (5) have closure means and opening means, which correspond to one another and interact with one another in such a way that a discharge opening (8) assigned to the chamber (6) as opening means can be released by rotationally moving the closure means connected to the lid element (4) relative to the inner housing (5) such that a medium stored in the chamber (6) can exit into the container (2), wherein the closure means is a closure pin (7), which is rigidly connected to the chamber (6) and has a vertical extent with respect to a rotational axis, and wherein the the vertical extent comprises a flow-through region and a closure region.
2. The closure device (1) according to claim 1, wherein the closure means is a closure pin (7), and wherein the closure pin (7) is connected to the chamber by a snap-lock part (22).
3. The closure device (1) according to claim 1, wherein the opening means has an output recess (26, 27) that is designed dependent on the rotating direction and/or wherein the inner housing (5) has a first output recess (27), which is during an unscrewing process correspondingly aligned with a second output recess (26) formed on the chamber (6) due to a relative rotation between the chamber (6) and the inner housing (5) without requiring a relative motion in a direction of the rotational axis and/or wherein the second output recess (26) is formed on a closure pin (7) and/or wherein the closure pin (7) is connected to the chamber (6) by a snap-lock part (22) and/or wherein the motion takes place without an axial relative motion between the chamber (6) and the inner housing (5).
4. The closure device (1) according to claim 1, wherein the lid element (4) is, relative to the chamber (6) in a removal direction of the lid element (4), movable relative to the container (2) to a limited degree in a first motion segment of the lid element (4) in a course of a removal of the lid element (4) from the container (2) and motion-coupled to the container (2) in a second motion segment.
5. The closure device (1) according to claim 1, wherein the motion between the chamber (6) and the inner housing (5) allows a discharge of medium by merely moving the closure means and the opening means relative to one another in a horizontal plane and/or wherein the lid element (4) is configured to be rotationally moved relative to the chamber (6) in the first motion segment and/or wherein the chamber (6) has a closure part in the form of a closure pin (7) and the opening means interact with the closure part and/or wherein the closure pin (7) is formed integrally with the chamber (6).
6. The closure device (1) according to claim 1, wherein the closure pin (7) has a freely projecting closure end (9) that is configured to be inserted into the closure opening (8), wherein the closure end (9) preferably has a diameter that essentially corresponds to an inside diameter of the closure opening (8).
7. The closure device (1) according to claim 1, wherein a sealing element (10) is assigned to the closure opening (8) and/or the closure pin (7) in order to close the closure opening (8) with the closure pin (7) in a fluid-tight manner.
8. The closure device (1) according to claim 1, wherein a sealing element (10) is assigned to an inner wall of the closure opening (8) and/or wherein the inner wall is coated with the sealing material in order to form the sealing element (10).
9. The closure device (1) according to claim 1, wherein the closure opening (8) is part of a flow channel (11), a length of which corresponds to at least five times its diameter and to no more than twenty times its diameter, and/or wherein the chamber (6) is arranged concentrically in the inner housing (5), wherein the chamber (6) is configured to be axially displaced within the inner housing (5) due to an opening process of the closure device (1) on the container (2), and/or wherein the chamber (6) has an opening on a container side and a snap-lock part (22) with U-shaped cross section encompasses an opening edge of the opening.
10. The closure device (1) according to claim 1, wherein the first output recess (27) of the chamber (6) also forms a lowermost region of the discharge path in an open state of the closure and/or wherein the discharge opening on the inner housing (5) forms a sealing lip (29) that abuts on the closure means of the chamber (6).
11. The closure device (1) according to claim 1, wherein the chamber (6) has a chamber bottom (33), and wherein the chamber bottom (33) transforms into a channel (34) that has a discharge opening (8).
12. The closure device (1) according to claim 1, wherein channel (34) is closed in an annular manner.
13. The closure device (1) according to claim 1, wherein the discharge opening (8) is formed in a channel bottom (37) and/or in a channel sidewall (36).
14. The closure device (1) according to claim 1, wherein multiple discharge openings (8) are formed over a circumference of the channel (34).
15. The closure device (1) according to claim 1, wherein the chamber bottom (33) comprises a soft plastic layer (38).
16. The closure device (1) according to claim 1, wherein the discharge opening (8) is only formed in the soft plastic layer (38).
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0056] The invention is described in greater detail below with reference to exemplary embodiments. In the drawings:
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DESCRIPTION OF THE EMBODIMENTS
[0080] A closure device 1 with a chamber 6 having a lower opening is illustrated in the figures and described below, wherein an opening means, which makes it possible to empty the chamber 6, is provided relative to said chamber opening. The opening means specifically consists of an opening part, which in this exemplary embodiment particularly is formed by a sealing element 10. This opening part comprises two circumferential sealing zones, namely a sealing zone, which preferably is formed on an outer circumferential surface of the opening means that interacts with an inner surface of the chamber 6, and another sealing zone, which in comparison is inwardly offset and in the exemplary embodiment interacts with a closure pin 7 that forms a closure means V. The aforementioned sealing zones are arranged concentric to one another in a direction extending perpendicular to the chamber 6referred to a moving direction R of the opening means during an opening process.
[0081]
[0082] The closure device 1 comprises a lid element 4, a chamber 6 arranged on the lid element 4 and an inner housing 5. In thenon-restrictiveembodiment shown, the lid element 4 is a plastic lid, for example of polypropylene (PP) or polyethylene (PE).
[0083]
[0084] The thusly manufactured chamber 6 is subsequently snapped to the lid element 4 and accordingly snap-locked thereon.
[0085] To this end, a circumferential collar 19 may be provided on the outer side of the wall of the chamber 6 as shown, wherein said collar serves for interacting with a corresponding snap-lock projection 20 of the lid element 4 in an interlocking manner.
[0086] For example, flattened regions 21 may be provided over the circumference of the chamber wall and in the corresponding regions of the lid element wall in order to transmit the screw torque during a screw-type actuation of the lid element 4. The chamber 6 is held on the lid element in a rotationally rigid manner.
[0087] The chamber 6 therefore has a one-piece design with respect to the circumferential chamber wall and the chamber ceiling, as well as the discharge nozzle 13 that is located directly adjacent to the chamber wall in the longitudinal direction and has an opening on the container side.
[0088] In this embodiment, the closure means V or the closure pin 7 is respectively snap-locked on the chamber 6, particularly on the discharge nozzle 13. This is realized with the aid of a snap-lock part 22. In a longitudinal section, the latter essentially is realized in a U-shaped manner with a circumferential snap-lock collar 23 that encompasses the free end region of the discharge nozzle 13. In the interlocking position, this snap-lock collar engages behind a correspondingly adapted radial step of the discharge nozzle 13 along the opening edge.
[0089] The snap-lock part 22 forms an inner circumferential wall, the inner side of which is supported on the discharge nozzle 13. The closure pin 7 is integrally formed on this wall, for example by means of a cross web arrangement.
[0090] The inner housing 5 has a pot-like design with a circumferential pot wall and a collar for being supported on the container edge surrounding the container opening 3.
[0091] A circumferential sealing lip 24 is integrally formed on the underside of the inner housing collar. In the assigned position, this sealing lip interacts with the container wall surrounding the container opening 3.
[0092] In this case, the inner housing 5 also forms a channel dome 14 on the side of the pot bottom. This channel dome centrally carries a pin-shaped structure with the flow channel 11. This pin-shaped structure with the flow channel 11 may be connected to the channel dome 14 by means of a cross web-like connection that, however, is not illustrated in greater detail.
[0093] In the exemplary embodiment shown, particularly the above-described connecting region is spray-coated with the material of the sealing element 10 such that the sealing element 10 essentially extends facing the chamber 6, but also at least partially underneath the dome ceiling.
[0094] According to
[0095] The outside diameter of the sealing element 10 corresponds to that of the channel dome 14 and is furthermore adapted to the clear inside diameter of the snap-lock part 22 carrying the closure pin 7 such that a sealing effect between the sealing element 10 and the inner wall of the chamber 6 or the snap-lock part 22 is respectively achieved in the operative position.
[0096] Furthermore, the snap-lock part 22 may also be held on the chamber 6 by means of a welded connection.
[0097] In this case, the inner housing 5 is also connected to the chamber wall by means of a thread 15.
[0098] In the closed position according to
[0099] An axial displacement of the closure pin 7 relative to the inner housing 5 is achieved due to the lid element 4 and thereby the chamber 6, wherein the closure pin 7 releases the closure opening 8 in order to discharge the stored medium from the chamber 6 into the container interior.
[0100] The inner housing 5 (initially) is secured against rotating by means of a frictional connection between the sealing lip 24 and the container wall.
[0101]
[0102] The discharge nozzle 13 has a section that is tapered in a funnel-shaped manner and transforms into a cylinder section 25 that carries the closure pin 7 on its end. In this case, the closure pin 7 preferably is also held on the cylinder section 25 by means of a cross web arrangement, wherein the closure pin 7 protrudes over the free end of the cylinder section 25 in the axial direction.
[0103] The sealing element 10 on the side of the inner housing has a pot-shaped design with a circumferential sealing wall, the outer side of which abuts on the cylinder section of the discharge nozzle 13.
[0104] The closure opening 8 is formed in the sealing pot bottom. The flow channel 11 essentially is formed by the sealing element 10.
[0105] On the outer side of its wall and on the underside of the sealing pot bottom, the pot-shaped sealing element 10 is circumferentially covered by a section of the inner housing 5 that has a corresponding pot-like design.
[0106] In the closed position according to
[0107] The closure pin 7 has a (second) output recess 26. This output recess is formed by a longitudinally directed groove that opens toward the circumferential wall surface of the closure pin 7, as well as toward the free end thereof.
[0108] In the embodiment shown, the closure pin 7 is completely seated in the flow channel 11 in the closed position. In this case, the output recess 26 extends over an axial length that is shorter than the axial length of the sealing region between the closure pin 7 and the sealing element 10. For example, the output recess 26 extends over half the axial length of the closure pin 7.
[0109] The figures only show one output recess 26 in the form of a groove. However, an arrangement of multiple grooves or the like, which are distributed over the circumference, would likewise be conceivable. Furthermore, a circumferential radial constriction may be used for realizing the output recess 26.
[0110] Due to the axial displacement of the chamber 6 relative to the inner housing 5, the closure pin 7 is in this case also raised into a position according to
[0111] According to
[0112] If the closure pin 7 is axially extended downward beyond the inner housing 5, this output recess 26 may furthermore form a lowermost region of the discharge path in the discharge state according to
[0113] In this embodiment, the closure pin 7 and the inner housing 5 or the sealing element 10 respectively interact in the form of a slide valve.
[0114]
[0115] Based on the fundamental arrangement and design of the closure device 1 in accordance with the above-described exemplary embodiment, the inner housing 5 is in this case not connected to the chamber 6 by means of a thread, but rather by means of a snap-lock connection that preferably allows a rotation of the chamber 6 relative to the inner housing 5 over a predefined angular range.
[0116] In this embodiment, the closure pin 7 is permanently seated in the sealing element 10 and accordingly is not axially displaced relative thereto.
[0117] In this case, only a displacement of the closure pin 7 relative to the sealing element 10 in the circumferential direction takes place, wherein said displacement preferably is limited to an angle of approximately 180 by means of stops.
[0118] Analogous to the above-described exemplary embodiment, the closure pin 7 in this case also has a (second) output recess 26 in the form of a groove that extends in the axial direction on the side of the wall. With respect to a cross section perpendicular to the axial direction, this groove is in the closed position according to
[0119] This accordingly results in a partial radial widening of the channel cross section over its circumference in this region.
[0120] A rotational displacement causes the closure pin 7 seated in the sealing element 10 to be turned into the discharge position, in which the output recesses 26 and 27 are moved into a corresponding alignment as illustrated in
[0121] In this embodiment, the inner housing 5 likewise is already axially raised relative to the container opening 3 over the first rotational path of approximately 180 in order to reach the discharge position. The sealing lip 24 has an adequate axial length for generating a sufficiently high holding torque in order to prevent the inner housing 5 from rotating despite this axial displacement in the course of the rotational displacement from the closed position into the discharge position.
[0122] A circumferential sealing lip 29 is integrally formed on the inner housing 5 or directly formed by the sealing element 20 in the region of the discharge opening 28. This sealing lip acts against the circumferential surface of the assigned region of the closure pin 7, namely in the closed position, as well as in the open position. In this way, the flow channel 11 is sealed in the discharge position of the closure device 1, which also corresponds to the removed position of the lid. A lid that was removed after the discharge of the medium from the chamber 6 into the container 2 and placed on a work surface therefore cannot lose any residual amount of medium that may still be present in the chamber 6. Soiling of the work surface and the environment is thereby counteracted.
[0123] Since the pressure in the chamber 6 is no longer higher than the ambient pressure after the discharge of the medium in the discharge position, such a lip-shaped seal suffices for preventing potential residual amounts from dripping out.
[0124] The closure device 1 can be conventionally filled: fillingpreassemblypressurizationassembly.
[0125] Furthermore, the inner housing 5 may also be snap-locked on the chamber 6 in the open valve position after the chamber 6 has been filled, wherein the chamber 6 is subsequently pressurized and closed due to a relative rotation between the inner housing 5 and the chamber 6. It is also possible to snap on the inner housing 5 in the closed valve position after the chamber 6 has been filled.
[0126] The sealing element 10 is constructed in such a way that it essentially abuts on the closure pin 7 permanently with a prestress in the region of the discharge opening. On the one hand, this prevents anything from depositing in the first output recess 27 between the sealing element 10 and the closure pin 7. On the other hand, the sealing lip 29 can provide an effective drip protection.
[0127] In the embodiment shown, the sealing lip 29 has a fluting 30 on the outer side in order to additionally increase the flexibility such that the least resistance possible is generated during the pressurized discharge of the chamber contents.
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[0129] In this case, the chamber 6, the discharge nozzle 13 and the closure pin 7 are also connected to one another in a rotationally rigid manner and rotatable relative to the inner housing 5 as a whole, but rigidly connected to this inner housing in the axial direction.
[0130] As in the above-described exemplary embodiment, a preferably outer circumferential bead 9 on the discharge nozzle 13 may in this case also engage into an assigned annular groove 12 of the inner housing 5. This allows the rotational displacement, in particular, of the closure pin relative to the inner housing 5. However, a relative displacement in the axial direction is prevented.
[0131] In the previous embodiment, a rotation of the lid element 4 from the closed position in the direction of a lid removal position (initially) causes a rotation of the chamber 6 with the closure pin 7 relative to the inner housing 5 and a superimposed axial displacement of the inner housing 5 and the chamber 6 with the closure pin 7 in the lid removal direction, but only a rotation of the closure pin 7 relative to the inner housing 5 via the chamber 6 without the aforementioned axial displacement can initially be realized in the embodiment according to
[0132] An axial displacement of the chamber 6 with the closure pin 7 and the inner housing 5 in the removal direction preferably is prevented until a discharge position illustrated in
[0133] This is essentially achieved with a freewheel of the lid element 4 relative to the chamber 6 referred to the axial direction.
[0134] To this end, a stopping rib 15, which in the longitudinal section according to
[0135] The axial distance between the driving rib 16 and the stopping rib 15 in the optionally sealed closed position of the lid according to
[0136] The chamber 6 is held in the lid element 4 in a rotationally rigid manner, but can be linearly displaced in the lid element 4 in the axial direction by the above-described dimension. To this end, axially extending ribs 31 are provided on the outer side of the wall of the chamber 6 and engaged with correspondingly adapted ribs 32 on the inner side of the wall of the lid element 4, which likewise extend in the axial direction (see
[0137] In this way, the chamber 6 and the elements connected to the chamber 6 can be vertically displaced relative to the lid element 4 and the chamber 6 is at the same time rotationally driven by the lid element 4.
[0138] Due to the rotational displacement of the lid element 4 out of the closed position according to
[0139] No axial displacement of the chamber 6 and of the inner housing 5 takes place in the course of this initial rotational displacement over an exemplary angle of approximately 180 degrees. This axial displacement, particularly for removing the inner housing 5 from the container opening 3, preferably only begins once the discharge position according to
[0140]
[0141] The chamber bottom 33 transforms into a channel over its entire circumference. With respect to the section illustrated in
[0142] The radially inner sidewall 35 transforms into the chamber bottom 33 whereas the radially outer channel sidewall 36 essentially forms the housing wall of the inner housing 5.
[0143] A soft plastic layer 38 particularly covers the surface of the channel bottom 37, but preferably also the surface of the radially inner channel sidewall 35 pointing into the channel space and optionally also the surface of the chamber bottom 33 facing the chamber 6 as shown. This soft plastic layer preferably can be manufactured together with the inner housing 5 in a two-component injection molding process. The soft plastic layer 38 may alternatively be manufactured separately in the form of a pot-like part and, for example, snap-locked on the inner side of the inner housing 5.
[0144] At least one discharge or closure opening 8 is formed in the region of the channel bottom 37, wherein the opening axis of said discharge or closure opening preferably is directed identically to the body axis of the closure device 1, i.e. essentially aligned along a vertical line in a standing state of the container 2.
[0145] The discharge opening 8 is realized in the form of a bore and extends through the hard plastic material in the region of the chamber bottom 33, as well as through the soft material in the region of the soft plastic layer 38.
[0146] Analogous to the description of the embodiments illustrated in
[0147] The sealing element 10 is formed by the soft plastic layer 38. The closure means V is in this embodiment essentially realized in a plug-like manner and particularly formed by the wall of the discharge nozzle 13.
[0148] The discharge nozzle 13 essentially extends in the form of a circular cylinder, wherein the free annular end, which usually points downward in the operative state, penetrates into the channel 34 of the inner housing 5.
[0149] The closure means V, which in this case corresponds to the annular end region of the discharge nozzle 13, is permanently seated in the sealing element 10, in this case the channel 34, and accordingly not displaced relative to the sealing element in the direction of the axis. The closure means V preferably is only displaced relative to the sealing element 10, particularly the soft plastic layer 38, in the circumferential direction, wherein the displacement of the closure means takes place over an angle, for example, of 180 and is limited by stops.
[0150] In this case, the closure means V has a (second) output recess 26 in the form of a groove, the edges of which are open radially inward in the direction of the radially inner channel sidewall 35 and axially downward in the direction of the discharge opening 8. In the closed position according to
[0151] This first output recess 27 preferably is also realized in the form of a groove, particularly in the form of a groove extending in the axial direction. According to the exemplary embodiment shown, this first output recess 27 is provided in the transition from the channel sidewall 35 into the chamber bottom 33 and axially spaced apart from the discharge opening 8.
[0152] Accordingly, the channel 34 is radially widened in the region of the first output recess 27.
[0153] A rotational displacement causes the plug-shaped closure means V seated in the channel 34 to be turned into the discharge position, in which the output recesses 26 and 27 are moved into a corresponding alignment as illustrated in
[0154] The first output recess 27 opens in the axial direction toward the chamber 6.
[0155] The preceding explanations serve for elucidating all inventions that are included in this application and respectively enhance the prior art independently with at least the following combinations of characteristic features, namely:
[0156] A closure device 1, which is characterized in that the closure means is a closure pin 7, which is rigidly connected to the chamber 6 and has a vertical extent with respect to the rotational axis, and in that the closure means is over the vertical extent realized with different regions, namely a flow-through region and a closure region.
[0157] A closure device 1, which is characterized in that the closure means is a closure pin 7, and in that the closure pin 7 is connected to the chamber by means of a snap-lock part 22.
[0158] A closure device 1, which is characterized in that the opening means has an output recess 26, 27 that is designed dependent on the rotating direction.
[0159] A closure device 1, which is characterized in that the inner housing 5 has a (first) output recess, which is during an unscrewing process correspondingly aligned with a (second) output recess formed on the chamber 6 due to a mere relative rotation between the chamber 6 and the inner housing 5.
[0160] A closure device 1, which is characterized in that the (second) output recess (26) is formed on a closure pin 7.
[0161] A closure device 1, which is characterized in that the closure pin 7 is connected to the chamber 6 by means of a snap-lock part 22.
[0162] A closure device 1, which is characterized in that the motion takes place without an axial relative motion between the chamber 6 and the inner housing 5.
[0163] A closure device 1, which is characterized in that the lid element 4 is, relative to the chamber 6 in a removal direction of the lid element 4, movable relative to the container 2 to a limited degree in a first motion segment of the lid element 4 in the course of a removal of the lid element 4 from the container 2 and motion-coupled to the container 2 in a second motion segment.
[0164] A closure device 1, which is characterized in that the motion between the chamber 6 and the inner housing 5 allows a discharge of medium by merely moving the closure means and the opening means relative to one another in a horizontal plane.
[0165] A closure device 1, which is characterized in that the lid element 4 can be rotationally moved relative to the chamber 6 in the first motion segment.
[0166] A closure device 1, which is characterized in that the chamber 6 has a closure part in the form of a closure pin 7, and in that the opening means interact with the closure part.
[0167] A closure device 1, which is characterized in that the closure pin 7 is realized integrally with the chamber 6.
[0168] A closure device 1, which is characterized in that the closure pin 7 has a freely projecting closure end 9 that can be inserted into the closure opening 8.
[0169] A closure device 1, which is characterized in that the closure end 9 has a diameter that essentially corresponds to the inside diameter of the closure opening 8.
[0170] A closure device 1, which is characterized in that a sealing element 10 is assigned to the closure opening 8 and/or the closure pin 7 in order to close the closure opening 8 with the closure pin 7 in a fluid-tight manner.
[0171] A closure device 1, which is characterized in that a sealing element 10 is assigned to the inner wall of the closure opening 8, and in that the inner wall is coated with the sealing material in order to form the sealing element 10.
[0172] A closure device 1, which is characterized in that the closure opening 8 is part of a flow channel 11, the length of which corresponds to at least five times its diameter and to no more than twenty times its diameter.
[0173] A closure device 1, which is characterized in that the chamber 6 is arranged concentrically in the inner housing 5, wherein the chamber 6 can be axially displaced within the inner housing 5 due to an opening process of the closure device 1 on the container 2.
[0174] A closure device 1, which is characterized in that the chamber 6 has an opening on the container side, and in that a snap-lock part 22 with U-shaped cross section encompasses an opening edge of the opening.
[0175] A closure device 1, which is characterized in that the (first) output recess 27 of the chamber 6 also forms a lowermost region of the discharge path in an open state of the closure.
[0176] A closure device 1, which is characterized in that the discharge opening on the inner housing 5 forms a sealing lip 29 that abuts on the closure means of the chamber 6.
[0177] A closure device 1, which is characterized in that the chamber 6 has a chamber bottom 33, and in that the chamber bottom 33 transforms into a channel 34 that has a discharge opening 8.
[0178] A closure device 1, which is characterized in that the channel 34 is closed in an annular manner.
[0179] A closure device 1, which is characterized in that the discharge opening 8 is formed in a channel bottom 37 and/or in a channel sidewall 36.
[0180] A closure device 1, which is characterized in that multiple discharge openings 8 are formed over the circumference of the channel 34.
[0181] A closure device 1, which is characterized in that the chamber bottom 33 comprises a soft plastic layer 38.
[0182] A closure device 1, which is characterized in that the discharge opening 8 is only formed in the soft plastic layer 38.
[0183] All disclosed characteristic features are essential to the invention (individually, but also in combination with one another). The disclosure content of the associated/attached priority documents (copy of the priority application) is hereby fully incorporated into the disclosure of this application, namely also for the purpose of integrating characteristic features of these documents into claims of the present application. The characteristic features of the dependent claims characterize independent inventive enhancements of the prior art, particularly for submitting divisional applications on the basis of these claims.
LIST OF REFERENCE SYMBOLS
[0184] 1 Closure device [0185] 2 Container [0186] 3 Container opening [0187] 4 Lid element [0188] 5 Inner housing [0189] 6 Chamber [0190] 7 Closure pin [0191] 8 Closure opening [0192] 9 Bead [0193] 10 Sealing element [0194] 11 Flow channel [0195] 12 Annular groove [0196] 13 Discharge nozzle [0197] 14 Channel dome [0198] 15 Stopping rib [0199] 16 Driving rib [0200] 17 Thread [0201] 18 Thread [0202] 19 Collar [0203] 20 Snap-lock projection [0204] 21 Flattened region [0205] 22 Snap-lock part [0206] 23 Snap-lock collar [0207] 24 Sealing lip [0208] 25 Cylinder section [0209] 26 Output recess [0210] 27 Output recess [0211] 28 Discharge opening [0212] 29 Sealing lip [0213] 30 Fluting [0214] 31 Rib [0215] 32 Rib [0216] 33 Chamber bottom [0217] 34 Channel [0218] 35 Channel sidewall [0219] 36 Channel sidewall [0220] 37 Channel bottom [0221] 38 Soft plastic layer [0222] V Closure means