Closing element
10486864 ยท 2019-11-26
Assignee
Inventors
Cpc classification
B65D39/088
PERFORMING OPERATIONS; TRANSPORTING
B65D39/082
PERFORMING OPERATIONS; TRANSPORTING
International classification
B65D39/08
PERFORMING OPERATIONS; TRANSPORTING
Abstract
The invention relates to a closing unit for a throughflow opening of a container or conduit, the closing unit comprising: a first closing element (4) configured to be mounted or integrally formed on the container or conduit, wherein the first closing element comprises a receiving part provided with a passage and to be arranged in or round the throughflow opening; a second closing element (6) comprising a closing part configured to be received by the receiving part and to be coupled releasably thereto for the purpose of closing or leaving clear the throughflow opening; wherein the releasable coupling between the receiving part and closing part comprises a conical threaded coupling.
Claims
1. Closing unit for a throughflow opening of a beverage container, the closing unit comprising: a first closing element configured to be mounted or integrally formed on the beverage container, wherein the first closing element comprises a receiving part comprising a wall, the receiving part provided with a passage and to be arranged in or round the throughflow opening, the throughflow opening being a drinking or pouring opening of the beverage container; a second closing element comprising a closing part configured to be received by the receiving part and to be coupled releasably thereto for the purpose of closing or leaving clear the drinking or pouring opening; wherein the wall of the receiving part comprises a conical screw thread disposed on its surface, wherein the closing part of the second closing element comprises a substantially annular downward extending part with an external conical screw thread disposed on its outer surface, wherein the downward extending part of the second closing element comprises a hollow space defined therein such that when the second closing element is engaged with the first closing element, the hollow space is exposed to the volume of the beverage container, wherein the flexibility of the wall of the receiving part of the first closing element is lower than the flexibility of the downward extending part of the closing part of the second closing element such that when the second closing element is engaged with the first closing element, the downward extending part of the second closing element is configured to move in a radial direction against the wall of the first closing element due to the pressure inside of the beverage container, and wherein the conical screw threads disposed on the first and second closing elements are configured to be threadbly engaged with each other such that the conical screw threads of the second closing element are pressed increasingly more firmly against the conical screw threads of the first closing element in a radial direction relative to a longitudinal axis of the hollow space defined in the second closing element as the pressure inside the beverage container increases.
2. Closing unit as claimed in claim 1, wherein the apex angle (2) of the cone of the conical screw thread amounts to between 5 and 20 degrees.
3. Closing unit as claimed in claim 1, wherein conical screw thread disposed on the first and second closing elements is a multi-thread screw thread and the multi-thread screw thread is embodied to couple or uncouple the closing part and receiving part over substantially the whole periphery with a rotation of the closing part and receiving part relative to each other over an angle of less than 90 degrees.
4. Closing unit as claimed in claim 1, wherein the ratio of the thread overlap O and the pitch S is smaller than 2*tangent (), wherein equals the half-apex angle of the cone.
5. Closing unit as claimed in claim 1, wherein the closing part is embodied such that the unscrewing angle is approximately equal to:
(O*180)/(S*tan()), with S being the thread pitch, the angle of conicity, O the thread overlap and n the number of threads of the screw thread.
6. Closing unit as claimed in claim 1, wherein the conical screw threads take a self-braking form and/or wherein, substantially irrespective of the magnitude of the axial force exerted on the closing element, the second closing element will not unscrew of its own accord.
7. Closing unit as claimed in claim 1, wherein the entry angle is equal to arc tangent (f) plus or minus 25%, wherein f is equal to the effective coefficient of friction between the conical screw threads of the first and second closing elements, in particular between two overlapping thread parts which support on each other or lie against each other and/or wherein the average entry angle of the screw thread is such that the effective coefficient of friction between the screw thread of the first closing element and the screw thread of the second closing element is greater than the tangent of the entry angle , wherein the average entry angle is defined as:
=arctan(pitch S/(*average screw thread diameter)).
8. Closing unit as claimed in claim 1, wherein the effective coefficient of friction between the screw thread of the first closing element and the screw thread of the second closing element is 15-30% greater than:
pitch S/(*average screw thread diameter).
9. Closing unit as claimed in claim 1, wherein a single-thread or multi-thread screw thread of the threaded coupling is arranged so as to engage on each other over the whole periphery of the receiving part and closing part.
10. Closing unit as claimed in claim 1, wherein the entry angle () of the screw thread varies from a relatively high value close to the free outer end of the closing part and a relatively low value at the opposite outer end of the closing part.
11. Closing unit as claimed in claim 1, wherein the thread overlap (O) of the conical screw threads of the first and second closing elements amounts to between 0.4 and 1.0 mm and/or wherein the pitch (S) of the screw thread amounts to between 8 and 20 mm.
12. Closing unit as claimed in claim 1, wherein an intermediate element is arranged between the first closing element and the second closing element, wherein the intermediate element comprises: a first element part coupled to the first closing element; a third element part coupled to the second closing element; and a second element part coupled to both the first and third element parts via a corresponding hinge, wherein the hinge coupling the second element part to the third element part is positioned opposite the hinge coupling the first element part to the second element part, wherein the hinge coupling the first element part to the second element part is a bistable hinge configured to hold the closing unit in stable manner in either a closed position or an opened position, and wherein the first, second, and third element parts are each concentrically disposed about the throughflow opening when the closing unit is in a closed position.
13. Closing unit as claimed in claim 12, wherein the intermediate element is configured to pivot the closing part of the second closing element between a closed position substantially closing the passage in the first closing element with the closing part and an opened position substantially keeping open the passage in the first closing element.
14. Closing unit as claimed in claim 12, wherein the closing part is mounted rotatably on the third element part and comprising screw thread which is formed on the closing part and which engages on corresponding screw thread of the first closing element during rotation of the closing part.
15. Closing unit as claimed in claim 1, wherein the first closing element comprises at least a stop for limiting the angle of rotation of the closing part.
16. Closing unit as claimed in claim 1, wherein the first closing element comprises a cover configured to accommodate at least a portion of the closing part of the second closing element and prevent removal of the closing part until the closing part has been rotated through a preset minimum angle relative to the first closing element.
17. Closing unit as claimed in claim 1, wherein the first closing element and/or the second closing element are manufactured substantially or wholly from plastic and/or are constructed from injection-moulded components.
18. Beverage container provided with a closing unit as claimed in claim 1.
Description
(1) The invention will be elucidated on the basis of the following description of several embodiments thereof. Reference is made in the description to the accompanying figures, in which:
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(37) In the shown embodiment closing unit 3 is constructed from (at least) a first closing element 4 (also referred to as lower element) and a second closing element 6 (also referred to herein as upper element). Further provided in this embodiment is an intermediate element 5 between the first and second closing elements. The middle element or intermediate element 5 forms a mutual connection for the first and second closing elements and ensures that, when the closing unit is opened, second closing element 6 nevertheless still remains connected to the first closing element and cannot therefore be lost. Both the closing elements and the intermediate element can be separate components which are embodied for coupling to each other, or can be integrated with each other. In other embodiments the first and second closing elements are not connected to each other via an intermediate element.
(38) The first (lower) closing element 4 is attached to beverage container 1, upper element 6 (also referred to here as the cap) forms the actual closure and intermediate element 5 serves to connect the cap and the first (lower) closing element, and ensures that in principle the cap thus remains always connected to the beverage container.
(39) The first (lower) closing element 4 can be manufactured integrally in determined embodiments. In other embodiments, for instance the embodiment of
(40) Second closing unit (cap) 6 has a tongue 7 with which it can be easily grasped in order that it can be rotated so as to open the closing unit. In the opened position the tongue 7 can further be grasped in order to pull cap 6 upward and position it out of the drinking plane. The upper side of cap 6 has a slightly recessed surface in order to safeguard imprints against damage when the beverage container is placed on its head, for instance during the filling process and during printing of the underside, such as arranging best-before dates. Cap 6 also has a protective part 11 (
(41) When the cap is rotated sufficiently far (in direction 20), for instance through an angle of about 40 degrees, tongue 7 automatically moves upward as a result of the presence of the threaded bayonet connection, and space is hereby left clear to further grasp the tongue 7 and fold it open.
(42) As shown for instance in
(43) Referring to
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(45) The hinge 10 arranged between first and second element parts 14,15 can be embodied as a bistable hinge. Bistable is understood to mean a construction wherein the hinge has a tendency to remain either in a wholly opened or wholly closed position. When the cap is opened, it will thus tend to remain open. This enhances the convenience of use of the closing unit. In a determined embodiment the hinge is for instance embodied so that, when the intermediate element has been pivoted more than half-open, this closing unit also remains open, even when the beverage container is for instance held askew.
(46) First element part 14 of intermediate element 5 comprises a ring 22 (
(47) In order to provide for a good connection of closing unit 3 to the (metal) upper wall of container 1, lower element part 34 of first (lower) closing element 4 has a lateral flange 32. A relatively soft material, for instance of rubber or silicones, is arranged on the surface of the lateral flange facing toward the end wall of the container. Because lower element part 34 is further tightened via ring 22 of intermediate element 5, a desired sealing can be ensured on the underside of the container wall.
(48) A fitting piece 31 ensures that lower element part 34 cannot co-rotate when the screw/pull cap 6 is screwed open. Upright part 24 of lower element part 34 is provided on the outer periphery with a conically embodied protrusion 36. Together with protrusion 37 of ring 22, the first (lower) closing element 4 can be attached to intermediate element 5, in particular by snapping the two elements onto each other so as to thus form one whole. A stable seal is created by the pressure exerted here. Upright part 24, also referred to herein as collar 24, serves as sealing edge of the sealing material (lip seal) incorporated into cap 6.
(49) The bayonet-threaded construction 25,26 is embodied such that in secured position the screw thread 25 of the lower part and screw thread 26 of cap 6 provides support over substantially the whole periphery of collar 24. The screw thread takes a conical form and provides for a strong pulling force over the whole surface which thus ensures a liquid-tight and pressure-tight seal. Also arranged in cap 6 is a small recess 40 for the purpose of arranging tongue 7 in cover 8 without the wall on the end surface getting in the way.
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(52) The operation of the closing unit is as follows. First (lower) closing element 4 is placed via the underside of the metal surface of the container wall into the specially formed opening 2. Via conical edge 37 on the inner periphery of ring 22 of the intermediate element and the conical edge 26 on collar 24 of first (lower) closing element 4 the intermediate element 5 and first (lower) closing element 4 are coupled (by means of a snap connection) to each other. This results in a pulling/pressing force which presses the soft seal 30 against the (metal) surface of the end wall of the container and thus provides for a liquid-tight and pressure-tight seal.
(53) Intermediate element 5 is provided with a second ring (element part) 15 and a third ring (element part) 16, i.e. a ring 15 and a ring 16 of a smaller diameter which can drop between ring 15. Ring 15 serves as displacing mechanism in order to allow cap 6 positioned in ring 16 to extend so that the cap can be positioned outside the drinking area. Ring 16 further serves as point of engagement of cap 6, wherein the cap can be connected by means of fingers 27 to the ring. Ring 16 has a smaller diameter than ring 15 in order to maintain a minimal height of the whole in folded-down position.
(54) In contrast to known screw thread constructions, which often need two or three complete 360 degree rotation movements to ensure a sufficiently firm closure, the screw thread construction according to embodiments of the invention can achieve a similar closing effect with a much more limited rotation movement, for instance only through an angle of less than 180 degrees, or even less than 120, less than 90 or less than 50 degrees. In determined embodiments the rotation movement (uncoupling angle) is between 20 and 120 degrees, preferably between 30 and 80 degrees and still more preferably about 40 degrees. When the unscrewing angle is so small, the threaded coupling has acquired properties of a bayonet coupling without the usual drawbacks of a bayonet coupling occurring, such as a limited holding force. A great holding force can after all still be achieved through the conical form of the screw thread and/or the use of multi-thread. The coupling according to embodiments of the invention is therefore also referred to here as bayonet screw thread coupling or bayonet screw thread construction.
(55) Lower element part 34 is further provided with an upright collar 24 which serves as closing collar against which the lip seal 2 (
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(57) The closing unit is preferably manufactured from plastic, in particular injection-moulded plastic. The plastic can in general he relatively hard, with the exception of the soft materials of the seals.
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(59) In similar manner as in the above described embodiment, closing part 66 and receiving part 64 are embodied as a truncated cone. The narrow outer end of the closing part is located on the side of high pressure, i.e. on the inner side of the bottle, while the wide outer end of the closing part is located on the side of low pressure, i.e. on the outer side. Because of the conical form of the closing part and receiving element (and thereby of the first and second screw thread), the closing part can be coupled with relatively great closing force to the receiving element.
(60) In the shown embodiment closing part 66 is provided on the underside with a cavity 72 in that closing part 66 takes a substantially annular form. The annular wall 73 of closing part 66 is preferably manufactured from flexible material, while the material of the bottle itself has a relatively great stiffness. The pressure inside the bottle which produces a radially outward directed force (direction P.sub.2) on closing part 66 ensures that screw thread 70 is pressed extra-firmly against the corresponding screw thread of the receiving part so that a further improved seal can be realized in the case of high pressure in the bottle.
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(65) Intermediate element 83 comprises a first annular element part 98, a second annular element part 99 and a third annular element part 100. In the position shown in
(66) Shown with reference to
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(71) In the shown embodiment intermediate element 116 comprises an element part 128 which is connected via a hinge 130 to first closing element 113 and a second element part 129 which is connected via a hinge 121 to first element part 128. Both element parts 128,129 are substantially annular, wherein second element part 129 takes a slightly smaller form than first element part 128 so that second element part 129 can be pivoted into first element part 128 (as shown in
(72) First closing element 113 comprises a substantially annular plastic element 119 arranged on the underside against end wall 115 of beverage container 111. This plastic element is formed such that it can be placed against an upright outer end 123 of end wall 115 of beverage container 111. First closing element 113 further comprises a substantially annular element part 120 arranged against the upper side of end wall 115. This element 120 forms the receiving part with throughflow opening in which the closing part of the cap (i.e. second closing element 114) can be placed. Receiving part 120 comprises a downward extending protrusion 124 which can be placed in a notch 122 in wall 115. Shown in
(73) A lower material consumption can be realized compared to a number of the above embodiments, for instance as described with reference to
(74) The invention is not limited to the embodiments thereof described herein. Numerous adjustments, modifications and additions can be envisaged, all falling within the scope of the following claims.