CONTAINER AND CLOSURE WITH ANTI-MISSILING CHANNELS
20220017273 ยท 2022-01-20
Inventors
Cpc classification
B65D1/0246
PERFORMING OPERATIONS; TRANSPORTING
B67D1/0832
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A container for pressurised liquid has a closure (V) engaged on the neck (N), both formed of yieldable polymer. The closure (V) has an end wall (21) and a skirt (20) provided with internal screw threads (24) which co-operate with external screw threads (23) on the neck to hold the closure in place. A pressure seal (25) is formed between the mouth (22) of the neck and the end wall (21) of the closure when the closure is screwed onto the neck whereby the pressurised liquid is retained within the container. To prevent missiling when the closure (V) is unscrewed the proximal face (28) of the external screw threads (23) is formed with transverse venting channels (36) extending from the base (26) of the respective screw threads to their outer extremity (27). The distal face (29) of the external screw threads (23) opposite each of the venting channels (36) is substantially continuous. This avoids weakening the neck of the container and reduces the risk of long-term creep.
Claims
1. A container having a container body (C) to hold pressurised liquid and a neck (N) with a closure (V) engaged on said neck; wherein said container neck (N) and said closure (V) are both formed of yieldable polymer; wherein the neck has a mouth (22) providing access to the interior of the container body (C); wherein the closure (V) has an end wall (21) and a skirt (20); wherein the skirt (20) is provided with internal screw threads (24) which co-operate with external screw threads (23) on the neck to hold the closure on the container body; wherein the internal screw threads (24) and the external screw threads (23) are each in the form of a single helix comprising complete circumferential turns; wherein each of the screw threads (23, 24) has a root (26, 30) where the respective screw thread (23, 24) is joined to the neck (N) or skirt (20) and an outer extremity (27, 31) remote from the neck or skirt; wherein each of the screw threads (23, 24) has a proximal face (28, 32) closest to the container body (C) and an opposite distal face (29, 33), each of said proximal and distal faces extending from the root (26, 30) of the respective screw thread to the outer extremity (27, 31) thereof; wherein a pressure seal (25) is formed between the mouth (22) of the neck and the end wall (21) of the closure when the closure is screwed onto the neck whereby the pressurised liquid is retained within the container; characterised in that the proximal face (28) of the external screw threads (23) and/or the distal face (33) of the internal screw threads (24) is formed with transverse venting channels (36) extending from the base (26, 30) of the respective screw threads to the outer extremity thereof (27, 31), and wherein the the distal face (29) of the external screw threads (23) and/or the proximal face (32) of the internal screw threads opposite each of the venting channels (36) is substantially continuous.
2. A container according to claim 1 wherein the venting channels (36) are provided in successive turns of the screw thread (23, 24) and are axially aligned.
3. A container according to claim 1 wherein a plurality of venting channels (36) are provided in each turn of the screw thread (23, 24).
4. A container according to claim 1 wherein the venting channels (36) occupy less than 30% of each complete circumferential turn of the screw thread (23, 24).
5. A container according to claim 1 wherein the venting channels (36) occupy less than 20% of each complete circumferential turn of the screw thread (23, 24).
6. A container according to claim 1 wherein the closure (V) has: a gas inlet port (11), a liquid dispensing port (12), valve means (6) to sealably close the gas inlet and liquid dispensing ports.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0022] The following description and the accompanying drawings referred to therein are included by way of non-limiting example in order to illustrate how the invention may be put into practice. In the drawings:
[0023]
[0024]
[0025]
[0026]
[0027]
[0028]
[0029]
DETAILED DESCRIPTION OF THE DRAWINGS
[0030] For the purpose of example the valve closure shown in the drawings is of the kind known as an A-type valve. All components of the valve closure may be moulded of polymeric materials (plastics) so that the closure is fully recyclable. A preferred form of valve closure is described in EP 2 585 400 A1.
[0031] Referring firstly to
[0032] In
[0033] Although the screw threads 23 and 24 have substantially the same pitch and a complimentary profile as shown in
[0034] During removal of the closure V, shown in
[0035] In the present closure, as shown in
[0036] The venting channels 36 are provided in successive turns of the screw threads 23 and are axially aligned, as shown. Furthermore, a number of venting channels are provided in each turn of the screw thread, which may be arranged in groups, for example six channels on each side of the neck. These channels provide a short unobstructed transverse path across the mating surfaces of the two threads, 23 and 24, and as shown in
[0037] The venting channels 36 occupy less than 30% of each complete circumferential turn of the screw thread 23, and preferably less than 20%. The channels have minimal impact on the cross sectional form of the thread so that the strength afforded to the neck by the screw thread is not significantly reduced. Moreover, there is little or no tendency to distortion due to creep under sustained gas pressure.
[0038] The arrangement described therefore provides relatively rapid venting while substantially maintaining the physical strength of the neck.
[0039] It will be appreciated that similar venting channels could be formed in the mating distal faces 33 of the closure threads 24 instead of, or in addition to, the proximal faces of the neck threads 23, but it is generally easier to mould the venting channels into an external thread.
[0040] Although the venting arrangement can be applied to any closure for pressurised containers it is particularly useful in the case of valve closures which are subject to relatively high gas pressures over a sustained period such as the A-type closure described. The venting mechanism can be applied to all the common valve formats A, G, S, D and M types. An A-type valve is similar to a G-type valve. Both have a fixed central core pin and a single spring-loaded valve member which controls two ports. Other forms of valve closure are also used with beer kegs. Operationally, S, D and M types are similar to each other in that they all have no fixed central core pin but have two concentric spring-loaded moving valve members which separately control the two ports. Generally the valve members are operated by respective spring elements, but the valve members may be cascaded such that closure of one spring-loaded valve member causes closure of the other.
[0041] Whilst the above description places emphasis on the areas which are believed to be new and addresses specific problems which have been identified, it is intended that the features disclosed herein may be used in any combination which is capable of providing a new and useful advance in the art.