GASSING APPARATUS AND METHOD FOR GASSING A CONTAINER
20230053801 · 2023-02-23
Inventors
Cpc classification
B65B31/043
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A gassing device for gassing a container includes a rotatable gassing rotor with a container receptacle for receiving the container and a feeding area for feeding a gas via a feed opening. The container receptacle includes a gassing nozzle flow-connected to the feed opening via a channel for gassing the container, and a stationary gas supply with a stationary supply opening arranged on the feeding area such that the supply opening can be flow-connected to the feed opening. The gassing rotor can be supplied with the gas from the gas supply in the operating state by moving the feed opening to the stationary supply opening by rotating the gassing rotor. The feeding area is connected without contact to the gas supply in the form of a labyrinth seal, so that the gassing rotor is rotatable relative to the gas supply in the operating state.
Claims
1. A gassing device for gassing a container, comprising: a rotatable gassing rotor with a container receptacle configured to receive the container and with a feeding area configured to feed a gas via a feed opening into the gassing rotor, the container receptacle comprising a gassing nozzle flow-connected to the feed opening of the feeding area via a channel to gas the container; and a stationary gas supply with a stationary supply opening arranged on the feeding area such that the supply opening is capable of being flow-connected to the feed opening, the gassing rotor configured to be supplied with the gas from the gas supply in an operating state by moving the feed opening to the stationary supply opening by rotating the gassing rotor, the feed opening flow-connected to the supply opening, the feeding area is connected without contact to the gas supply by a labyrinth seal, so that the gassing rotor is rotatable relative to the gas supply in the operating state.
2. The gassing device according to claim 1, wherein the gas supply comprises a groove and the feeding area comprises a web arranged in the groove, the web and the groove connected without contact to form the labyrinth seal.
3. The gassing device according to claim 1, wherein the feeding area comprises a groove and the gas supply comprises a web arranged in the groove, the groove and the web connected without contact to form the labyrinth seal.
4. The gassing device according to claim 1, wherein the feeding area is arranged at a rotation center of the gassing rotor.
5. The gassing device according to claim 4, wherein a shaft rotatable about an axis is arranged in the rotation center to rotate the gassing rotor and is connected to the gassing rotor in a torque-proof manner.
6. The gassing device according to claim 1, wherein the channel is arranged in an interior of the gassing rotor.
7. The gassing device according to claim 1, wherein the container receptacle is one of a plurality of container receptacles, each container receptacle of the plurality of container receptacles, having a gassing nozzle, each of the gassing nozzles flow-connected to the feeding area via a respective feed opening.
8. The gassing device according to claim 7, wherein the gas supply comprises a nozzle ring with a ring opening, the ring opening is arranged on the supply opening such that the feeding area is configured to be selectively flow-connected to at least one of the feed openings via the ring opening by moving the at least one feed opening to the ring opening by rotating the gassing rotor in the operating state, whereby the feed opening is flow-connected to the ring opening.
9. The gassing device according to claim 1, wherein the gassing rotor is a round plate.
10. The gassing device according to claim 1, comprising a container supply configured to supply the container to the container receptacle and a container discharge for discharging a gassed container with a lid from the container receptacle.
11. The gassing device according to claim 1, further comprising a cleaning system arranged on the labyrinth seal to clean the labyrinth seal such that a cleaning fluid is capable of being supplied to the labyrinth seal in the operating state.
12. The gassing device according to claim 11, wherein the cleaning system comprises a first cleaning channel arranged on the labyrinth seal so that the cleaning fluid is capable of being supplied to the labyrinth seal in the operating state.
13. The gassing device according to claim 12, wherein the cleaning system comprises a second cleaning channel arranged at the feed opening such that the cleaning fluid is capable of being supplied to the feed opening in the operating state.
14. A sealer for a container, comprising: a lid supply device configured to supply a lid to the container; the gassing device according to claim 1 to supply gas to the container; and a sealing device configured to seal sealing the container with the lid.
15. A method for gassing a container, comprising: providing a gassing device according to claim 1; receiving the container by the container receptacle; moving the feed opening to the supply opening by rotating the gassing rotor; feeding the gas from the gas supply into the gassing rotor; and gassing the container from the gassing nozzle of the gassing rotor.
16. The sealer for a container according to claim 14, wherein the sealer is a can sealer.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0030] The invention will be explained in more detail hereinafter with reference to the drawings.
[0031]
[0032]
[0033]
[0034]
[0035]
[0036]
DETAILED DESCRIPTION
[0037]
[0038] The gassing rotor 2 comprises a container receptacle for receiving the container, which is also represented in
[0039] The gassing rotor 2 has a feeding area 21 for feeding a gas via a feed opening 22 into the gassing rotor 2. The feeding area 21 is located at the rotation center R, in which the shaft 5 is also arranged.
[0040] The container receptacle 20 according to
[0041] In addition, the gassing device 1 comprises a stationary gas supply 3 with a stationary supply opening (represented as 31 in
[0042] The feeding area 21 is connected without contact to the gas supply 3 in the form of a labyrinth seal 4, so that the gassing rotor 2 is rotatable relative to the gas supply 3 in the operating state. In the represented embodiment, the gas supply is arranged like a kind of cover 33 around the shaft 5 and on the gassing rotor 2 above the feeding area 21. A strong outflow of the gas from the gassing device as well as a grinding/rubbing contact of the gassing rotor 2 and the gas supply 3 is avoided by the labyrinth seal 4.
[0043] Absolute tightness is not necessary with the non-contact labyrinth seal 4 according to the present disclosure. In particular, a slight surface gas flow from the labyrinth seal 4 to the surface 34 of the gassing rotor 2, as well as to a periphery of the gassing rotor (at which the container receptacles are arranged, usually along a circumference of the gassing rotor) can be achieved there to create a gas atmosphere at the container of the container receptacle. Carbon dioxide is particularly preferred as a gas and creates a CO.sub.2 atmosphere in a beverage container like a can.
[0044] The gassing device 1 according to
[0045]
[0046] The labyrinth seal 4 is designed as follows. The gas supply 3 comprises a groove 42 and the feeding area 21 comprises a web 41 arranged in the groove 42. The web 41 and the groove 42 are connected without contact in the form of a labyrinth seal 4, i.e. the web 41 is arranged in the groove 42 in such a way that a (thin) gap 43 is formed between the two. The sealing effect is based on the extension of a flow path through the gap 43, whereby a flow resistance is considerably increased. The extension of the path through the gap 43 is achieved by the engagement of groove 42 and web 41. This means that there is an interlocking of the rotatable gassing rotor 2 and the stationary gas supply 3 by the labyrinth seal 4.
[0047] In principle, the feeding area could comprise a plurality of grooves and webs, which are arranged (interlocked) in respective grooves and webs of the gas supply. The sealing effect can be increased with a larger number of grooves and webs. However, cleaning the labyrinth seal is made more difficult and the advantageous surface gas flow from the labyrinth seal 4 via the surface 34 described above is reduced.
[0048] The web 41 and the groove 42 extend parallel to the axis X (to the shaft 5) of rotation. The web is designed as a circular web and the groove as a circular groove.
[0049]
[0050] The sealer 10 for the container 100 comprises a lid supply device 11 for supplying the lid 101 to the container 100, a gassing device 1 according to the present disclosure for supplying gas to the container 100, and a sealing device 14 for sealing the container 100 with the lid 101.
[0051] In the embodiment shown, the sealer 10 is preferably designed as a can sealer 10. The container 100 is a can, which is seamed in the sealing device 14, which is designed as a can seaming machine 14. Carbon dioxide or nitrogen is the preferred gas to be supplied to the cans.
[0052] In the operating state, the lid 101 is introduced into the sealer 10 along the arrow C by the lid supply device 11. Here, the lids 101 are arranged on the gassing rotor 2. The lids 101 are transported further by rotating the gassing rotor 2 about the axis X. Then, the containers 100 are introduced into the container receptacles 20 of the gassing rotor 2 by the container supply 12. There the container 100 is gassed with the gas such as carbon dioxide or nitrogen and combined with the lid 101.
[0053] The gassing is performed by moving the feed opening 22 to the supply opening 31 by rotating the gassing rotor 2, so that a feed of the gas from the gas supply 3 to the gassing rotor 2 is possible. The gas supply is effected along the arrow B from the gas supply 3 into the gassing rotor 2. The gas from the gassing nozzle 23 of the gassing rotor 2 is supplied to the container 100. A whole area D can preferably be gassed by means of an annular groove (as described in
[0054] The gassing rotor 2 comprises a plurality of container receptacles 20 with gassing nozzles 23, whereby the gassing nozzles 23 are flow-connected to the feeding area 21 via the respective feed openings 22.
[0055] The container is transported by the container discharge 13 from the gassing device 1 to the sealing device 14.
[0056]
[0057] The stationary supply opening 31 is arranged on the feeding area 21. In the configuration shown, the supply opening 31 is arranged above the feed opening 22 and is thus flow-connected to the feed opening 22.
[0058] The gas can be supplied to the gassing rotor 2 from the gas supply 3 along arrow D. There is therefore a gas flow along arrow F, which leads from the supply opening 31 of the gas supply 3 into the feed opening 22 of the gassing rotor 2. In the gassing rotor 2, the gas flows through the channel 24 in the interior 25 of the gassing rotor 2 to the gassing nozzle 23, where the container 100 is applied with the gas. However, a part of the gas atmosphere of the container 100 is also formed by the gas flowing from the labyrinth seal 4 in the form of surface gas flow over the surface 34 of the gassing rotor to the container 100 and the lid 101.
[0059] The feeding area 21 is connected without contact to the gas supply 3 in the form of a labyrinth seal 4, so that the gassing rotor 2 is rotatable relative to the gas supply 3 in the operating state. The labyrinth seal 4 corresponds to the embodiment according to
[0060] In the embodiment according to
[0061]
[0062] The cleaning system 6 comprises cleaning channels 61 and 62, which are arranged on the labyrinth seal 4 in such a way that a cleaning fluid in the form of a liquid or the gas for gassing the containers can be supplied to the labyrinth seal 4 for cleaning the labyrinth seal 4 in the operating state. The shown embodiment of the labyrinth seal 4 with web 41 and groove 42 (described in more detail in
[0063] Furthermore, the cleaning system could also be used as (additional) gas supply, whereby the surface gas flow over the surface 34 could be increased by the cleaning channel 61 to increase the gas atmosphere around the containers.
[0064]
[0065] The gassing rotor 1 comprises a plurality of container receptacles 20 with gassing nozzles 23, which are flow-connected to the feeding area 21 and their respective feed openings 22 via a channel.
[0066] Furthermore, the gas supply 3 comprises a nozzle ring 32 with a ring opening 320. The ring opening 320 is arranged on the supply opening 31 in such a way that the feeding area 21 can be selectively flow-connected to at least one of the feed openings 22 via the ring opening 320 by moving the at least one feed opening 22 to the ring opening 320 by rotating the gassing rotor 2 about the axis X in the operating state, whereby the feed opening 22 is flow-connected to the ring opening 320. If the feed opening 22 is flow-connected with the ring opening 320, it is also flow-connected to the gas supply 3 and the supply opening 31. The supply opening 31 functions as an annular groove 31 and in this embodiment could also be regarded as a supply chamber, which is arranged at least partially at, in particular above the nozzle ring 32 in the gas supply 3.
[0067] For example, only one single container can be selectively gassed, while the other containers at the other container receptacles 20 are not yet gassed, but only when their respective feed opening 22 is flow-connected with the ring opening 320.
[0068] The ring opening 320 is designed so larger than the feed opening 22 that the ring opening 320 extends along the circumference U of the nozzle ring 32 over several feed openings 22. In this way, (at least) two feed openings 22 can be flow-connected simultaneously with the ring opening 320. In this way, one feed opening 22 can be pre-gassed, while the container is gassed at another feed opening 22.
[0069] A similar effect can be achieved without nozzle ring 32 with a supply opening 31, which extends over several (e.g. two) feed openings 22. The ring opening 320 or the extension of the supply opening 31 allows the gas flow only in a certain/predeterminable segment (D in