The present application is a National Phase of International Application Number PCT/DE2018/100780 filed Sep. 13, 2018 and claims priority to German Application Numbers 10 2017 129 912.2 filed Dec. 14, 2017 and 10 2017 125 248.7 filed Oct. 27, 2017.
The present disclosure relates to a tap head for connecting to a keg.
For the purposes of dispensing beverages, from the prior art it is known first of all to prepare these beverages in a keg and then to extract them from this keg. This process is also known colloquially as tapping. Such tapping of beverages occurs in carbonated beverages. These are usually beer, carbon dioxide-containing soft drinks, and the like.
In this case, the beverage itself is prepared in a keg. The keg arrives at the bar location from a brewery or a keg-filling station in a closed condition. If the keg is positioned in its intended setup location, a tap head is attached to/hammered into the keg and the beverage in the keg can be extracted. To this end, the tap head has a pressurisation-gas supply line, so that a pressurisation gas prepared, for example, in a gas bottle is introduced into the keg, the keg is thereby subjected to pressure and the beverage exits from the keg via a rising line. CO2 is usually used as the pressurisation gas.
In addition to kegs of metallic materials, e.g., aluminium kegs, recently more and more “single-use” kegs have gained a foothold in the market. Single-use kegs are as a rule made of plastics and are not re-used after the single use, but are disposed of. However, there are also multiple-use plastic kegs. If the keg is nearly empty, it is exchanged for a full one. However, the keg is still in a pressurised condition from the introduced pressurisation gas.
From DE 43 16 457 C1 a pressure-release valve is known to be incorporated in a tap head, which valve is, however, only actuated once the operation to release the tap head has started. But in the case of single-use kegs, with this arrangement even the actual keg closure can be gas-tightly closed so that, although some of the pressurisation gas present escapes, the keg itself remains under an undesirable residual pressure. This residual pressure exceeds the ambient pressure.
The aim of the present disclosure is to propose a method of completely degassing a keg, e.g., a single-use keg, wherein the user can see without further testing that the degassing function has been carried out.
Various exemplary embodiments are the subject of the dependent claims.
The tap head is suitable for connecting to or positioning on a keg, e.g., for a bar system, wherein the tap head itself has a tap-head body and a pressurisation-gas supply line and a beverage draw line are formed in the tap-head body. As a rule the tap-head body is made of a metallic material. A push tube may optionally also be present in the tap-head body, and a pivoted lever coupled to the tap-head body. When attaching the tap head to the keg, the tappet can then be displaced in an axial direction by the pivoted lever.
According to the disclosure, the tap head is characterised in that a 3/2-way valve is formed directly on or in the tap-head body in the pressurisation-gas supply line, which 3/2-way valve, when the tap head is attached and locked, either connects the pressurisation-gas supply line from a gas source to the interior chamber of the keg, or connects, in a gas-conducting manner, the interior chamber of the keg to the environment. Within the meaning of the disclosure, a 3/2-way valve thus has three connectors and two switching positions.
Due to the 3/2-way valve it is therefore possible to assume two positions, i.e. two settings. The keg is either connected to the gas source in a gas-conducting manner. Operation of the tap or bar can therefore take place. If the keg has to be exchanged or swapped, for example because it is empty or because a technical defect has arisen, or if cleaning is necessary, the 3/2-way valve may be moved to a position according to which the interior chamber of the keg is connected to the environment in a gas-conducting manner, but at the same time further supply of pressurisation gas from the gas source is blocked. This is to ensure that the interior pressure in the keg is discharged or falls to the ambient pressure. The keg could thus be disposed of without risk. There therefore remains no residual pressure in the keg itself. For example, escape of liquids when the tap head is removed is thus avoided. When used on a single-use keg, the single-use keg may be disposed of without residual pressure.
The fact that the 3/2-way valve is coupled directly to the tap-head body or integrated into the tap-head body increases operational safety. The tap head itself is removed from the keg, so that a user always also has direct access to the 3/2-way valve on the tap head.
The present disclosure thus also relates to an arrangement comprising a keg, a tap head, a gas bottle and a tap, as well as the respective component-connecting lines, and to use of a tap head according to the disclosure with 3/2-way valve, and to a method for operating a bar system.
The 3/2-way valve is designed as a slide valve, or the 3/2-way valve is designed as a rotary valve. The 3/2-way valve is coupled either to the tap-head body itself, coupled with positive fit, and connected using a driven-screw technique. In another exemplary embodiment, the 3/2-way valve may also be retro-fitted to tap heads already present or, in the event of wear or defect, the 3/2-way valve may simply be exchanged without the whole tap head having to be exchanged. The individual components of the 3/2-way valve may be made of metallic material, for example brass or stainless steel, but at least partially also of plastic.
The 3/2-way valve may however also be designed of a piece with and of the same material as the tap-head body itself. The 3/2-way valve may thus be integrated into the pressurisation-gas supply line of the tap-head body itself. This may be achieved, for example, in a casting or forging process during manufacture of the tap-head body.
In another exemplary embodiment, within the framework of the disclosure, the 3/2-way valve is in the form of a slide valve. In this arrangement, the 3/2-way valve has a longitudinal tubular valve seat or valve body. A sliding sleeve is arranged on the valve seat. The sliding sleeve is in the form of a collar. The valve seat itself is designed so as to be laterally projecting from the tap-head body. This enables the sliding sleeve to slide away and back again on the valve seat with a simple manual operation, since the sliding sleeve may be grasped in several fingers of a user, and moved. The respective position of the sliding sleeve directly yields an instantaneous deduction as to its respective state. Either pressurisation gas is supplied to the keg, or the keg is degassed and the pressurisation-gas supply simultaneously interrupted rather than simple degassing or overpressure valve. In this case, although a keg is degassed, the supply of pressurisation gas is not simultaneously interrupted. The valve seat need not be designed so as to be projecting laterally from the tap-head body; it may also project beyond the upper surface of the tap-head body or jut laterally at an oblique angle. As mentioned, the sliding sleeve can thus be gripped in several fingers of the installer using it.
The slide valve is further designed in such a way that the sliding sleeve has two gaskets arranged as O-rings in an inner casing surface or in grooves of the inner casing surface of the sliding sleeve. The gaskets may also be in the form of an X-ring, piston seal or rod seal. With these two gaskets, the sliding sleeve is glidably mounted on the valve seat, and on the valve seat may be steplessly displaced into or out of two positions. A gas-tight channel is thereby formed between the two gaskets and between the outer casing surface of the valve seat and the inner casing surface of the sliding sleeve. The position of the channel can be altered by moving the the sliding sleeve accordingly. The gaskets may also be arranged on the valve seat.
In order now to create a gas-conducting connection, at least two radial boreholes aligned in a radial direction are provided within the valve seat, arranged spaced apart relative to one another in an axial direction. By displacement of the sliding sleeve, either both radial boreholes can thus be covered, therefore the radial boreholes are connected to one another by the gas-tight channel in a gas-conducting manner. By axial displacement of the sliding sleeve, the latter can assume a position (such) that one radial borehole is exposed to the environment, while the second radial borehole is covered. The exposed radial borehole is therefore able to discharge the internal pressure of the keg to the environment. The covered radial borehole is simultaneously connected to the channel in a gas-conducting manner, but on account of the position of the sliding sleeve the channel is gas-tightly closed, so that no gas can be released to the environment. In this way, for example, further supply of pressurisation gas through the 3/2-way valve is interrupted or sealed off, while simultaneously the interior space of the keg is degassed via the exposed radial borehole.
In an alternative variant embodiment, the valve seat may also have an axial through bore. This through bore can also be called a through-going axial borehole. In order that two connectors can now be gas-tightly separated from one another in an axial direction, a stopper is inserted into the through bore. The stopper is gas-tightly inserted into the through bore. To this end, the stopper is pressed into the through bore. The stopper may also be glued and/or screwed into the through bore. The through bore is thus divided into two portions, e.g., longitudinal portions, by the stopper. Within each portion, a radial borehole is then connected in a gas-conducting manner. With the assistance of the sliding sleeve, the 3/2-way valve can thus be formed and assume various positions.
The through bore has two longitudinal portions of diameters which differ from one another. Part of the longer portion with the smaller diameter is therefore formed between the radial boreholes. The stopper can thus be introduced through the longitudinal portion of larger diameter into the through bore and then, in the longitudinal portion of smaller diameter, be pressed into the part which lies between the two radial boreholes.
Further advantages, features, characteristics and aspects of the present disclosure are the subject of the description which follows. Various exemplary embodiments are shown in the schematic drawings. These serve for an easier understanding of the disclosure. The drawings are as follows:
In the drawings, the same reference numbers are used for identical or similar components, even when for reasons of simplicity a description is not repeated.
The variant embodiment according to the disclosure will now be elucidated in the cross-sectional views according to
Should the keg 9 now have to be changed, the tap head 1 is in the first instance still positioned on the keg 9 and therefore in the locked position. However, the 3/2-way valve 2 has been reset in accordance with
Two axial boreholes 19 are made in the valve seat 12, which boreholes are mechanically and physically separated from one another within a mid range 20. The pressurisation gas is conducted via the radial boreholes 14.1, 14.2 and the gas-conducting channel 18 from one axial borehole 19 into the next axial borehole 19. Two radial boreholes 14.1, 14.2 are furthermore present on each of the left and right sides. The channel 18 is of a radially circumferential design.
According to the variant embodiment in
In the position represented in
In another exemplary embodiment, the x-shaped gasket 12 has in cross-section a width B17, which is wider than the borehole diameter D14.2 of the radial borehole 14.2. An intermediate position is therefore taken up by the sliding sleeve 13. This means that the 3/2-way valve is not closed as shown in
The foregoing description of some embodiments of the disclosure has been presented for purposes of illustration and description. It is not intended to be exhaustive or to limit the disclosure to the precise form disclosed, and modifications and variations are possible in light of the above teachings. The specifically described embodiments explain the principles and practical applications to enable one ordinarily skilled in the art to utilize various embodiments and with various modifications as are suited to the particular use contemplated. It should be understood that various changes, substitutions and alterations can be made hereto without departing from the spirit and scope of the disclosure.
Number | Date | Country | Kind |
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10 2017 125 248.7 | Oct 2017 | DE | national |
10 2017 129 912.2 | Dec 2017 | DE | national |
Filing Document | Filing Date | Country | Kind |
---|---|---|---|
PCT/DE2018/100780 | 9/13/2018 | WO | 00 |
Publishing Document | Publishing Date | Country | Kind |
---|---|---|---|
WO2019/080958 | 5/2/2019 | WO | A |
Number | Name | Date | Kind |
---|---|---|---|
595112 | Posgay | Dec 1897 | A |
2070517 | O'Leary | Feb 1937 | A |
2076262 | Black | Apr 1937 | A |
2925828 | Lieser | Feb 1960 | A |
3072208 | Titchenal | Jan 1963 | A |
3353724 | Johnston | Nov 1967 | A |
3908871 | Gottwald | Sep 1975 | A |
4125209 | Bailey | Nov 1978 | A |
4137954 | Brill | Feb 1979 | A |
4159102 | Fallon | Jun 1979 | A |
4181143 | Fallon | Jan 1980 | A |
4228927 | Beyens | Oct 1980 | A |
4291821 | Nezworski | Sep 1981 | A |
4305421 | Fallon | Dec 1981 | A |
4341240 | Cerrato | Jul 1982 | A |
4436228 | Frey | Mar 1984 | A |
4450853 | Dessenoix | May 1984 | A |
4538746 | Hines | Sep 1985 | A |
4736926 | Fallon | Apr 1988 | A |
5176298 | Mogler | Jan 1993 | A |
5617977 | Augustinus | Apr 1997 | A |
5690136 | Celli | Nov 1997 | A |
6315172 | Till | Nov 2001 | B1 |
6367667 | Ipsen | Apr 2002 | B1 |
8757195 | Gitlin, Jr. | Jun 2014 | B2 |
20020050498 | Celli | May 2002 | A1 |
20020074352 | Till | Jun 2002 | A1 |
20030075566 | Priebe | Apr 2003 | A1 |
20040045988 | van der Klaauw | Mar 2004 | A1 |
20100181346 | Hanssen | Jul 2010 | A1 |
20100243676 | Bax | Sep 2010 | A1 |
20100308084 | Riis | Dec 2010 | A1 |
20120248139 | Haskayne | Oct 2012 | A1 |
20140124543 | Dahl | May 2014 | A1 |
20160137478 | Riis | May 2016 | A1 |
20170267511 | Valles | Sep 2017 | A1 |
Number | Date | Country |
---|---|---|
203513254 | Apr 2014 | CN |
3028988 | Jun 2016 | EP |
2381174 | Feb 2010 | RU |
9952814 | Oct 1999 | WO |
Entry |
---|
Examination Report for Indian Application No. 202047030843 dated Apr. 19, 2021; 6pp. |
Search Report of Russian Application No. 2020123564 dated Mar. 12, 2021; 17pp. |
Number | Date | Country | |
---|---|---|---|
20210139306 A1 | May 2021 | US |