This application is the U.S. national phase of International Application No. PCT/SE2020/050455 filed May 5, 2020 which designated the U.S. and claims priority to SE Patent Application No. 1950553-6 filed May 9, 2019, the entire contents of each of which are hereby incorporated by reference.
The present invention refers to a membrane for moving a valve disk of a control valve between a first position and a second position. The present invention also refers to a control valve.
In larger milking installations, a problem to build up the milking vacuum quickly enough at startup of the milking installation may occur. The problem is related to the functioning of the membrane of the control valve that controls the shut off valve provided on the respective long milk conduit to the milking cluster. In order to build up the milking vacuum efficiently, after a shutdown of the milking installation, it is important that each shut off valve is properly closed to prevent ambient air from leaking into milking vacuum system. Thus the control valves have to be activated to control the respective shut off valve to be closed so that no air may leak into the milking vacuum system during building up of the vacuum.
Occasionally, the membrane of the control valve may not be able to lift the valve disk from a valve disk seat in one of its positions, in particular its first position in which vacuum, or low pressure, is allowed to pass through the outlet of the control valve. The valve disk may be attached to the valve disk seat in its first position in the control valve. In order to solve this problem, a solution with a coil spring mounted underneath the membrane has been tested. According to this solution, the valve disk is subjected to a force from the coil spring and biased away from the valve disk seat and the first position towards a second position. The idea is that the coil spring may assist the membrane in pulling the valve member away from the first position. However, the functionality of this solution is not perfect. Moreover, the solution is associated with increased service costs.
The purpose of the present invention is to overcome the problems discussed above. In particular, the purpose is to overcome the problem of the valve disk being attached in one of its positions.
The purpose is achieved by the membrane initially defined, which is characterized in that the membrane is designed with an inherent pre-tensioning of the flexible portion, which permits the flexible portion to exert a force on the valve disk from the first position towards the second position.
The inherent pre-tensioning of the membrane may assist a relatively high pressure or a relatively low pressure to move the valve disk away from the first position and towards the second position. The membrane may thus overcome the problem of the prior art that the valve disk get clogged or attached to the valve disk seat of the first position. Moving the valve disk from the second position to the first position may be less critical. Atmospheric pressure may, when applied, overcome the inherent pre-tensioning of the membrane to move the valve disk to the first position.
According to an embodiment of the invention, the flexible portion has a wavy shape, in particular in a cross-section, with a circular wave peak and a circular wave valley. Such a wavy shape may create the inherent pre-tensioning of the flexible portion to exert a pulling force on the central portion in a desired direction along the central axis, i.e. in particular from the first position. The cross-section may be parallel with the central axis.
According to an embodiment of the invention, the wave peak is located more closely to the central axis than the wave valley. The inner wave peak and the central portion may thus be lifted in relation the outer wave valley and the central portion.
According to an embodiment of the invention, the flexible portion comprises an intermediate annular flank extending between and connecting wave peak and the wave valley. The intermediate annular flank may slope from the wave peak to the wave valley.
According to an embodiment of the invention, the flexible portion has a thickness, wherein the thickness is thinner through the intermediate annular flank than through the wave peak and the wave valley. Such a thinner intermediate annular flank may improve the flexibility of the flexible portion.
According to an embodiment of the invention, the membrane has an active side and a passive side, wherein the outer annular rim portion has annular surface on the active side, wherein the wave peak is located above the annular surface in a rest position of the membrane.
According to an embodiment of the invention, the wave valley is located below the annular surface in the rest position.
The purpose is also achieved by the control valve initially defined, which is characterized in that the membrane is designed with an inherent pre-tensioning of the flexible portion, which permits the membrane to exert a force on the valve disk from the first position towards the second position. The inherent pre-tensioning of the membrane of the control valve may assist a relatively high pressure or a relatively low pressure to move the valve disk away from the first position and towards the second position, and thus prevent the valve disk from resting attached to the valve disk seat in the first position.
Various embodiments of the control valve are defined in the dependent claims 9 to 16. For instance, the central portion of the membrane may be connected to the valve disk via a rod member extending through and attached to a central hole of the central portion.
The present invention is now to be explained more closely through a description of an embodiment and with reference to the drawings attached hereto.
Each milking cluster 1 may be connected to a vacuum pump device 3 via a respective long milk conduit 4, a common vacuum conduit 5 and a milk receiver 6. During milking, milk may thus be conveyed from the animals through the respective milking cluster 1, the respective long milk conduit 4 and the common milk conduit 5 to the milk receiver 6 by means of the vacuum or low pressure provided by the vacuum pump device 3. The milk collected in the milk receiver 6 may be conveyed to a milk tank 7 for delivery to a dairy.
A respective shut off valve 8 is provided on each long milk conduit 4. The shut off valve 8 is configured to close or open the respective long milk conduit 4 for the low pressure to the respective milking cluster 1.
The closing and opening of the shut off valve 8 is controlled by means of a control valve 9, see also
The control valve 9 has an outlet 12. The outlet 12 is connected to the shut off valve 8 as can be seen in
The control valve 9 comprises an outlet chamber 14, which is connected to the outlet 12. The outlet chamber 14 comprises high pressure port 15 and a low pressure port 16. A valve disk 17 is provided in the outlet chamber 14 and is movable between a first position closing the high pressure port 15, see
The control valve 9 also comprises a pilot circuit 18. The pilot circuit 18 is connectable to the low pressure source or the high pressure source. In the embodiment disclosed, the pilot circuit 18 is connectable to the low pressure source, i.e. the vacuum pump device 3, via the common vacuum conduit 5, the long milk conduit 4 and a low pressure inlet 19. The pilot circuit 18 may alternatively be directly connected to the vacuum pump device 3 via the low pressure inlet 19.
The pilot circuit 18 acts on a membrane 20, which may have an active side 20a and a passive side 20b, see also
An actuator 22 is comprised by the control valve 9 and is configured to connect the pilot circuit 18 to one of the low pressure source 3 and the high pressure source. The actuator 22 may comprise a solenoid which acts on a magnetic disk 23 arranged in the pilot circuit 18.
The pilot circuit 18 extends between the active side 20a of the membrane 20 and the passive side 20b of the membrane 20. In
The actuator 22 comprises a channel 24, which may be provided to extend centrally through the solenoid of the actuator 22, as is illustrated in
The membrane 20 is configured to move the valve disk 17 to the first position when the pilot circuit 18 is connected to the high pressure source, i.e. to the atmosphere via the channel 24, and to move the valve disk 17 to the second position when the pilot circuit 18 is connect to the low pressure source, i.e. to the vacuum pump device 3 via the low pressure inlet 19.
In
A low pressure may thus in the first position be guided through the control valve 9 via the low pressure inlet 19, the low pressure port 16, the outlet chamber 14 and out through the outlet 12 to the shut off valve 8, which in response to the low pressure may open the long milk conduit 4 to permit low pressure, i.e. the milking vacuum, to act on the milking cluster 1 and the teatcups 2.
In
A high pressure may thus in the second position be guided through the control valve 9 via the high inlet 13, the high pressure port 15, the outlet chamber 14 and out through the outlet 12 to the shut off valve 8, which in response to the high pressure may close the long milk conduit 4 to prevent the low pressure, i.e. the milking vacuum, from acting on the milking cluster 1 and the teatcups 2.
The membrane 20 of the embodiment disclosed will now be further described with reference to
The membrane 20 extends along an extension plane p. A central axis x of the membrane 20 is perpendicular to the extension plane p. The membrane 20 comprises an outer annular rim portion 31, a central portion 32 and flexible portion 33.
The outer annular rim portion 31 may have an annular surface 34 located on the active side 20a of the membrane 20. The annular surface 34 may be parallel with the extension plane p. The central portion 32 may be circular and is configured to be connected the valve disk 17. The flexible portion 33 is annular and provided between the central portion 32 and the outer annular rim portion 31. The flexible portion 33 may adjoin and connect to the outer annular rim portion 31 and the central portion 32.
The central portion 32 has a central hole 35. The rod member 21 may extend through and be attached to the central hole 35 of the central portion 32.
The membrane 20 is flexible to permit the central portion 32 to move back and forth along the central axis x, thereby permitting the valve disk 17 to move to one of the first position and the second position.
As initially mentioned, the membrane 20 may not always be able to lift the valve disk 17 from its first position in which the low pressure is allowed to pass through the outlet 12. In order to overcome this problem, the membrane 20 is designed with an inherent pre-tensioning of the flexible portion 33, which permits the membrane 20 to exert a force on the valve disk 17 from the first position towards the second position. The movement of the valve disk 17 from the first position shown in
As can be seen in particular in
The flexible portion 33 comprises an intermediate annular flank 38 extending between and connecting wave peak 36 and the wave valley 37. The intermediate annular flank 38 may slope from the wave peak 36 to the wave valley 37. As can be seen in
The flexible portion 33 has a thickness T. The thickness T may be thinner through the intermediate annular flank 38 than through the wave peak 36 and through the wave valley 37.
The wave peak 36 may be located above the annular surface 34 in a rest position of the membrane 20, and the wave valley 37 may be located below the annular surface 34 in the rest position.
The membrane 20 may be manufactured of a plastic elastic material, for instance silicon rubber. The bending rigidity of the material of the membrane 20 may be at least 45 Shore, preferably at least 50 Shore.
The present invention is not limited to the embodiments disclosed but may be varied and modified within the scope of the following claims.
Number | Date | Country | Kind |
---|---|---|---|
1950553-6 | May 2019 | SE | national |
Filing Document | Filing Date | Country | Kind |
---|---|---|---|
PCT/SE2020/050455 | 5/5/2020 | WO |
Publishing Document | Publishing Date | Country | Kind |
---|---|---|---|
WO2020/226557 | 11/12/2020 | WO | A |
Number | Name | Date | Kind |
---|---|---|---|
2243344 | Karst | May 1941 | A |
2920655 | Dwyer | Jan 1960 | A |
3083943 | Stewart, Jr. | Apr 1963 | A |
3257097 | Boteler | Jun 1966 | A |
4182366 | Boehringer | Jan 1980 | A |
4887516 | Scott et al. | Dec 1989 | A |
5177579 | Jerman | Jan 1993 | A |
5199685 | Larseneur | Apr 1993 | A |
6058970 | Osaki | May 2000 | A |
6067893 | Drahusz | May 2000 | A |
7634962 | Muller | Dec 2009 | B2 |
10420294 | Socolsky | Sep 2019 | B2 |
10598194 | Gunell | Mar 2020 | B2 |
10711906 | Yamagata | Jul 2020 | B2 |
10857777 | Durant | Dec 2020 | B2 |
11137079 | Williams | Oct 2021 | B2 |
11137080 | Williams | Oct 2021 | B2 |
20030230191 | Ohrle | Dec 2003 | A1 |
20050205815 | Frenkel | Sep 2005 | A1 |
20060130912 | Lodolo | Jun 2006 | A1 |
20130119289 | Morris et al. | May 2013 | A1 |
20140264103 | Pressley et al. | Sep 2014 | A1 |
20140295310 | Yamagata et al. | Oct 2014 | A1 |
20150108386 | Obara et al. | Apr 2015 | A1 |
20170000075 | Johansson | Jan 2017 | A1 |
Number | Date | Country |
---|---|---|
5218793 | Jun 1994 | AU |
101548122 | Sep 2009 | CN |
105650317 | Jun 2016 | CN |
205991196 | Mar 2017 | CN |
1 484 540 | Dec 2004 | EP |
2003-247650 | Sep 2003 | JP |
9316309 | Aug 1993 | WO |
9514874 | Jun 1995 | WO |
Entry |
---|
Search Report for SE Patent Application No. 1950553-6 dated Jan. 1, 2019, 2 pages. |
International Search Report for PCT/SE2020/050455 dated Jul. 9, 2020, 2 pages. |
Written Opinion of the ISA for PCT/SE2020/050455 dated Jul. 9, 2020, 7 pages. |
Communication pursuant to Article 94(3) EPC issued in European Patent Application No. 20 724 962.4 dated Nov. 4, 2022. |
Office Action issued in Chinese Patent Application No. 202080034296.2 dated Apr. 12, 2023. |
Number | Date | Country | |
---|---|---|---|
20220221081 A1 | Jul 2022 | US |