Vent with valve
11333177 ยท 2022-05-17
Assignee
Inventors
Cpc classification
F16K11/0856
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B2211/56
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B21/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B13/086
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B2211/40592
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K31/0682
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B2211/505
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K27/003
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B2211/6306
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K37/005
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B21/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B2211/6343
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K11/0525
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K31/0641
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K31/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B2211/86
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B2211/405
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F15B21/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K11/052
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K31/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K37/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B21/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K27/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A valve has a housing which has at least two fluid openings, through which fluid can flow, and a further opening, at least one valve seat which is assigned to one of the fluid openings, and at least one closure member which is adjustable to release and/or close the at least one valve seat, the at least one valve seat which adjoins a cavity through which fluid can flow being formed on a housing part. The valve includes a sensor device which closes the opening in a fluid-tight manner and can acquire data about the fluid is arranged in the further opening. A valve island is furthermore described.
Claims
1. A valve, comprising a housing having at least two fluid openings through which fluid can flow, and a further opening, at least one valve seat assigned to one of the fluid openings, and at least one closure member which is adjustable to release and/or close the at least one valve seat, the at least one valve seat which adjoins a cavity through which a fluid can flow being formed on a housing part, wherein a sensor device Which closes the opening in a fluid-tight manner and can acquire data about the fluid is arranged in the further opening, wherein the valve is a solenoid valve, and wherein the valve is a rocker valve, including a rocker, the ends of which are each assigned to a valve seat, the further opening being arranged centrally between the two valve seats.
2. The valve according to claim 1, wherein the valve is a diaphragm valve.
3. The valve according to claim 1, wherein at least a part of the sensor device constitutes a section of an inner side of the housing and continues the inner side in the area of the further opening.
4. The valve according to claim 1, wherein the housing comprises a valve seat plate.
5. The valve according to claim 4, wherein the sensor device projects through the valve seat plate.
6. The valve according to claim 4, wherein a fluid connection plate including connection channels is provided on the rear side of the valve seat plate, a separate connection channel being provided in the fluid connection plate for each fluid opening.
7. A valve, comprising a housing having at least two fluid openings through which fluid can flow, and a further opening, at least one valve seat assigned to one of the fluid openings, and at least one closure member which is adjustable to release and/or close the at least one valve seat, the at least one valve seat which adjoins a cavity through which a fluid can flow being formed on a housing part, wherein a sensor device which closes the opening in a fluid-tight manner and can acquire data about the fluid is arranged in the further opening, wherein the housing comprises a valve seat plate, wherein a fluid connection plate including connection channels is provided on the rear side of the valve seat plate, a separate connection channel being provided in the fluid connection plate for each fluid opening, and wherein the sensor device projects into or through a receiving opening in the fluid connection plate which is aligned with the further opening.
8. A valve, comprising a housing having at least two fluid openings through which fluid can flow, and a further opening, at least one valve seat assigned to one of the fluid openings, and at least one closure member which is adjustable to release and/or close the at least one valve seat, the at least one valve seat which adjoins a cavity through thich a fluid can flow being formed on a housing part, wherein a sensor device which closes the opening in a fluid-tight manner and can acquire data about the fluid is arranged in the further opening, wherein the housing comprises a valve seat plate, wherein a fluid connection plate including connection channels is provided on the rear side of the valve seat plate, a separate connection channel being provided in the fluid connection plate for each fluid opening, and wherein an electrical connection is provided in he fluid connection plate on the side facing the valve seat plate, to which the sensor device can be coupled in terms of signaling.
9. The valve according to claim 8, the sensor device can be coupled in terms of signaling via a plug connection or a resting contact with exposed contact surfaces.
10. The valve according to claim 9, wherein the plug connection or the resting contact is automatically coupled when the fluid connection plate is fastened to the valve seat plate and is automatically decoupled when the fluid connection plate is released from the valve seat plate, in that respective connection parts coming into contact with each another are fixedly attached either to the fluid connection plate or to the valve seat plate.
11. The valve according to claim 1, wherein a seal which circumferentially encloses the sensor device is arranged between a wall of the further opening and the sensor device.
12. A valve island including a plurality of valves according to claim 1, wherein a common fluid connection plate is provided, on which a plurality of valve seat plates of assigned valves are seated.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6)
DETAILED DESCRIPTION OF THE INVENTION
(7)
(8) The valve 10 has a housing 12, which has a plurality of housing parts, namely a cover 16, on which an electrical connection 18 is provided for the valve 10, an actuator housing 20, which in turn comprises a coil housing 20a and a rocker housing 20b, and a valve seat plate 22.
(9) An electromagnetic coil 24 is arranged in the coil housing 20a, and the rest of the interior of the coil housing 20a is filled by a yoke 26.
(10) A housing seal 28 is provided between the coil housing 20a and the rocker housing 20b.
(11) A vertically movable, magnetic or magnetizable transmission part 30 is arranged in an upper area of an interior of the rocker housing 20b and has on its lower side a downwardly projecting armature 32 and a downwardly projecting lug 34.
(12) A rocker 36 which can be rotated or tilted about a swivel axis S is arranged below the transmission part 30.
(13) Two springs are arranged between the transmission part 30 and the rocker 36.
(14) A return spring 38 is supported on the lower side of the transmission part 30 and on an upper side of the rocker 36, the armature 32 extending into the interior of the sleeve-type return spring 38.
(15) A leaf spring 40 which extends substantially horizontally and is supported with its free end on the upper side of the rocker 36 is attached to the lug 34.
(16) The rocker 36 is substantially formed of two rocker arms, the free ends of which are each provided with a tappet 42 which projects substantially downward from its respectively assigned rocker arm.
(17) The tappets 42 are connected to a sealing element 44, which is configured as a sealing diaphragm and is clamped between the rocker housing 20b and the valve seat plate 22. The sealing element 44 extends substantially over an entire lower or upper side of the rocker housing 20b or the valve seat plate 22, respectively.
(18) Due to the sealing element 44, an actuating space 46 formed by the rocker housing 20b and a cavity 48 through which fluid can flow and which is formed by the valve seat plate 22 are fluidically separated from each other. In other words, the sealing element 44 constitutes a barrier to fluid between the valve seat plate 22 and the actuator housing 20.
(19) The valve seat plate 22 has three through openings which extend substantially vertically through the valve seat plate 22. Two of these openings are flown through by a fluid, so that they are referred to as fluid openings 50 in the following. The other opening is referred to as further opening 52.
(20) The valve seat plate 22 is shaped such that a valve seat 54 facing one of the tappets 42 is formed at each fluid opening 50. The valve seats 54 are thus each assigned to one tappet 42 and one fluid opening 50.
(21) Three connection channels are provided in the fluid connection plate 14, each of which is assigned to one of the openings 50, 52. The connection channels which are assigned to the fluid openings 50 are referred to as fluid connection channels 56 in the following. The other connection channel is referred to as receiving opening 58.
(22) The fluid channels 56 extend from the upper side of the fluid connection plate 14 through the fluid connection plate 14 and open to the outside at a lateral outer side 62 of the fluid connection plate 14.
(23) A seal 59 is arranged between the valve seat plate 22 and the fluid connection plate 14 in the area of the fluid openings 50 and the fluid connecting channels 56, respectively. The seals 59 are configured as sealing rings and are each arranged circumferentially around the inlet opening of a fluid connection channel 56.
(24) The receiving opening 58 is located centrally of the fluid openings 50 and extends substantially vertically from an upper side of the fluid connection plate 14 facing the valve seat plate 22, to a lower area in which the receiving opening 58 widens and extends substantially horizontally (into and out of the image plane) along the entire lower side of the fluid connection plate 14. The wider area of the receiving opening 58 is used for cable routing 60.
(25) The further opening 52 and the receiving opening 58 form a receiving space in which a sensor device 64 is accommodated.
(26) The sensor device 64 extends vertically through the complete fluid connection plate 14 and with an upper thinner section into the further opening 52 such that an upper end face 66 of the sensor device 64 is flush with a fluid contacting upper side 68 of the valve seat plate 22. In other words, the upper end face 66 continues the fluid contacting upper side 68 with substantially no step so that the upper end face 66 and the fluid contacting upper side 68 form a common continuous fluid contacting surface which forms part of the boundary of the cavity 48 through which fluid can flow. The upper side 68 constitutes an inner side of the housing 12.
(27) The sensing device 64 includes for example a pressure sensor to sense the fluid pressure. The pressure sensor is arranged such that it is in direct fluid contact but does not affect the fluid flow. Accordingly, the pressure sensor is provided in the upper area of the sensor device 64, where the pressure sensor is flush with the fluid contacting upper side 68 of the valve seat plate 22.
(28) Alternatively or in addition, the sensor device 64 may include another type of sensor, such as a temperature or velocity sensor.
(29) A connection component 70 to which an electrical connection, for example a cable, can be attached is provided at the lower end of the sensor device 64, as a result of which the sensor device 64 can be coupled to the electrical connection 76 in terms of signaling.
(30) Similar to the seals 59 in the area of the fluid openings 50, a seal 72 is provided in the area of the further opening 52 between the valve seat plate 22 and the sensor device 64. The seal 72 is configured as a sealing ring and encloses the thinner section of the sensor device 64 circumferentially.
(31) The sensor device 64 can be inserted loosely from the top into the receiving opening 58, the fastening being realized by means of a positive fit between the valve seat plate 22, the seal 72 and the fluid connection plate 14 when the valve 10 is mounted or, more precisely, when the fluid connection plate 14 and the valve seat plate 22 are assembled. Upon detachment, when the valve seat plate 22 is removed, the seal 72 can be easily removed, on the one hand, and, on the other hand, the sensor device 64 can be easily withdrawn from the receiving opening 58.
(32) It is of course also possible to provide that the sensor device 64 is attached to the valve seat plate 22 and/or the fluid connection plate 14, e.g., in a non-positive manner using separate fasteners (e.g., screws or rivets) or by intermaterial bonding by welding, gluing, or similar.
(33) In the following, the function of the valve 10 is described.
(34) Fluid is conducted through one of the fluid connection channels 56 or through both fluid connection channels 56 to the assigned fluid openings 50, or is drained from the assigned fluid openings 50. To this end, further fluid openings 50 may optionally be provided in the rocker housing 20b or in the valve seat plate 22.
(35) In the first, de-energized switching position of the rocker 36 shown in
(36) By applying an electrical voltage to the coil 24, the magnetic or magnetizable transmission part 30 is moved away from the coil 24. As a result, the armature 32 and the lug 34 of the transmission part 30 are moved against the pretensioning force of the leaf spring 40 against the left rocker arm of the rocker 36, which partially relaxes the return spring 38 and tilts the rocker 36 counterclockwise about the swivel axis S. The right tappet 42 and part of the sealing element 44 in the area of the right valve seat 54 are thus moved substantially vertically away from the right valve seat 54, so that the right fluid opening 50 is connected in terms of flow to the cavity 48 through which fluid can flow. The left tappet 42 and part of the sealing element 44 in the area of the left valve seat 54 are moved substantially vertically downwards until the sealing element 44 rests on the left valve seat 54.
(37) In the embodiment shown here, the left valve seat 54 is designed as a blind seat. This seat has laterally an opening 74, which fluidically connects the left fluid opening 50 with the cavity 48 through which fluid can flow, even when the sealing element 44 rests on the left valve seat 54. The fluidic coupling of the left fluid opening 50 is thus independent of the switching position of the rocker 36.
(38) Depending on the switching position, the rocker 36 thus decouples only the right fluid opening 50 from the cavity 48 through which fluid can flow.
(39) When the current flow through the coil 24 stops, the pushing off of the transmission part 30 in the direction of the rocker 36 is stopped, and due to the restoring force of the leaf spring 40, the transmission part 30 is moved upwards in the direction of the coil 24. Since the spring force of the return spring 38 is directed such that the transmission part 30 and the rocker 36 are moved against each other and the transmission part 30 is moved away from the rocker 36 due to the leaf spring 40, the left rocker arm and thus the left tappet 42 and part of the sealing element are moved away from the left valve seat 54 via the return spring 38. The initial position is thus reached.
(40) The rocker 36 and/or the sealing element 44 may thus be referred to as a closure member.
(41) Without the sensor device 64, the further opening 52 functions as a fluid opening, and the receiving opening 58 and the cable routing 60 function as a fluid connection channel. Fluid can thus flow through the further opening 52, the receiving opening 58, and the cable routing 60. However, if this is not desired, the unused fluid opening 52 and the unused fluid connection 58, 60 can be used to integrate the sensor device. Thus, on the one hand, it is not necessary to use a new valve seat plate 22 having only two fluid openings and, on the other hand, it is not necessary to provide further components to seal the further opening 52 and additional receiving space for the integration of the sensor device 64.
(42)
(43) A plurality of electrical connections 76 in the form of cables to the individual valves 10 extend through the cable routing 60.
(44)
(45) The individual receiving openings 58 extend substantially vertically through the fluid connection plate 14, and the cable routing 60 extends continuously substantially horizontally on the lower side of the fluid connection plate 14.
(46) The swivel axis S of the rocker 36 extends through the rocker housing 20b (see
(47) The rocker housing 20b can optionally have a fluid opening 50 through which fluid can flow into or out of valve 10.
(48)
(49) Here, the sensor device 64 is mainly accommodated in the further opening 52 of the valve seat plate 22 and extends vertically through the complete valve seat plate 22. Only contact pins 78 located on the lower side of the sensor device 64 project into the receiving opening 58 of the fluid connection plate 14.
(50) An electrical connection 76 in the form of a printed circuit board with exposed contacts is accommodated in the receiving opening 58.
(51) The contact pins 78 contact the exposed contacts of the printed circuit board when the valve seat plate 22 and the fluid connection plate 14 are fastened, as a result of which the sensor device 64 is coupled to the electrical connection 76 in terms of signaling.
(52) Instead of the resting contact described above, a plug connection may also be provided between the sensor device 64 and the electrical connection 76. For this purpose, the printed circuit board can include contact sockets into which the contact pins 78 of the sensor device 64 can be inserted, thus coupling the sensor device 64 to the electrical connection 76 in terms of signaling.
(53) The sensor device 64 and the electrical connection 76 can be inserted loosely in the further opening or in the receiving opening 58, respectively, the fastening of both parts being realized by a positive fit between the valve seat plate 22, the seal 72 and the fluid connection plate 14 when mounting the valve 10 or more precisely when assembling the fluid connection plate 14 and the valve seat plate 22. Upon detachment, when the valve seat plate 22 is removed, the sensor device 64 can be easily taken out of the further opening 52, and the electrical connection 76 can easily be removed from the receiving opening 58.
(54) It is of course also possible to provide that the sensor device 64 and/or the electrical connection 76 is/are attached to the valve seat plate 22 or to the fluid connection plate 14, respectively, e.g., in a non-positive manner using separate fasteners (e.g., screws or rivets) or by intermaterial bonding by welding, soldering, gluing, or similar.
(55)
(56) The second embodiment of the valve island 100 corresponds to the first embodiment of the valve island 100, except for the sensor device 64 and the electrical connection 76. Accordingly, only the differences are discussed below, and identical or functionally identical parts are marked with the same reference numerals.
(57) Instead of cables that are routed to the individual sensor devices 64 of the valves 10 in a cable routing 60, the electrical connection 76 of the second embodiment of the valve island 100 extends over the entire length of the fluid connection plate 14 in the form of a printed circuit board in the middle of the upper side of the fluid connection plate 14 facing the valve seat plate 22.
(58) The printed circuit board is arranged on the upper side such that it runs below each sensor device 64 of the valves 10 and the sensor devices 64 contact the printed circuit board, for example via a resting or plug-in contact.