Valve device
10900572 ยท 2021-01-26
Assignee
Inventors
Cpc classification
F16K3/34
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K3/312
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K3/0218
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K3/32
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K3/0236
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16K3/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K3/34
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K3/32
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The invention relates to a valve apparatus for a gaseous medium, having a valve body with an opening which can be flowed through in the flow direction by the medium and is delimited by way of a circumferential face in the valve body. An orifice is arranged in a gap within the valve body such that it can be displaced perpendicularly with respect to the flow direction, in order to influence the flow through the opening. The gap divides the circumferential face into an inlet-side and an outlet-side part circumferential face. The outlet-side part circumferential face has a first edge which faces the orifice and a second edge which faces away from the orifice. The first edge is assigned at least one geometrical feature which is configured to make the first edge non-uniform.
Claims
1. A valve apparatus for a gaseous medium, the valve apparatus comprising: a valve body including a circular opening, wherein: the gaseous medium is flowable through the circular opening in a flow direction and the circular opening is delimited by a circumferential face in the valve body; an end seal; and a slide gate that is arranged in a gap of the valve body and is configured to, during a closure of the circular opening, dip into a region of the gap, wherein: the slide gate is displaceable perpendicularly with respect to the flow direction to influence a flow of the gaseous medium through the circular opening, the gap divides the circumferential face into an inlet-side part and an outlet-side part of the circumferential face, the outlet-side part of the circumferential face follows the inlet-side part of the circumferential face in the flow direction, the outlet-side part of the circumferential face includes a first edge that faces the slide gate and a second edge that faces away from the slide gate, the valve body includes a plurality of geometrical features arranged in a region of the outlet-side part of the circumferential face that is adjacent to the region of the gap, the plurality of geometrical features is configured with respect to the first edge to make the first edge non-uniform, the plurality of geometrical features includes a plurality of recesses in the outlet-side part of the circumferential face that open towards the first edge of the outlet-side part of the circumferential face, the slide gate includes a lower edge that seats against the end seal, and the lower edge of the slide gate is of concave arcuate configuration.
2. The valve apparatus of claim 1, wherein the valve body includes two elements that are connected to one another.
3. The valve apparatus of claim 2, wherein the two elements of the valve body are plate-shaped.
4. The valve apparatus of claim 1, wherein at least one of the plurality of geometrical features includes a flexible material.
5. The valve apparatus of claim 1, wherein: the valve body is configured as a cast part and the cast part includes the plurality of the geometrical features as constituent parts.
6. The valve apparatus of claim 1, wherein the slide gate is configured to, when the slide gate is in a fully opened position, release an entire cross section of the circular opening of the valve body.
7. The valve apparatus of claim 1, wherein: the valve apparatus is configured as a slide gate regulating slide apparatus and the slide gate regulating slide apparatus is configured to regulate the gaseous medium in the flow direction.
8. The valve apparatus of claim 1, wherein: the plurality of geometrical features are arranged in the region of the outlet-side part of the circumferential face, such that, when the slide gate is 60% open, the region of the outlet-side part of the circumferential face is hit by the gaseous medium when the gaseous medium flows through the circular opening in the flow direction and the slide gate is 0% open when the circular opening of the valve body is completely closed by way of the slide gate.
9. The valve apparatus of claim 1, wherein: the plurality of geometrical features are arranged in the region of the outlet-side part of the circumferential face, such that, when the slide gate is 40% open, the region of the outlet-side part of the circumferential face is hit by the gaseous medium when the gaseous medium flows through the circular opening in the flow direction and the circular opening of the valve body is completely closed by way of the slide gate being 0% open.
10. The valve apparatus of claim 1, wherein the lower edge of the slide gate is of partially circular or partially elliptical configuration.
11. The valve apparatus of claim 1, wherein the circumferential face is parallel to the flow direction.
12. A valve apparatus for a gaseous medium, the valve apparatus comprising: a valve body including a circular opening, wherein: the gaseous medium is flowable through the circular opening in a flow direction and the circular opening is delimited by way of a circumferential face in the valve body, an end seal; and a slide gate that is arranged in a gap of the valve body, wherein: the slide gate is configured to be displaceable perpendicularly with respect to the flow direction to influence a flow of the gaseous medium through the circular opening, the gap divides the circumferential face into an inlet-side part and an outlet-side part of the circumferential face, the outlet-side part of the circumferential face includes a first edge that faces the slide gate and a second edge that faces away from the slide gate, the valve body includes a plurality of recesses in the outlet-side part of the circumferential face, the plurality of recesses are open toward the first edge, the slide gate includes a lower edge that seats against the end seal, and the lower edge of the slide gate is of concave arcuate configuration.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Further advantages and embodiments of the invention result from the description and the appended drawing, in which:
(2)
(3)
(4)
(5)
(6)
(7)
DETAILED DESCRIPTION OF PREFERRED EMBODIMENTS
(8)
(9) The valve 10 comprises a valve body 14 which consists of at least two housing plates 16, 18 which are connected releasably to one another.
(10) An opening 20, preferably a circular opening, is provided in the valve body 14 and therefore in the two housing plates 16, 18, through which opening 20 a gaseous medium is to flow. The flow direction which is provided is shown by way of an arrow S in
(11) The opening 20 in the valve body 14 is delimited in the radial direction, that is to say at a right angle with respect to the flow direction S, by way of a circumferential face 22. The circumferential face 22 preferably extends parallel to the flow direction S.
(12) As viewed in the flow direction S, the circumferential face 22 is divided into two part circumferential faces 24, 26 which are configured on the two housing plates 16, 18. Owing to the flow direction S, the part circumferential face is called an inlet-side part circumferential face 24, and the part circumferential face 26 is called an outlet-side part circumferential face 26.
(13) In order to regulate the throughflow of the medium, preferably gas, through the opening 20, an orifice 30 is provided. The orifice 30 is of plate-shaped configuration and is held between the two housing plates 16, 18 such that it can be moved perpendicularly with respect to the flow direction S. For this purpose, a gap 32 is provided between the two housing plates 16, 18, in which gap 32 the orifice 30 is held. The opening 20 can be opened completely and closed completely by way of the movement of the orifice 30. In the example which is shown in
(14) The two part circumferential faces 24, 26 are separated from one another by way of the gap 32, with the result that, as viewed in the flow direction S, an edge 36 is formed on the outlet-side part circumferential face 26. Said edge 36 is the connecting region between the part circumferential face 26 which extends in parallel in the flow direction S and a face of the housing plates 16, which face runs perpendicularly with respect thereto.
(15) Although the edge 36 is linear in the illustration which is shown in
(16) The part circumferential face 26 has a further edge 38 which follows the first edge 36 as viewed in the flow direction S.
(17) As also results from
(18) In the present exemplary embodiment, the edge 46 of the orifice has an arcuate shape, preferably a partially circular or partially elliptical shape.
(19) During the operation of the valve 10, a medium, preferably gas, flows through the opening 20 which is, for example, partially closed, the flow also running beyond the first edge 36.
(20) The inventors have now determined surprisingly that the first edge 36 is the cause for very pronounced noise emission. A constant pressure wave which causes the noise emissions is produced at the symmetrical edge 36.
(21) In order to reduce the noise emission, one or more geometrical features which breaks/break the symmetry of the edge 36 is/are provided at the first edge 36 on the outlet-side part circumferential face 26, in particular in the lower region. That is to say, in other words, the course of the edge 36 is made non-uniform at least in a defined circumferential region of the circumferential face 26. Here, lower region denotes that region of the part circumferential face 26 which lies opposite the lower edge 46 of the orifice 30. The lower region is, in particular, that region of the part circumferential face 26 which, in the case of opening of the orifice, lies exposed or is flowed onto, that is to say is not covered by the orifice, by up to 60%, preferably by up to at most 40%.
(22) A very wide variety of elements which influence the flow in this region can be provided as geometrical features. For instance, for example, elevations can be provided on the part circumferential face 26 as geometrical features, which elevations protrude into the opening 20. The course of the edge 36 which is flowed onto by the flow changes as a result of said elevations.
(23) A depression which is provided in the part circumferential face 26 and is configured with an open edge in the region of the first edge 36 has proven to be a particularly advantageous geometrical feature.
(24) For reasons of simplification, the same designations are used for identical components in
(25) In
(26) Two recesses 50 of this type are particularly preferably provided in the part circumferential face 26. Here, the one recess 50 or the plurality of recesses 50 is/are provided in a lower region of the part circumferential face 26. In this context, lower means that region, toward which the orifice 30 moves during the closure of the opening.
(27)
(28) For further clarification of the configuration of the part circumferential face 26,
(29) This change of the edge course of the edge 36 which is flowed onto leads to a considerable reduction of the noise emission, without causing excessive pressure losses, however. Since the production of the recesses 50 can already take place during casting of the housing plate 16, the geometrical features 50 can be realized very simply and inexpensively.
(30) It goes without saying that the shape of the recess 50 can be varied, as long as the edge course of the edge 36 changes as a result.
(31) In addition or as an alternative, the seal 44 can be configured in such a way that it protrudes into the opening 20. The edge 36 which is flowed onto by the flow also changes as a result of a measure of this type, with the result that a non-uniform state or asymmetry is achieved.
(32) The overall result is that a simple solution for reducing the noise emission is provided by way of the configuration of at least one geometrical feature on the outlet-side part circumferential face, for example in the form of recesses 50.