Valve seat
10641397 · 2020-05-05
Assignee
Inventors
Cpc classification
F16K31/0658
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K31/0675
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K1/422
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K1/42
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K31/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16K1/42
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K1/44
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A valve with a valve seat includes an inner path providing a first flow channel adapted to be in contact with a first chamber of the valve, the valve seat including at least one outer path also adapted to be in contact with the first chamber, the valve seat further including an area facing a sealing area of the valve, the area being adapted to be in connection with a second chamber, the area having an inner sealing edge and an outer sealing edge, and wherein the valve seat is adapted to allow for a flow between the first chamber and the second chamber when the valve is in an open position, where the flow in the inner path and the at least one outer path flow through the area in contact with the second chamber via the inner sealing edge and the outer sealing edge, respectively.
Claims
1. A valve seat for use in a valve, the valve seat comprising an inner path through a single body and adapted to be in fluid communication with a first chamber of the valve, at least one outer path also through the single body and adapted to be in fluid communication with the first chamber, and an intermediate path through the single body and that bounds an area configured to face a sealing area of the valve, said intermediate path being adapted to be in fluid communication with a second chamber, said area being bounded by an inner sealing edge and an outer sealing edge, wherein said valve seat is adapted to allow for a flow between said first chamber and said second chamber when the valve is in an open position, where said flow in said inner path and said at least one outer path flows through said area via the inner sealing edge and the outer sealing edge, respectively.
2. The valve seat according to claim 1, wherein the intermediate path comprises a recess in the single body, and a top section of the recess forms the area facing the sealing area of the valve.
3. The valve seat according to claim 1, wherein the inner sealing edge is round.
4. The valve seat according to claim 1, wherein the outer sealing edge is round.
5. The valve seat according to claim 1, wherein the inner sealing edge and the outer sealing edge are coplanar.
6. The valve seat according to claim 1, wherein the at least one outer path comprises at least two outer paths.
7. The valve seat according to claim 1, wherein the inner path is in fluid communication with the first chamber by way of at least two supply channels.
8. A valve comprising the valve seat according to claim 1.
9. The valve according to claim 8 wherein the valve is an electromagnetic valve.
10. The valve according to claim 8, wherein the intermediate path comprises a recess in the single body, and a top section of the recess forms the area facing the sealing area of the valve, and the valve comprises the sealing area, which is adapted to seal the recess when the valve is in a closed position.
11. The valve according to claim 8, wherein the valve is pneumatic.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The present invention will now be described in more detail by way of non-limiting examples and with reference to the accompanying drawings, in which:
(2)
(3)
(4)
(5)
(6)
DETAILED DESCRIPTION
(7) In the below description the valve in which the valve seat is present can be an electromechanical valve as depicted in
(8) In
(9) Inside the inner sealing edge 3 an inner path 5 is in direct communication with an inlet chamber 11 of the valve (see
(10) In
(11) In
(12) In the exemplary valve embodiment depicted in
(13) The mechanical attachment of the valve seat 1 to a valve body 13 of the valve can be in any suitable way that fits a particular application. In this exemplary embodiment, the valve seat 1 is mounted to the valve body 13 by threads 7 formed on the side of the valve seat 1.
(14) In
(15) As set out above, the valve seat 1 described herein can comprise an inner path 5 the perimeter of which forms an inner sealing edge 3. By letting the working media flow to the outlet via an outlet area in the sealing surface of the valve seat that has both an inner and an outer perimeter, it will be possible to increase the total perimeter of the outlet area in the sealing surface facing the sealing area 17 of the valve. Such an arrangement with an increased perimeter of the outlet area being in contact with the sealing area 17 of the plunger will improve the working of the valve.
(16) Thus, in accordance with embodiments described herein the perimeter of the outlet area adapted to be sealed by the sealing of the valve, here the sealing area 17 of the plunger 16, is increased in that the outlet area has both an inner and an outer perimeter. The outlet area can for example be ring-shaped as in the example described above and depicted in
(17) To calculate the force needed to overcome the pressure differences [F=P*A] when opening, only the area of the outlet area is to be taken into consideration. The area of the inner path 5 does not contribute since it has the same pressure as the inlet chamber 11.
(18) When calculating the perimeter of the outlet area, both the perimeter of the inner sealing edge 3 and the outer sealing edge 2 is to be included.
(19) If the stroke length of the plunger shall not limit the flow of the working medium, it shall be chosen with regard to the perimeter of the outlet area in the valve seat to ensure that the areas for the working medium flow are matched and not limited by the stroke length. A general formula can be written as below:
Stroke length*nozzle perimeternozzle area
(20) Example: A comparison of stroke lengths for 25 mm.sup.2 flow areas.
(21) A valve seat with the opening area as depicted in
(22) Conventional valve seat: 25 mm.sup.2.fwdarw.5.6 mm.fwdarw.perimeter 17.7 mm.fwdarw.min stroke length 1.4 mm
(23) Valve seat as depicted in
(24) The inner edge 3 or outer edge 2 is not limited to any specific shapes or dimensions. By providing a valve seat where flow from one chamber of the valve to another chamber via an opening in the valve seat having both an inner and an outer perimeter, the total perimeter in the sealing area increases and provides for an improved flow in the valve seat at a comparative stroke length of a plunger of the valve.
(25) In the embodiments described above it is assumed that it is the valve seat that is fixed and that the sealing is movable. However, it is also envisaged that the valve seat can be movable towards the sealing. In some embodiments both the valve seat and the sealing can be movable towards each other.
(26) It is to be understood that the features from different embodiments can be combined and that no feature of an embodiment is essential unless explicitly so expressed. Hence, the person skilled in the art can select which features and dimensions that are deemed to be advantageous for a particular implementation. The valve and valve seat above are described in an implementation where the valve is an electromagnetic valve being generally cylindrically shaped and with a generally cylindrically shaped valve seat and designed to use air as working medium. The principles as set out herein are however applicable to other types of valves having other general shapes and also to valves using other types of working medium such as liquid working mediums. The valve can be designed to be normally closed and can also be designed to be normally open. The shape of the inner and outer sealing edge can have different forms such as oval or even rectangular.