Hydraulic device
10436184 ยท 2019-10-08
Assignee
Inventors
Cpc classification
F04B1/2042
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A hydraulic device 1 comprises a first member 2 movable relative to a second member 5. In such a device the risk of cavitation noise and cavitation damage should be minimized. To this end said first member 2 having a pressure chamber 3 opening in a face 7 of said first member 2 which face 7 is in contact with a contact face 6 of said second member 5, said second member 5 having a low pressure area 9, wherein a throttling flow path is provided in a groove 11 connecting said pressure chamber 3 and said low pressure area 9 when pressure chamber 3 is approaching said low pressure area 9, characterized in that a throttling resistance of said groove 11 increases in a direction of the flow through said groove 11.
Claims
1. A hydraulic device comprising a first member movable relative to a second member, said first member having a pressure chamber opening in a face of said first member which face is in contact with a contact face of said second member, said second member having a low pressure area, wherein a throttling flow path is provided in a groove connecting said pressure chamber and said low pressure area when said pressure chamber is approaching said low pressure area, wherein a total throttling resistance of the throttling flow path increases in a direction from the pressure chamber towards the low pressure area during the duration of the throttling.
2. The hydraulic device according to claim 1, wherein a throttling resistance of said groove increases in a direction of the flow through said groove.
3. The hydraulic device according to claim 1, wherein a hydraulic diameter of said groove decreases in a direction of flow through said throttling flow path.
4. The hydraulic device according to claim 1, wherein a flow area of said groove decreases in a direction of flow through said throttling flow path.
5. The hydraulic device according to claim 1, wherein said groove is located in said contact face of said second member contacting said first member.
6. The hydraulic device according to claim 1, wherein a width of said groove perpendicular to a moving direction of said first member relative to said second member decreases in a direction of flow through said throttling flow path.
7. The hydraulic device according to claim 1, wherein a depth of said groove perpendicular to said contact face decreases in a direction of flow through said throttling flow path.
8. The hydraulic device according to claim 1, wherein said groove has a form of a triangle in said contact face.
9. The hydraulic device according to claim 1, wherein said groove has a section perpendicular to said contact face in form of a triangle.
10. The hydraulic device according to claim 1, wherein said first member comprises two pressure chambers which are separated by a wall, wherein a thickness of said wall at the face of the first member in direction of movement of said first member relative to said second member is smaller than a length of said groove.
11. The hydraulic device according to claim 2, wherein a hydraulic diameter of said groove decreases in a direction of flow through said throttling flow path.
12. The hydraulic device according to claim 2, wherein a flow area of said groove decreases in a direction of flow through said throttling flow path.
13. The hydraulic device according to claim 3, wherein a flow area of said groove decreases in a direction of flow through said throttling flow path.
14. The hydraulic device according to claim 2, wherein said groove is located in said contact face of said second member contacting said first member.
15. The hydraulic device according to claim 3, wherein said groove is located in said contact face of said second member contacting said first member.
16. The hydraulic device according to claim 4, wherein said groove is located in said contact face of said second member contacting said first member.
17. The hydraulic device according to claim 2, wherein a width of said groove perpendicular to a moving direction of said first member relative to said second member decreases in a direction of flow through said throttling flow path.
18. The hydraulic device according to claim 3, wherein a width of said groove perpendicular to a moving direction of said first member relative to said second member decreases in a direction of flow through said throttling flow path.
19. The hydraulic device according to claim 4, wherein a width of said groove perpendicular to a moving direction of said first member relative to said second member decreases in a direction of flow through said throttling flow path.
20. The hydraulic device according to claim 5, wherein a width of said groove perpendicular to a moving direction of said first member relative to said second member decreases in a direction of flow through said throttling flow path.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) A preferred embodiment of the invention will now be described in more detail with reference to the drawing, wherein:
(2)
(3)
(4)
(5)
DETAILED DESCRIPTION
(6)
(7) The hydraulic device 1 furthermore comprises a second member 5. The first member 2 and the second member 5 contact each other, i.e. a second member 5 has a contact face 6 against which a face 7 of the first member rests. The first member 2 is movable relative to the second member 5 in a direction 8 shown by an arrow. In the present example the first member 2 is rotated relative to the second member 5.
(8) The second member 5 has a low pressure area 9. When the opening 4 of the pressure chamber 3 approaches the low pressure area 9, a throttling flow path 10 is established in order to enable a pressure equalization between the pressure chamber 3 and the low pressure area 9 before the pressure chamber 3 comes in full overlapping relation with the low pressure area 9. The throttling flow path 10 is illustrated by a number of arrows.
(9) The throttling flow path 10 is established by means of a groove 11 formed in the contact face 6 of the second member 5. This groove 11 has the form of a triangle when viewed from the first member 2. In other words, the width of the groove 11 perpendicular to the moving direction 8 of the first member 2 relative to the second member 5 decreases in a direction of flow through the throttling flow path 10. Such a triangle is chosen because it is simple to machine. However, other forms of the groove 11 are possible as soon as the width decreases in moving direction 8. In this case, the groove 11 can have a constant depth, wherein the depth is the direction perpendicular to the contact face 6.
(10) In another embodiment not shown in the drawing, the groove 11 can have a depth which decreases in moving direction 8, i.e. in direction of flow through said throttling flow path 10. In this case, the width of the groove 11 can be kept constant.
(11) However, it is possible to combine both possibilities, i.e. to have a decreasing width and a decreasing depth in moving direction 8.
(12) The decreasing depth 11 can be realized as well by a triangle section.
(13) As can be seen in
(14) In this case a throttling flow path 10 has a first section, which is in communication with the pressure chamber 3 under high pressure and a second section, which is in communication with the next pressure chamber 3 with low pressure. When the wall 12 moves in direction 8 of rotation, the cross-section of the flow path 10 in the second section through which the fluid can escape to the pressure chamber 3 under low pressure decreases and therefore the throttling resistance of the throttling flow path 10 increases slowing down the flow of liquid and therefore the kinetic energy of the fluid.
(15) The effect of such an increasing differential flow resistance of the throttling flow path 10 is explained in connection with
(16)
(17) While the present disclosure has been illustrated and described with respect to a particular embodiment thereof, it should be appreciated by those of ordinary skill in the art that various modifications to this disclosure may be made without departing from the spirit and scope of the present disclosure.