DAMPING DEVICE
20210207753 ยท 2021-07-08
Inventors
Cpc classification
F16L55/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B11/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L55/041
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B11/0091
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L55/02736
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B2211/8613
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B2211/8616
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A damping device, in particular for damping or preventing pressure surges, such as pulsations, in hydraulic supply circuits, preferably in the form of a silencer, having a damping housing (2) encompassing a damping chamber (10), wherein said damping housing (2) has at least one fluid inlet (6) and at least one fluid outlet (8) as well as a fluid receiving chamber extending between the fluid inlet (6) and the fluid outlet (8), wherein during operation of the device a fluid flow coming from the fluid inlet (6) passes through the damping chamber (10) towards the fluid outlet (8) and wherein a wall part of the fluid receiving chamber extends as a guide element (16) in at least one direction of extension transverse to the direction of the fluid flow, is characterized in that in the damping chamber (10) several guide elements (16) are provided, against which the fluid can flow and which alter the flow velocity in certain areas.
Claims
1. A damping device, in particular for damping or preventing pressure surges, such as pulsations, in hydraulic supply circuits, preferably in the form of a silencer, having a damping housing (2) encompassing a damping chamber (10), wherein said damping housing (2) has at least one fluid inlet (6) and at least one fluid outlet (8) as well as a fluid receiving chamber extending between the fluid inlet (6) and the fluid outlet (8), wherein during operation of the device a fluid flow coming from the fluid inlet (6) passes through the damping chamber (10) towards the fluid outlet (8) and wherein a wall part of the fluid receiving chamber extends as a guide element (16) in at least one direction of extension transverse to the direction of the fluid flow, characterized in that in the damping chamber (10) several guide elements (16) are provided, against which the fluid can flow and which alter the flow velocity in certain areas.
2. The damping device according to claim 1, characterized in that the guide elements (16) are arranged in rows (28) to each other in such a way that at least some of the guide elements (16) are offset to the guide elements (16) of an adjacent row (28), forming an at least partially meandering fluid flow.
3. The damping device according to claim 1, characterized in that the number of guide elements (16) in a respective row (28) transverse to the direction of flow coming from the fluid inlet (6) increases by one guide element (16) each in the direction of the greatest transverse extension of the damping chamber (10) and decreases by one guide element (16) each in the direction of the fluid outlet (8) coming from the greatest number until the number of guide elements (16) in a row (28) at the fluid inlet (6) and fluid outlet (8) is identical.
4. A damping device according to claim 1, characterized in that the damping housing (2) and/or the damping chamber (10) is/are of circular cylindrical or polygonal form and in that the guide elements (16) are at least partially, preferably all, of identical form and extend between the opposing end walls (12, 14) of the damping housing (2).
5. A damping device according to claim 1, characterized in that the two ends (22) of at least some of the guide elements (16), preferably of all guide elements (16), merge into the respectively assigned end wall (12, 14) of the damping housing (2).
6. A damping device according to claim 1, characterized in that at least some of the guide elements (16), preferably all guide elements (16), are formed as continuous hollow bodies, having a cylindrical central part (18), to the ends of which cones (20) are connected, each of which widens in the direction of the assignable end side (12, 14) of the damping housing (2).
7. A damping device according to claim 1, characterized in that in a central longitudinal section through the damping housing (2) octagonal cavities (24) are formed, into which a guide element (16) is inserted adjacently.
8. A damping device according to claim 1, characterized in that in a central cross-section through the damping housing (2) transverse to the direction of flow, the guide elements (16) delimit hexagonal cavities (26) between them, through each of which the fluid flows in the direction of flow.
9. A damping device according to claim 1, characterized in that the ends (22), merging into the end faces (12, 14) along the cones (20), of adjacent guide elements (16) are at a short distance from each other or in contact with each other.
10. A damping device according to claim 1, characterized in that at least the damping housing (2), formed integrally with the guide elements (16), is obtained by a 3D printing process.
Description
[0013] Below the invention is explained in detail with reference to an embodiment shown in the drawing. In the Figures:
[0014]
[0015]
[0016]
[0017] With reference to the enclosed drawings, the damping device according to the invention is explained using a so-called disk silencer by way of example, which, as
[0018] The fluid chamber 10 contains a plurality of guide elements 16 in the flow path leading from the fluid inlet 6 to the outlet 8, wherein said guide elements 16 are arranged in a pattern. As can be seen from
[0019] As
[0020] In the example shown, the guide elements 16 in the rows 28 are arranged in such a way that the guide elements 16 of one row 28 are each offset by one guide element 16 relative to the guide elements of the next row 28 and that the guide elements 16 are arranged adjacent to one another in such a way that their ends 22, each merging into the assigned front walls 12,14, are at a small distance from one another or, as shown in
[0021] The plurality of guide bodies 16, provided in the invention, in the form of hollow bodies, which are integral with the front walls 12 and 14, provides the option of forming the damping housing 2, despite its lightweight construction, as a pressure vessel suitable for a high pressure level, wherein the influence of the flow through the guide elements ensures efficient damping. Advantageously, the one-piece damper housing 2 can be realized by means of a 3D printing process.