Seal assembly
11512779 · 2022-11-29
Assignee
Inventors
Cpc classification
F05C2225/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16J15/3244
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16J15/328
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16J15/24
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16J15/3284
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16J15/3284
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16J15/324
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16J15/3244
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A seal assembly configured to seal a first machine part relative to a second machine part includes a sliding ring provided on the first machine part, the sliding ring having a sealing surface configured to slidingly abut a counter surface of the second machine part, and includes a clamping ring configured to exert a force on the sliding ring in a direction of the counter surface. The sliding ring includes a plurality of circumferentially spaced recesses in the seal surface that extend axially and radially into the sliding ring.
Claims
1. A seal assembly configured to seal a rotatable machine part relative to a fixed machine part, the seal assembly comprising: a sliding ring provided on the fixed machine part, the sliding ring having a first side surface, a second side surface, and a seal surface extending from the first side surface to the second side surface, the seal surface being configured to slidingly abut against a counter surface of the movable machine part, and a clamping ring configured to exert a force on the sliding ring in a direction of the counter surface, wherein the first side surface meets the seal surface at a first junction and the second side surface meets the seal surface at a second junction, wherein the sliding ring includes a first plurality of circumferentially spaced recesses each bounded by a first edge in the first side surface and a second edge in the seal surface, wherein each of the first edges has a first end at the first junction and a second end at the first junction spaced circumferentially from the first end of the first edge, wherein each of the second edges has a first end at the first junction and a second end at the first junction spaced circumferentially from the first end of the second edge, wherein each of the first edges is entirely non-linear from the first end of the first edge to the second end of the first edge, and wherein each of the second edges is entirely non-linear from the first end of the second edge to the second end of the second edge.
2. The seal assembly according to claim 1, wherein each of the first edges is entirely convex from the first end of the first edge to the second end of the first edge, and wherein each of the second edges is entirely convex from the first end of the second edge to the second end of the second edge.
3. The seal assembly according to claim 2, wherein each of the first plurality of recesses is bowl-shaped.
4. The seal assembly according to claim 3, wherein each of the plurality of recesses comprises a quarter sphere or a quarter ellipsoid.
5. The seal assembly according to claim 2, including a second plurality of circumferentially spaced recesses each bounded by a third edge in the second axial side surface and a fourth edge in the seal surface, wherein each of the third edges has a first end at the second junction and a second end at the second junction spaced circumferentially from the first end of the third edge, wherein each of the fourth edges has a first end at the second junction and a second end at the second junction spaced circumferentially from the first end of the fourth edge, wherein each of the third edges is entirely non-linear from the first end of the third edge to the second end of the third edge, wherein each of the fourth edges is entirely non-linear from the first end of the fourth edge to the second end of the fourth edge, and wherein the first plurality of circumferentially spaced recesses are circumferentially offset from the second plurality of circumferentially spaced recesses.
6. The seal assembly according to claim 5, wherein the first side surface includes a first portion flared outward from the seal surface at an obtuse angle, and wherein the first edge is located in the first portion of the first side surface.
7. The seal assembly according to claim 6, wherein the second side surface includes a first portion flared outward from the seal surface at an obtuse angle, and wherein the second edge is located in the first portion of the second side surface.
8. The seal assembly according to claim 1, wherein inner surfaces of the recesses merge into the seal surface in the circumferential direction at an angle of 10° to 35° .
9. The seal assembly according to claim 1, wherein inner surfaces of the recesses merge into the seal surface in the axial direction at an angle of 35° to 55° .
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
DETAILED DESCRIPTION
(6) A preferred embodiment of the disclosure is schematically depicted in
(7) The outer diameter of the seal ring 13 is matched to the inner diameter of the clamping ring 11 such that a radially inwardly acting force is exerted on the seal ring 13 by the clamping ring 11, within which the seal ring 13 is disposed. The seal ring 13 is thus pressed by the clamping ring 11 with its seal surface 15 onto the outer surface 5 of the shaft 3. A high sealing effect is thus achieved with the stationary shaft 3. A high-pressure region H, filled with a medium, for example a hydraulic fluid, is sealed off from an environment U by the seal assembly. In
(8) To develop the lubricating film 18, cavities 17 are formed in the seal ring 13 along the circumference, and the functions of the cavities 17 are explained in the following Figures.
(9) In
(10) To optimize the sealing function, the medium exerts increased pressure axially on the seal ring when pressure builds in the region H. In addition the medium penetrates into the groove 9 or also exerts the pressure inside the groove 9 on the clamping ring 11. The clamping ring 11 is thereby deformed and for its part exerts an increased pressure on the seal ring 13. The seal ring 13 is consequently pressed more strongly onto the shaft 3 so that its sealing effect is strengthened. In addition, the clamping ring 11 seals the internal surfaces of the groove 9 so that no medium can escape there either.
(11) A further view of the seal assembly is shown in
(12) During a rotating- or pivoting-movement of the shaft 3 it is necessary to lubricate the seal surface 15. The development of the lubricating film is illustrated based on one of the cavities 17′. With rotation of the shaft 3, in the chosen example in the direction of the arrow 23, the medium located in the region H in the vicinity of the outer surface 5 of the shaft 3 is carried along with the shaft by adhesive forces and viscosity; forces acting in the direction of the arrow 23 are thus exerted on the medium. Movement of the medium in the same direction results. In the cavity 17′, as well as in all other cavities 17 facing the region H, the moving medium arises on the sealing edge 19 in the region 19′ depicted below and highlighted by a thicker line. In this region the force has a component perpendicular to the sealing edge 19, and therefore in combination with the tapering cavity 17′ effects a penetrating of the medium under the seal surface 15, which is represented by a plurality of arrows 25.
(13) In
(14) The axial side surfaces 21 of the seal ring 13 form an angle β with the outer surface 5 as close as possible to 90° in order to achieve a high-as-possible sealing effect. Realistic values fall between 75° and 90°; values around 80° already generate a good sealing effect. With non-rotating shaft 3 a maximum tightness of the seal assembly is thus ensured. Even with rotating shaft 3 a high tightness against the high pressure in the medium is ensured.
(15) The section of
(16) In
(17) The edge of the cavities 17, which edge is adjacent to the outer surface 5, forms an angle γ with the seal surface 15 or the outer surface 5 between 10° and 45°. In particular, the edges of the cavities 17 form an angle axially outward on the seal ring between 15° and 30°. The angle is thus significantly smaller than the angle between the side surfaces 21 of the seal ring 13 and of the shaft 3. The lubricant can therefore easily penetrate from the cavities 17 under the seal surface 15.
(18) A further groove 20 is also depicted that does not connect to a cavity 17, but rather is placed independently thereof. An adhering of the seal ring 13 to the side surface of the groove is prevented by the groove 20.
(19) The seal edge 19 is not radially rounded by the cavities 17, but rather sealingly abuts over its entire circumference, or sliding on the lubricating film, on the outer surface 5 of the shaft 3. It is thus possible to achieve a high sealing effect even for the axial movement components and for static application profiles.
(20) In one alternative exemplary embodiment the seal is embodied outwardly sealing; the structure is consequently the other way around radially. An outwardly lying movable part is statically and dynamically sealed by an analogously acting seal assembly.
(21) The present invention can advantageously be used in all types of rotary distributors in all areas of mechanical engineering, among others for installation spaces according to ISO 3320 and ISO 7425. Other use areas are rotary joints of mobile hydraulics, filling systems in the food industry, drilling equipment in oil and gas production, as well as robot technology.
(22) In preferred embodiments the seal- or sliding-ring is comprised of a thermoplastic including a high proportion of solid-lubricant-filled polyurethane elastomer having a hardness of approximately 57 Shore D. The clamping ring, however, is comprised, for example, of nitrile rubber (NBR). The clamping ring advantageously has a rectangular profile cross-section, so that a fixed and secure-against-rotation seat in the housing is possible. It cannot twist in the installation space and is easily manufacturable both by machining and also in a forming tool. For less severe load cases an O-ring can also be used as preload element.
(23) Representative, non-limiting examples of the present invention were described above in detail with reference to the attached drawings. This detailed description is merely intended to teach a person of skill in the art further details for practicing preferred aspects of the present teachings and is not intended to limit the scope of the invention. Furthermore, each of the additional features and teachings disclosed above may be utilized separately or in conjunction with other features and teachings to provide improved seal assemblies.
(24) Moreover, combinations of features and steps disclosed in the above detailed description may not be necessary to practice the invention in the broadest sense, and are instead taught merely to particularly describe representative examples of the invention. Furthermore, various features of the above-described representative examples, as well as the various independent and dependent claims below, may be combined in ways that are not specifically and explicitly enumerated in order to provide additional useful embodiments of the present teachings.
(25) All features disclosed in the description and/or the claims are intended to be disclosed separately and independently from each other for the purpose of original written disclosure, as well as for the purpose of restricting the claimed subject matter, independent of the compositions of the features in the embodiments and/or the claims. In addition, all value ranges or indications of groups of entities are intended to disclose every possible intermediate value or intermediate entity for the purpose of original written disclosure, as well as for the purpose of restricting the claimed subject matter.
REFERENCE NUMBER LIST
(26) 1 Housing 3 Shaft 5 Outer surface 7 Gap 9 Groove 11 Clamping ring 13 Seal ring 15 Seal surface 17, 17′ Cavity 18 Lubricating film 19 Seal edge 20 Groove 21 Side surface 23, 25 Arrow 27 Elevation U Environment H High-pressure side α Angle β Angle γ Angle