The present application claims priority to German Utility Model Application No. 20 2021 106 906.6, entitled “EXPLANSION PLUG ASSEMBLY”, filed on Dec. 20, 2021. The entire contents of the above-listed application is hereby incorporated by reference for all purporses.
The present disclosure relates to a safety expansion plug assembly for closing connection holes in bodies or manifolds containing a hydraulic circuit.
Known expansion plugs used in bodies or manifolds of hydraulic circuits are based on the principle of increasing a frictional resistance between the plug bushing and the hole in a body or manifold by creating a small interference between the circumference of the plug bushing and the circumference of the hole whereby the plug sticks firmly in the hole. When the pressure increases to high values and hydraulic fluid is lost, the plug can nevertheless be ejected from the hole. The ejection pressure of the plug is quite variable depending on the materials used, the clearance and the finishes of the mechanical processing of the plug bushing and the wall surrounding the hole of the body or manifold.
An expansion plug for closing an oil channel 200 of a body or manifold 100 as known in the art is shown in
The mentioned plugs of the state of the art have an unpredictable ejection threshold that depends on the pressure of the fluid and the materials of the body or manifold and the plug, the coupling clearance before the pressing, and the surface roughness of the used materials. Thus, the plugs known in the state of the art are not suitable for reliably closing a fluid channel when the fluid pressure increases.
An object of the present disclosure is to solve the above mentioned problems of the state of the art and to provide an expansion plug assembly with increased safety at high pressure in that it prevents an ejection of the plug assembly if the pressure on the plug assembly increases.
The above object is achieved by an expansion plug assembly as disclosed herein. Embodiments of the expansion plug assembly are described in the dependent claims.
An expansion plug assembly according to the present disclosure comprises a body with a channel to be plugged, the channel being defined by a channel wall which has a circumferential groove, a diameter of the groove being greater than a diameter of the channel, a bushing for inserting into the channel of the body, the bushing comprising: an orifice with a partially surrounding bushing wall, the bushing wall having a first bushing wall section having at least a bendable fin for forming a form-fit connection with the circumferential groove, and a tapered pin configured to bend up the bendable fin when inserted into the orifice of the bushing such that the bendable fin forms the form-fit connection with the circumferential groove when the bushing is inserted into the channel.
Compared to the previously known plugs, the presently proposed expansion plug assembly has an additional safety feature that prevents the bushing to be ejected from the channel under an increase of the fluid pressure. The additional safety feature is formed by the combination of the circumferential groove in the channel wall and the bendable fin in the bushing wall, wherein the bendable fin and the groove form a form-fit connection that prevents the bushing from being ejected when the fluid pressure in the channel increases. The ejection threshold of present expansion plug is thus less sensitive to the material resistance, coupling clearances and surface roughness of the used materials.
In an embodiment, the bushing may further comprise a second bushing wall section for forming a frictional connection with the channel wall.
In an embodiment, the first bushing wall section may comprise two to ten, for instance four to eight or six, bendable fins disposed circumferentially around the orifice. A higher number of fins facilitates insertion of the pin into the bushing and improves the stability of the expansion plug assembly against ejection of the bushing at higher fluid pressure.
In an embodiment, the second bushing wall section may be tapered. This facilitates an insertion of the pin into the bushing and the formation of the form-fit connection between the fin and the groove.
In an embodiment, an inner surface of the bushing wall may be tapered. This facilitates a bending of the fin such that the fin engages with the groove.
In an embodiment, an aperture angle of the second bushing wall section may be smaller than an aperture angle of the inner surface of the bushing wall.
In an embodiment, the orifice is a blind hole and the bushing comprises a bottom wall forming an abutment surface for the pin. The pin thus may form a form-fit connection with the bushing at the bottom wall of the bushing.
In an embodiment, the channel may have a bushing input side, where the bushing can be inserted into the channel, wherein the form-fit connection of the fin and the circumferential groove can be formed at a top abutment edge formed by the circumferential groove on a side of the circumferential groove facing the bushing input side. The pin is thus configured to form a form-fit connection with the bushing at the top abutment edge.
In an embodiment, the channel may have a bushing abutment side, where the bushing abuts when completely inserted into the channel, wherein the channel wall may comprise a bottom abutment edge on the channel abutment side, for forming a form-fit connection with the second bushing wall section.
In an embodiment, the second bushing wall section may comprise a circumferential ridge or a plurality of circumferential ridges configured to form a frictional connection with the channel wall. This frictional connection inhibits the bushing from moving within the channel after being completely inserted into the channel and from being ejected when the pressure of the fluid within the channel increases.
In an embodiment, the circumferential ridge may have a thread shape.
In an embodiment, the pin may have a first pin section with a first taper shape configured to bend up the fin when the pin is completely inserted into the bushing, and a second pin section with a second taper shape configured to expand the second bushing wall section when the pin is completely inserted into the bushing. This facilitates the formation of a form-fit connection between the fin and the groove.
In an embodiment, the first taper shape of the first pin section may have a larger aperture angle than the second taper shape of the second pin section.
In an embodiment, the bushing may comprise or consist of bendable non-thermally treated stainless steel or carbon steel of medium or high.
In an embodiment, the pin may comprise or consist of hardened and/or tempered bearing steels.
The expansion plug assembly according to the present disclosure may be used in various hydraulic products such as pump bodies and motors, mini power packs, blocks, manifolds, and valves.
In the following, an embodiment of the presently proposed expansion plug assembly is described in more detail on the basis of the following figures. The described features are not only conceivable in the combination of the disclosed embodiment, but can be realized independently of the concrete embodiment in various other combinations. In the figures, equal or similar features are denoted by equal or similar reference signs.
As shown in
Number | Date | Country | Kind |
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20 2021 106 906.6 | Dec 2021 | DE | national |