The present invention relates to a sealing arrangement for producing a sealing function in an, in particular static, pipe connection as well as a connection sleeve comprising a sealing arrangement according to the preamble of the independent claims.
Plug-in sleeves are frequently used for the connection of pipelines, in particular plastic pipelines, in which the end sections of the pipelines to be connected are introduced from two opposite sides and then fixed sealingly therein. Alternatively the plug-in sleeves can also be formed at the end of a pipeline.
In a widely used type of such plug-in sleeves the fixing is accomplished by means of ring seals of elastomeric material which at the same time ensure the necessary seal of the connection. The ring seals are located in circumferential annular grooves of the plug-in sleeve and when the end sections of the pipeline or pipelines to be connected are squeezed radially between an inner wall of the annular groove and an outer surface of the respective end sections so that they abut sealingly against the outer surfaces of the end sections and hold the end sections of the pipelines in a frictional connection.
The making of such connections using plug-in sleeves requires a relatively high expenditure of force in order to introduce the end sections of the pipelines to be connected into the plug-in sleeve since the necessary strong squeezing of the ring seals of the introduction of the end sections encounters a considerable resistance. In addition, there is the risk that the corresponding ring seal becomes damaged when slipping over the end section of the pipe. In order to avoid this, the respective end sections must be additionally machined, for example, deburred.
EP 3 120 064 B1 discloses a plug-in connection with a ring seal which eliminates at least one of these disadvantages. EP 3 120 064 B1 discloses a plug-in connection with a ring seal which is deformed by means of a clamping element. As a result of the clamping of the clamping element which is configured as a toggle lever, a width of an annular groove in which the ring seal is inserted is reduced so that the ring seal is squeezed on both sides. The ring seal rests with an external circumference in the base of the ring groove so that due to the deformation an internal diameter of the ring seal is reduced and this comes to abut with the pipe to be connected. With this arrangement a pipe end can be tightly connected with a corresponding plug-in connection. However, such a connection is not very suitable for connecting pressurized pipes since the ring seal is exposed to an internal pressure of the pipe precisely in the region of its contact with the pipe end and as a result tends to lift.
It is therefore an object of the invention to eliminate at least one or more disadvantages of the prior art. In particular, a sealing arrangement and a connection sleeve should be provided which makes it possible to use all the essential constructive properties of a ring seal. Preferably an additional machining step for deburring a pipe end should be prevented or at least the expenditure for deburring should be reduced.
This object is achieved by the devices defined in the independent claims. Further embodiments are obtained from the dependent claims.
A sealing arrangement according to the invention for producing a sealing function in an, in particular static, pipe connection, in particular between a fluid-carrying pipe and a connection sleeve comprises a ring seal arranged in a circumferential groove. The sealing arrangement comprises a seal seat and a clamping element for clamping the ring seal, wherein as a result of the clamping of the ring seal this can be brought or is brought to abut with the fluid-carrying pipe. This also enables a ring seal to be used which has an internal diameter greater than an external diameter of the pipe end to be sealed. Accordingly the ring seal need not be inverted or pulled over an edge of the pipe end but as a result of its larger diameter, can be slid over the pipe end without interference with this. The sealing arrangement has a pressure side.
The pressure side of the sealing arrangement is that side that is exposed to pressure from the pipe to be connected in the operating state.
The seal seat is arranged in the circumferential groove on the pressure side and has overflow openings so that the ring seal is exposed to the pressure of the fluid on the pressure side.
Additionally or alternatively the seal seat can be arranged in the circumferential groove in such a manner that it is configured to be conically tapering in the direction of the pressure side so that by clamping the ring seal this is compressed in a radial direction, in particular displaced, wherein the circumferential groove remains accessible on the pressure side.
That means in other words that the circumferential groove can be exposed to a pressure on its pressure side, in particular on the base of the groove.
Directional designations are defined in the present case by the sealing arrangement in generic use. An axial direction thus substantially corresponds to the direction of the longitudinal axis of a pipe to be connected and accordingly a radial corresponds to the direction of a beam extending at right angles from this axis. A compression in the radial direction therefore corresponds to a displacement of an element or a surface in the direction of the longitudinal axis of the pipe.
Since the circumferential groove is accessible on the pressure side and accordingly can be exposed to pressure, the ring seal can also be exposed to pressure. An existing pressing on the ring seal is additionally intensified by this pressure application. In other words, with the increase of the pressure inside the pipe connection, the pressure on the ring seal is increased and thus the sealing function is increased accordingly.
In this case, it can be provided that the overflow openings are configured as radially extending grooves. This on the one hand allows a simple and cost-effective manufacture, on the other hand, for example, a visual inspection of the state of the overflow openings before or during the installation is easily possible.
Alternatively the overflow openings can be configured as radially extending bores. As a result of the configuration as bores, the seal seat can be provided with a circumferential and uninterrupted surface and thus provide a correspondingly large contact surface for the ring seal.
A combination of these two embodiments is also possible.
The seal seat can have a contact surface for contact of the ring seal. Preferably this contact surface is spaced apart from a base of the circumferential groove by a recess. In this case, it can be provided in particular that the recess is configured as a radially inwardly offset surface of the seal seat.
Such a configuration of the seal seat with a recess ensures that the ring seal can also be exposed to pressure in the region of its greatest diameter, in particular in the region of the base of the groove. In other words, as a result of such a configuration substantially the entire surface of the ring seal arranged on the pressure side of the seal arrangement can be uniformly exposed to pressure.
The seal seat is preferably configured to be annular. Thus, it can easily be manufactured with a high accuracy.
In the case in which the seal seat is configured to be conically tapering in the direction of the pressure side, this can be configured to be conically tapering with an angle of 5° to 20°, in particular of 7° to 15°, preferably at an angle of 7° to 12° in particular at an angle of 10°.
This minimum angle and maximum angle ensure that a corresponding reduction of an internal diameter of the ring seal takes place but this is not forced rapidly in such a manner that the ring seal suffers damage. It can be seen that the flatter the angle is, the more the clamping element must be moved in order to achieve a corresponding desired narrowing of the internal diameter. An angle of 10° has proved to be particularly advantageous here.
The seal seat can be fabricated from plastic. This allows easy and cheap manufacture.
The seal seat is preferably configured as a separate element, alternatively however this can be configured as an integral component of the connection sleeve. Integral manufacture is particularly advantageous if the seal seat is configured to be conically tapering.
The ring seal can be configured as an O-ring. O-rings are easy to manufacture, favourable and available in different standard sizes. In addition, they can be changed easily and have extremely homogeneous properties.
As has already been set out, the ring seal can have a diameter that is greater than an external diameter of the pipe to be sealed. This enables the sealing arrangement to be joined without force onto a corresponding pipe end without the ring seal contacting the pipe end.
In this case, it can be provided in particular that an internal diameter of the ring seal is greater than an internal diameter of the groove. The internal diameter of the groove is defined by the surfaces adjacent to the groove.
In other words, the ring seal is set back with respect to the elements adjoining the ring seal and therefore protected.
Preferably the clamping element is arranged axially movably and can thus be displaced in the axial direction, i.e. along the pipe. This enables the width of the circumferential groove to be varied simply so that the ring seal can be easily clamped.
Preferably the circumferential seal is delimited on one side by the clamping element. In other words, the circumferential groove has a fixed and a movable side wall wherein the movable side wall is configured as part of the clamping element. The clamping of the ring seal can thus be accomplished easily.
A further aspect of the invention relates to a connection sleeve comprising a sealing arrangement as described in the present case.
This makes it possible to provide a compact unit for connecting pipe ends.
In this case, the clamping element can be configured as a sleeve that can be screwed into the connection sleeve.
The ring seal can be pre-tensioned by simply twisting or screwing the clamping element into the connection sleeve.
Alternatively the clamping element can be configured as an end section of an arrangement of a plurality of clamping members, which can be moved into a stable position via a dead point.
As a result, the ring seal can be exactly pre-tensioned by simply snapping over the clamping elements. The clamping members can be configured in particular as described in EP 3 120 064 B1.
Alternatively the clamping element can be configured as a clamping ring with clamping screws, wherein the clamping ring can be displaced in the direction of the ring seal by means of the clamping screws.
This in particular makes it possible to provide relatively large connection sleeves and bring about relatively high pre-tensioning forces.
The connection can be configured in such a manner as described in the present case that this has a second sealing arrangement as described in the present case which in particular is arranged opposite the first sealing arrangement.
With such a connection sleeve two pipe ends can be connected to one another easily and securely. The two pipe ends can preferably be inserted from the opposite direction into the connection sleeve and clamped and sealed with the corresponding sealing arrangement in each case.
Several possible embodiments of the sealing arrangement are explained with reference to the schematic figures. In the figures:
The sealing arrangement 10 additionally has a clamping element 40. The clamping element 40 is movable axially and displaceable with clamping members not designated in detail which are configured as toggle levers. The clamping element 40 is an integral part of the arrangement of clamping members in the present case as an end section. The ring seal 20 is arranged in a circumferential groove 121 in the connection sleeve 12. The fundamental structure of the connection sleeve 12 corresponds to the structure disclosed in EP 3 120 064 B1. Likewise, the structure, the arrangements and the operating mode of the clamping members corresponds to that from EP 3 120 064 B1.
It is immediately apparent that with a connection sleeve according to the prior art (
The embodiment of the seal seat according to
The clamping element 40 has a multipart structure and comprises a pressure ring 41, a clamping ring 42 and a cone ring 43. The pressure rung 41 can be brought to abut with the ring seal 20 and with the cone ring 43. A clamping ring 42 is arranged centrally inside the cone ring 43. The cone ring 43 and the clamping ring 42 are mounted displaceably with respect to one another on conical surfaces. The cone on the cone ring 43 widens in the direction of the joining direction so that due to a movement of the cone ring 43 in the direction of the ring seal 20 the clamping ring 42 is radially compressed. As a result of this radial pressure, the clamping ring 42 is pressed onto the pipe 11 so that this is held by an additional radial force.
As a result of the movement of the cone ring 43 in the direction of the ring seal 20, this presses onto the seal ring 41 which again moves in the direction of the ring seal 20 and deforms this as described in the present case.
The clamping ring 42 has prongs on its inner circumference which are directed contrary to the joining direction of the pipe 11. During a movement of the pipe 11 contrary to the joining direction the clamping ring 42 is again pressed further into the cone and the radial force holding the pipe 11 is additionally increased.
Number | Date | Country | Kind |
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00007/21 | Jan 2021 | CH | national |
Filing Document | Filing Date | Country | Kind |
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PCT/EP2021/087488 | 12/23/2021 | WO |