The invention relates to a pressure vessel, for example in the form of a hydraulic accumulator, for receiving at least one fluid medium, having a first shell and a second shell at least partially encompassing the first shell. The first shell has a collar section at least at its one end having a securing element forming an opening for the supply and discharge of a medium.
WO 2007/085276 A1 discloses a generic composite pressure vessel for the storage of media under pressure having a liner made of plastic as an inner or first shell. A winding made of fiber composite material reinforcing the liner is provided as a second shell. A securing element enclosed by the collar section forming the media opening interacts with a connection fitting and includes a valve arrangement, if applicable.
To achieve a highly reliable operating performance, in particular in the case of long-term operation, vessels of this kind must ensure that the forces acting on the vessel by the securing element during operation can be safely accommodated. In particular in the case of composite vessels, any relative movements that may occur between the plastic shells must be eliminated to avoid damaging delaminating processes between the sensitive plastic materials.
An object of the present invention is to provide an improved pressure vessel characterized by a high structural strength, especially in the region of the collar section and a securing element allocated to the connecting devices.
This object is basically achieved according to the invention by a pressure vessel having a support element provided inside the vessel. The support element has a contact surface adapted to the curved shape of the inside of the first shell connected to the collar section. The contact surface can be pressed onto the first shell using a pressing device. Not only is the risk of the relative movement thereby avoided, but the form closure between the support element and the shells provides protection against deformation, and therefore, against a deterioration of the seal.
Plastic can then be used in the invention in an advantageous manner as a material for one shell, or preferably for both shells.
Due to the fact that the support element is designed in the form of a split ring, this support element can advantageously be made out of a rigid material, preferably metal, although the outer diameter thereof may be substantially greater than the vessel opening.
Particularly advantageously, the support element is fixed on the securing element such that the pressing device transfers the force for pressing that support element onto the first shell to the support element.
Particularly advantageously the securing element has the form of a pipe socket that extends from the interior of the vessel. The pipe socket has a flange at the inner end forming a shoulder surface on which the support element is secured against axial movement toward the interior of the vessel.
The pressing device allocated for the support element particularly advantageously is to be implemented such that the pipe socket has an external thread for a nut. By of the nut, a tensile force can be generated on the pipe socket to press the support element onto the first shell.
In especially preferred embodiments, the support element has an inner end face defining a radial plane. The end surface, together with the contact surface, forms an angular peripheral edge on the radially outer end. A retaining ring preferably and advantageously projects axially into the interior of the vessel from the end face of the support element. The retaining ring has a radially deflected edge for interlocking with a ring disk made of an elastomer material seated on the inner edge of the pipe socket. The radially outer edge of that ring disk forms a continuation of the curved contact surface of the support element when attached to the inside of the first shell. A gasket is then formed, which seals the pipe socket, including the support element seated thereon, from the interior of the vessel.
In especially advantageous embodiments, the nut allocated to the external thread of the pipe socket has an axially projecting flange. That flange engages in an annular gap between the pipe socket and the collar section of the first shell. Between that collar section and the support element a seal arrangement is disposed. An additional seal is thereby formed in a sealing gap between the pipe socket and the collar section, precisely defined by the flange of the nut.
In an especially advantageous manner, the second, outer shell terminates at a distance from the collar section of the first shell. That the collar section is enclosed by a stiffening ring, preferably formed as a metal ring, in the space that is formed. As a result, the opening area, i.e. the connection area of the vessel, exhibits an especially high rigidity.
Other objects, advantages and salient features of the present invention will become apparent from the following detailed description, which, taken in conjunction with the annexed drawings, discloses a preferred embodiment of the present invention.
Referring to the drawings which form a part of this disclosure:
The following description of the invention is based on a composite pressure vessel in the form of a bladder accumulator. The accumulator comprises a first plastic shell 1 and a second plastic shell 3 that at least partially encompasses the first plastic shell 1. One or both shells may also be manufactured out of a metallic material such as aluminum. In technical terminology, the first plastic shell 1 provided in the present example is also referred to as a plastic core vessel or as a liner. It is preferably made of polyamide or polyethylene and formed by a blow molding process or rotational molding. Because continuous manufacturing processes are the conventional, this forming process will not be addressed in greater detail here.
The outer circumference of the liner 1 is reinforced by fiber wrapping on the outside by a second plastic shell 3. For example, the reinforcing winding is formed of a fiber reinforcement such as carbon, aramid, glass-, boron, or AL2O3 fibers or mixtures thereof, which reinforcements are referred to as hybrid yarns, which yarns are embedded in a basic matrix of thermoset materials such as epoxy or phenolic resins, or in thermoplastics such as PA12, PA6, PP etc. The fiber composite material that forms the supportive casing contains fiber strands that are embedded in synthetic resin and that cross one another such that they essentially extend in longitudinal and circumferential directions. The fiber composite material that forms the supportive casing may additionally or alternatively include other intersecting fiber strands, which fiber strands may be angled in the longitudinal or circumferential direction. In an advantageous further embodiment, the fiber strands may be disposed so that they are angled mirror inverted to one another along the longitudinal axis of the plastic core vessel.
The longitudinal and circumferential forces can thus be absorbed in an optimal manner by the pressure vessel. Moreover, the possibilities of setting the ratio of the opening cross section of a front opening with respect to the inner diameter of the plastic core vessel to large values of at least 30%, preferably of at least 50%, are improved without resulting functional impairments. The first plastic shell 1 forms a cylindrical collar section 5 at each or its opposite ends. In an embodiment not shown here, it is also possible to close the end of the first plastic shell 1 and to provide only one collar section 5. The pressure vessel is formed essentially rotationally symmetrical and extends along its longitudinal axis 7. The second plastic shell 3 forms a tapered region 9 with a wedge-shaped cross section at its free end. Tapered region 9 is supported on a stiffening ring 11 encompassing the respective collar section 5. The stiffening ring preferably is manufactured out of metal or a fiber composite material having high-modulus fibers.
To form a respective vessel opening 13 as a securing element for connection fittings and the like (not shown), a pipe socket 15 is provided at both ends of the vessel. Pipe socket 15 extends out of the interior of the vessel through the collar section 5 to the exterior. In the present example, the pipe sockets 15 have the same outer diameter clamping down on the respective collar section 5, however they differ in axial length and in the design of the inner vessel opening 13, which has a stepped section having a reduced inner diameter in the left-hand pipe socket in
As can most clearly be seen in
The pressing device adapts the support element 19 with its contact surface 39 to the first shell 1 and generates a tensile force in the pipe socket 15 from the interior of the vessel outward. This force is transferred to the support element 19 by the shoulder surface 17 on the flange 16 of the pipe socket. For this purpose, the pipe socket 15 has an external thread 43 (
While one embodiment has been chosen to illustrate the invention, it will be understood by those skilled in the art that various changes and modifications can be made therein without departing from the scope of the invention as defined in the appended claims.
Number | Date | Country | Kind |
---|---|---|---|
10 2011 103 424 | Jun 2011 | DE | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
---|---|---|---|---|
PCT/EP2012/002100 | 5/12/2012 | WO | 00 | 10/28/2013 |
Publishing Document | Publishing Date | Country | Kind |
---|---|---|---|
WO2012/167868 | 12/13/2012 | WO | A |
Number | Name | Date | Kind |
---|---|---|---|
3232318 | Mercier | Feb 1966 | A |
3537481 | Mercier | Nov 1970 | A |
20080201932 | Schlag | Aug 2008 | A1 |
Number | Date | Country |
---|---|---|
2009 85 916 | Dec 2007 | CN |
30 30 616 | Mar 1981 | DE |
40 35 785 | May 1982 | DE |
10 2006 004 120 | Jul 2007 | DE |
11 013995 | Jan 1999 | JP |
Number | Date | Country | |
---|---|---|---|
20140061207 A1 | Mar 2014 | US |