Separator and Hydraulic Accumulator Having Such a Separator
20240271639 ยท 2024-08-15
Assignee
Inventors
Cpc classification
B22F10/28
PERFORMING OPERATIONS; TRANSPORTING
B33Y80/00
PERFORMING OPERATIONS; TRANSPORTING
F15B2201/61
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B1/103
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B2201/3153
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
Separator and hydraulic accumulator having such a separator. A separator, in particular for a hydraulic accumulator, such as a bellows accumulator, which is produced by a 3D printing process, consisting of one single diaphragm, which, when viewed in cross section, is deflected in an arcuate shape to form a multitude of bellows pleats at deflection points, which delimit the bellows pleats on the outside and the inside, and in that, to obtain an isotensoid or essentially isotensoid stress profile in the diaphragm, the notional extensions of the diaphragm surfaces adjacent to each deflection point form an acute angle with each other, at least in an initial state.
Claims
1-10. (canceled)
11. A separator, which is produced by a 3D printing process, consisting of one single diaphragm; wherein the diaphragm, when viewed in cross section, is deflected in an arcuate shape to form a multitude of bellows pleats at deflection points, which delimit the bellows pleats on the outside and the inside; wherein to obtain an isotensoid or essentially isotensoid stress profile in the diaphragm, the notional extensions of the diaphragm surfaces adjacent to each deflection point form an acute angle (x) with each other at least in an initial state.
12. The separator of claim 11, wherein the respective deflection points, which are arcuate when viewed in cross-section, are at least partially formed from a semicircular arc.
13. The separator of claim 11, wherein the acute angle (?) is ?30?.
14. The separator of claim 11, wherein the diaphragm material of the diaphragm is reduced in wall thickness between two adjacent deflection points located on any common side of the diaphragm.
15. The separator of claim 11, wherein the individual diaphragm surface between two adjacent deflection points, which are located on opposite sides of the diaphragm, has an undulating course.
16. The separator of claim 11, wherein the undulating curve of the individual diaphragm surfaces is configured to be identical in such a way that, when the diaphragm surfaces are placed against each other in full contact, they engage flush with one another.
17. The separator of claim 11, wherein for a waveform of the diaphragm, in which one diaphragm surface in stacking sequence has a greater inclination relative to the arcuate deflection point than the diaphragm surface adjacent to the deflection point.
18. The separator of claim 11, wherein the material from which the diaphragm is made is one of: Titanium, Stainless steel, or Aluminum.
19. The separator of claim 11, wherein the diaphragm forms a kind of hollow cylinder in the final printed state.
20. A hydraulic accumulator, having an accumulator housing and a bellows-shaped separator disposed therein, which separates two media chambers from each other inside the accumulator housing, wherein the separator is configured according to claim 11.
21. The separator of claim 11, configured for a bellows accumulator.
22. The separator of claim 12, wherein the acute angle (?) is ?30?.
23. The separator of claim 11, wherein the acute angle (?) is ?20?.
24. The separator of claim 12, wherein the acute angle (?) is ?20?.
25. The separator of claim 12, wherein the diaphragm material of the diaphragm is reduced in wall thickness between two adjacent deflection points located on any common side of the diaphragm.
26. The separator of claim 13, wherein the diaphragm material of the diaphragm is reduced in wall thickness between two adjacent deflection points located on any common side of the diaphragm.
27. The separator of claim 12, wherein the individual diaphragm surface between two adjacent deflection points, which are located on opposite sides of the diaphragm, has an undulating course.
28. The separator of claim 13, wherein the individual diaphragm surface between two adjacent deflection points, which are located on opposite sides of the diaphragm, has an undulating course.
29. The separator of claim 14, wherein the individual diaphragm surface between two adjacent deflection points, which are located on opposite sides of the diaphragm, has an undulating course.
30. A separator for a bellows accumulator, consisting of one single diaphragm; wherein the diaphragm, when viewed in cross section, is deflected in an arcuate shape to form a multitude of bellows pleats at deflection points, which delimit the bellows pleats on the outside and the inside; wherein to obtain an isotensoid or essentially isotensoid stress profile in the diaphragm, the notional extensions of the diaphragm surfaces adjacent to each deflection point form an acute angle with each other at least in an initial state.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DESCRIPTION
[0016] The details of one or more embodiments are set forth in the accompanying drawings and the description below. Other features will be apparent from the description, drawings, and from the claims.
[0017] In the following description of embodiments of the invention, specific details are described in order to provide a thorough understanding of the invention. However, it will be apparent to one of ordinary skill in the art that the invention may be practiced without these specific details. In other instances, well-known features have not been described in detail to avoid unnecessarily complicating the instant description.
[0018] According to some embodiments, the separator is made from an integral, single diaphragm in conjunction with the individual bellows pleats by means of a 3D printing process or additive manufacturing process. Electron beam melting has proven to be a particularly suitable 3D printing process. In electron beam melting, a metal powder is melted layer by layer and removed as a separator in conjunction with its bellows pleats. Selective laser melting, in which a metal powder is only locally melted, is also suitable. It is also possible to use selective laser sintering, in which a metal powder is briefly heated using a laser to melt the metal, wherein it subsequently solidifies again to form the metallic separator. All of the above 3D printing processes belong, in the broadest sense, to the category sintering and powder printing processes.
[0019] In this process, each separator can be obtained individually as a three-dimensional object by applying the diaphragm material layer by layer, wherein series production of larger quantities is also possible. In this way, the separator is obtained in a simple and inexpensive manner, without the need to use hydraulic forming processes or roller-burnishing processes and/or welding processes. Furthermore, the combination of the 3D printing process with the special geometry of the separator, in which the deflection points of the bellows pleats are arcuate when viewed in cross-section and in which the fictitious extensions of the diaphragm surfaces adjacent to each deflection point form an acute angle with each other, at least in an initial state, results in an isotensoid or an essentially isotensoid stress profile achieved in the diaphragm in any operating state of the separator, to prevent material-damaging excessive stresses even in dynamic operation, for instance in the context of a conventional hydraulic accumulator application. The design of the individual bellows pleats with their curved or rounded deflection points thus results in the uniform transfer and distribution of stress across the entire diaphragm, even in dynamic operation.
[0020] For a favorable stress curve within the diaphragm-type separator, it has proven beneficial for the respective deflections, which are arcuate when viewed in cross-section, to be at least partially formed from a semicircular arc. For example, provision is further made for the acute angle between two adjacent diaphragm surfaces in the initial state to be ?30?, or ?20?.
[0021] In some embodiments of the separator, provision is made for the diaphragm material of the diaphragm to be reduced in wall thickness, for example centrally, between two adjacent deflection points located on any common side of the diaphragm. It is surprising to the average expert in this field that despite this wall weakening, a uniform, improved stress input into the diaphragm is achieved, which contributes to its longevity.
[0022] In some embodiments of the separator, provision is made for the respective diaphragm surfaces between two adjacent deflection points, which are located on opposite sides of the diaphragm, to have an undulating course. As part of a self-stabilization process, the individual corrugated diaphragm surfaces can engage with each other at least partially flush when placed in full contact increasing the overall stability.
[0023] In a beneficial manner, provision is made for a waveform of the diaphragm, in which one diaphragm surface, viewed in stacking sequence, to have a greater inclination relative to the arcuate deflection point than the diaphragm surface adjacent to this deflection point, such that the diaphragm surfaces superordinate in the stacking sequence are always supported accordingly by the flatter diaphragm surface below, improving the expansion and contraction behavior of the bellows as a whole in dynamic operation.
[0024] Example materials used for the separator obtained by 3D printing are titanium, stainless steel, or aluminum.
[0025] For example, the separator or the diaphragm forms a kind of hollow cylinder in the final printed state, such that the separator can also easily be used quite generally as a compensator device within the framework of a compensating element for fluid-conveying pipelines.
[0026] However, it is for example possible to use the bellows-shaped separator in the context of a hydraulic accumulator, in the form of a bellows accumulator, in which the separator used in an accumulator housing separates two media or fluid chambers from each other, wherein the separator is for example designed as described above.
[0027] Below, the separator and a hydraulic accumulator are explained in more detail based on various exemplary embodiments in the drawing. The FIGS. are in schematic representation and are not to scale. Specific references to components, process steps, and other elements are not intended to be limiting. Further, it is understood that like parts bear the same or similar reference numerals when referring to alternate FIGS.
[0028] The hydraulic accumulator designed as a bellows accumulator according to
[0029] The metal bellows 12, or the separator 14, is welded at its lower, open end, as viewed in the direction of
[0030]
[0031] In contrast,
[0032]
[0033] The separator shown in
[0034] In particular, a powder printing process is used to produce the separation diaphragm. Steel materials such as stainless steel or materials such as titanium or aluminum can be used as metal powders for the 3D printing process. This list of materials is only exemplary and, of course, other suitable metals can also be used in the 3D printing process.
[0035] Because the deflection points 30 of the individual bellows pleat 28 are arcuate when viewed in cross-section and because, for the initial state of the metal bellows 12 according to
[0036] The metal bellows 12, which is only shown in part in
[0037]
[0038] As results from
[0039]
[0040] As can also be seen in
[0041] The invention has been described in the preceding using various exemplary embodiments. Other variations to the disclosed embodiments may be understood and effected by those skilled in the art in practicing the claimed invention, from a study of the drawings, the disclosure, and the appended claims. In the claims, the word comprising does not exclude other elements or steps, and the indefinite article a or an does not exclude a plurality. A single processor, module or other unit or device may fulfil the functions of several items recited in the claims.
[0042] The term exemplary used throughout the specification means serving as an example, instance, or exemplification and does not mean preferred or having advantages over other embodiments. The term in particular and particularly used throughout the specification means for example or for instance.
[0043] The mere fact that certain measures are recited in mutually different dependent claims or embodiments does not indicate that a combination of these measures cannot be used to advantage. Any reference signs in the claims should not be construed as limiting the scope.