HYDRAULIC ACCUMULATOR
20180112681 ยท 2018-04-26
Assignee
Inventors
Cpc classification
F15B2201/4056
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B2201/61
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B2201/605
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B2201/40
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B1/24
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
The invention relates to a hydraulic accumulator, especially a piston accumulator, in which a piston part (27) separates from each other two media spaces (23, 25) inside a storage housing (1), characterized in that the piston part (27) is designed as a deep-drawn part.
Claims
1. A hydraulic accumulator, in particular a piston accumulator, in which a piston part (27) separates two media chambers (23, 25) from one another inside an accumulator housing (1), characterized in that the piston part (27) is formed as a deep-drawn part.
2. The hydraulic accumulator according to claim 1, characterized in that the piston part (27) is divided into a guide part (29) and a dome-like trough part (31), which serves to increase the gas working chamber (23) on the gas side of the accumulator, and in that a pressure-balanced separation surface (33) between the two media chambers (23, 25) is formed by the trough part (31) during operation of the accumulator.
3. The hydraulic accumulator according to claim 1, characterized in that the trough part (31) of the piston part (27) has a dome-like curvature, which is adapted to a concave curvature of the inner side (13) of a cover part (5) of the accumulator housing (1) in such a way that the piston part (27) in its one end position in the absence of fluid pressure in the fluid working chamber (25) of the accumulator housing (1) has its trough part lying in full-face contact against the inner side (13) of the cover part (5).
4. The hydraulic accumulator according to claim 1, characterized in that the piston part (27) is guided in each of its displacement positions in a hollow tube or running tube (47) inside the accumulator housing (1).
5. The hydraulic accumulator according to claim 1, characterized in that the accumulator housing (1) has, in addition to the cover part (5), a housing main part (3) and in that the running tube (47) for the piston part (27) is maintained at a spacing from the inner side of this main part (3).
6. The hydraulic accumulator according to claim 1, characterized in that the running tube (47) is supported at its bottom end by means of a retaining ring (53), which is preferably formed from plastic and which has apertures, against the housing main part (3).
7. The hydraulic accumulator according to claim 1, characterized in that the running tube (47) is fixed by means of its end lying at the top to the cover part (5) and in that, for this purpose, the end edge of the cover part (5) has on the inner side a seat for the running tube (47) with a tolerance sleeve (49) and an O-ring seal (51).
8. The hydraulic accumulator according to claim 1, characterized in that the piston part (27) is provided at the external circumference with continuous circumferential groove-like recesses (35, 37) for receiving sealing tape (39) and guide tape (41).
9. The hydraulic accumulator according to claim 1, characterized in that the respective groove-like recess (35, 37) is obtained by means of a rolling process.
10. The hydraulic accumulator according to claim 1, characterized in that one of the groove-like recesses (37) for receiving the guide tape (41) is arranged on one free end region of the piston part (27) inside the guide part (29) and an additional second groove-like recess (35) serves to receive the sealing tape (39) and is arranged in the region of the transition between the guide part (29) and the trough part (31) either on the guide part (29) or on the trough part (31).
11. The hydraulic accumulator according to claim 1, characterized in that the wall thickness of the piston part (27) designed as a hollow piston is essentially the same over the axial extension thereof.
12. The hydraulic accumulator according to claim 1, characterized in that the axial length of the cylindrical guide part (29) is the same as or greater than half of the diameter of this guide part (29).
13. The hydraulic accumulator according to claim 1, characterized in that the piston part (27) designed as a deep-drawn part is formed from a fine grain sheet, in particular from a stainless steel material or an AlMg alloy.
Description
[0015] The invention is explained in detail below with reference to exemplary embodiments depicted in the drawings, in which:
[0016]
[0017]
[0018]
[0019] The exemplary embodiment in the form of a piston accumulator depicted in
[0020] The accumulator housing can however also be differently constructed, for example in the form of a so-called liner, which is at least partially wound using plastic laminate materials.
[0021] The housing cover part 5 has a shell shape with a concave shaped inner side 13 and, as a closure part of the housing 1, it is connected by means of a flange 15 to the opening edge thereof, with an O-ring 17 in an annular groove 19 formed at the edge of the cover part 5 forming the seal. A fluid connection 21 for a corresponding working fluid, such as hydraulic oil, is provided concentric to the longitudinal axis 9 on the cover part 5. Connectors at the fluid connection 21 and also at the filling connection 11 are formed in accordance with the prior art.
[0022] As a separating element for the separation of the media chambers, namely, of the gas working chamber 23 from the fluid working chamber 25, a piston part 27 is guided in an axially freely mobile manner in the housing main part 3. This piston part 27 is formed by an integral deep-drawn part, with a fine grain sheet suitable for the deep-drawing process being provided, for example an AlMg alloy or a stainless steel material.
[0023] With the free mobility of the piston part 27 in the accumulator housing 1, the separation surface 33 formed by the trough part 31 between the gas working chamber 23 and the fluid working chamber 25 is pressure-balanced. The trough part 31, in a similar manner to the guide part 29, can thus be formed with lesser thickness, so that the piston part 27 constitutes a deep-drawn part with a low construction weight and the correspondingly low mass inertia results in an advantageous operating performance, for example in an application as a pulsation damper.
[0024] In order to form a piston guide and a piston seal, the piston part 27 is provided with continuous circumferential sunk grooves 35 and 37 at the external circumference. These grooves 35, 37 are each formed by means of rolling of the preliminary mold. The groove 35 lying at the top in the figure is located at the transition between the guide part 29 and the trough part 31 and forms the seat for a sealing ring 39. The other groove 37 provided at the bottom end of the guide part 29 receives another sealing element in the form of a guide tape 41.
[0025] In the exemplary embodiment of
[0026] The hydraulic accumulator of the second exemplary embodiment of
[0027] Because the function of guiding of the piston part 27 is realized by the running tube 47, no surface processing of the inner side of the housing main part 3 is required to form a sliding surface, so that the accumulator housing 1 can be produced in a particularly cost-effective manner. Another particular advantage is that the constructional unit constituted by the running tube 47 and the piston part 27 prefabricated as a module or component can be used for different accumulator designs and accumulator sizes. In the case of an identical tube diameter and an identically constructed piston part 27, it could be possible to provide different tube lengths for different lengths of the accumulator housing 1.
[0028] The exemplary embodiment of