Plunger pressure accumulator
10480538 ยท 2019-11-19
Assignee
Inventors
Cpc classification
F15B2201/205
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B2201/32
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B1/24
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B2201/31
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B1/086
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B2201/42
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F15B1/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B1/24
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A plunger pressure accumulator includes a shell; and a plunger which is adapted to move relative to the shell into an interior space of the shell. The interior space is divided into at least two subspaces, a first subspace of which is suppliable with hydraulic fluid of an external system and a second subspace which is provided with a pressurized gas. Between the plunger and the shell is arranged a slide element upon which the plunger is supported to move to a distance apart from an internal surface of the first subspace and from an internal surface of the second subspace. The plunger pressure accumulator is provided with at least one regenerator which is stationary relative to the shell or the plunger.
Claims
1. A plunger pressure accumulator, comprising: a shell; a plunger which is adapted to move relative to the shell into an interior space of the shell, the space being divided into at least two subspaces, the first subspace of which is suppliable with hydraulic fluid of an external system and the second subspace is provided with a pressurized gas, wherein between the plunger and the shell is arranged a slide element upon which the plunger is supported to move to a distance apart from an internal surface of the first subspace and from an internal surface of the second subspace, and that the plunger pressure accumulator is provided with at least one regenerator which is stationary relative to the shell or the plunger.
2. The plunger pressure accumulator according to claim 1, wherein an outer surface of the plunger is surrounded across a first end area by the first subspace and across a second end area by the second subspace.
3. The plunger pressure accumulator according to claim 1, wherein the slide element comprises one or more annular slide bearing elements, which is or are adapted to be stationary relative to the shell.
4. The plunger pressure accumulator according to claim 1, wherein the slide element comprises one or more annular slide bearing elements, which is or are adapted to be stationary relative to the plunger.
5. The plunger pressure accumulator according to claim 1, wherein the slide element is a thin-walled tubular element, which extends co-directionally with the motion of the plunger substantially across or all the way across the interior space of the shell.
6. The plunger pressure accumulator according to claim 1, wherein the plunger comprises: a third subspace which is in communication with the second subspace.
7. The plunger pressure accumulator according to claim 1, wherein the plunger comprises an insulating layer, which surround partially or completely the at least one regenerator at least in the compression phase of pressurized gas.
8. The plunger pressure accumulator according to claim 1, wherein at least the shell has the internal surface of its second subspace surrounded by a second regenerator.
9. The plunger pressure accumulator according to claim 8, wherein the structure and/or material of the second regenerator is selected to enable the regenerator to operate as a stabilizing element for reducing the flow of gas in the second subspace.
10. The plunger pressure accumulator according to claim 1, wherein the second subspace has its internal surface provided with a second insulating layer.
11. The plunger pressure accumulator according to claim 10, wherein the shell has its outer surface provided with a third insulating layer.
12. The plunger pressure accumulator according to claim 11, wherein, in connection with the shell, is provided a heat exchanger for supplying the pressurized gas with extra head produced by an external system.
13. The plunger pressure accumulator according to claim 12, wherein the heat exchanger is located inside a space defined by the second insulator layer and/or the third insulating layer.
14. The plunger pressure accumulator according to claim 1, wherein, in connection with the second subspace, an outer surface of the shell is configured to cool a hydraulic fluid present in the plunger pressure accumulator.
15. The plunger pressure accumulator according to claim 1, wherein the at least one regenerator arranged in the plunger pressure accumulator is stationary relative to the plunger and which is completely surrounded by the first insulating layer.
16. The plunger pressure accumulator according to claim 1, wherein the plunger is an elongated hollow element, which is closed at its first end face and whose hollow second end face opens into the second subspace.
17. The plunger pressure accumulator according to claim 1, wherein, in terms of its length parallel to motion, the plunger is 0.01 to 1000-fold as compared to its transverse width.
18. The plunger pressure accumulator according to claim 1, wherein the regenerator, which is stationary relative to the plunger, extends in a longitudinal direction of the shell a distance into the second subspace.
19. The plunger pressure accumulator according to claim 1, wherein a material of the regenerator is a metal, ceramic, composite, polymer, and/or paraffin and the structure of the generator is sintered, mesh-like, fibrous, granular, and/or foamy to provide a sufficient heat transfer capacity of the regenerator, whereby the regenerator has a structure which allows the thermal energy stored in the regenerator in the compression phase of pressurized gas to be released at the latest when a discharge phase of the plunger pressure accumulator terminates.
20. The plunger pressure accumulator according to claim 19, wherein the discharge phase has a duration of 1-60 seconds.
21. The plunger pressure accumulator according to claim 1, wherein the material of the regenerator is a metal, ceramic and/or polymer.
22. The plunger pressure accumulator according to claim 1, wherein the material of the regenerator is paraffin and/or some other phase transition material.
23. The plunger pressure accumulator according to claim 1, wherein the regenerator has a sintered, mesh-like, fibrous, granular and/or foamy structure.
24. The plunger pressure accumulator according to claim 1, wherein between the plunger and the shell is provided a sealing element or some other element producing a sealing effect, which, together with the plunger, divides the space in a longitudinal direction of the shell into the first subspace and the second subspace.
Description
(1) The invention will now be described more precisely with reference to the accompanying drawings, in which:
(2)
(3)
(4)
(5)
(6) Hence, in
(7) Between the plunger 3 and the shell 2 is provided a slide element 2b of the invention, upon which the plunger 3 is supported to move in a space. Therefore, the structure of a plunger pressure accumulator 1 shown in
(8) Between the plunger 3 and the shell 2 is further provided a sealing element 2c or some other element, which establishes a sealing effect and, together with the plunger 3, divides the space in a lengthwise direction of the shell 2 into two subspaces 4 and 5. In this case, the sealing element 2c is made stationary relative to the shell 2, thereby leaving the sealing surface in engagement with an external surface 3 of the plunger 3.
(9) Of these, the first subspace 4 is suppliable with a hydraulic fluid by way of a port 2a provided in connection with the shell 2. The source of hydraulic fluid is typically some external system, including a hydraulic circuit that the plunger pressure accumulator 3 is in communication with. The second subspace 5 is provided with a pressurized gas. Further in this embodiment, the space inside the walls of the hollow plunger 3 establishes a third subspace 6 which is in communication with the second subspace 5. Hence, the third subspace 6 also contains pressurized gas at a pressure equal to that of the second subspace 5. The pressurized gas consists of a compressible gas. This compression takes place as the first subspace 4 is supplied with an incompressible or substantially incompressible hydraulic fluid from an external system. As a result of this, the plunger 3 or some other corresponding element moves (to the right in
(10) In a preferred embodiment of the invention, the plunger 3 comprises a first insulating layer, which is denoted with reference numeral 10a. The first insulating layer 10a is preferably disposed in engagement with an inner surface of the walls of the plunger 3 so as to cover the entire internal surface of the plunger 3.
(11) The plunger pressure accumulator 3 according to the invention is provided with at least one regenerator, which is stationary relative to the shell 2 or the plunger 3.
(12) As an alternative or in addition to the regenerator 7a, the plunger pressure accumulator 1 may include a regenerator 7b which is stationary relative to the plunger 3.
(13) In a preferred embodiment of the invention, the internal surface of the shell 2 defined by the second subspace 5 is provided with a second insulating layer 10b. This can be implemented in such a way that the second insulating layer 10b is attached to the shell 2 in a manner making it stationary relative to the shell 2. This is made possible in a particularly advantageous way by having the plunger 3 supported to move with the assistance of the slide elements 2b to a distance apart from an internal surface 4a of the first subspace 4 and from an internal surface 5a of the second subspace 5. Accordingly, as opposed to prior known solutions, for the second insulating layer there is left, between the plunger 3 and the internal surface 4a, a space (which therefore in this case is a part of the second subspace 5) in which the second insulating layer 10b can be easily accommodated inside the shell 2
(14) What can be further seen in
(15) The plunger type structure of a plunger pressure accumulator according to the invention enables the use of diverse materials in regenerators. The employed material can be for example a metal, ceramic, composite and/or polymer. It is also possible to use a material, such as paraffin, based on phase transition. In addition, the structure of regenerators can be preferably sintered, mesh-like, fibrous, granular and/or foamy. The implementation of structurally other types of regenerators is possible. The purpose of such structures is to provide an interior space of the shell 2, especially the second subspace 5, at desired locations, with a regenerator sufficient in terms of its thermal capacity, but also in terms of its heat transfer capacity. Particularly the regenerator, which is in communication with a gas of the second subspace 5, as well as with a gas of the third subspace 6, must have an area which is large in comparison with that of the second subspace's internal surface 5a. An objective is to collect from the gas as thoroughly as possible the heat generated during the compression phase and to deliver it back into the gas during a discharge phase or expansion phase. At the same time, there is provided an effective blockage of heat flows towards the shell by binding the heat as well as by using its appropriate structure and materials for impeding and stop ping the flow of heat into the shell structure. This objective is attained particularly well with a plunger pressure accumulator construction of the invention, since the plunger 3 does not hinder the positioning of regenerators particularly in the second subspace 5. Depending on the material and structure of a regenerator or regenerators, there will be achieved for the regenerator a surface area which is approximately 10 to 1000-fold compared to the internal surface 5a while the thermal capacity of the regenerator or regenerators is nevertheless sufficient for the recovery of heat generated in the gas. However, the regenerator's surface area with respect to the internal surface 5a can be other than this.
(16) Further in a plunger pressure accumulator 1 of the invention, the regenerator 7a, 7b, 8, in terms of its structure and with material selections, can be constructed as a heat transfer device or something like a heat transfer device. Hence, the regenerator 7a; 7b; 8 also works as an element which delivers the heat stored therein as desired. Thus, the regenerator or heat transfer device allows the thermal energy, stored in the regenerator 7a; 7b; 8 in the compression phase of pressurized gas, to be released at the latest when the plunger pressure accumulator 1 terminates its discharge phase. In a typical case, the duration of a discharge phase is 1-60 seconds but, depending on the application and the plunger pressure accumulator's capacity, it may deviate from the aforesaid time frame, being for example 0.5-600 seconds. Naturally, the regenerator or heat transfer device can be constructed so as to deliver thermal energy even after the discharge phase has terminated.
(17) In
(18) In
(19) In the embodiment shown in
(20) Moreover, the plunger pressure accumulator 1 according to the invention can be provided with other equipment for improving a plunger pressure accumulator of the invention in terms of its functionality, as well as for improving the overall efficiency of a hydraulic external system or other external system communicating with the plunger pressure accumulator. As an example,
(21)
(22) The present invention is not limited merely to the foregoing embodiments but can be applied within the scope of protection defined by the appended claims.