Apparatus for Controlling the Switch-Over of Hydraulic Cylinders
20200180253 ยท 2020-06-11
Inventors
- Dirk Becher (Nufringen, DE)
- Werner HAENDLE (Marbach a.N, DE)
- Achim Helbig (Stuttgart, DE)
- Christoph Boes (Reutlingen, DE)
Cpc classification
F15B11/022
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B2211/20561
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B2211/775
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B2211/20546
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B2211/7107
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B30B15/161
PERFORMING OPERATIONS; TRANSPORTING
F15B7/006
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B30B15/163
PERFORMING OPERATIONS; TRANSPORTING
B30B15/186
PERFORMING OPERATIONS; TRANSPORTING
F15B2211/7128
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B2211/6651
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B2211/27
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
B30B15/16
PERFORMING OPERATIONS; TRANSPORTING
B30B15/18
PERFORMING OPERATIONS; TRANSPORTING
F15B11/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
An electro-hydrostatic drive for realizing a rapid movement during a rapid movement phase, a force-building movement during a force-building movement phase. The apparatus comprises a hydro-machine with variable volume and/or rotational speed, driven by an electric motor, for providing a volume-stream of a hydraulic fluid, a first cylinder with a piston chamber, an rod chamber, and a plunger rod, a reservoir, a pressure source, a relief valve, a check valve, a fluid connection between the piston chamber and the hydro-machine, a fluid connection between the rod chamber and the hydro-machine, a fluid connection between the piston chamber and the reservoir, a fluid connection between the rod-chamber-side port of the hydro-machine and the reservoir, a fluid connection, through the relief valve, between the reservoir and the pressure source. The relief valve is for pressure safety of the reservoir, and the check valve has a fluid connection from the pressure source to the rod-chamber-side port of the hydro-machine, during the rapid movement phase, a first part of the hydraulic fluid is piped through the fluid connection between the piston chamber and the hydro-machine and the fluid connection between the rod chamber and the hydro-machine, and a second part of the hydraulic fluid communicates through the fluid connection between the piston chamber and the reservoir, during the force-building movement phase, a first part of the hydraulic fluid is piped through the fluid connection between the piston chamber and the hydro-machine and the fluid connection between the rod chamber and the hydro-machine, and a second part of the hydraulic fluid is piped through the fluid connection between the rod-chamber-side port of the hydro-machine and the reservoir.
Claims
1. An electro-hydrostatic drive for realizing a rapid movement during a rapid movement phase, a force-building movement during a force-building movement phase and a transition phase between the rapid movement phase and the force-building movement phase, comprising: a hydro-machine with variable volume and/or variable speed, driven by an electric motor, for providing a flow of a hydraulic fluid; a first cylinder with a piston chamber, a rod chamber, and a rod; a reservoir; a pressure source; a relief valve; a check valve; a fluid connection between the piston chamber and a piston-chamber-side port of the hydro-machine; a fluid connection between the rod chamber and a rod-chamber-side port of the hydro-machine; a fluid connection between the piston chamber and the reservoir; a fluid connection between the rod-chamber-side port of the hydro-machine and the reservoir; a fluid connection, through the relief valve, between the reservoir and the pressure source; wherein the relief valve is for pressure safety of the reservoir, and the check valve has a fluid connection from the pressure source to the rod-chamber-side port of the hydro-machine; during the rapid movement phase, a first part of the hydraulic fluid flows via the fluid connection between the piston chamber and the piston-chamber-side port of the hydro-machine and the fluid connection between the rod chamber and the rod-chamber-side port of the hydro-machine, and a second part of the hydraulic fluid communicates through the fluid connection between the piston chamber and the reservoir; during the force-building movement phase, a first part of the hydraulic fluid flows via the fluid connection between the piston chamber and the piston-chamber-side port of the hydro-machine and the fluid connection between the rod chamber and the rod-chamber-side port of the hydro-machine, and a second part of the hydraulic fluid is piped through the fluid connection between the rod-chamber-side port of the hydro-machine and the reservoir and; the rod of the first cylinder and the rod of the second cylinder are mechanically connected via a mass and, during the transition phase, the fluid connection between the piston chamber and the reservoir is closed and the fluid connection between the rod-chamber-side port of the hydro-machine and the reservoir is closed.
2. The electro-hydrostatic drive according to claim 1, wherein during a rapid movement upwards, a first part of the hydraulic fluid is piped through the fluid connection from the piston chamber to the piston-chamber-side port of the hydro-machine and the fluid connection from the rod-chamber-side port of the hydro-machine to the rod chamber, and a second part of the hydraulic fluid communicates through the fluid connection from the piston chamber to the reservoir.
3. The electro-hydrostatic drive according to claim 1, wherein during a force-building movement upwards, a first part of the hydraulic fluid is piped through the fluid connection from the piston chamber to the piston-chamber-side port of the hydro-machine and the fluid connection from the rod-chamber-side port of the hydro-machine to the rod chamber, and a second part of the hydraulic fluid is piped through the fluid connection from the rod-chamber-side port of the hydro-machine to the reservoir.
4. The electro-hydrostatic drive according to claim 1, wherein the relief valve has an outlet pressure between 5 bar and 50 bar.
5. The electro-hydrostatic drive according to claim 1, wherein the relief valve is proportionally adjustable.
6. The electro-hydrostatic drive according to claim 1, wherein the reservoir is an accumulator.
7. (canceled)
8. (canceled)
9. The electro-hydrostatic drive according to claim 1, wherein the drive has a first 2-port/2-way control valve and a second 2-port/2-way control valve, each of them having states opened and closed, where the first valve can open the fluid connection between the rod-chamber-side port of the hydro-machine and the reservoir, and the second valve can open the fluid connection between the piston chamber and the reservoir, and where during the rapid movement phase, the first valve is in state closed and the second valve is in state opened, and during the force-building movement phase, the first valve is in state opened and the second valve is in state closed.
10. The electro-hydrostatic drive according to claim 1, wherein the check valve has a fluid connection to the pressure source to avoid cavitation in the hydro-machine.
11. The electro-hydrostatic drive according to claim 1, wherein an additional check valve has a fluid connection to the pressure source to avoid cavitation in the reservoir.
12. The electro-hydrostatic drive according to claim 1, wherein additional relief valves are for pressure safety of both connections of the hydro-machine.
Description
[0027] The figures show:
[0028]
[0029]
[0030]
[0031] The passage 125 connects piston chamber 120 of the first cylinder 100 with the piston-chamber-side port of the hydro-machine 50. The rod-chamber-side port of the hydro-machine is connected, via fluid connection or passage 135, with rod chamber 130 of the first cylinder 100 and, via passage 237 and 235, with rod chamber 230 of the second cylinder 200. Passage 237 can be opened and closed with first 2-port/2-way control valve 310. A further fluid connection is established between piston chamber 120 of the first cylinder 100 and rod chamber 230 of the second cylinder 200, via passage 236 and 235. Passage 236 can be opened and closed with first 2-port/2-way control valve 320. Furthermore, reservoir 400 is shown. From reservoir 400, fluid can communicate to passage 125 or 236, via check valve 420 or 440, respectively. Said reservoir 400 is filled from the productive part either from passage 235, via relief valve 480, or from passage 125, via relief valve 450. When control valve 310 and 320 are closed and the hydraulic system is in transition phase between the rapid movement upwards and the force-building movement downwards, pressure fluid from rod chamber 230 of the second cylinder 200 may flow, via passage 235 and relief valve 480, to reservoir 400 and from reservoir 400, via check valve 420 and passage 125, to piston chamber 120.
[0032] For a rapid movement upwards, the hydro-machine 50 moves the hydraulic fluid from its piston-chamber-side port to its rod-chamber-side port, i.e. downwards in this drawing. Besides, first control valve 310 is in state closed and second control valve 320 is in state opened. Thus, a first part of the hydraulic fluid is piped from piston chamber 120 to the hydro-machine 50, through fluid connection 125, and from the hydro-machine 50 to the rod chamber 130 of the first cylinder 100. Hence, plunger rod 132 is driven upwards. This takes mass 500 upwards, too. Since mass 500 is connected to the plunger rod 232 of the second cylinder 200, plunger rod 232 is also moved upwards. Thus, a second part of the hydraulic fluid from piston chamber 120 flows, via second control valve 320 and passage 236 and 235, to the rod chamber 230 of the second cylinder 200.
[0033] In an alternative embodiment, second cylinder 200 may be substituted by a reservoir. This reservoir will be filled in the rapid movement upwards, because there is a fluid connection, via second control valve 320 and passage 236 and 235, for the fluid of the differential cylinder 100.
[0034] For a force-building movement upwards, the hydro-machine 50 moves the hydraulic fluid from its piston-chamber-side port to its rod-chamber-side port, i.e. downwards in this drawing. The first control valve 310 is in state opened and second control valve 320 is in state closed. Consequently, a first part of the hydraulic fluid is piped through the fluid connection 125 from the piston chamber 120 of the first cylinder 100 to the hydro-machine 50 and the fluid connection 135 from the hydro-machine 50 to the rod chamber 130, and a second part of the hydraulic fluid is piped through the fluid connection 237, 235 from the rod-chamber-side port of the hydro-machine 50 to the rod chamber 230 of the second cylinder 200, via control valve 310 and passage 237 and 235. By this, the piston area of both rod chamber 130 of the first cylinder 100 and rod chamber 230 of the second cylinder 200 forces mass 500 to go up.
[0035] When switching between the rapid movement upwards and the force-building movement upwards, a transition phase occurs, in which the cylinders are not intended to move, but the fluid connections need to be switched-over. In this transition phase, both the first control valve 310 and the second control valve 320 are in state closed. In this phase, there is still higher pressure in piston chamber 120 of the first cylinder 100, possibly caused by inertia of the moving components. In the system of
[0036] The movements downwards use the same fluid connections and valves as pointed out above, but the hydraulic fluid flows into the opposite direction.
[0037] The relief valves 480 and 450 have an outlet pressure between 5 bar and 50 bar, preferably between 15 bar and 30 bar. This proved to be beneficial for the presses used in systems used for hydraulic presses. In some embodiments, it turned out to be useful if the relief valves 480 and 450 can change their outlet pressure. This can be achieved by using a proportional valve, which can be controlled by electronic devices.
[0038]
[0039] The movements are implemented similarly to the movements pointed out for the embodiment of
[0040] In this embodiment, for a force-building movement upwards, the hydro-machine 50 moves the hydraulic fluid from its rod-chamber-side port to its piston-chamber-side port, i.e. downwards in this drawing. The first control valve 310 is in state opened and second control valve 320 is in state closed. Hence, a first part of the hydraulic fluid is piped from the rod chamber 130 of the first cylinder 100 and a second part of the hydraulic fluid is piped from rod chamber 230 of the second cylinder 200 to the hydro-machine 50. Thus, the hydraulic fluid is piped from hydro-machine 50 to the piston chamber 120 of the first cylinder 100.
[0041] The mechanism of the invention, as shown for instance in the embodiments of
LIST OF REFERENCE SIGNS
[0042] 10 hydraulic drive [0043] 50 pump [0044] 60 electric motor [0045] 100 first cylinder [0046] 110 piston, first cylinder [0047] 120 piston chamber, first cylinder [0048] 125, 135 passageways [0049] 130 rod chamber, first cylinder [0050] 132 plunger rod, first cylinder [0051] 200 second cylinder/reservoir [0052] 210 piston, second cylinder [0053] 230 rod chamber, second cylinder [0054] 232 plunger rod, second cylinder [0055] 235, 236, 237 passageways [0056] 250 piston chamber, second cylinder [0057] 260 filter [0058] 270 open tank [0059] 310, 320 2-port/2-way control valve [0060] 400 reservoir [0061] 420, 430, 440 check valve [0062] 450, 470, 480 relief valve [0063] 500 mass