Pressure supply device
11614102 ยท 2023-03-28
Assignee
Inventors
Cpc classification
F15B2211/20576
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B2211/20538
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B2211/7142
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60T13/168
PERFORMING OPERATIONS; TRANSPORTING
F15B2211/41509
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B2211/4053
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60T2260/08
PERFORMING OPERATIONS; TRANSPORTING
F15B2211/20546
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B2211/781
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B11/17
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B11/162
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60T13/58
PERFORMING OPERATIONS; TRANSPORTING
International classification
F15B11/17
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60T13/16
PERFORMING OPERATIONS; TRANSPORTING
B60T13/58
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A pressure supply device for prioritised volume flow splitting, in particular in mobile working machines, includes at least one adjusting pump (2) controllable by an LS signal as main pump, a constant-displacement pump (4) as an auxiliary pump, and two pressure balances. A system is supplied primarily, in particular in the form of steering hydraulics (PL), which outputs an LS signal. A system is supplied secondarily, which outputs a further LS signal, in particular in the form of working hydraulics (PA). A further system is supplied hydraulically, in particular in the form of brake hydraulics (PB). One pressure balance (DW1) is used to supply the system (PL) to be supplied primarily and/or the further hydraulic system (PB), the other pressure balance (DW2) is used to supply the system (PL) to be supplied primarily and/or the system (PA) to be supplied secondarily, The respective pressure balance (DW1, DW2) can be activated by an LS signal in such a way that the constant-displacement pump (4) is also used to supply the system (PA) to be supplied secondarily.
Claims
1. A pressure supply device for prioritized volume flow distribution, the pressure supply device comprising: a variable displacement pump being a main pump controlled by LS signals and having an outlet; a fixed displacement pump being an auxiliary pump; first and second pressure maintenance components; primary and secondary load ports; and a system of fluid supply lines connecting the variable displacement pump, the fixed displacement pump, the first and second pressure maintenance components and the primary and secondary load ports in fluid communication such that the first maintenance pressure component supplies fluid pressure to at least one of the primary load port or the secondary load port, such that the second maintenance pressure component supplies fluid pressure to at least one of the primary load port or the secondary load port, and such that the first and second pressure maintenance components are controlled by first and second LS signals, respectively, with the fixed displacement pump supplying fluid pressure to the secondary load port, the outlet of the variable displacement pump being directly connected in fluid communication to the secondary load port only via a pressure input and one of the fluid supply lines.
2. A pressure supply device according to claim 1 wherein the variable displacement pump directly supplies hydraulic fluid pressure to the secondary load port at a preset pressure; and a shuttle valve receives and compares respective LS signals of the primary and secondary load ports and transmits a higher pressure of the respective LS signals to the variable displacement pump to control pressure settings of the variable displacement pump, the shuttle valve being in fluid communication with the variable displacement pump.
3. A pressure supply device according to claim 2 wherein an outlet of the fixed displacement pump is connected in fluid communication to an input of the first pressure maintenance component, a spring-loaded first control side of the first pressure maintenance component being pressurized by at least one of pressure on an output side of the shuttle valve or an LS pressure branched off from the shuttle valve from the secondary load port.
4. A pressure supply device according to claim 3 wherein a spring-loaded first control side of the second pressure maintenance component is pressurized by an LS pressure branched off upstream of the shuttle valve and transmitting fluid pressure of the primary load port.
5. A pressure supply device according to claim 2 wherein a spring-loaded first control side of the second pressure maintenance component is pressurized by an LS pressure branched off upstream of the shuttle valve and transmitting fluid pressure of the primary load port.
6. A pressure supply device according to claim 4 wherein each of the first and second pressure maintenance components has a second control side opposite the first control side thereof, the second control side of the first pressure maintenance component being pressurized by fluid pressure at the secondary load port, the second control side of the second pressure maintenance component being pressurized by fluid pressure at the primary load port.
7. A pressure supply device according to claim 1 wherein a check valve is in a connecting line of the fluid supply lines connected in fluid communication to and between first and second outputs of the second pressure maintenance component and opens in a direction of the primary load port, a first branch of the connecting line being connected in fluid communication to the primary load port and a second branch of the connecting line being connected in fluid communication to the secondary load port.
8. A pressure supply device according to claim 1 wherein a check valve is in a connecting line of the fluid supply lines connected in fluid communication to and between an output of the second pressure maintenance component and the secondary load port and closes in a direction of the output of the second pressure maintenance component, an LS signal pressurizing control side of the first pressure maintenance component being connected in fluid communication by a connecting line of the fluid supply lines to the secondary load port at a location between the check valve and a feed point of the variable displacement pump.
9. A pressure supply device according to claim 1 wherein a check valve is connected in fluid communication to and between inputs of the first and second pressure maintenance components and opens in a direction of the second pressure maintenance component.
10. A pressure supply device according to claim 1 wherein a check valve is connected in fluid communication to and between an output of the first pressure maintenance component an input of second pressure maintenance component and opens in a direction of the second pressure maintenance component.
11. A pressure supply device according to claim 1 wherein a non-return valve is connected in fluid communication to and between an input of the second pressure maintenance component and the primary load port, is connected in fluid communication to a control line connected in fluid communication to a control side of the second pressure maintenance component and opens in a direction of the primary load port and the control line.
12. A pressure supply device according to claim 1 wherein a check valve is in one of the fluid supply lines that is connected in fluid communication with the outlet of the variable displacement pump and an input of the second pressure maintenance component and opens in a direction of the second pressure maintenance component.
13. A pressure supply device according to claim 1 wherein each of the first and second pressure maintenance components is a 2-port/2-way valve.
14. A pressure supply device according to claim 1 wherein each of the first and second pressure maintenance components is a 3-port/2-way valve.
15. A pressure supply device according to claim 1 wherein one of the first and second pressure maintenance components is a 2-port/2-way valve and the other of the first and second pressure maintenance components is a 3-port/2-way valve.
16. A pressure supply device according to claim 1 wherein the primary load port is connected to a hydraulic steering of a mobile machine; the secondary load port is connected to power hydraulics of a mobile machine; and a third load port of the system is connected to a hydraulic brake of a mobile machine.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Referring to the drawings that form a part of this disclosure:
(2)
(3)
DETAILED DESCRIPTION OF THE INVENTION
(4) In the figures, a main pump 2 is designed as a variable displacement pump, and a fixed displacement pump 4 is used as an auxiliary pump is denoted by 4. Both pumps 2, 4 are fed from a storage tank 6. The output of the variable displacement pump 2 is directly connected to a secondary load port PA via a pressure input P and a supply line 8. Secondary load port PA is routed to a system to be secondarily supplied, such as power hydraulics A. In all exemplary embodiments the output of the fixed displacement pump 4 is connected to an input a of a first pressure maintenance component DW1 via a first pressure input P2. In the exemplary embodiment of
(5) In
(6) Based on the circuit of
(7) The variable displacement pump 2 receives the highest load pressure reported in the system from the shuttle valve WV. The fixed displacement pump 4 is used as an additional supply to ensure a supply of the prioritized function (such as the steering system L) and the OC function (in this case trailer brake) in case of failure of the variable displacement pump 2. Additional fixed displacement pumps may be provided as add-ons, each of which have a further pressure maintenance component (such as the pressure maintenance component DW1) to feed oil into the system if there is an additional volume flow demand of the overall system. The spring force of the pressure maintenance component springs 10 and 16 is lower than the control pressure difference of the variable displacement pump 2. If there is no under-supply of the loads at the load ports PL and PA, wherein the LS pressure of the respective loads is lower than the pressure effective at the load port by at least the control pressure difference, then the pressure maintenance component DW1 is switched against the force of the spring 10. Accordingly, there is no volume flow at the second pressure maintenance component DW2 to be divided. If necessary, any backflow of oil can be prevented by check valves at the load ports PL and PA. The load to be secondarily supplied at the load port PA is directly supplied via the supply line 8 of the variable displacement pump 2, and the load to be primarily supplied at the primary load port PL is supplied by the supply line 8 via the check valve RV3.
(8) If there is an under-supply, wherein the working pressure at at least one of the loads is lower than the LS pressure feedback by the individual load plus the regulating pressure difference of the pump 2, then the balance of forces at the pressure maintenance component DW1 changes. In this way, the volume flow of the fixed displacement pump 4 is partially or completely transferred in the direction of the second pressure maintenance component DW2, and accordingly, the volume flow to supply the further system to be supplied is minimized. In all the exemplary embodiments shown, this is the volume flow which is routed from the output b of the first pressure maintenance component DW1 via an OC supply line 26 to the third load port PB, to which, for example, a trailer brake is connected as an OC load.
(9) The pressure maintenance component DW2 regulates the volume flow additionally provided by the fixed displacement pump 4 via the pressure maintenance component DW1, which is provided for the prioritized load (steering system at primary load port PL). Before an under-supply occurs at the prioritized load, the pressure maintenance component DW2 moves in the direction of the spring force and increases the volume flow flowing to the prioritized load. The check valve RV3 prevents the oil from flowing from the prioritized load to the power hydraulics at the secondary load port PA. If the volume flow of the fixed displacement pump 4 is at least as great as the maximum volume flow at the prioritized load, no under-supply can occur. If the volume flow at the prioritized load is smaller than the rated volume flow of the fixed displacement pump 4, then part of the volume flow can also be supplied to the power hydraulics via the pressure maintenance components DW1 and DW2.
(10) The exemplary embodiment of
(11) If there is an under-supply at the LS loads, i.e. the working pressure at at least one of the load ports PL, PA is lower than the LS pressure feedback by the individual load plus the regulating pressure difference of the pump 2, then the balance of forces changes at the pressure maintenance component DW1. The maximum LS pressure fed back via the shuttle valve WV plus the pressure equivalent force of the spring 10 are stronger than the pressure at the prioritized primary load port PL, therefore, the pressure maintenance component DW1 is switched in the direction of the spring force. In this way, the volume flow of the fixed displacement pump 4 is partially or completely transferred in the direction of the check valve RV1, and accordingly, the volume flow to supply the OC load connected at the output of third load port PB is minimized. The pressure maintenance component DW2 regulates the volume flow additionally provided by the fixed displacement pump 4 via the check valve RV1, which is provided for the prioritized load (via primary load port PL). Before an under-supply occurs at the prioritized load, the pressure maintenance component DW1 moves in the direction of the spring force and increases the volume flow flowing to the prioritized load via the check valve RV2.
(12) In the exemplary embodiment of
(13) In the example of
(14) In the variant of
(15) The circuit of
(16) While various embodiments have 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 claims.