Pressure-balance valve for balancing fluid feed to actuator cylinders of a servo-control for controlling rotor blades of a rotorcraft
US-9670940-B2 · Jun 6, 2017 · US
US11034439B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-11034439-B2 |
| Application number | US-201715630332-A |
| Country | US |
| Kind code | B2 |
| Filing date | Jun 22, 2017 |
| Priority date | Jun 29, 2016 |
| Publication date | Jun 15, 2021 |
| Grant date | Jun 15, 2021 |
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The present invention relates to A device for supplying hydraulic power, the device comprising two hydraulic circuits jointly feeding multi-cylinder hydraulic power transmission means in which each cylinder is connected to a single one of the hydraulic circuits independently of the others. Each hydraulic circuit includes a hydraulic pressure and flow rate generator and a pressure control module controlling said hydraulic pressure and flow rate generator so as to regulate the pressure of said fluid flowing in said hydraulic circuit as a function of said pressure of said fluid flowing in each hydraulic circuit and possibly as a function of one or more parameters external to said device.
Opening claim text (preview).
What is claimed is: 1. A hydraulic circuit for feeding at least one hydraulic receiver, the hydraulic circuit comprising: a fluid; a hydraulic pressure and flow rate generator capable of generating hydraulic pressure and flow rate in the fluid; pipes connecting the hydraulic pressure and flow rate generator with the hydraulic receiver; and a pressure control module controlling the hydraulic pressure and flow rate generator to regulate the pressure of the fluid flowing in the hydraulic circuit as a function of the pressure of the fluid flowing in the hydraulic circuit and of one or more parameters external to the hydraulic circuit so that a pressure of the fluid flowing in the hydraulic circuit is equal to a setpoint pressure; wherein the pressure control module comprises a first actuator that is hydraulic and controlled at least in part as a function of the pressure of the fluid flowing in the hydraulic circuit, at least one second actuator that is controlled by one or more parameters external to the hydraulic circuit, and calibration means, wherein each second actuator includes braking and damping means for stabilizing the operation of the pressure control mode. 2. The hydraulic circuit according to claim 1 , wherein the hydraulic first actuator has a first movable element on which the pressure of the fluid flowing in the hydraulic circuit is applied at least in part in order to generate a first force F 1 balanced by a second force F 2 generated by the calibration means, each second actuator enabling the setpoint pressure to be modified. 3. The hydraulic circuit according to claim 1 , wherein the at least one second actuator modifies the calibration setting of the calibration means. 4. The hydraulic circuit according to claim 1 , wherein the at least one second actuator generates a third force F 3 and drives movement of the first movable element of the first actuator. 5. The hydraulic circuit according to claim 1 , wherein the at least one second actuator is a hydraulic actuator fed by a second fluid external to the hydraulic circuit, the at least one second actuator being connected to a hydraulic system external to the hydraulic circuit by a pipe of the hydraulic circuit in which there flows the fluid external to the hydraulic circuit. 6. The hydraulic circuit according to claim 1 , wherein the at least one second actuator is an electric actuator controlled by a control signal corresponding to the one or more parameters external to the hydraulic circuit, the hydraulic circuit having an electrical connection connecting the at least one second actuator to a control device external to the hydraulic circuit and in which the control signal passes. 7. The hydraulic circuit according to claim 1 , wherein the at least one second actuator is movement controlled. 8. The hydraulic circuit according to claim 1 , wherein the at least one second actuator is force controlled. 9. The hydraulic circuit according to claim 1 , wherein the calibration means comprise resilient means. 10. A hydraulic power supply device comprising at least one hydraulic receiver and at least two hydraulic circuits, the hydraulic circuits jointly feeding the hydraulic receiver with fluid under pressure, wherein each hydraulic circuit is a circuit according to claim 1 . 11. The device according to claim 10 , wherein the hydraulic receiver includes multi-cylinder hydraulic power transmission means comprising a plurality of cylinders, each cylinder of the hydraulic power transmission means being connected to a single hydraulic circuit independently of every other hydraulic circuit, the pressure of the fluid flowing in each hydraulic circuit acting on a respective one of the cylinders, the hydraulic power transmission means being capable of supplying an operating force as a function of the pressures of the hydraulic circuits and equal to a setpoint force Fc, the setpoint pressure of each hydraulic circuit being defined as a function of the setpoint force Fc. 12. The device according to claim 10 , wherein the hydraulic circuits are segregated both hydraulically and mechanically, firstly so as to prevent any exchange of fluid between the hydraulic circuits, and secondly so that the hydraulic circuits are structurally distinct. 13. The device according to claim 10 , wherein a second hydraulic actuator of a first hydraulic circuit includes braking and damping means, and the braking and damping means characterize a pressure threshold applied to a second pressure of a second fluid flowing in a second hydraulic circuit and feeding the second actuator so as limit the effects of the second actuator on the modification of the setpoint pressure of the first fluid flowing in the first hydraulic circuit. 14. The hydraulic circuit according to claim 1 , wherein the hydraulic first actuator has a first movable element on which the pressure of the fluid flowing in the hydraulic circuit is applied at least in part in order to generate a first force F 1 balanced by a second force F 2 generated by the calibration means, each second actuator enabling the setpoint pressure to be modified. 15. The hydraulic circuit according to claim 1 , wherein the at least one second actuator modifies the calibration setting of the calibration means. 16. The hydraulic circuit according to claim 1 , wherein the at least one second actuator generates a third force F 3 and drives movement of the first movable element of the first actuator. 17. The hydraulic circuit according to claim 1 , wherein the one or more parameters external to the hydraulic circuit is selected from a list comprising: a second pressure of a second fluid flowing in another hydraulic circuit; an operating characteristic of a hydraulic receiver fed by the hydraulic circuit; and an order to modify the setpoint pressure. 18. A hydraulic power supply device comprising at least one hydraulic receiver and at least two hydraulic circuits, the hydraulic circuits jointly feeding the hydraulic receiver with fluid under pressure, the hydraulic receiver including multi-cylinder hydraulic power transmission means, wherein the hydraulic power transmission means comprise control means for controlling a movable airfoil element of an aircraft, and a parameter external to a first hydraulic circuit is selected from the list comprising: a second pressure of a second fluid flowing in a second hydraulic circuit of the hydraulic power supply device; a type of mission being undertaken by the aircraft; a region of a flight envelope of the aircraft; an action of a pilot of the aircraft on a flight control of the aircraft; a control order from the pilot seeking to modify the setpoint pressure of the first fluid flowing in the first hydraulic circuit; and a parameter external to the aircraft and likely to vary, and wherein each hydraulic circuit comprises: a fluid; a hydraulic pressure and flow rate generator for generating hydraulic pressure and flow rate in the fluid; pipes for connecting the hydraulic pressure and flow rate generator with the hydraulic receiver; and a pressure control module controlling the hydraulic pressure and flow rate generator to regulate the pressure of the fluid flowing in the hydraulic circuit as a function of the pressure of the fluid flowing in the hydraulic circuit and of one or more parameters external to the hydraulic circuit so that a pressure of the fluid flowing in the hydraulic circuit is equal to a setpoint pressure; wherein the pressure control module comprises a first actuator that is hydraulic and controlled at least in part as a fun
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