Hydraulic circuit with controlled recirculation circuit
10920798 · 2021-02-16
Assignee
Inventors
Cpc classification
F15B13/027
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B11/15
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B1/26
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01D25/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2260/602
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F15B11/15
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B13/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The invention relates to a hydraulic circuit (10) for an aircraft turboprop comprising a hydraulic fluid tank (16), a pump (14), a component (12) that is supplied with fluid pressurised by the pump (14) and that is selectively put into operation, and a fluid recirculation circuit (20) between the pump discharge (14) and the tank (16) characterised in that it comprises a valve (22) located in the recirculation circuit (20), that is capable of closing the recirculation circuit (20) when the component (12) is not in operation and is capable of opening the recirculation circuit (20) when the component is in operation.
Claims
1. A hydraulic circuit for an aircraft turboprop comprising a hydraulic fluid tank, a pump, a component that is supplied with fluid pressurized by the pump and that is selectively put into operation, and a fluid recirculation circuit between a discharge of the pump and the tank, the hydraulic circuit comprising a valve located in the recirculation circuit, that only opens the recirculation circuit when the component is not in operation and only closes the recirculation circuit when the component is in operation, the hydraulic circuit comprising a control device of the valve located in a supply pipe of the component, connecting the component to the pump, the control device is a controlled check valve that closes off the supply pipe when the component is not in operation, to increase a pressure in a segment of the supply pipe upstream from the check valve and that does not close off the supply pipe when the component is in operation, and the component is a turboprop propeller pitch actuation system.
2. The hydraulic circuit according to claim 1, wherein the valve changes state as a function of the fluid pressure in said supply pipe.
3. The hydraulic circuit according to claim 2, wherein the valve closes the recirculation circuit when a value of the pressure in the supply pipe is equal to a low value and the valve does not close the recirculation circuit when the value of the pressure in the supply pipe is greater than or equal to a high value.
4. The hydraulic circuit according to claim 3, wherein the control device of the valve that is located in said supply pipe increases the pressure in the segment of said supply pipe when the component is not in operation.
5. The hydraulic circuit according to claim 1, wherein the recirculation circuit extends from a portion of the segment of the supply pipe, located between the check valve and the pump, to the tank.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Other characteristics and advantages of the invention will become clear after reading the following detailed description, that will be better understood by referring to the appended figures among which:
(2)
(3)
DETAILED PRESENTATION OF PARTICULAR EMBODIMENTS
(4) The figures show a hydraulic circuit 10 that is installed on an open rotor type of aircraft turboprop.
(5) The hydraulic circuit 10 comprises a component 12 that is a system that actuates the pitch of the turboprop propellers. In the following description, the term component is used to designate the propeller pitch actuation system.
(6) The hydraulic circuit 10 also comprises a supply pump 14 for the component 12 and a tank 16 in which the fluid is stored and towards which the fluid that supplied the component 12 is returned. A supply pipe 18 connects the discharge from the pump 14 to the component 12.
(7) Preferably, the pump 14 is an axial pistons type pump with variable self-regulating capacity, comprising a movable plate. This type of pump is capable of maintaining constant pressure on the discharge side of the pump, while satisfying flow requirements of the component 12 by varying the position of the movable plate.
(8) When the turboprop is in operation, the pump 14 operates continuously, although the component 12 only operates occasionally.
(9) A minimum fluid flow is maintained at the discharge from the pump 14 to cool and lubricate the pump 14 even when the component 12 is not in operation, in other words when the orientation of the blades does not have to be modified.
(10) The hydraulic circuit 10 comprises a recirculation circuit 20 for this purpose that connects the pump outlet to the tank 16 and through which fluid flows at this minimum flow rate.
(11) A recirculation valve 22 is placed across the recirculation circuit 20 so that the recirculation circuit 20 does not reduce the supply flow rate to the component 12.
(12) This valve 22 is designed to close off the recirculation circuit 20 when the component 12 is put into operation, so that the entire fluid flow from the pump 14 is supplied to the component 12. The valve 22 is also designed to open the recirculation circuit 20, in other words so that fluid can circulate in the recirculation circuit 20 when the component 12 is not in operation.
(13) Thus, regardless of the operating conditions of the component 12, there is also at least a minimum flow that passes through the pump 14, thus cooling and lubricating the pump.
(14) In this case, the state change of the valve 22 takes place as a function of the fluid pressure in the supply pipe 18.
(15) In particular, the valve 22 changes to the closed state of the recirculation circuit 20 when the value of the pressure in the supply pipe 18 is equal to a low value and the valve 22 changes to the open state of the recirculation circuit 20 when the value of the pressure in the supply pipe 18 becomes greater than a high value.
(16) The hydraulic circuit 10 comprises a check valve 24 located in the supply pipe 18, to cause a change of pressure in the supply pipe 18. This check valve 24 is a controlled type of check valve and is open when the component 12 is put into operation and is closed when the component 12 is not in operation.
(17) The result is that the check valve 24 closes when the fluid pressure increases in an upstream segment 26 of the supply pipe 18 located between the check valve 24 and the pump 14, to become higher than the fluid pressure in the same upstream segment 26 when the check valve 24 is open.
(18) The recirculation circuit 20 communicates directly with the upstream segment 26 of the supply pipe 18, such that the fluid pressure in an upstream segment 28 of the recirculation circuit 20 is equal to the fluid pressure in the upstream segment 26 of the supply pipe.
(19) A branch connection 30 is made in the upstream segment 28 of the recirculation circuit 20, to control the valve 22 as a function of the fluid pressure in the upstream segment 28 of the recirculation circuit 20 that, as described above, is the fluid pressure in the upstream segment 26 of the supply pipe 18.
(20) As described above, when the fluid pressure increases in the upstream segment 26 of the supply pipe, it becomes greater than or equal to the high value that triggers a state change of the valve 22 to its position in which the recirculation circuit 20 is open.
(21) To facilitate its state change, the valve 22 also comprises an elastic device 32 to force the elastic return of the valve 22 to its closed position and a second branch connection 34 connecting the valve 22 to a downstream segment 36 of the supply pipe 18.
(22) When the check valve 24 is closed, the difference between the fluid pressure in the upstream segment 26 of the supply pipe 18 and in the downstream segment 36 of the supply pipe 18 facilitates the state change of the valve from its position in which the recirculation circuit 20 is open, despite the action of the elastic device 32.
(23) The following description describes operation of the hydraulic circuit 10, with reference to the figures.
(24) The hydraulic circuit 10 shown in
(25) In this case, the check valve 24 is controlled to be open. Therefore the supply pipe 18 us not closed, and therefore the fluid pressure in the upstream segment 26 of the supply pipe 18 is equal to the low pressure value.
(26) Therefore the valve 22 is in the state in which the recirculation circuit 20 is closed.
(27) Consequently, the entire fluid from the pump 14 is directed to the component 12.
(28) When the component 12 is not in operation, the check valve 24 is controlled to be closed, as can be seen in
(29) The fluid pressure in the upstream segment 26 then increases to reach the high value defined above.
(30) The result is that the valve changes state to open the recirculation circuit 20.
(31) Consequently, the entire fluid from the pump 14 is returned to the tank 16 through the recirculation circuit.
(32) Thus, a non-zero fluid flow always passes through the pump 14 whenever the hydraulic circuit 10 is in operation, and when the component 12 is put into operation, the entire fluid flow output from the pump 14 is used for operation of the component, such that the pump 14 does not need to be overdesigned.