Device for controlling a propeller, having variable-pitch blades, of a turboprop engine
10421530 ยท 2019-09-24
Assignee
Inventors
Cpc classification
F15B21/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02T50/60
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F15B9/17
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B13/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F15B9/17
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B64C11/30
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A device for controlling a propeller, having variable-pitch blades, of a turboprop engine, has a first hydromechanical device for controlling the pitch of the blades of the propeller and a second hydromechanical device for controlling the speed of rotation of the propeller. The device includes a single electromechanical actuator with a movable actuator member mechanically connected both to the first hydromechanical device for controlling the pitch, in order to manage the pitch setpoint, and to the second hydromechanical device for controlling the speed, in order to manage the speed setpoint.
Claims
1. A device for controlling a propeller, having variable-pitch blades, of an aircraft engine, the device comprising a first piece of hydromechanical equipment configured to slave the pitch of the blades of the propeller to a pitch setpoint, and a second piece of hydromechanical equipment configured to slave the rotational speed of the propeller to a speed setpoint, wherein the device comprises a single electromechanical actuator comprising a movable actuating member mechanically connected both to said first piece of hydromechanical equipment to control the pitch setpoint, and to said second piece of hydromechanical equipment to control the speed setpoint.
2. The device according to claim 1, wherein said movable actuating member of said electromechanical actuator is configured to move within at least one first range of positions in which the electromechanical acutator actuates said first piece of hydromechanical equipment to determine a pitch setpoint, and within at least one second range of positions in which the electromechanical acutator actuates said second piece of hydromechanical equipment to determine a speed setpoint.
3. The device according to claim 2, wherein said movable actuating member is configured to maintain a constant speed setpoint on said second piece of equipment when the electromechanical acutator is within said first range of positions, and to maintain a constant pitch setpoint on said first piece of equipment when it is within said second range of positions.
4. The device according to claim 2, wherein said movable actuating member is configured to move within at least one third range of positions, referred to as a neutral range, in which configured does not exert any notable action on either of the two pieces of hydromechanical equipment.
5. The device according to claim 1, wherein said second piece of hydromechanical equipment comprises a hydraulic slide configured to hydraulically control the propeller pitch and is connected to balance weights configured to be driven mechanically at a speed proportional to that of the propeller, and a return spring of said balance weights, where said movable actuating member of said electromechanical actuator is configured to act on a stress of said return spring of the balance weights.
6. The device according to claim 1, wherein said first piece of hydromechanical equipment comprises at least one hydraulic slide that hydraulically controls the propeller pitch and is driven mechanically by a connecting link connected to a copy of the pitch of the propeller, wherein said movable actuating member of said electromechanical actuator is configured to actuate said hydraulic slide.
7. The device according to claim 1, wherein said movable actuating member mechanically connected to said first and second pieces of hydromechanical equipment comprises at least one cam having a profile that determines an actuating law of the first and second pieces of hydromechanical equipment depending on an angular position of each cam.
8. The device according to claim 1, wherein said electromechanical actuator is selected from the group consisting of a stepper motor, a direct current motor and a single-track or redundant torque motor.
9. An aircraft engine equipped with variable-pitch blades, the aircraft engine comprising the device according to claim 1.
Description
5. LIST OF FIGURES
(1) Other aims, features and advantages of the invention will become apparent from reading the following description, which is provided purely on a non-limiting basis and relates to the accompanying figures, in which:
(2)
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6. DETAILED DESCRIPTION OF AN EMBODIMENT OF THE INVENTION
(7) In the drawings, the scales and proportions are not strictly respected for the sake of illustration and clarity. Throughout the following description with reference to the drawings, identical, similar or analogous elements are denoted by the same reference signs.
(8) According to the invention, a device for controlling a propeller, having variable-pitch blades, of a turboprop engine comprises a first piece of hydromechanical equipment for slaving the pitch of the blades of the propeller, referred to hereinafter by the expression first piece of equipment and provided with reference sign 10 in the drawings. The control device also comprises a second piece of hydromechanical equipment for slaving the rotational speed of the propeller, referred to hereinafter by the expression second piece of equipment and provided with reference sign 20 in the drawings.
(9) The first and second pieces of equipment are not described in detail because the invention essentially lies in the control means for these pieces of equipment and not in the pieces of equipment themselves, which are moreover known by a person skilled in the art. Moreover, these first and second pieces of equipment may use shared means, such as slides, pistons, balance weights, etc., even if they are shown in the drawings as two separate pieces of equipment for the sake of illustration and clarity.
(10) The first piece of equipment 10 and the second piece of equipment 20 are designed to act hydromechanically on the pitch of the propellers, and to act indirectly on the speed of the propeller.
(11) A device according to the invention further comprises an electromechanical actuator 30 comprising a movable actuating member 31 mechanically connected both to the first piece of equipment 10 and to the second piece of equipment 20.
(12) According to the embodiment shown in
(13) According to the embodiment in
(14) According to another embodiment, as shown in
(15) The configurations in
(16) In
(17) It is also noted that the configuration in
(18)
(19) According to another embodiment as shown in
(20) When the cam is pivoted about the shaft 37 in order to bring the sector 41 in the shape of an arc of a circle into abutment with a piston of the first or the second piece of equipment, this piece of equipment is kept in a constant position. Indeed, while the cam keeps the sector 41 in contact with the piston, the distance separating the shaft 37 from the end of the profile facing the piston remains constant. The compression of the piston facing the cam therefore remains constant. In other words, while the piston remains in contact with this sector in the shape of an arc of a circle, the position thereof does not change. Therefore, this is indeed a constant sector for the command. This sector may have an angular range that is greater than the angle formed by the two pistons (here 90) so as to generate an angular range within which the movement of the actuator has no effect on either the position setpoint or the pitch setpoint. This is the above-mentioned neutral zone.
(21) By contrast, when the cam is pivoted about the shaft 37 in order to cause a control sector 42, 43 to face a piston and to be in contact therewith, any rotation of the cam results in a translational movement of this facing piston. Indeed, the distance separating the shaft 37 from the end of the profile facing a piston changes, given that the profile is no longer circular.
(22) In
(23) In
(24) In
(25) According to an advantageous variant of this embodiment, the electromechanical actuator drives two separate cams, each cam being designed to act on just one setpoint.
(26) For example, and as shown in
(27) The invention is not restricted only to the described embodiments. In particular, according to the embodiment in