The present invention relates to the field of hydraulic actuators, in particular actuators having a stationary piston, the member controlled by the actuator being connected to the cylinder, which is translatably movable; said invention also relates to the arrangement of the ducts for supplying the chambers of the actuators with hydraulic fluid. The invention relates in particular to the use of such actuators in the control of the pitch of the blades of a propeller in an aircraft propulsion engine, such as an engine having unducted propellers.
For the purpose of improving the performance and the specific consumption of the propulsion engines of the aircraft, a new architecture is proposed which has a pair of contra-rotating, unducted propellers that are arranged either upstream or downstream of a gas turbine turboshaft engine. The engines are also referred to as “open rotor” engines. For example, the engine described in the patent application FR 2941493 comprises a conventional turboshaft engine gas generator, one or more turbine stages of which drive an unducted fan which extends outside the engine. In a turboshaft engine having a pair of downstream propellers, the rotors can also be mounted on a structural element downstream of the housing and driven by a free turbine by means of a gearbox, for example an epicyclic gearbox.
As in the case of conventional turboprop engines, the propeller blades of the open-rotor engines have a variable pitch, i.e. the pitch of these propellers can be modified during flight in order to change the thrust of the engine and optimise the output of the propeller in accordance with the speed of the aircraft. A number of devices have been conceived in order to vary the pitch of the blades, which devices generally comprise rotating the blade about the main axis thereof by means of conical pinions located below the root of the blade. Said pinions engage with conical pinions of a control system.
During the flight phases, the pitch of a propeller changes between two limit boundaries which correspond to a low-pitch position at low travel speeds, for example of approximately 30° relative to the plane of rotation of the propellers, and to a high-pitch position at high speeds, for example of approximately 65° relative to this same plane of rotation of the propellers. The blades can assume a feathered position, which corresponds to a pitch which is greater than that of the high-pitch position and is equal to approximately 90°. In this position, the drag caused by the blades is minimal. The blades can also be placed in the thrust-inverting position and can have a negative pitch angle, −30° for example.
The pitch of the blades can be controlled by means of an actuator, the movable member of which is axially translated and rotates the pivots of the blades about the respective radial axes thereof by means of a suitable linkage which is mounted on a bearing.
Each of the two rotors of the pair of propellers has its own device for driving and for controlling the pitch. For the device of the upstream rotor, some of the stresses are linked to limiting the central space because of the need to provide a passage for the auxiliary systems of the rotor located downstream.
The object of the present invention is to provide an arrangement of the device for actuating the blades to rotate about the axis thereof, which arrangement is both compact and strong.
This object is achieved with a hydraulic actuator comprising a support, a cylinder which is translatably movable relative to the support, a piston which is rigidly connected to the support inside the cylinder and delimits two chambers with the cylinder, and a device for supplying the chambers with hydraulic fluid upstream from the support. This actuator is characterised in that the supply device comprises telescopic pipes, each telescopic pipe comprising two tubular elements which slide one inside the other, a first tubular element being rigidly connected to the support at one end and the second tubular element being rigidly connected to the cylinder at at least two points which are remote from one another along a generatrix of the cylinder, one of said chambers being supplied with fluid via a first telescopic pipe on one portion of the travel of the cylinder and via a second telescopic pipe on the remaining portion of the travel of the cylinder.
The actuator of the invention has the advantage of being radially compact in that the pipes for supplying hydraulic fluid are arranged along the outer surface of the movable cylinder. It is furthermore strong and the guidance of the mutually movable parts is well controlled, in particular that of the tubular elements relative to one another. As a result, the operation thereof is not altered when there are dimensional variations resulting from thermal expansion or even when it is subjected to deformations resulting from mechanical stresses during the different flight phases.
The invention is particularly beneficial when the actuator is annular and it is necessary to free up space in the interior volume for leading through auxiliary systems intended for equipment located downstream with respect to the support of the actuator.
In accordance with another feature, the first pipe comprises a first closure means which is arranged so as to close the pipe at the end of said travel portion and the second pipe comprises a second closure means which is arranged so as to keep the pipe closed on said travel portion of the cylinder and open on said remaining travel portion of the cylinder.
Advantageously, the closure means of the first or the second pipe is formed by the first tubular element and the second tubular element of said pipe interacting, the second tubular element having a passage connecting the first tubular element to said chamber, and the first tubular element having openings which are uncovered by said passage.
According to one embodiment, the first tubular element is closed at its end and has said openings on the side, and the second tubular element has a portion having such a diameter that said lateral openings are closed and a portion having a wider diameter so as to form said passage. In particular, the second pipe is connected to said chamber by means of a tubular element which is arranged in parallel with the second pipe.
In accordance with another feature, the first tubular elements of the pipes are connected to the support by a swan-neck-shaped portion.
The actuator of the invention is used particularly advantageously in a mechanism for controlling the pitch of a variable-pitch propeller. The actuator is rigidly connected, by its support, to the stator of the propeller.
The first pipe supplies fluid to said chamber over a pitch-setting range and the second pipe supplies fluid to said chamber over a thrust-inversion range of the propeller.
In accordance with another feature, the other chamber is supplied with fluid via a third telescopic pipe.
Other features and advantages will emerge from the following description of a non-limiting embodiment of the invention with reference to the drawings, in which:
As is schematically shown in
The propellers are arranged in radial parallel planes, which are perpendicular to the axis A, and rotate by means of the turbine 6 and the gearbox 7 in opposite directions of rotation. Said propellers are mounted in rotary housings 11, 12, for example polygonal-ring housings as described in the patent application FR 12 56 323 of 2 Jul. 2012, filed by this applicant, around which the roots 14, 15 of the blades 16, 17 are mounted.
The blades of the upstream 8 and downstream 9 propellers are of variable pitch. Said blades are oriented around the radial pivot axis B thereof by means of suitable respective mechanisms 20 and 20′, in such a way as to assume an optimal angular position which is determined on the basis of the operating conditions of the turboshaft engine and the flight phases of the aircraft.
The following description relates to the system 20 for orienting the blades associated with the upstream propeller 8.
The orientation system 20, shown in
To this end, the system comprises an annular, linear-displacement hydraulic actuator 21 which has an axis A and the translatably movable body 24 of which is formed by the cylinder, the piston of the actuator remaining stationary. The translational movement of the actuator is transmitted by a transmission mechanism 23 which connects the body 24 of the actuator to the radial shafts 18 of the roots 14 of the blades 16 of the propeller 8. This mechanism comprises a bearing, the inner ring of which is rigidly connected to the body 24, and a set of connecting rods which connect the outer ring to the radial shafts, which are thus rotated about their respective axes by the translational movement of the body of the actuator.
The actuator 21 therefore comprises a cylinder which, in this embodiment, is formed of a cylindrical portion 241, an upstream cowl 243 and a downstream cowl 245. The cylinder 24 slides on the tubular portion 33 of the stationary support 30. A partition 22 is rigidly connected to this tubular portion 33 and forms two chambers C1 and C2 with the cylinder 24. C1 is the chamber upstream of the side of the collar 31 of the support.
In
In
A third pipe, referred to as a high-pitch pipe 28, is formed of a first high-pitch tubular element 281 and a second high-pitch tubular element 282. The first high-pitch tubular element 281 is rigidly connected to the collar 31, through which it is supplied with hydraulic fluid and slides inside the second high-pitch tubular element 282, which is rigidly connected to the cylinder 24 and communicates with the chamber C1, in the upstream direction.
The three first tubular elements 251, 261 and 281 are fixed by any suitable means in their respective recesses made in the collar 31. Said elements communicate with a pressurised-fluid source by means of control members which are not described here.
The three second tubular elements 252, 262 and 282 and the bypass pipe 27 are rigidly connected to the cylinder 24 and, in accordance with one feature of the invention, are in each case held on the cylinder 24 at two points on a generatrix thereof which are remote from one another. More particularly, the two points are located at their ends, in this case in region of the upstream and downstream cowls 243 and 245, respectively. Other embodiments of the installation of the second tubular elements are possible; for example the second tubular elements may be machined at least in part inside one of the elements forming the cylinder.
The advantage of the solution of the invention is to ensure, for each pipe, efficient guiding of the first tubular element when it slides inside the second tubular element. When the aircraft is in flight, the stationary support 30 and the set of parts of the structure of the engine are subjected to stresses which can alter the axial orientation of one part with respect to the other; for example the tubular portion 33 of the support 30 may bend with respect to the collar 31. Without this guiding, the relative deformations of the parts could block the movement of the cylinder relative to the stationary support.
It should be noted that the first tubular elements are connected to the collar by means of a swan-neck-shaped tube portion having two bends. This is a result of the difference in diameter between the cylinder 24 and the fluid-dispensing outlets arranged on the collar 31.
This arrangement has the advantage of enabling the differences in expansion and other deformations between the first tubular elements 251, 261 and 281 and the other parts to be absorbed locally.
The operating mode of this assembly and how the two chambers are supplied with fluid in the different flight phases of the aircraft on which the turboshaft engine is mounted, so as to ensure reliable functioning of the mechanism for controlling the pitch of the blades, will now be explained.
Increasing the volume in the downstream chamber C2 causes the cylinder 24 to be displaced to the right relative to the stationary partition 22, as shown in the drawings. This displacement corresponds, on one portion of the travel of the cylinder, to a reduction in the pitch of the blades, which during normal operation proceeds from high pitch to low pitch in flight, then to an adjustment of the low pitch on the ground between for example 65°, 30° and 0°, then, on the remaining portion of the travel of the cylinder, to the movement into the inverse position, at −30° for example, when the thrust produced by the propeller is reversed in order to support the braking on the ground upon landing.
In accordance with another feature of the invention, the solution described below ensures that the movement from the positive pitch of the blades in the thrust-inverting position cannot be achieved involuntarily or by accident.
this is the pitch position at 0° and an operating abutment. Between
Advantageously, this means for closing the low-pitch pipe is produced in a simple manner in the following way and as shown in
The first tubular element 251 is closed at its end 251′ opposite the collar 31. Said element has lateral slots 251″ in the vicinity of said collar, as is shown in
Passing this position corresponds to a movement directly to pitch inverter. This is only controlled by the second pitch-inversion pipe 262 in conjunction with the bypass pipe 27.
The inverse-pitch pipe 26 has the same structure as the first pipe, but is reversed from upstream to downstream. The second tubular element 262 has a portion 262′ having a large diameter and a portion 262″ having a small diameter. Whereas the first tubular element has its end closed while having lateral slots, the closure means is thus similar to that of the first pipe, but in reverse. During the pitch adjustment phase, the pipe is closed when the portion 262″ of small diameter of the second tubular element 262 closes the lateral slots in the first tubular element 261. The two means for closing the pipes 25 and 26 are coordinated such that during the displacement, for example towards a pitch of 0°, the closure of one corresponds to the opening of the other. It follows therefrom that when the pitch is in abutment at the 0°position, a positive action is required in order to be able to move to the inverted position, and vice versa. This positive action results in the control of the inverse pitch via the second pipe 26.
When the control moves to the inverted position, the hydraulic fluid passes through the inverse-pitch pipe 26 and then through the bypass pipe to supply the downstream chamber C2 with fluid. By means of the arrangement of the invention, the movement into the inverted position implies that the actuator has first reached the position at 0° and then receives a supply at the specific inverse pitch pressure via the second inverse-pitch pipe 26. The fluid passes through the pipe 26 via the tubular element 261 and then via the lateral slots in the element 261 towards the portion 262′ of larger diameter of the tubular element 262, to the pipe 27 via the bypass channel 263; see
The invention thus obtains a system for controlling the pitch of a propeller that is compact yet does not occupy a lot of space radially, while at the same time has a central space that is sufficient for other pipes to pass through. This system is strong because it is less sensitive in its structure to dimensional variations and to axial bending. Finally, it ensures reliable functioning.
Number | Date | Country | Kind |
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1359183 | Sep 2013 | FR | national |
Filing Document | Filing Date | Country | Kind |
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PCT/FR2014/052354 | 9/22/2014 | WO | 00 |