Aircraft throttle control device including a cam coupling
09725182 ยท 2017-08-08
Assignee
Inventors
- Hafid Elabellaoui (Paris, FR)
- Jean-Eric Besold (Palaiseau, FR)
- Sebastien Pautard (Paris, FR)
- Thierry Cartry (Paris, FR)
- David Engler (Paris, FR)
- Etienne Merlet (Paris, FR)
Cpc classification
International classification
Abstract
An aeroengine control device including a mount and having pivotally mounted thereon a code wheel together with a main lever and a secondary lever, both for turning the code wheel. Each lever is movable between a rest position and a maximum actuation position. The secondary lever is mounted to pivot on the main lever. Cam paths are mounted on the code wheel and on the mount in such a manner that the main lever can move the code wheel when the main lever is moved while the secondary lever is in the rest position. The secondary lever can move the code wheel when the secondary lever is moved while the main lever is in the rest position, with movement of either lever being prevented when the other lever is clearly away from its rest position.
Claims
1. An aeroengine control device comprising: a mount, having pivotally mounted thereon a code wheel together with a main lever and a secondary lever, both for turning the code wheel, each lever being movable between a rest position and a maximum actuation position, the secondary lever being mounted to pivot on the main lever, and sensors for sensing the angular position of the code wheel being mounted on the mount in register with an outline of the code wheel, wherein a first cam path is formed on a part secured to the code wheel and a second cam path is formed on a part secured to the mount, the two cam paths having respective facing portions in which there is received a finger that is mounted on the main lever to slide parallel to the code wheel, with a connecting rod permanently connecting the finger to the secondary lever, and wherein the cam paths are arranged in such a manner that the main lever can move the code wheel when the main lever is moved while the secondary lever is in its rest position, and the secondary lever can move the code wheel when the secondary lever is moved while the main lever is in its rest position, with movement of either lever being prevented when the other lever is away from its rest position.
2. The device according to claim 1, wherein the main lever pivots about the axis of the code wheel and the second cam path includes a first segment that is circularly arcuate about the axis of the code wheel, being of a radius that is determined to allow the main lever to pivot while keeping the secondary lever in the rest position, and a rectilinear second segment extending in a direction that is adapted to allow the secondary lever to move while keeping the main lever in the rest position.
3. The device according to claim 2, wherein the second cam path includes a ramp between the first segment and the second segment, which ramp defines a transition zone in the vicinity of the rest position by acting on the finger in such a manner that when a first one of the levers is in the transition zone, moving the other lever towards its maximum actuation position causes the first lever to return to its rest position.
4. The device according to claim 2, wherein the first cam path has a first segment arranged to cause the code wheel to pivot when the finger is driven by the secondary lever being moved between its two positions, the first segment having a shape selected from the following group: rectilinear, forming an angle relative to a radial direction of the code wheel; and curved, with its concave side facing towards the pivot axis of the code wheel.
5. The device according to claim 4, wherein the first cam path has a second segment extending radially from a vicinity of the periphery of the code wheel to the first segment.
6. The device according to claim 1, wherein the finger slides in a radial direction of the code wheel.
7. The device according to claim 1, wherein the finger slides in a direction forming an angle relative to the radial direction of the code wheel.
8. The device according to claim 1, wherein the main lever has two side plates between which the secondary lever and the connecting rod are mounted.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Other characteristics and advantages of the invention appear on reading the following description of particular, non-limiting embodiments of the invention.
(2) Reference is made to the accompanying drawings, in which:
(3)
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
(12) The throttle control device described herein is arranged to control both the fuel flow rate and a thrust reversal device of an aeroengine.
(13) With reference to
(14) A main lever 4 is mounted on the mount 1 to pivot about the same axis as the code wheel 2. The main lever 4 has a radially offset structure with a secondary lever 5 mounted thereon to pivot about an axis parallel to the axis of rotation of the code wheel 2 and of the main lever 4. Each of the levers 4 and 5 pivots between a rest position (shown in
(15) The secondary lever 5 pivots on the radially offset structure of the main lever 4 and is connected directly and permanently by a connecting rod 6 to a finger 3 mounted on the main lever 4 in an oblong slot 8 therein so as to slide along a radial direction of the code wheel 2. In this example, the finger 3 extends on a side of the pivot axis of the code wheel 2 that is opposite from the side on which the secondary lever 5 is located.
(16) A first cam path 7 is arranged in the code wheel 2 to receive the finger 3 slidably. The cam path 7 has a curved segment 7.1 with its concave side facing towards the pivot axis of the code wheel 2 and arranged to transform the sliding of the finger into turning movement of the code wheel 2, and a rectilinear segment 7.2 extending in a radial direction of the code wheel 2 from the end of the curved segment 7.1 that is furthest from the center so as to terminate in the vicinity of the periphery of the code wheel 2.
(17) A second cam path 9 is arranged in the mount 1 to receive the finger 3 slidably. The cam path 9 comprises a circularly arcuate segment 9.1 extending in the vicinity of the periphery of the code wheel 2 but having a radius that is smaller than the radius of the code wheel 2, and a rectilinear segment 9.2 that extends in a radial direction of the code wheel 2 and that is connected to the circularly arcuate segment 9.1 by a ramp 9.3.
(18) Whatever the position of the code wheel 2 relative to the mount 1, the cam paths 7 and 9 have portions that face each other and that receive the finger 3.
(19) When the code wheel 2 is in its position common to the rest positions of both levers 4 and 5 (see
(20) From this position of the code wheel 2 that is common to the rest positions of both levers, the main lever 4 may be moved towards its maximum actuation position (
(21) From the position of the code wheel 2 that is common to the rest positions of both levers, the secondary lever 5 may be moved towards its maximum actuation position (
(22) The ramp 9.3 serves to define a transition zone: when the finger 3 is level with the ramp 9.3, then the main lever 4 and/or the secondary lever 5 is in the vicinity of its respective rest position. When either lever 4 or 5 is moved towards its maximum actuation position, the ramp 9.3 serves to bring the other lever 5 or 4 into its rest position while the movement of the first lever 4 or 5 continues (
(23) The angle of inclination and the size of the ramp 9.3 serve to determine the extent of the transition zone for each of the levers. Thus, for example: if the main lever 4 is offset through less than two degrees relative to its rest position, any movement of the secondary lever 5 away from its rest position causes the main lever 4 to return to its rest position; and if the secondary lever 5 is offset by less than fifteen degrees from its rest position, any movement of the main lever 4 away from its rest position causes the secondary lever 5 to be returned to its rest position.
(24) The curvature of the curved segment 7.1 enables the pivoting of the code wheel 2 to be adapted to the stroke of the finger 3.
(25) Elements that are identical or analogous to those described above are given the same numerical references in the description below of the second embodiment.
(26) With reference to
(27) In this embodiment, the slot 8 lies between the pivot axis of the main lever 4 and the secondary lever 5, thereby leaving the bottom of the code wheel 2 free for engaging the sensors 100 (shown in
(28) The curved segment 7.1 lies in the vicinity of the periphery of the code wheel 2. The curvature of this segment defines the pivoting performed by the code wheel 2 as a function of radial movement of the finger 3. The rectilinear segment 7.2 receives the finger 3 when the main lever 4 is used for moving the code wheel 2. The finger 3 is then in contact with one or the other of the substantially radial faces of the rectilinear segment 7.1, thereby facilitating the transmission of force from the finger 3 to the code wheel 2 when the main lever 4 is actuated (
(29) The cam path 9 has the same shape as above.
(30) The movement of the code wheel 2 under drive from the main lever 4 can be seen in
(31) In the variant of
(32) The rest positions of the levers and the actuation of the main lever 4 can be seen in
(33) In the variant of
(34) The angle serves to adjust the pivoting movement of the code wheel 2 as a function of the stroke of the secondary lever 5.
(35) Naturally, the invention is not limited to the embodiment described but covers any variant coming within the ambit of the invention as defined by the claims.
(36) In particular, the invention may be obtained by combining characteristics from the above-described embodiments and variants.
(37) The main lever may have two side plates between which the secondary lever and the connecting rod are mounted.