Incorporation of a gear train in a pinion wall in a gearbox for a turbomachine
10233998 ยท 2019-03-19
Assignee
Inventors
- Stephane Prunera-Usach (Rueil Malmaison, FR)
- Guillaume BECK (Chantilly, FR)
- Jordane Peltier (Paris, FR)
Cpc classification
F16H1/28
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02C7/32
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H57/082
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2260/40311
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H1/2854
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16H1/28
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H57/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
An aircraft drive chain including a plurality of main pinions meshing with each other, a first main pinion including a wall delimiting an inner volume, external teeth being provided on an outer surface of the wall, the external teeth meshing with at least one second main pinion, a gear system being incorporated in the inner volume, the first main pinion and the gear system being jointly configured to form a multiplier or reducer and to ensure a mechanical energy transfer between a driving member and a slave member.
Claims
1. An aircraft drive chain comprising: a first main pinion including, a barrel, a wall delimiting an inner volume, and external teeth being provided on an outer surface of the wall, the barrel and the wall being cylindrical and coaxial with a diameter of the barrel being smaller than a diameter of the wall; a second main pinion meshing with the external teeth of the first main pinion; and a gear system being incorporated into the inner volume of the first main pinion, the first main pinion and the gear system being jointly configured to form a multiplier or reducer and to ensure a mechanical energy transfer between a driving member and a slave member, wherein the gear system includes first and second planet pinions, a planet carrier member, and a shaft connected to the driving member or to the slave member, wherein sun teeth are provided on the shaft of the gear system, wherein internal teeth are provided on an inner surface of the wall of the first main pinion, wherein each of the first and second planet pinions mesh with the internal teeth and with the sun teeth, wherein the planet carrier member includes first and second panels which are parallel to each other and which support shafts on which the planet pinions are mounted, a cylindrical portion extending from the first panel, the first panel being disposed further from the barrel than the second panel, and a frustoconical portion extending in continuation of the cylindrical portion, a free end of the frustoconical portion including a flange enabling the gear system to be held in position with respect to a fixed frame, and wherein a bearing is disposed between the cylindrical portion of the planet carrier member and the inner surface of the wall of the first main pinion so as to provide a rotation mechanical connection therebetween.
2. The drive chain according to claim 1, wherein the planet carrier member is stationary with respect to an aircraft mount.
3. The drive chain according to claim 1, wherein the first and second planet pinions are arranged so as to be crossed by a same mid-plane crossing the external teeth.
4. The drive chain according to claim 1, wherein the first planet pinion and the second planet pinion have different diameters.
5. The drive chain according to claim 1, wherein a motion input for rotating the first main pinion is provided at the external teeth.
6. The drive chain according to claim 1, wherein a motion input for rotating the first main pinion is made through the shaft connected to the driving member or through another shaft connected to the first main pinion and coaxial to the shaft.
7. The drive chain according to claim 1, wherein the first main pinion is part of a bevel gear.
8. The drive chain according to claim 1, for an accessory gearbox driving device.
9. An accessory gearbox including a drive chain according to claim 1.
10. An aircraft drive chain comprising: a first main pinion including, a barrel, a wall delimiting an inner volume, and external teeth being provided on an outer surface of the wall, the barrel and the wall being cylindrical and coaxial with a diameter of the barrel being smaller than a diameter of the wall; a second main pinion meshing with the external teeth of the first main pinion; and a gear system being incorporated into the inner volume of the first main pinion, the first main pinion and the gear system being jointly configured to form a multiplier or reducer and to ensure a mechanical energy transfer between a driving member and a slave member, wherein the gear system includes first and second planet pinions, a planet carrier member, and a shaft connected to the driving member or to the slave member, wherein sun teeth are provided on the shaft of the gear system, wherein internal teeth are provided on an annular wall which is stationary with respect to an aircraft mount via a flange, wherein each of the first and second planet pinions mesh with the internal teeth and with the sun teeth, wherein the planet carrier member includes a panel linked to an inside surface of the wall of the first main pinion which support shafts on which the planet pinions are mounted such that the planet carrier member is fixed to the first main pinion and is stationary with respect to the first main pinion.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) By way of non limiting examples, embodiments of the invention will now be described referring to the accompanying drawings, in which:
(2)
(3)
(4)
(5)
(6)
(7)
(8)
DETAILED DISCLOSURE OF PARTICULAR EMBODIMENTS
(9)
(10) In a particular layout, the pinion 10 includes a rim 21, a wall 22, a barrel 23, external teeth 24 and internal teeth 25.
(11) The rim 21 and the barrel 23 are cylindrical and coaxial, the diameter of the barrel 23 being lower than the diameter of the rim 21. The barrel 23 is here a hollow shaft. Alternatively, the barrel 23 is a solid shaft. The wall 22 has here a frustoconical shape. The wall 22 is linked through a first circular edge 22a to an end edge of the rim 21, and through a second circular edge 22b, of a diameter lower than the first edge 22a, to an end edge of the barrel 23. As a non-represented alternative, the wall 22 is flat. The wall 22 can also include openings on part of its surface.
(12) The rim 21 and the wall 22 jointly delimit an inner housing 12.
(13) The external teeth 24 radially extend from an outer surface 21a of the rim 21 to the outside. The teeth 24 are here straight teeth. In another non represented alternative, these teeth are helical or of another type.
(14) The internal teeth 25 radially extend from an inner surface 21b of the rim 21 to the inside, that is into the inner housing 12, here opposite the teeth 24. In the example depicted in
(15)
(16) In the device 9 detailed in
(17) Here, planet gears 40 are toothed wheels with straight teeth 49. In a non-represented alternative, these teeth are helical or of other types. The teeth 49 are each meshed with the internal teeth 25. There are here three planet gears 40 (only two can be seen in
(18) The planet carrier 41 here includes two panels 43, a cylindrical portion 45, a frustoconical portion 47 and a flange 48.
(19) The panels 43 are parallel to each other. Between them, these panels 43 support shafts 44 on which the planet gears 40 are mounted, each being assembled rotatably moveable through a non-represented system of the roller, bearing or another type.
(20) The cylindrical portion 45 of the planet carrier 41 extends from the panel 43 farthest from the barrel 23. A bearing 46, here a roller, provides a rotation mechanical connection between the rim 21 of the pinion 10 and the portion 45. In a non-represented version, this rotation guiding is ensured by another technological element such as a bearing.
(21) The frustoconical portion 47 extends by narrowing in the continuation of the cylindrical portion 45.
(22) Finally, the flange 48 of the planet carrier 41 is arranged at the distal end of the frustoconical portion, transverse to the longitudinal orientation X. The flange 48 enables the multiplier 11 to be held in position with respect to a fixed frame (not represented).
(23) The shaft 42 has straight teeth 50 at an end accommodated in the planet carrier 41. In a non-represented version, these teeth are helical or of another type. These teeth 50 are meshed with the teeth 49 of each of the planet gears 40. The shaft 42 is here provided coaxial with the barrel 23 and the rim 21. The teeth 50 are here formed directly at the end of the shaft 42. Alternatively, they can belong to a pinion (not depicted) mounted on the corresponding end on the shaft 42.
(24) A flange 30 independent of the multiplier 11 and of the pinion 10, is mounted on the barrel 23 through a bearing 31, here a roller but it can be of another type such as a bearing. This flange 30 holds the pinion 10 in position with respect to a fixed frame (not represented).
(25) The device 9 represented in
(26) An alternative embodiment 209 to the device 9 will be later described with reference to
(27) As can be seen in
(28) In
(29) In
(30) As an alternative, the motion input in the accessory gearbox 4a from the compressor shaft is made through the external teeth 24 of the pinion 10, that is the pinion 10 brings power to the gear chains 5 or 6 respectively including the pinions 13 and 14 (
(31) The examples of
(32) The shaft 42 is operably connected to a non-represented driving or slave member located outside the accessory gearbox.
(33) When the motion input towards the pinion 10 is made through the external teeth 24, for example when the motion comes from the turbomachine compressor, such as above described, the multiplier 11 enables the accessory to be supplied at a desired rotational speed.
(34) Alternatively, the accessory is replaced by a driving member (for example a starter) which itself drives the drive chain of the AGB. The motion or power input towards the pinion 10 is then made through the shaft 42 connected to the driving member, or also through the shaft 23 integral with the rim 21 of the pinion 10 and coaxial to the shaft 42.
(35) As shown in
(36) The abovedescribed device 9 can be used both as a multiplier or a reducer according to whether its drive into rotation is made by the barrel 23, the teeth 24 or the shaft 42.
(37) An alternative of the abovedescribed device 9 is schematized in
(38) In the devices 9 represented in
(39) As an alternative, the teeth 24 and 25 are arranged staggered with respect to each other, that is other than facing on either side of the rim 21.
(40) Further alternatively, it is possible to use a double epicyclic gear train, that is including double planet gears 140 (see
(41) The device 209 schematized in
(42) The device 209 includes a pinion 210 and an annulus 241.
(43) The pinion 210 differs from pinion 10 in that it does not carry on its rim 21 internal teeth opposed to the external teeth 24. On the other hand, a panel 243 is linked to the inside face of the rim 21. The shafts 44 are mounted on the panel 243 and carry the pinions 40.
(44) The annulus 241 has an annular portion 221 coaxial with the rim 21 of the pinion 210. This annular portion 221 carries internal teeth 225 which mesh with the teeth 49. The annulus 241 is here fixed to a frame of the fixed accessory gearbox via a flange 48.
(45) The device 209 represented in
(46) Other alternative embodiments are still possible without departing from the scope of the invention. For example, in the embodiment described with reference to
(47) With reference to
(48) Generally speaking, it will be understood that the invention is not limited to the abovedescribed exemplary devices. The invention can be applied to any accessory driven by the accessory gearbox and which requires a specific multiplying or reducing function.