Device for driving at least one wheel of an aircraft landing gear
12448118 ยท 2025-10-21
Assignee
Inventors
- Maxime FERNANDEZ (Moissy-Cramayel, FR)
- Loic FRANCOIS (Moissy-Cramayel, FR)
- Boris Pierre Marcel Morelli (Moissy-Cramayel, FR)
- Jordane Emile Andre PELTIER (Moissy-Cramayel, FR)
Cpc classification
F16H1/28
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H1/2809
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H1/24
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B64C25/405
PERFORMING OPERATIONS; TRANSPORTING
B64C25/34
PERFORMING OPERATIONS; TRANSPORTING
Y02T50/80
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
International classification
B64C25/40
PERFORMING OPERATIONS; TRANSPORTING
B64C25/32
PERFORMING OPERATIONS; TRANSPORTING
B64C25/34
PERFORMING OPERATIONS; TRANSPORTING
F16H1/24
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A device for driving at least one wheel of an aircraft landing gear including at least one landing gear wheel, this wheel including a rim, an electric motor including a shaft, a mechanical transmission system between the shaft of the motor and the rim, this mechanical transmission system including a mechanical reducer including a sun gear secured in rotation to the shaft of the motor, a ring gear, and planet gears which are carried by a planet carrier and which each includes three external toothings, including a median external toothing which is meshed with a toothing of the sun gear, and two lateral external toothings which are respectively meshed with toothings of the ring gear.
Claims
1. An aircraft landing gear, comprising: at least one landing gear wheel, said wheel comprising a rim having an axis of rotation, an electric motor comprising a shaft, a mechanical transmission system between the shaft of the motor and the rim, said mechanical transmission system comprising a mechanical reducer, wherein the mechanical reducer comprises: a sun gear secured in rotation to the shaft of the motor, said sun gear being centered on the axis and comprising an external toothing, a ring gear centered on the axis and comprising two internal toothings, and planet gears which are carried by a planet carrier and which each have a median plane of symmetry perpendicular to the axis, each of the planet gears comprising three external toothings, including a median external toothing which is meshed with the toothing of the sun gear, and two lateral external toothings which are respectively arranged on either side of the median external toothing and which are respectively meshed with the toothings of the ring gear, and wherein the planet gears are each centered and guided by three needle bearings carried by the planet carrier, said three needle bearings including a median needle bearing that is radially in line with said median external toothing, and said three needle bearings further including two lateral needle bearings that are respectively radially in line with said lateral external toothings.
2. The aircraft landing gear according to claim 1, wherein the ring gear is stationary and is attached to a stator of the aircraft landing gear, and the planet carrier is movable in rotation about the axis and is attached to the rim.
3. The aircraft landing gear according to claim 1, wherein the ring gear is movable in rotation about the axis and is attached to the rim, and the planet carrier is stationary and is attached to a stator of the aircraft landing gear.
4. The aircraft landing gear according to claim 1, wherein the toothings of the ring gear are identical.
5. The aircraft landing gear according to claim 1, wherein the toothing of the sun gear and the median external toothing of each of the planet gears are herringbone-shaped.
6. The aircraft landing gear according to claim 1, wherein the lateral external toothings of each of the planet gears and the toothings of the ring gear are helical.
7. The aircraft landing gear according to claim 1, wherein the motor has an annular shape centered on the axis and is arranged next to the mechanical reducer.
8. The aircraft landing gear according to claim 1, wherein the motor is arranged next to and at the level of the planet gears.
9. The aircraft landing gear according to claim 1, wherein the median toothing has a diameter greater than the diameter of the lateral toothings.
10. The aircraft landing gear according to claim 1, wherein the planet carrier comprises a single transverse wall which is perpendicular to the axis and on which the planet gears are cantilevered.
11. The aircraft landing gear according to claim 1, wherein the planet carrier comprises two transverse walls which are perpendicular to the axis and between which the planet gears are mounted, at least one of these transverse walls or both comprising a central orifice for the passage of the shaft of the motor.
12. An aircraft landing gear comprising: at least one landing gear wheel, said wheel comprising a rim having an axis of rotation, an electric motor comprising a shaft, a mechanical transmission system between the shaft of the motor and the rim, said mechanical transmission system comprising a mechanical reducer, wherein the mechanical reducer comprises: a sun gear secured in rotation to the shaft of the motor, said sun gear being centered on the axis and comprising an external toothing, a ring gear centered on the axis and comprising two internal toothings, and planet gears which are carried by a planet carrier and which each have a median plane of symmetry perpendicular to the axis, each of the planet gears comprising three external toothings, including a median external toothing which is meshed with the toothing of the sun gear, and two lateral external toothings which are respectively arranged on either side of the median external toothing and which are respectively meshed with the toothings of the ring gear, and wherein the planet gears are each centered and guided by two roller bearings carried by the planet carrier, said three external toothings of each of the planet gears being located axially between these roller bearings which are then not located radially inside said three external toothings.
Description
BRIEF DESCRIPTION OF THE FIGURES
(1) Further characteristics and advantages will be apparent from the following description of a non-limiting embodiment of the invention with reference to the appended drawings in which:
(2)
(3)
(4)
(5)
(6)
(7)
(8)
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(10)
(11)
DETAILED DESCRIPTION OF THE INVENTION
(12)
(13) The wheel 12 comprises a rim 16 with an axis of rotation X. Conventionally, this rim 16 is generally tubular or disc-shaped and carries a tyre 18 on its periphery.
(14) The device 10 comprises an electric motor 20 and a mechanical transmission system 22 between a shaft of the motor 20 and the rim 16 of the wheel 12.
(15) In the example shown, the motor 20 and the system 22 each have a generally annular shape and are centred on the axis X. They are arranged next to each other and the system 22 is installed between the motor 20 and the rim 16. A portion of the system 22, or even a portion of the motor 20, could be housed in the rim 16 to limit the overall dimensions of the device 10. The motor 20 and the system 22 can be protected by an outer cylindrical cover 26 projecting from one side of the rim 16 or of the tyre 18.
(16) The mechanical transmission system 22 comprises a mechanical reducer 28, examples of embodiment of which are shown in
(17)
(18) The assembly of the planet gears 34 is held by a frame referred to as planet carrier 36. Each planet gear 34 rotates about its own axis Y and meshes with a ring gear 38.
(19) In the output we have: In this epicyclic configuration, the assembly of the planet gears 34 drive in rotation the planet carrier 36 about the axis X. The ring gear 38 is attached to a stator via a ring gear carrier 40 and the planet carrier 36 is attached to another shaft 42. In another planetary configuration, the assembly of the planet gears 34 is held by a planet carrier 36 which is attached to a stator. Each planet gear drives the ring gear 38 which is connected to the shaft 42 via a ring gear carrier 40. In another differential configuration, the assembly of the planet gears 34 is held by a planet carrier 36 which is connected to the shaft 30. Each planet gear 34 drives the ring gear 38 which is fitted to the shaft 42 via a ring gear carrier 40.
(20) Each planet gear 34 is mounted free in rotation by means of a bearing 44, for example of the rolling or hydrodynamic bearing type. Each bearing 44 is mounted on one of the axles 36b of the planet carrier 36 and all the axles 36b are positioned relative to each other using one or more structural frames 36a of the planet carrier 36. The number of axles 36b and bearings 44 is equal to the number of planet gears 34. For reasons of operation, assembly, manufacture, inspection, repair or replacement, the axles 36b and the frame 36a may be separated into several parts.
(21) For the same reasons mentioned above, the toothing 34a of a planet gear 34 can be separated into several helices or teeth each having a median plane P, P. In the example shown, each planet gear 34 comprises two series of herringbone teeth cooperating with a ring gear 38 separated into two half-ring gears: An upstream annulus 38a consisting of a rim 38aa and an attachment half-flange 38ab. On the rim 38aa is the front helix meshed with a helix of the toothing 34a of each planet gear 34. The helix of the toothing 34a also meshes with that of sun gear 32. A downstream annulus 38b consisting of a rim 38ba and an attachment half-flange 38bb. The rear helix is located on the rim 38ba and is meshed with a helix of the toothing 34a of each planet gear 34. The helix of the toothing 34a also meshes with that of sun gear 32.
(22) If the helix widths vary between the sun gear 32, the planet gears 34 and the ring gear 38 because of the toothing overlaps, they are all centred on a median plane P for the upstream teeth and on another median plane P for the downstream teeth.
(23)
(24) The attachment half-flange 38ab of the upstream annulus 38a and the attachment half-flange 38bb of the downstream annulus 38b form the attachment flange 38c of the ring gear. The ring gear 38 is attached to the ring gear carrier 40 by assembling the attachment flange 38c of the ring gear 38 and an attachment flange 40a of the ring gear carrier 40 using a bolted assembly, for example.
(25)
(26) In this
(27) The toothing 34a1 meshing with the ring gear 38 has an average diameter D2 and is located in a median plane P. The toothing 34a2 meshing with the sun gear 32 has an average diameter D1 and is located in another median plane P. The median planes P, P are parallel to each other and perpendicular to the axis X. The diameter D2 is smaller than the diameter D1. Finally, each toothing 34a1, 34a2 comprises a single helix.
(28)
(29) In the example shown, the reducer 28 is of the epicyclic train type and comprises: a sun gear 32 having an axis of rotation X, a ring gear 38 which extends around the sun gear 32 and which is configured so that it cannot rotate about the axis X, and planet gears 34 which are meshed with the sun gear 32 and the ring gear 38 and which are maintained by a planet carrier 36 which is configured to be movable in rotation about the axis X.
(30) The plane H is defined as a median plane perpendicular to the axis X and passing substantially through the middle of the reducer 28.
(31) The sun gear 32 comprises an external toothing 32a for meshing with the planet gears 34. The toothing 32a can be of the herringbone type and have two series of adjacent teeth. The toothing 32a is symmetrical with respect to the plane H, its teeth being located on either side of the plane H.
(32) In the example shown, the sun gear 32 comprises a shaft 32c which may be that of the motor 20 or which may be connected to the shaft of the motor 20, and a pinion comprising the external toothing 32a at its external periphery.
(33) The ring gear 38 is formed by two independent annulus 38a, 38b and comprises two internal toothings 38d1, 38d2 carried respectively by the two annulus 38a, 38b.
(34) The toothings 38d1, 38d2 can each be of the helix type. The toothings 38d1, 38d2 are symmetrical with respect to the plane H.
(35) The annulus 38a, 38b are arranged symmetrically with respect to the plane H, which therefore extends between these annulus. The annulus 38a, 38b are connected and attached to a ring gear carrier 40 which is attached to a stator of the device 10.
(36) As in the case of the ring gear 38, the ring gear carrier 40 is symmetrical with respect to the plane H which cuts the ring gear carrier 40 in its middle.
(37) Each planet gear 34 comprises a median external toothing 34a of average diameter D1 for meshing with the sun gear 32, and two lateral external toothings 34b1, 34b2 of diameter D2, different from D1 and in particular less than D1, for meshing with the toothings 38d1, 38d2 of the ring gear 38.
(38) These diameters are average diameters measured from the axis Y of each planet gear 34 and represent the average between the maximum diameter and the minimum diameter of a toothing of this planet gear.
(39) The toothings 34b1, 34b2 are identical, as are the toothings 38d1, 38d2.
(40) Each planet gear 34 comprises a cylindrical sleeve 58 and an annular web 60 extending substantially radially outwardly from the middle of this sleeve 58. The helical toothings 34b1 and 34b2 are located respectively on the axial ends of the sleeve 58. The herringbone toothing 34a are located at the external periphery of the web 60.
(41) The toothing 34a is passed through in the middle by the plane H. The toothings 34b1, 34b2 are also arranged symmetrically with respect to the plane H.
(42) The toothing 34a and the external periphery of the web 60 have an axial dimension which is less than the axial distance between the annulus 38a, 38b, so that each planet gear 34 can rotate freely in the ring gear carrier 40 and between the annulus 38a, 38b.
(43) Each of the planet gears 34 is mounted on a cylindrical body 44a which passes through the planet gear 34, and in particular its sleeve 58, and which is attached to the planet carrier 36.
(44) The body 44a of a bearing 44 extends along the axis Y and comprises at at least one of its longitudinal ends an extension 44b housed in an orifice forming a seat of the planet carrier 36.
(45) The body 44a is generally tubular and comprises an internal oil circulation bore which generally communicates with oil supply conduits to an external cylindrical surface of the body for the formation of the oil film between this surface and an internal cylindrical surface of the planet gear 34.
(46) In the context of the present invention, the sun gear 32 is coupled to the shaft 30 of the electric motor 20. The ring gear 38 is stationary and the planet carrier 36 is connected to the rim 16 of the wheel 12.
(47)
(48) In the example shown in
(49) The planet carrier 36 also comprises a shaft 36d or a segment of shaft connected to the rim 16. This connection can be made by a disengagement system which is able to adopt two positions: a first position in which the output shaft of the reducer 28, and in particular the shaft 36d, is coupled to the rim 16 or to the shaft of the rim, and a second position in which this output shaft is uncoupled from the rim 16, which is then freewheeling.
(50) In
(51) As shown in
(52)
(53) In the embodiments shown in
(54) It is therefore the ring gear 38 that is attached to the rim 16 of the wheel 12. To achieve this, the ring gear carrier 40 is connected to the rim 16 or comprises a shaft segment 40a for connecting to the rim 16.
(55) The planet carrier 36 is attached to the stator 20b of the electric motor 20, for example.
(56) The other characteristics described above in relation to
(57) In the case of
(58) In
(59)
(60)
(61) Alternatively, as shown in
(62) Each of the bearings 47 may have an axial length or dimension L1, L2, L3 measured along the axis Y, which is at least 80% of the axial length or dimension L4, L5, L6 of the corresponding toothing 34a, 34b1, 34b2.
(63) In yet another variant embodiment not shown, the guide bearings 34 for guiding the planet gears are plain bearings or hydrodynamic bearings.
(64) The reducer 28 as described above offers a high reduction ratio compared with the reducers of the prior technique, and has a small overall dimensions, these two parameters being important for the use of this reducer in a device for driving at least one wheel of an aircraft landing gear.