AIRCRAFT TURBINE ENGINE WITH AN OFF-AXIS PROPELLER
20230133871 · 2023-05-04
Assignee
Inventors
- Paul Ghislain Albert LEVISSE (Moissy-Cramayel, FR)
- Julien Fabien Patrick Becoulet (Moissy-Cramayel, FR)
- Guillaume Pierre Mouly (Moissy-Cramayel, FR)
- Patrice Jocelyn Francis GEDIN (Moissy-Cramayel, FR)
- Olivier BELMONTE (Moissy-Cramayel, FR)
Cpc classification
F02C7/36
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B64D35/00
PERFORMING OPERATIONS; TRANSPORTING
F02C6/206
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2220/36
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H1/28
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02K3/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H1/36
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2260/40311
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
An aircraft turbine engine includes a turbine shaft having a first axis of rotation, a propulsion propeller having a second axis of rotation parallel to and spaced from the first axis, and a mechanical reduction gear coupled to the turbine shaft and rotating the propeller. The reduction gear has a sun gear connected to the turbine shaft, a ring gear, and at least two planet gears, each including a first external toothing that is meshed with an external toothing of the sun gear. A second external toothing is located within the ring gear and is meshed with an internal toothing of the ring gear.
Claims
1. An aircraft turbine engine, comprising: a turbine shaft having a first axis of rotation, a propulsion propeller connected to a propeller shaft having a second axis of rotation parallel to and spaced from the first axis, and a mechanical reduction gear coupled to the turbine shaft and configured to drive in rotation the propeller shaft, the reduction gear comprising a sun gear, a ring gear, and at least two planet gears meshed with the sun gear and the ring gear, wherein, the turbine shaft is connected to the sun gear, the propeller shaft is connected to the ring gear which comprises an internal toothing, and each of the planet gears comprises a first external toothing which is located outside the ring gear and which is meshed with an external toothing of the sun gear, and a second external toothing which is located inside the ring gear and which is meshed with the internal toothing of the ring gear.
2. The turbine engine according to claim 1, wherein the sun gear and the planet gears are located below a horizontal plane (Ph) passing through the second axis.
3. The turbine engine according to claim 2, further comprising an equipment comprising a shaft carrying a pinion, wherein the pinion is meshed with the toothing of the ring gear and located above the horizontal plane (Ph).
4. The turbine engine according to claim 1, wherein the first toothing of each planet gear is directly meshed with the external toothing of the sun gear.
5. The turbine engine according to claim 1, wherein the first toothing of each planet gear is meshed via at least one pinion with the toothing of the sun gear.
6. The turbine engine according to claim 5, wherein the planet gears are evenly distributed about the second axis.
7. The turbine engine according to claim 5, wherein the toothing of the sun gear is meshed with the planet gears via a single pinion that is aligned with the second axis.
8. The turbine engine according to claim 5, wherein the toothing of the sun gear is meshed with the planet gears via identical K pinions, wherein K is the number of planet gears and each of the pinions is mounted between the sun gear and one of the planet gears.
9. The turbine engine according to claim 8, wherein the pinions are non-regularly distributed about the second axis.
10. The turbine engine according to claim 5, wherein the toothing of the sun gear are meshed with the planet gears by means of K pinions, at least two of which are different, wherein K is the number of planet gears and each of the pinions is mounted between the sun gear and one of the planet gears.
11. The turbine engine according to claim 10, wherein the pinions are evenly distributed about the second axis.
12. The turbine engine according to claim 1, wherein the toothing of the sun gear and the first toothing of each planet gear are each double-stage and each comprises two annular rows of teeth located at an axial distance from each other.
Description
DESCRIPTION OF THE DRAWINGS
[0044] The foregoing aspects and many of the attendant advantages of the disclosed subject matter will become more readily appreciated as the same become better understood by reference to the following detailed description, when taken in conjunction with the accompanying drawings, wherein:
[0045]
[0046]
[0047]
[0048]
[0049]
[0050]
[0051]
[0052]
[0053]
DETAILED DESCRIPTION
[0054] The detailed description set forth above in connection with the appended drawings, where like numerals reference like elements, are intended as a description of various embodiments of the present disclosure and are not intended to represent the only embodiments. Each embodiment described in this disclosure is provided merely as an example or illustration and should not be construed as preferred or advantageous over other embodiments. The illustrative examples provided herein are not intended to be exhaustive or to limit the disclosure to the precise forms disclosed. Similarly, any steps described herein may be interchangeable with other steps, or combinations of steps, in order to achieve the same or substantially similar result.
[0055] Generally speaking, a turbine engine 10 comprises a propeller 14 and a gas generator which comprises from upstream to downstream at least one compressor 36, an annular combustion chamber 38, and at least one turbine 40.
[0056] In the case of
[0057]
[0058] The reduction gear 44 comprises a sun gear 46, a ring gear 48 and at least two planet gears 50 meshing with the sun gear 46 and the ring gear 48. The planet gears 50 are carried by a planet carrier (not shown) which is fixed and forms part of a stator of the turbine engine 10. Each of the planet gears 50 has an axis of rotation parallel to the axes 22, 24.
[0059] The ring gear 48 has the particularity of comprising an internal toothing 48a, i.e. it comprises a ring inside which the toothing 48a is located. The ring gear 48 and its toothing 48a extend substantially in a first transverse plane P2, perpendicular to the axis 24 of the turbine.
[0060] The ring gear 48 is connected to the drive shaft 42 of the propeller 14, which has an axis of rotation 22 parallel to the axis 24 and at a distance from this axis 24.
[0061] The sun gear 46 comprises an external toothing 46a which extends substantially in a second transverse plane P1 parallel to the plane P2.
[0062] The planet gears 50 are two in number in the example shown. Each of the planet gears comprises a first external toothing 50a meshed with the toothing 46a of the sun gear 46 and located substantially in the plane P1, and a second external toothing 50b meshed with the toothing 48a of the ring gear 48 and located substantially in the plane P2. It is therefore understood that the first toothings 50a of the planet gears 50 are located outside the ring gear 48 and that the second toothings 50b of the planet gears 50 are housed inside the ring gear 48. The planet gears 50 are partly engaged in the ring gear 48.
[0063]
[0064] In some embodiments, the diameter of the ring gear 48 and in particular of its toothing 48a is greater than 2 or 2.5 times the maximum diameter of the planet gears 50.
[0065] The toothings 46a, 50a, 50b of the sun gear 46 and the planet gears 50 may be straight or herringbone. The use of herringbone toothing allows to limit the axial length of the reduction gear 44, which allows to optimize the size of the turbine engine 10.
[0066] Ph is defined as a horizontal plane passing through the axis 22 of the propeller shaft 42. This plane Ph intersects the ring gear 48 in two halves, upper and lower respectively. The figures show that the sun gear 46 and the planet gears 50 are arranged under this plane Ph and are therefore located in the lower part or half of the ring gear 48. The sun gear 46 is here arranged between the planet gears 50 and slightly above them. These planet gears 50 are identical here.
[0067] The upper part or half of the ring gear 48 and in particular its inner space, is therefore left free.
[0068]
[0069] This equipment 52 comprises a shaft 54 equipped with a pinion 56. The shaft 54 extends parallel to the axes 22, 44 and the pinion 56 is engaged in the ring gear 48 and meshed with the toothing 48a of the ring gear 48.
[0070] The equipment 52 is located above the plane Ph and is substantially diametrically opposed with respect to the sun gear 46 and the planet gears 50, so that the equipment 52 loads the ring gear 48 in an area which is diametrically opposed to the area of loading of the ring gear 48 by the planet gears 50. This limits the deformation of the ring gear 48 during operation.
[0071]
[0072] In the previous embodiments, these toothings 46a, 50a were single stage, i.e., they comprise a single annular row of teeth which is located in the transverse plane P1.
[0073] On the contrary, a double stage toothing comprises two annular rows of teeth which are respectively located in two distinct transverse planes, i.e., these rows of teeth are at an axial distance from each other.
[0074] The sun gear 46 thus comprises two annular rows of teeth 46a1, 46a2, which are disposed respectively in two planes P1 and P1′ disposed respectively upstream and downstream of the plane P2 of the ring gear 48.
[0075] Each planet gear 50 also comprises two annular rows of teeth 50a1, 50a2, which are arranged respectively in the planes P1 and P1′ and between which the second toothing 50b is located. The row of teeth 46a1 is meshed with the row of teeth 50a1, and the row of teeth 46a2 is meshed with the row of teeth 50a2. Each of the planet gears 50 is therefore symmetrical with respect to the plane P2, which enables to multiply the contacts between the toothings, to reduce the mechanical moments in operation, and thus to make a much more compact reduction gear 44.
[0076] The rows of teeth 46a2 and 46a1 are advantageously herringbone or helical with opposite angles. This type of toothing allows to improve the contacts compared to a conventional “straight” toothing. The fact of distributing these herringbone and/or helical toothings symmetrically between the stages allows, as indicated, to symmetrize the forces and therefore to cancel/limit the mechanical moments.
[0077] The alternative embodiments of the reduction gear 44 shown in
[0078] Another difference is that the sun gear 46 is meshed with the planet gears 50 via at least one pinion 58.
[0079] In the case of
[0080] In the case of
[0081] In the case of
[0082] The advantages of the disclosure are multiple and in particular:
[0083] a potential gain in mass compared to the configuration of
[0084] a misalignment of the axes of the propeller and the turbine and a possibility of increasing the external diameter of the turbine engine,
[0085] the possibility of accommodating equipment in the free space inside the ring gear, etc.