Planet carrier for a speed-reducing unit with an epicyclic gear train
10816088 · 2020-10-27
Assignee
Inventors
- Maxime Lefebvre (Moissy-Cramayel, FR)
- Jean-Charles Michel Pierre Di Giovanni (Moissy-Cramayel, FR)
- Jordane Emile André Peltier (Moissy-Cramayel, FR)
- Patrice Julien Ptaszynski (Moissy-Cramayel, FR)
Cpc classification
F16H1/28
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H2001/289
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H57/082
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2260/40311
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H37/0833
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H2057/087
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A planet carrier for a speed-reducing unit with a planetary gear set is provided. The planet carrier generally includes a torque transmission part having a longitudinal axis and an annular cage extending about the axis and connected to one longitudinal end of the part. The cage may include two sides extending radially relative to the axis and connected by bridges, and seats extending axially between the flanks and configured to support planetary gears rotatably mounted about the seats. The curved members may include at least two corresponding bars each inclined relative to a longitudinal plane passing both through the axis and substantially through the corresponding bar.
Claims
1. A planet carrier for a speed reduction gear with epicyclic gearing, comprising: a torque transmission member having a longitudinal axis; and an annular cage extending about the axis and connected to a longitudinal end of the member, the cage comprising: two sides extending substantially radially with respect to the axis and connected by bridges; and seats extending axially between the sides and configured to support planetary gears rotatably mounted around the seats, wherein each bridge comprises at least two corresponding bars, each inclined with respect to a longitudinal plane passing both through the axis and substantially through the corresponding bar.
2. The planet carrier according to claim 1, wherein each bridge comprises at least two intersecting bars.
3. The planet carrier according to claim 2, wherein the two bars of each bridge intersect in the zone located in the vicinity of one of the sides.
4. The planet carrier according to claim 3, wherein the zone is located in the proximity of the side located on the opposite side of the transmission member.
5. The planet carrier according to claim 1, wherein each bridge is substantially an X shape.
6. The planet carrier according to claim 1, wherein at least one of the sides comprises, between two adjacent seats, at least one cavity.
7. The planet carrier according to claim 6, wherein each cavity is aligned with a bridge along a plane passing through the axis.
8. The planet carrier according to claim 6, wherein each cavity is substantially an U or V shape of which the opening is oriented radially outwards with respect to the axis.
9. The planet carrier according to claim 1, wherein the sides and the bridges are formed of one single piece.
10. A reduction gear with epicyclic gearing comprising a satellite carrier according to claim 1.
11. A turbine engine comprising a reduction gear with epicyclic gearing according to claim 1.
12. The turbine engine according to claim 11, wherein the turbine engine is configured for an aircraft.
Description
BRIEF DESCRIPTION OF THE FIGURES
(1) Other characteristics and advantages of the invention will appear upon reading the detailed description of embodiment examples below, in reference to the appended figures which represent, respectively:
(2)
(3)
(4)
(5)
(6)
DETAILED DESCRIPTION OF AN EMBODIMENT
(7) As mentioned above,
(8) As can be seen in
(9) The front is defined as being on the fan side, and the rear is defined as being on the side of the exhaust pipe of the turbine engine.
(10) The annular cage 26 comprises two sides 28, 30 extending substantially radially with respect to the axis A, respectively a front side 28 and a rear side 30. The front side 28 is defined as the side located on the opposite side of the transmission member 24 and the rear side 30 is defined as being the side that is secured to the member 24. The two sides 28, 30 are connected to one another by bridges 32. As illustrated in
(11) According to the embodiment presented, the sides 28, 30 and the bridges 32 are made of one single piece. This makes it possible for the planet carrier 18 to form a structural unit, thereby eliminating problems relating to the assembly of several pieces by way of additional connecting members. This makes it possible, in particular, to avoid imbalance problems generated by assembly tolerances, assembly problems, and additional weight due to there being multiple pieces.
(12) As illustrated in
(13) As can be seen in
(14) In a manner known per se, during operations of the reduction gear 10, a first path of force passes through the rear side 30 (from the corresponding ends of the seats 36 and the planetary gears 20) and then through the torque transmission member 24. A second path of force goes through the front side 30 (from the corresponding ends of the seats 36 of the planetary gears 24 up to the zones connecting the front side 28 and the bridges 32), the bridges 32 then through the torque transmission member 24.
(15) The cage 26 that supports the bearing axes (according to the axis Y) and therefore the planetary gears 20 has thus been shaped with the intersecting bars 33, 34 to obtain a trellis or braces. This makes it possible for the correct passage of the force necessary for the functioning of the reduction gear 10 with a minimum amount of matter. The present invention therefore presents a solution that optimises the weight of the reduction gear 10 without impeding the force paths between the sides 28, 30, and by limiting the misalignment of the planetary gears 20.
(16) This optimisation is obtained thanks to the particular inclination of the bars 33, 34 of the bridges 32. Indeed, the bars 33, 34 of the bridges are each divided into two parts: a rear part (close to the rear side 30) and a front part (close to the front side 28). The rear 33a, 34a and front 33b, 34b parts of each bar 33, 34 join each other at the intersection of the X formed by each bridge 32. The specificity of the invention is that, similarly to the corresponding bars 33, 34 with respect to one another, the rear parts 33a, 34a and front parts 33b, 34b of each bar 33, 34 of each bridge 32 do not extend in the same plane and form an angle different than 0 with one another. Thus, each bridge 32 comprises bars 33, 34 that are each inclined with respect to a first longitudinal plane passing through the axis A and substantially through the corresponding bar 33, 34 and therefore each part 33a, 34a is inclined with respect to a second longitudinal plane passing through A and substantially with the part of the corresponding bar 33b, 34b. This inclination difference of the bars 33, 34 with one another and of the different parts 33a, 34a, 33b, 34b with one another makes it possible to rigidify the planet carrier 26 in a torsional manner about the axis A during operations of the turbine engine.
(17) Moreover, this structure of the gearing 10 makes it possible to perform primary milling operations from the outside of the gearing 10, which is not possible with a gearing 10 according to the state of the art.