REACTOR MAST COMPRISING A PRIMARY STRUCTURE AND A FRONT SECONDARY STRUCTURE WITH MEANS FOR FIXING ONE TO THE OTHER

The reactor mast design with a primary and secondary structure, using connecting rods and screw elements or hinges, addresses the space constraints in aircraft gondolas by minimizing bulk and ensuring secure, flexible fixation.

FR3164697A1Pending Publication Date: 2026-01-23AIRBUS OPERATIONS (SAS)
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Patent Information

Application Number
FR2024007982
Authority / Receiving Office
FR · FR
Patent Type
Applications
Current Assignee / Owner
Filing Date
2024-07-19
Publication Date
2026-01-23

AI Technical Summary

Technical Problem

The increasing size of aircraft gondolas has reduced the available space for fastening means, necessitating a less bulky arrangement for attaching the reactor mast components.

Method used

A reactor mast design comprising a primary structure with a front beam, a secondary structure, connecting rods with articulated ends, and secondary fastening means such as screw elements or hinges, which reduce bulkiness and allow for adjustable fixation.

Benefits of technology

The new design minimizes bulk and enhances installation safety and flexibility by reducing the space required for fixation, while maintaining structural integrity and providing protection against bird strikes.

✦ Generated by Eureka AI based on patent content.

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Abstract

ENGINE pylon comprising a primary structure and a front secondary structure with means for attaching one to the other. The invention relates to an engine pylon (100) intended to support an aircraft engine, said engine pylon (100) comprising a primary structure (102) which has, at a front end (102a), a front beam (106), a front secondary structure (104) disposed in front of the front beam (106), two connecting rods (152a-b), each having a first end mounted articulated to the front beam (106) and a second end mounted articulated to the front secondary structure (104), and secondary attachment means fixed between a front edge of the front beam (106) and a rear edge of the front secondary structure (104). With such an assembly, the overall size is reduced. Fig. 3
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Description

Title of the invention: REACTOR MAST COMPRISING A PRIMARY STRUCTURE AND A SECONDARY STRUCTURE WITH MEANS FOR FIXING ONE TO THE OTHER technical field

[0001] The present invention relates to a reactor mast comprising a primary structure and a secondary forward structure fixed to each other by fastening means, a propulsion assembly comprising such a reactor mast and an engine fixed to said reactor mast, as well as an aircraft comprising at least one such propulsion assembly. PREVIOUS STATE OF THE ART

[0002] An aircraft typically comprises an engine, for example a turbojet, which is attached under a wing by means of an engine pylon. The engine pylon consists of a rigid structure called the primary structure, which is attached, on one side, to a wing structure and, on the other side, to an engine structure. The engine pylon transmits the forces generated by the engine to the wing structure when the engine is running. The engine pylon also allows the passage of systems between the wing and the engine, such as the electrical, hydraulic, and pneumatic systems, etc.

[0003] At the front of the primary structure, the reactor pylon includes a forward secondary structure, which supports, among other things, certain nacelle cowlings surrounding the engine. The forward secondary structure is fixed above the engine and to the front of the primary structure using various fastening means such as screw-nut systems.

[0004] Although such an arrangement is satisfactory, the gondolas are getting larger and larger and the space allocated to the fastening means is reduced accordingly, and it is therefore necessary to find a less bulky arrangement. Description of the invention

[0005] An object of the present invention is thus to propose a reactor mast comprising a primary structure and a secondary front structure fixed to each other by fixing means whose size is reduced.

[0006] To this end, a reactor mast is proposed for supporting an aircraft engine, said reactor mast comprising:

[0007] - a primary structure which has, at one front end, a beam frontal,

[0008] - a secondary front structure disposed at the front of the front beam,

[0009] - two connecting rods, where each has a first end mounted articulated to the front beam and a second end mounted hinged to the front secondary structure, and

[0010] - secondary fastening means fixed between a front edge of the front beam and a rear edge of the front secondary structure.

[0011] With such an assembly, the bulk is reduced.

[0012] Advantageously, the articulation of each end is a rotation whose axis is perpendicular to a vertical median plane of the reactor mast.

[0013] According to a particular embodiment, the secondary fastening means consist of a plurality of screw elements where each clamps the front edge of the front beam and the rear edge of the front secondary structure together.

[0014] According to a particular embodiment, the secondary fastening means consist of two hinges where each has a first part fixed to the front beam and a second part fixed to the front secondary structure, where the two parts are mounted articulated relative to each other around a hinge axis.

[0015] Advantageously, the hinge axis is perpendicular to a vertical median plane of the reactor mast.

[0016] Advantageously, the reactor mast includes an additional connecting rod with a first end mounted articulated to the front beam and a second end mounted articulated to the front secondary structure.

[0017] Advantageously, the additional connecting rod is in a vertical median plane of the reactor mast.

[0018] Advantageously, the reactor mast includes a wall fixed in the vicinity of a rear edge of the forward secondary structure, and, for each connecting rod, the wall is pierced with a passage through which said connecting rod passes.

[0019] The invention also proposes a propulsion assembly comprising a reactor mast according to one of the preceding variants and an engine fixed to said reactor mast.

[0020] The invention also proposes an aircraft comprising at least one propulsion assembly according to the previous variant. Brief description of the drawings

[0021] The features of the invention mentioned above, as well as others, will become clearer upon reading the following description of an exemplary embodiment, said description being made in relation to the accompanying drawings, among which:

[0022] [Fig-1] is a side view of an aircraft according to the invention,

[0023] [Fig.2] is a side view of a propulsion assembly according to the invention,

[0024] [Fig.3] is a perspective view of a reactor mast according to a first embodiment of the invention,

[0025] [Fig.4] is a detailed and perspective view of a reactor mast according to the first embodiment of the invention,

[0026] [Fig. 5] is a detailed and perspective view of a reactor mast according to a second embodiment of the invention, and

[0027] [Fig.6] is a cross-sectional view of a screw-nut system according to a particular arrangement.

[0028] DETAILED STATEMENT OF IMPROVEMENTS

[0029] Fig. 1 shows an aircraft 10 with at least one propulsion unit 50 fixed under a wing 12 of the aircraft 10. Each propulsion unit 50 comprises an engine 14, for example a turbojet, and a reactor mast 100 according to the invention fixed under the wing 12 and under which the engine 14 is fixed.

[0030] In the following description, terms relating to a position are taken with reference to an aircraft 10 in normal flight position, i.e. as shown in [Fig.1], and the positions "forward" and "rear" are taken with respect to the front and rear of the engine 100 and with respect to the direction of travel F of the aircraft 10 when the engine 14 is operating.

[0031] In the following description, and by convention, X is the longitudinal direction of the engine 14, which is parallel to the longitudinal axis of said turbojet engine; Y is the transverse direction, which is horizontal when the aircraft 10 is on the ground; and Z is the vertical direction, which is vertical when the aircraft 10 is on the ground. These three directions, X, Y, and Z, are orthogonal to each other. The engine 14 and the engine pylon 100 extend along the longitudinal direction X and share the same vertical median plane P along the longitudinal direction X and the vertical direction Z.

[0032] Fig. 2 shows the wing 12 and the engine 14 fixed to each other by means of the engine pylon 100. The engine pylon 100 has a primary structure 102 which provides attachment to the engine 14 and the wing 12 and which carries some of the cowlings of a nacelle 14a surrounding the engine 14. The engine pylon 100 also has, at the front of the primary structure 102, a secondary front structure 104 which carries other cowlings of the nacelle 14a.

[0033] Fig. 3 and Fig. 4 show the reactor mast 100 according to a first embodiment of the invention and Fig. 5 shows the same detail as Fig. 4 but for a second embodiment of the invention.

[0034] In general, the primary structure 102 comprises, at a front end 102a, a front beam 106. This front beam 106 is here in a plane generally perpendicular to the longitudinal direction X. The front secondary structure 104 is arranged in front of the front beam 106.

[0035] The secondary front structure 104 is fixed to the primary structure 102 by means of fixing means 150.

[0036] The fastening means 150 comprise two connecting rods 152a-b which are arranged here on either side of the vertical median plane P and where each extends in a direction generally parallel to the longitudinal direction X. Each connecting rod 152a-b has a first end (a rear end) which is mounted articulated to the front beam 106 and a second end (a front end) which is mounted articulated to the front secondary structure 104.

[0037] In the embodiment of the invention shown here, each second end is fixed at the floor level 104a of a basin 104b of the front secondary structure 104.

[0038] The fastening means 150 also include secondary fastening means 160a-b which differ between the two embodiments, and where they are arranged to fix a front edge of the front beam 106 to a rear edge of the front secondary structure 104. These secondary fastening means 160a-b are different from the connecting rods 152a-b and therefore complement each other.

[0039] With such an arrangement, the connecting rods 152a-b allow a resumption of forces towards the front, and the space allocated for the fixing between the primary structure 102 and the secondary front structure 104, can be reduced.

[0040] In addition, here each connecting rod 152a-b takes the form of a tensioner whose length can be adjusted by rotation of the central body with respect to the attachment points at the ends, which allows adjustment of the fixing of the primary structure 104 during its installation.

[0041] The fixing of the end of each connecting rod 152a-b here takes the form of a connection by clevis and more generally, the articulation of each end is a rotation whose axis is perpendicular to the vertical median plane P.

[0042] In the first embodiment of the invention, the secondary fastening means 160a consist of a plurality of screw elements 162, for example screw-nuts, where each screw element 162 is arranged to clamp the front edge of the front beam 106 and the rear edge of the front secondary structure 104 together, for example between the head of the screw and the nut.

[0043] Here, the front edge of the front beam 106 has a rim 106a which applies against the front secondary structure 104, here the floor 104a, and the screw elements 162 pass successively through the rim 106a and the floor 104a. The screw elements 162 are arranged vertically here.

[0044] The installation of several screw elements 162 also ensures safety in the event of breakage of a connecting rod 152a-b.

[0045] In the second embodiment of the invention, the secondary fastening means 160b consist of two hinges 164 arranged on either side of the vertical median plane P. Each hinge 164 has a first part 164a fixed to the front beam 106 and a second part 164b fixed to the front secondary structure 104. The two parts 164a-b are mounted hinged to each other about a hinge axis 166 by means of a shaft 164c. With such an arrangement, the fastening of the front secondary structure 104 is faster. Here, the first part 164a takes the form of a female clevis and the second part 164b takes the form of a male clevis inserted into the female clevis.

[0046] The hinge axis 166 is common to both hinges 164 and is perpendicular to the vertical median plane P.

[0047] In this second embodiment, the balancing of forces is ensured by the installation of an additional connecting rod (not shown) which has a first end mounted articulated to the front beam 106 and a second end mounted articulated to the front secondary structure 104, in particular to the bottom 104a.

[0048] The additional connecting rod is here in the vertical median plane P and, as before, the attachment of each end of the additional connecting rod is achieved by a clevis connection; more specifically here, the articulation of each end of the additional connecting rod is a rotation whose axis is generally vertical. In [Fig. 5], the front beam 106 carries a female clevis 106b to form the clevis.

[0049] The additional connecting rod is thus between the connecting rods 152a-b and is parallel to said connecting rods 152a-b.

[0050] In the embodiments of the invention shown here, the front beam 106 has at its lower part fasteners 180 which are arranged to be fixed to the motor 14.

[0051] To reinforce the structure of the secondary forward structure 104, which is here in the form of a bowl 104b, the reactor mast 100 includes a wall 108 extending in a plane generally perpendicular to the longitudinal direction X and fixed between the bottom 104 of the bowl 104b and the starboard and port edges 104c of the bowl 104b. The fixing is achieved, for example, by screws or welding...

[0052] This wall 108 is located near the rear edge of the front secondary structure 104 and also provides protection against bird strikes. For each connecting rod 152a-b, including the additional connecting rod, the wall 108 has a passage 108a through which said connecting rod 152a-b passes. Each passage 108a is in the form of an oblong hole with its major axis vertical.

[0053] Although this wall 108 is only represented on the first embodiment of the invention, it applies in the same way to the second embodiment of the invention.

[0054] Fig. 6 shows an example of an assembly 600 by clevis that can be implemented at each end of the connecting rods 152a-b (including the additional connecting rod) and at the hinges 164.

[0055] The assembly 600 comprises a female clevis 602a consisting of two parallel walls and a male clevis 602b consisting of one wall parallel to the other walls, each wall having a bore. A bearing 604 is inserted into the bore of each wall of the female clevis 602a by clamping the wall of the male clevis 602b. A shank 606a of a screw passes through both bearings 604 and the bore of the wall of the male clevis 602b, and a nut 606b is tightened onto the shank 606a to hold the walls together and form the axis of rotation.

Claims

Demands

1. Engine pylon (100) intended to support an engine (14) of an aircraft (10), said engine pylon (100) comprising: - a primary structure (102) which has at a front end (102a), a front beam (106), - a front secondary structure (104) disposed in front of the front beam (106), - two connecting rods (152a-b), where each has a first end mounted articulated to the front beam (106) and a second end mounted articulated to the front secondary structure (104), and - secondary fastening means (160a-b) fixed between a front edge of the front beam (106) and a rear edge of the front secondary structure (104).

2. Reactor mast (100) according to claim 1, characterized in that the articulation of each end is a rotation whose axis is perpendicular to a vertical median plane (P) of the reactor mast (100).

3. Reactor mast (100) according to any one of claims 1 or 2, characterized in that the secondary fastening means (160a) consist of a plurality of screw elements (162) where each clamps the front edge of the front beam (106) and the rear edge of the front secondary structure (104) together.

4. Reactor mast (100) according to any one of claims 1 or 2, characterized in that the secondary fixing means (160b) consist of two hinges (164), where each has a first part (164a) fixed to the front beam (106) and a second part (164b) fixed to the front secondary structure (104), where the two parts (164a-b) are mounted articulated to each other about a hinge axis (166).

5. Reactor mast (100) according to claim 4, characterized in that the hinge axis (166) is perpendicular to a vertical median plane (P) of the reactor mast (100).

6. Reactor mast (100) according to any one of claims 4 or 5, characterized in that it comprises an additional connecting rod with a first end mounted articulated to the front beam (106) and a second end mounted articulated to the front secondary structure (104).

7. Reactor mast (100) according to claim 6, characterized in that the additional connecting rod is in a vertical median plane (P) of the reactor mast (100).

8. Reactor mast (100) according to any one of claims 1 to 7, characterized in that it comprises a wall (108) fixed in the vicinity of a rear edge of the forward secondary structure (104), and in that for each connecting rod (152a-b), the wall (108) is pierced with a passage (108a) through which said connecting rod (152a-b) passes.

9. Propulsion assembly (50) comprising a reactor mast (100) according to any one of the preceding claims and an engine (14) fixed to said reactor mast (100).

10. Aircraft (10) comprising at least one propulsion unit (50) according to claim 9.

Citation Information

Patent Citations

  • Suspension structure for suspending a turboprop having two unducted propellers from a structural element of an aircraft with rigid fastening of the air intake structure

    US10106266B2

  • Mounting structure for mounting a turboprop under an aircraft wing

    US20050116093A1

  • Fan cowl support for a turbo fan engine

    US20110127370A1

  • Fan cowl support cradle mounted on the attachment pylon and on the air inlet of the nacelle

    US8382031B2