Aircraft connecting device allowing one degree of freedom in one direction
The connecting device with an oblong ring and elastomeric pads addresses thermal stress-induced deformation by allowing controlled movement and load transfer, preventing damage to the cockpit floor.
Patent Information
- Authority / Receiving Office
- FR · FR
- Patent Type
- Applications
- Current Assignee / Owner
- AIRBUS OPERATIONS (SAS)
- Filing Date
- 2024-10-25
- Publication Date
- 2026-05-01
AI Technical Summary
The significant temperature difference between the exterior and interior of an aircraft during flight causes thermal stress, leading to deformation of the cockpit floor relative to the fuselage, potentially damaging the cockpit floor.
A connecting device with an oblong ring and a connecting pin locked in one direction and free in another, utilizing elastomeric pads for reduced displacement, ensures anisotropic behavior, allowing movement in one direction while rigidly transferring loads in perpendicular directions.
The device minimizes deformation-induced loads by allowing smooth movement in one direction and rigid load transfer in others, preventing damage to the cockpit floor.
Abstract
Description
Title of the invention: Aircraft connecting device allowing one degree of freedom in one direction technical field
[0001] The present invention relates to a junction device for an aircraft. Previous technique
[0002] In flight, particularly during cruise, an aircraft is subjected to external temperatures that can reach -50°C, while the interior is maintained at temperatures generally between 20°C and 24°C. This significant temperature difference subjects the aircraft structure to strong stresses, such as, for example, thermal compression in a longitudinal direction, which notably generates an imposed deformation of the cockpit floor relative to the fuselage, and can damage the cockpit floor.
[0003] The object of the invention is to remedy at least partially this drawback. Summary
[0004] To this end, a device is proposed for joining a first element of an aircraft to a second element of an aircraft, comprising a first connecting part intended to be integral with said first element and a second connecting part intended to be integral with said second element, the first connecting part comprising an oblong-shaped ring, the device comprising a connecting pin disposed in the oblong ring so as to be locked in the ring in a first direction and free in a second direction, the device comprising at least one pad of elastomeric material in which the connecting pin is inserted so as to reduce the displacement of the connecting pin in the second direction.
[0005] Thanks to the anisotropic behavior of the device according to the present invention, which ensures locking in the first direction and allows slowed translation in the second direction, the deformation imposed on the floor during aircraft flight does not produce a significant load in the joint 1 in the second direction. And, in the first vertical direction, the load from the cockpit floor can be rigidly transferred from the longitudinal beam to the transverse beam by mechanical contact between the metal parts, namely the connecting shaft and the oblong ring.
[0006] According to another aspect, the second direction is orthogonal to the first direction.
[0007] According to another aspect, a diameter of the connecting axis coincides with a width of the oblong ring.
[0008] According to another aspect, the device comprises at least two cylindrical rings stacked along the connecting axis, each of said cylindrical rings being inserted into said at least one elastomer pellet.
[0009] According to another aspect, the device comprises three stacked cylindrical rings.
[0010] According to another aspect, the device comprises at least a first pellet in elastomer and at least one second elastomer pellet arranged on either side of the oblong ring, the connecting axis being inserted into each of the elastomer pellets.
[0011] According to another aspect, the elastomer has a stiffness less than or equal to 3000 N / mm.
[0012] According to another aspect, the connecting axis is made of steel.
[0013] According to another aspect, the oblong ring is made of cupronickel.
[0014] The invention also relates to an aircraft, comprising a joining device as described above.
[0015] According to another aspect, the first element is a fuselage crossmember, for example of a cockpit floor and the second element is a longitudinal fuselage beam.
[0016] The invention also relates to a device for joining a first element of an aircraft to a second element of an aircraft, the device comprising a first connecting part intended to be integral with said first element and a second connecting part intended to be integral with said second element, the device comprising an oblong-shaped housing, the device comprising a connecting pin disposed in the oblong ring, the device comprising a means for fixing the pin in a first direction, shaped so that the pin rests in rigid support against said oblong housing in said first direction, the device also comprising a means for fixing the pin in a second direction, orthogonal to the first direction, shaped so that the pin rests in flexible support in said oblong housing. Brief description of the drawings
[0017] Other features, details and advantages will become apparent upon reading the detailed description below and analyzing the accompanying drawings, in which: Fig. 1
[0018] [Fig.1] is a schematic side view of a joining device of a first panel of an aircraft to a second panel of an aircraft according to an embodiment of the present invention. Fig. 2
[0019] [Fig.2] is a schematic view of a section along a direction AA of the joining device of the [Fig.1]. Description of the implementation methods
[0020] The examples and associated conditions detailed herein are primarily intended to assist the reader in understanding the principles of the present invention and not to limit its scope to these specific examples and conditions. It will be understood that a person skilled in the art can conceive of various arrangements which, although not explicitly described or illustrated herein, nevertheless embody the principles of the present invention and are included in its spirit and scope.
[0021] Furthermore, to facilitate understanding, the following description may describe relatively simplified implementations of the present invention. As a person skilled in the art will understand, other implementations of the present invention may be of greater complexity.
[0022] In some cases, examples of modifications to the present invention may also be shown. This is done simply to aid understanding and, again, not to define the scope or establish the limits of the present invention. These modifications are not an exhaustive list, and a person skilled in the art may make other modifications while remaining within the scope of the present invention.
[0023] Furthermore, all the following statements relating to the principles, aspects and implementations of the present invention, as well as specific examples thereof, are intended to encompass both the structural and functional equivalents thereof, whether currently known or developed in the future.
[0024] In the figures, an orthonormal coordinate system (X, Y, Z) is shown to simplify understanding of the description of the present invention. The Z direction corresponds to a vertical direction (yaw axis), the X direction corresponds to a longitudinal direction of the aircraft (roll axis), and the Y direction corresponds to a transverse direction (pitch axis).
[0025] As can be seen in the figures, the invention relates to a device, referenced 1 in the figures, for joining one element of the aircraft to a second element of the aircraft.
[0026] In the illustrated embodiment, and without limitation, the first element is a cross member, for example of the aircraft cockpit floor, and the second element is a longitudinal beam.
[0027] The joining device 1 comprises a first part 2, intended to be attached to the cross member, and a second part 3, intended to be attached to the longitudinal beam.
[0028] In the illustrated embodiment, and without limitation, the first element 2 is a connecting fitting while the second element 3 is a fork.
[0029] As can be seen in the figures, the connecting fitting 2 is attached to the aircraft cross member 4 via a set of angle brackets 5 to which it is for example screwed or riveted.
[0030] As also visible in the figures, the fork 3 includes a main branch 6 which splits along the direction X into two branches 7, 8, referred to respectively as upper and lower, spaced apart from each other so as to delimit an internal volume V of the fork 3.
[0031] The joining device 1 comprises a connecting axis 9, extending longitudinally along the Y direction. The connecting axis 9 is preferably made of 45NCD16 steel material.
[0032] As can be seen from the figures, the connecting fitting 1 includes a housing provided with an oblong ring 10, into which the connecting pin 9 is inserted. Preferably, the oblong ring 10 is made of cupronickel material, in order to reduce the coefficient of friction between the connecting pin 9 and the oblong ring 10 and, therefore, minimize the effect of wear between the connecting pin 9 and the oblong ring 10.
[0033] The dimensions of the connecting shaft 9 and the oblong ring 10 are such that the shaft 9 rests against the oblong ring 10 in the Y direction while the shaft 9 is free in the X direction, as can be clearly seen in Figures 1 and 2. In [Fig. 1], it can be seen that a diameter D of the shaft 9 coincides with a width 1 of the ring 10, which helps to lock the shaft in the Y and Z directions. In Figures 1 and 2, it can be seen that the diameter D of the shaft 9 is strictly less than a length L of the ring 10, which leaves the shaft 9 free in the X direction.
[0034] The joining device 1 includes a rigid fixing means 11 for the connecting shaft 9 against the oblong ring 10 in the Z direction. The rigid fixing means 11 includes, for example, a nut 12 placed against the oblong ring 10.
[0035] As can be seen in figures 1 and 2, the connecting axis 9 is arranged at a distance from the oblong ring 10 in at least one plane (X, Y).
[0036] The connecting device 1 also includes a flexible fastening means 13 for the connecting shaft 9 in the X direction. The flexible fastening means 13 includes at least one pad made of elastomeric material, integral with the connecting fitting 2. The elastomer advantageously has a low stiffness, preferably less than or equal to 3000 N / mm². Each pad limits the displacement of the connecting shaft 9 in the X direction.
[0037] In the illustrated embodiment, the joining device 1 comprises two elastomer pads 14, 15 arranged in the internal volume V of the fork 3. The pad 14 is positioned against the connecting fitting 2, the upper arm 7, and the ring oblong 10. The disc 15 is positioned against the connecting fitting 2, the lower branch 8 and the oblong ring 10.
[0038] The connecting device 1 also includes at least one cylindrical clamping ring for the connecting shaft 9. In the illustrated embodiment, the connecting device 1 comprises three cylindrical rings stacked along the Y direction, referred to respectively as the upper ring, 16, the middle ring, 17, and the lower ring, 18. Each of the cylindrical rings 16 to 18 is preferably made of 45NCD16 steel. The stacking of the cylindrical rings 16 to 18 in the Y direction allows the shaft 9 to be clamped without pre-stressing the fork 3. The mechanical contact between each cylindrical ring and the connecting shaft 9 forms part of the rigid fastening means 11.
[0039] As particularly visible in [Fig.2], the upper cylindrical ring 16 rests against the elastomer pad 14, while the lower cylindrical ring 18 rests against the elastomer pad 15. The support of the connecting shaft 9 against the pads 14, 15 ensures the flexible support of the shaft 9 in the X direction.
[0040] As seen in [Fig.2], the connecting axis 9 passes, in the Y direction, through the upper and lower arms 6, 7, of the fork 3, the oblong ring 10 and the elastomer pellets 14 and 15.
[0041] Thus, the rigid fastening means 11, comprising the rigid contact of the shaft against the metal parts (arms 6, 7, of the fork 3, cylindrical rings 16 to 18, oblong ring 10) and the tightening by nut or washer, ensures a zero degree of freedom in the Z direction. The flexible fastening means 13, comprising each elastomer pad 14, 15, ensures a non-zero degree of freedom in the X direction. In other words, the device 1 makes it possible to join the aircraft elements by allowing movement in one direction (the X direction in the figures) by the use of elastomer while blocking movement in one or more other perpendicular directions by rigid mechanical contact (the Y and Z directions in the figures).Device 1, comprising both elastomer pads and a rigid contact between the metal parts (connecting shaft and fork, connecting shaft and oblong ring), ensures anisotropic behavior of device 1. In the longitudinal direction (X), the elastomer pads 14, 15 allow smooth movement thanks to the low rigidity of the elastomer (less than 3000 N / mm), so that the deformation imposed on the floor during an aircraft flight does not produce a significant load in Injunction 1. In the vertical direction Z, the load from the cockpit floor is transferred from the longitudinal beam to the transverse beam rigidly, by the mechanical contact between the metal parts, namely the connecting shaft 9, the cylindrical rings 13 and the oblong ring 10.
[0042] And, the connecting fitting 2 is taken up via the angle brackets 5 on the cross member 4 in order to loop back the forces introduced on the cockpit floor in the hybrid elasto-metallic connection.
[0043] Modifications and improvements to the above-described implementations of the present invention may be apparent to those skilled in the art. In particular, the described embodiments and variants are combinable insofar as they are not incompatible. The above description is illustrative by way of examples rather than exhaustive. The scope of the present invention is therefore limited only by the scope of the claims below.
Claims
Demands
1. Device for Injunction of a first element of an aircraft to a second element of an aircraft, comprising a first connecting part (2) intended to be integral with said first element and a second connecting part (3) intended to be integral with said second element, the device (1) comprising an oblong ring (10), the device (1) comprising a connecting pin (9) disposed in the oblong ring (10) so as to be locked in the oblong ring (10) in a first direction (Z) and free in a second direction (X), the device (1) comprising at least one pad of elastomeric material (14, 15) in which the connecting pin is inserted so as to reduce the displacement of the connecting pin (9) in the second direction (X).
2. Device according to the preceding claim, wherein a diameter (D) of the connecting axis (9) coincides with a width (1) of the oblong ring (10).
3. Device according to any one of the preceding claims, comprising at least two cylindrical rings (16, 17, 18) stacked along the connecting axis (9), each of said cylindrical rings (16, 17, 18) being inserted into said at least one elastomer pellet (14, 15).
4. Device according to the preceding claim, comprising three stacked cylindrical rings (16, 17, 18).
5. Device according to any one of the preceding claims, comprising at least a first elastomer pellet (14) and at least a second elastomer pellet (15) arranged on either side of the oblong ring (10), the connecting axis (9) being inserted into each of the elastomer pellets (14, 15).
6. Device according to any one of the preceding claims, wherein the elastomer has a stiffness less than or equal to 3000 N / mm.
7. Device according to any one of the preceding claims, wherein the connecting axis (9) is made of steel.
8. Device according to any one of the preceding claims, wherein the oblong ring (10) is made of cupronickel.
9. Aircraft, comprising a joining device according to any one of the preceding claims.
10. Aircraft according to the preceding claim, wherein the first element is a fuselage crossmember, for example of a cockpit floor, and the second element is a longitudinal fuselage beam.
Citation Information
Patent Citations
Fixing device
EP2614002B1
PIVOT LINK TYPE assembly
FR3024890A1
Aircraft cabinet mounting structure
US6318672B1