Swivel cable fixing clip and dynamic cable guiding method.
The pivoting cable fixing clip with a torsion spring mechanism addresses the need for adjustable cable length in aeronautical structures by providing compact, lightweight, and easy installation, suitable for mobile structures.
Patent Information
- Application Number
- FR2022001819
- Authority / Receiving Office
- FR · FR
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2022-03-02
- Publication Date
- 2025-08-15
- Estimated Expiration
- 2042-03-02
AI Technical Summary
Existing cable routing solutions in aeronautical structures, such as cable trays and P-clip fasteners, fail to provide adjustable cable length and require additional guide rails, occupying significant space and adding weight, which is not suitable for narrow spaces and does not meet the requirements of lightweight and rapid installation.
A pivoting cable fixing clip with a base plate and a cable clamp, integrated with a return mechanism like a torsion spring, allowing the cable length to adjust dynamically without additional guide rails, ensuring compact installation and independent operation.
The fixing clip allows cable length adjustment without hindering structure mobility, reducing mass and space requirements, and enabling quick, tool-free installation with electrical insulation, suitable for mobile structures like aircraft components.
Smart Images

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Abstract
Description
Title of the invention: Pivoting cable fixing clip and dynamic cable guiding method. Technical field
[0001] The invention relates to a cable fixing clip allowing the useful length of this cable to be adjusted dynamically by pivoting, as well as to a method of guiding a cable using such a fixing clip. More generally, the present invention relates to means for attaching and adjusting a cable in a structure, a part of which is mobile, the cable extending over this mobile part and accompanying its movement. The cables covered by the invention are any type of signal or energy-carrying cable, these cables being individual or in bundles. In particular, vehicles - aircraft, automobiles, trains, ships - and buildings are intended to be equipped with fixing clips.
[0002] Such fixing clips are used to bring cables into constrained areas of a mobile structure with reduced installation space. For example, in the aeronautical world, landing gear door panels are mobile structures which, when open, allow the landing gear to extend and which, when closed, allow the fuselage to be kept closed. These panels have cables in their internal structure which must adjust to the open or closed position of the panels.
[0003] The optimization of structures leads, particularly in the aeronautical world, to the reduction of free spaces available for installing cables. It is therefore particularly appropriate that the fixing supports for these cables are multifunctional and allow the adjustment of the length of the cables. STATE OF THE ART
[0004] In aeronautical structures, cable trays are generally used to route cables within the aircraft, particularly in the wings and the cabin, these cable trays having the additional function of protecting and insulating the cables they route. However, they cannot be used in very narrow spaces such as the wingtips, the available space being too narrow. In addition, the cable trays do not allow adjustment of the useful length of the cables routed.
[0005] Other usual fixing means, such as P-clip type fasteners or clamps, do not allow adjustment of the cable length after its installation: in fact, these fasteners have the function of fixing and holding the cables.
[0006] Traditionally, adjustment of a cable length after its installation is carried out using cable carrier chains. Such a device is used in particular as mechanical element of machines to guide cables connected to a mobile structure. However, such a solution requires the installation of additional guide rails which frame the cable chains and then take up a significant amount of space: such a solution is therefore not usable in narrow spaces.
[0007] Furthermore, the structure on which these cable carriers are installed is sized to support the additional weight of the guide rails and the installation of these requires labor and tools. This solution therefore does not meet the basic requirements relating to the lightening of structures and speed of installation. Statement of the invention
[0008] In order to overcome the drawbacks of the state of the art set out above, the main objective of the invention is to enable a cable to be attached and its useful length to be adjusted within a structure, part of which is mobile, this structure offering a reduced space to fulfil these objectives.
[0009] To this end, the invention relates to a fastener for attaching a cable to a structure, this fastener having a degree of freedom, particularly in rotation, allowing the length of the cable to be adjusted relative to the mobile part of the structure to which it is attached. This adjustment of the length of the cable is sought to avoid hindering the mobility of the structure and damaging the devices connected by the cable.
[0010] More specifically, the present invention relates to a fastener for fixing at least one cable to a structure, a part of which is movable between an initial position and a final position. This fixing fastener comprises a base plate defining a reference plane and secured to the structure, as well as a cable clamp, this clamp being inserted into the base plate. The fixing fastener also comprises a return means arranged between the clamp and the base plate, each of which has an anchoring mechanism in connection with this return means, the latter maintaining the clamp in a nominal position when the movable part of the structure is in the initial position.In addition, the clamping collar pivots along a pivot axis in the base plate from this nominal position when at least one of the cables is stressed in one direction by the movement of the movable part of the structure and returns to the nominal position by the return of the return means when the cables are released.
[0011] Advantageously, the fixing fasteners according to the invention adapt to mobile structures and allow the installation therein of devices and mechanisms requiring wiring such as locking or lighting systems, the useful length of these cables then adapting to the movement of the mobile structure.
[0012] Advantageously also, the fixing clip is of compact dimensions and operates independently of any additional installation such as guide rails or power sources. These compact dimensions allow the installation of the fixing clip in spaces constrained by reduced bulk.
[0013] Advantageously also, the operation of the fixing clip is purely mechanical with a dynamic return of the cables under the action of the return means, making it possible to dispense with the routing of power cables and additional actuation means, as well as to reduce the mass of the cable installation systems.
[0014] Also advantageously, the anchoring mechanisms of the return means are integrated into the clamping collar and the base plate, thus simplifying the installation of the fixing clip.
[0015] Advantageously also, the clamping collar is only mobile in rotation: its size therefore hardly varies during the movement of the structure.
[0016] According to certain preferred embodiments taken alone or in combination: - the base plate is fixed to the structure by at least two screws; - the clamp is clipped onto the base plate; - the clamp and base plate are made of molded plastic material; - the cable clamp has a cable support closed by a cover; - the cover is assembled by clipping onto the cable support; - the cable support comprises a base plate perpendicular to the pivot axis and a cylindrical rod which extends along this axis under the base plate, this cylindrical rod having an end which is inserted into the base plate; - the end of the cylindrical rod has at least two flexible teeth which pass through the base plate and which bear on a lower face of the base plate; - the return means is a torsion spring along an axis coincident with the pivot axis of the clamping collar and comprises a body and two ends extending tangentially relative to this body; - the base plate has a hollow cylinder around which the torsion spring is arranged and into which the cable holder of the cable clamp is inserted; - each anchoring mechanism comprises at least one stop, perpendicular to the reference plane, on which a lateral portion of one end of the torsion spring rests; - the clamp anchoring mechanism is integrated into the base plate, and - the anchoring mechanism of the base plate comprises two parallel stops for locking the end of the torsion spring in rotation in connection with the plate base.
[0017] Advantageously, the installation of such a fixing clip is quick and easy, without requiring specific tools. The use of plastic materials also makes it possible to provide electrical insulation, particularly when the cables are electrical.
[0018] The invention also relates to a method for dynamically adjusting a cable length in a structure, a part of which is mobile, moving back and forth between an initial position and a final position, this structure being equipped with at least one cable fixing clip, also the subject of the invention. A preliminary installation phase takes place according to the following steps: - determination of the maximum cable length required; - sizing of the recall means according to the characteristics of the cable; - orientation of the base plate on the structure in order to orient the clamp in the direction of stress on the cable when the moving part of the structure is in the final position.
[0019] The forward adjustment takes place in the following steps: - in the initial position of the moving part, the return means maintains the clamp in the nominal position in which the cable is bent and relaxed, creating a reserve of cable which can be pulled; - movement of the mobile part of the structure between its initial position and its final position by exerting unwinding tension on the cable; - rotation of the clamp from its nominal position which guides the unwinding of the previously bent cable; - the moving part reaches its final position and the return means exerts a traction opposite to the unwinding tension on the cable by driving the clamp in reverse rotation.
[0020] And the return adjustment takes place according to the following steps: - movement of the moving part of the structure between its final position and its initial position accompanied by a release of the tension in the cable; - reverse rotation of the clamp until reaching the nominal position by action of the return means and traction of the cable.
[0021] Advantageously, the installation method makes it possible to optimize the length of cable installed in the structure, resulting in a gain in mass and space within the structure. The return means makes it possible to order the cables when their entire length is not required by the structure, in particular in the initial position.
[0022] Advantageously also, this dynamic adjustment makes it possible to secure the management of the cables and the operation of the connected equipment when the mobile part of the structure makes several round trips between the initial position and the position final.
[0023] According to a preferred form of implementation: - at least two fixing clips installed in parallel adjust at least two cables in the structure. PRESENTATION OF FIGURES
[0024] Other characteristics and advantages of the present invention will emerge from the following reading of a detailed exemplary embodiment without limiting its scope, with reference to the appended figures which represent, respectively:
[0025] - [Fig. 1], a perspective view of a cable held by a fixing clip at a structure;
[0026] - [Fig.2], an exploded perspective view of the fixing clip;
[0027] - [Fig.3], a sectional view of the fixing clip, and
[0028] - [Fig.4], [Fig.5] and [Fig.6], a view of the system according to different stages of the adjustment process. DETAILED DESCRIPTION
[0029] In the figures, identical reference signs refer to the same element as well as to the corresponding passages of the description.
[0030] In aeronautical structures and in particular in aircraft, at least a part of said structure is movable between an initial position and a final position such as the landing gear doors or the end of the wings. These parts movable in rotation or in translation are cabled like the rest of the structure of the aircraft, the installation of these cables having to be adapted to this mobility to allow the proper functioning of the structure and not to hinder this mobility.
[0031] To do this, [Fig.l] shows a cable 6 held in a fixing clip 2 secured to an aircraft wingtip structure 1. A part of the structure 1, a support 1a, is fixed in a given frame of reference, and another part 1b is movable in this frame of reference. The fixed parts 1a and movable parts 1b of the structure 1 are connected by articulation means 1c, schematically represented, for example hinges.
[0032] This fixing clip 2 comprises a base plate 4 defining a reference plane H. This base plate 4 has three holes 4a which each house a screw 4b fixing the base plate 4 to the support 1a of the structure 1. Alternatively, the base plate 4 can be fixed by clipping, glued, welded or riveted to the fixed part 1a. The fixing clip 2 also comprises a clamping collar 3 inserted in the base plate 4 as well as a return means, here a torsion spring 5. The torsion spring 5 is arranged between the clamping collar 3 and the base plate 4 which each have an anchoring mechanism 5a, 5b in connection with the torsion spring 5. The latter maintains the clamping collar 3 in a nominal position when the part mobile of structure 1 is in initial position.
[0033] In the final position, the movable part 1b is in an intermediate position between the initial position and an alignment position in the extension of the fixed part in the reference plane H.
[0034] Furthermore, the clamping collar 3 pivots in the base plate 4 along a pivot axis P, perpendicular to the reference plane H, from said nominal position when the cable 6, also integral with this movable part, is stressed in the direction D by the movement of the movable part of the structure 1. During this rotation, the torsion spring 5 accumulates energy by deformation. The clamping collar 3 returns to the nominal position by the return of the torsion spring 5 when the cable 6 is released - by mechanical release of the energy accumulated by deformation - in particular when the movable part of the structure 1 returns to its initial position. Alternatively and depending on the configuration of the structure 1, the pivot axis P may, in particular embodiments, not be perpendicular to the reference plane H.
[0035] The constituent elements of the fixing clip 2 are illustrated in the exploded perspective view of [Fig.2]: the clamp 3 comprises a cable support 3a closed by a cover 3b, here clipped laterally on either side of the cable support 3a. To do this, the cover 3b has two lateral edges 3c, each pierced with two openings 3d which clip onto tenons 3e arranged on either side of the cable support 3a. The cover 3b is here assembled by two clips on each lateral edge 3c to improve safety and remain held in place in the event of breakage of one of the tenon 3e - opening 3d junctions: in other embodiments, the cover 3b can be simply clipped and / or comprise a locking means. Alternatively, the cover 3b can be connected by a cord on one side of the cable support 3a and clipped on the other side, the cable support 3a and the cover 3b then forming a single piece.Other embodiments may assemble the cable clamp by fasteners and / or flanges. A set of grooves and ribs disposed on the cover and the cable support and then locked may also achieve the assembly of the cable clamp.
[0036] The cable support 3a has three superimposed functional members: a “U”-shaped block 3f, a base plate 3g perpendicular to the pivot axis P, and a cylindrical rod 3h which extends along this pivot axis P under the base plate 3g. This cylindrical rod 3h has an end 3i which is inserted into the base plate 3g. In addition, the block 3f supports the cable 6 and has at its ends the tenons 3e.
[0037] In the exemplary embodiment, the base plate 4 comprises a hollow cylinder 4c around which the torsion spring 5 is arranged and in which the support of cable 3a of the clamp 3 via the cylindrical rod 3h. The connection between the hollow cylinder 4c and the cylindrical rod 3h allows the clamp 3 to pivot in the base plate 4 along the pivot axis P perpendicular to the reference plane H.
[0038] The return means is here a torsion spring 5 along an axis coincident with the pivot axis P of the clamping collar 3. This torsion spring 5 comprises a body 5c as well as two ends 5d, 5e extending tangentially relative to this body 5c. The ends 5d, 5e remain in connection with the anchoring means 5a, 5b of the clamping collar 3 and of the base plate 4 respectively.
[0039] Furthermore, each anchoring means 5a, 5b comprises at least one stop - 5f for the anchoring means 5a and 5g, 5h for the anchoring means 5b - perpendicular to the reference plane H, and on which a lateral portion 5i, 5j of one end 5d, 5e of the torsion spring 5 bears.
[0040] In addition, the anchoring means 5a of the clamping collar is integrated into the base plate 3g, the stop 5f forming a right angle with the base plate 3g.
[0041] Furthermore, the anchoring means 5b of the base plate 4 comprises two parallel stops 5g, 5h for locking the end 5e of the torsion spring 5 in rotation in connection with the base plate 4. This end 5e being locked in rotation about the pivot axis P, only the end 5d is movable in rotation during the torsion of the torsion spring 5: thus the traction of the cable 6 causes the formation of a rotation pivot of the clamping collar 3 about the axis P to align the direction of the cable 6 with the traction direction. During this rotation, the stop 5f of the anchoring means 5a rotates the end 5d of the torsion spring 5. When the tension of the cable 6 is released, the torsion spring 5 is free to exert a restoring force on the stop 5f, causing the formation of a return rotation pivot of the clamping collar 3.
[0042] Preferably, the clamp 3 and the base plate 4 are made of molded plastic material, this material providing electrical insulation. Alternatively, when electrical insulation is not required, the clamp 3 and the base plate 4 may be molded and / or machined from a metallic material, or made from composite materials.
[0043] The sectional view shown in [Fig.3] details the connections between the clamp 3 and the base plate 4. The cylindrical rod 3h of the clamp 3 pivots in the hollow cylinder 4c. Furthermore, the base plate 4 has an opening 4d in continuity with the hollow cylinder 4c, through which the end 3i of the clamp is inserted. This end 3i has two flexible teeth 3j which pass through the base plate 4 through the opening 4d and which bear on the lower face 4e of the base plate 4. These flexible teeth 3j make it possible to clip the clamp 3 onto the base plate 4.
[0044] [Fig.4], [Fig.5] and [Fig.6] illustrate the different steps of an example of a method for dynamically adjusting a cable length in the structure 1, a moving part of which moves back and forth - between an initial position and a final position - this structure 1 being equipped with two cable fixing clips. In this example embodiment, two cables 6 and 6a are each attached to the structure 1 by a fixing clip 2 and 2a installed in parallel. Alternatively, a single fixing clip can be used for two cables.
[0045] A preliminary step of installing cables 6 and 6a takes place according to the following steps: - determination for each cable of the maximum cable length allowing the mobile part of the structure to move; - dimensioning of the torsion spring according to the mechanical characteristics of the cable; - orientation of the base plate 4, 4a on the structure 1 in order to orient the clamp 3, 3k in the direction of stress D of the cable 6 when the movable part of the structure is in the final position.
[0046] Following this installation of the cables, these are bent and relaxed in order to provide a reserve of cable in the vicinity of the fixing clip which unfolds in a controlled manner by the fixing clip when the cables are under tension. The return means, here the torsion spring, allows the fixing clip to pivot in order to reconstitute this reserve when the cables are no longer under tension.
[0047] The forward adjustment process takes place according to the following steps: - in the initial position of the moving part illustrated in [Fig.4], the torsion spring 5 maintains the clamp 3, 3k in the nominal position in which the cable 6, 6a is bent and relaxed, creating a reserve of cable which can be used; - movement of the mobile part of the structure between its initial position and its final position by exerting an unwinding tension on the cable 6, 6a; - rotation of the clamp 3, 3k from its nominal position which guides the unwinding of the previously bent cable 6, 6a; - the moving part reaches its final position in [Fig.5] and the torsion spring 5 exerts a traction opposite to the unwinding tension on the cable 6, 6a by driving the clamp 3, 3k in reverse rotation.
[0048] And the return adjustment process takes place according to the following steps: - movement of the mobile part of the structure between its final position ([Fig.6]) and its initial position ([Fig.4]) accompanied by a release of the tension in the cable 6, 6a; - reverse rotation of the clamp 3, 3k until reaching the nominal position by action of the torsion spring 5 and traction of the cable 6, 6a.
[0049] The invention is not limited to the embodiments and implementations described and shown. Thus, the base plate of the fixing clip can be an integral part of the structure, the clamping collar then being fixed and pivoting directly on the structure. The return means can also be produced by any type of spring (leaf, tension, compression) or by more complex mechanisms with jacks: the hollow cylinder of the base plate is then no longer necessary, the clamping collar being able to pivot directly relative to the base plate.
[0050] Furthermore, the anchoring mechanism can be obtained by any holding of the ends of the spring using attachment rings, locks or perforation of the base plate and the base plate into which the ends of the spring are folded.
Claims
Claims
1. Fastening clip (2) for at least one cable (6) on a structure (1) of which a part is movable between an initial position and a final position, this fastening clip (2) comprising a base plate (4) defining a reference plane (H) and secured to the structure (1), as well as a cable clamp (3), this clamp (3) being inserted into the base plate (4), this fastening clip (2) being characterized in that it comprises a return means arranged between the clamp (3) and the base plate (4) which each have an anchoring mechanism (5a, 5b) in connection with this return means, the latter maintaining the clamp (3) in a nominal position when the movable part of the structure (1) is in the initial position,and in that the clamping collar (3) pivots about a pivot axis (P) in the base plate from this nominal position when at least one of the cables is stressed in a direction (D) by the movement of the movable part of the structure (1) and returns to the nominal position by the return of the return means when the cables are released.,
2. Fixing clip (2) according to the preceding claim, in which the base plate (4) is fixed to the structure (1) by at least two screws (4b).
3. A fixing clip (2) according to any preceding claim, wherein the clamp (3) is clipped onto the base plate (4).
4. A fixing clip (2) according to any preceding claim, wherein the clamp (3) and the base plate (4) are made of molded plastic material.
5. A fixing clip (2) according to any preceding claim, wherein the cable tie comprises a cable support (3a) closed by a cover (3b).
6. Fixing clip (2) according to claim 5, in which the cover (3b) is assembled by clipping onto the cable support (3a).
7. A fixing clip (2) according to any one of claims 5 or 6, wherein the cable support (3a) comprises a base plate (3g) perpendicular to the pivot axis (P) and a cylindrical rod (3h) extending along this axis under the base plate (3g), this cylindrical rod (3h) having one end which is inserted into the plate of base (4).
8. Fixing clip (2) according to any one of the preceding claims, in which the return means is a torsion spring (5) along an axis coincident with the pivot axis (P) of the clamping collar (3) and comprises a body (5c) as well as two ends (5d, 5e) extending tangentially relative to this body (5c).
9. A fixing clip (2) according to claim 8, wherein the base plate (4) comprises a hollow cylinder (4c) around which the torsion spring (5) is arranged and into which the cable holder (3a) of the cable tie (3) is inserted.
10. Fixing clip (2) according to any one of claims 8 or 9, in which each anchoring mechanism (5a, 5b) comprises at least one stop (5f, 5g, 5h), perpendicular to the reference plane (H), on which a lateral portion (5i, 5j) of one end (5d, 5e) of the torsion spring (5) bears.
11. A fixing clip (2) according to any preceding claim in combination with claim 7, wherein the anchoring mechanism (5a) of the clamp (3) is integrated into the base plate (3g).
12. Fixing clip (2) according to any one of claims 10 or 11, in which the anchoring mechanism (5b) of the base plate (4) comprises two parallel stops (5g, 5h) for locking in rotation the end (5e) of the torsion spring (5) in connection with the base plate (4).
13. Method for dynamically adjusting a cable length in a structure (1) of which a part is movable, moving back and forth between an initial position and a final position, this structure (1) being equipped with at least one cable fixing clip (2) according to any one of claims 1 to 12, characterized in that a preliminary installation phase takes place according to the following steps: - determination of the maximum cable length (6) required; - dimensioning of the return means according to the characteristics of the cable (6); - orientation of the base plate means (4) on the structure (1) in order to orient the clamp (3) in the direction of stress (D) of the cable (6) when the movable part of the structure is in the final position; in that the forward adjustment takes place according to the following steps: - in the initial position of the movable part, the return means maintains the clamp (3) in the nominal position in which the cable (6) is bent and relaxed, creating a reserve of cable which can be pulled; - movement of the mobile part of the structure between its initial position and its final position by exerting unwinding tension on the cable; - rotation of the clamp (3) from its nominal position which guides the unwinding of the previously bent cable (6); - the moving part reaches its final position and the return means exerts a traction opposite to the unwinding tension on the cable (6) by driving the clamp in reverse rotation; and in that the return adjustment takes place according to the following steps: - movement of the mobile part of the structure 1 between its final position and its initial position accompanied by a release of the tension in the cable; - reverse rotation of the clamp (3) until reaching the nominal position by action of the return means and traction of the cable (6).
14. Method for dynamically adjusting a cable length according to the preceding claim in which at least two fixing fasteners (2, 2a) installed in parallel adjust at least two cables (6, 6a) in the structure 1.