Method for connecting the conductors of a flexible bonded (equipotential) connection layer

09711925 ยท 2017-07-18

Assignee

Inventors

Cpc classification

International classification

Abstract

A method electrically connects by crimping electrical conductors in a connector for equipotential connection of a planar and flexible layer formed by the conductors, to metal components. The method includes positioning the electrical conductors in individual longitudinal and parallel cells which are formed between two planar walls of the connector, crimping the conductors crimped in a crimping zone by simultaneous transverse punching of at least one wall of the connector, and forming by the transverse punching at least one corresponding transverse groove line on the at least one connector wall and, by load transfer, on each of the conductors to electrically connect the conductors.

Claims

1. A method for electrically connecting by crimping electrical conductors in a connector for equipotential connection of a planar and flexible layer formed by the conductors, to metal components, the method comprising: positioning the electrical conductors in individual longitudinal and parallel cells which are formed between two planar walls of the connector; crimping the conductors crimped in a crimping zone by simultaneous transverse punching of at least one wall of the connector; and forming by the transverse punching at least one corresponding transverse groove line on the at least one wall of the connector and, by load transfer, on each of the conductors to electrically connect the conductors.

2. The electrical connection method according to claim 1, wherein the punching is carried out by uniform pressing of a rib on at least one of the planar walls of the connector.

3. The electrical connection method according to claim 2, wherein the rib and the at least one corresponding transverse groove line are cylindrical.

4. The electrical connection method according to claim 1, wherein the punching is carried out by uniform pressing of ribs on the two planar walls of the connector, and the ribs are alternated so that the corresponding transverse groove lines are interleaved to form an undulating routing for the conductors in the connector.

5. The electrical connection method according to claim 4, wherein the ribs and the corresponding groove lines are cylindrical.

6. The electrical connection method according to claim 1, wherein the connector is formed of aluminum alloy.

Description

DESCRIPTION OF THE FIGURES

(1) Other aspects and features of the implementation of the invention will emerge from the following detailed description, accompanied by accompanying drawings in which:

(2) FIG. 1 is a transverse cross-sectional view of a portion of an aircraft passenger cabin provided with an example of a wiring loom according to the prior art (already discussed);

(3) FIG. 2a to 2c are a front view and cross-sections along II-II and II-II of an example of a terminal connector according to the invention;

(4) FIG. 3a to 3c are side and upper views of schematic examples of connectors of a terminal connector according to the invention in the current return network;

(5) FIG. 4a to 4c are a front view and cross-sections along IV-IV and IV-IV of an example of a multi-point intermediate connector;

(6) FIG. 5 is a transverse cross-section of one of the layer-type conductors to be crimped in a connector;

(7) FIG. 6a to 6d are front views (FIGS. 6a and 6c) and sectional views (FIGS. 6b and 6d), before and after crimping respectively, of an example of a tool for crimping conductors in a connector according to the invention;

(8) FIG. 7a to 7d are perspective views (FIGS. 7a and 7b), a front view (FIG. 7c) and a sectional view (FIG. 7d) of another example of a tool for crimping conductors in a connector according to the invention, and

(9) FIGS. 8a and 8b are a perspective view and a sectional view of a terminal connector after crimping of the conductors using the tool according to FIG. 7a to 7d, respectively.

DETAILED DESCRIPTION

(10) Identical reference signs used in the various figures relate to elements which are identical or technically equivalent. The terms upper, central and lower refer to the relative positioning during standard use or assembly mode. The terms longitudinal and transverse refer to elements which extend respectively in a given direction and along a plane which is perpendicular to this direction, in particular longitudinal refers to the fuselage axis of an aircraft.

(11) The terminal connectors 32, as illustrated by the front and sectional views II-II and II-II of FIG. 2a to 2c, comprise an upper wall 32s and a lower wall 32i between which individual aligned cells 57 extend from a side 32c and over the entire length of said side. Each cell 57 is capable of receiving a conductor end in order to be crimped over the entire length thereof. A chamfer 57c is provided at the input of each cell 57 in order to facilitate the insertion of the conductor and to keep the cohesion of the aluminium strands of the conductors 51 (FIG. 5) together when the conductors 51 are inserted into their individual cell. One or more strands of aluminium are thus prevented from remaining outside the cell to be crimped. In the case of the terminal connectors 32, the cells 57 are blind cavities.

(12) The terminal connectors 32 are connected to the metal support components 11 and metal transverse components 14 (FIG. 1) for current return via appropriate fixings and interfaces. The range of electrical contact 54c which surrounds the fixing opening 54 is extended in order not to exceed predetermined heating limits as a result of the Joule effect.

(13) The terminal connector illustrated has a longitudinal axis of symmetry XX with a pointed tip 32a, the opening 54 being produced substantially at the centre of this end. Such a fixing interface may receive a bending, a folding through a given angle, etc. According to other variants, the interface may be of the rapid disconnection type, via a turn or the like.

(14) In the schematic examples illustrated by the side and upper views of FIG. 3a to 3c, the connections are of the rapid disassembly type in order to produce a connection/disconnection, for example, in less than 10 seconds. The connections R1, R2, R3 are thus formed of two portions: a portion 2 of the connector which cannot be disassembled from the terminal connector 32 replaces the system of connection via an opening 54. The geometry of the tip 32a (FIG. 2a) is modified locally in order to adapt said portion 2 of the rapid connection/disconnection system. The complementary portion 3 which is assembled by means 4 for screwing or clip-fitting on the portion 2 is then installed on a current return element 10 (FIG. 1). In another embodiment, a first portion of said portion 2 is formed, for example, by a cable 2c (FIG. 3c) and can be assembled using crimping means 4c on the terminal connector 32.

(15) With regard to the intermediate connectors 34, a front view and sectional views IV-IV and IV-IV are illustrated in FIG. 4a to 4c, respectively.

(16) This connector comprises an upper wall 34s and lower wall 34i between which cells 58 extend over the entire length of the sides 34c. The cells 58 are formed by longitudinally continuous cavities which extend through the connector 34 from one side to the other. These cavities are terminated with chamfers 58c which facilitate the access of the conductors in the cells 58.

(17) The conductors 51, such as the one illustrated in cross-section in FIG. 5, are inserted individually into the cells 58 without any cutting, which brings about a contact resistance increase and an increase in the reliability of the connection. The conductors are crimped in the cells in crimping zones Zs which are formed close to one and/or other of the sides 34c of the connector 34.

(18) The interface of the intermediate connector 34 with the metal components of the aircraft is adapted to specific needs. In this manner, the intermediate connectors 34 may have a single tip 35 having a fixing opening 56 or, as illustrated, two tips 35 which are symmetrical relative to the longitudinal axis X-X, having two fixing openings 56. The extent of the range of electrical contact 56a which surrounds the fixing opening 56 is optimised in terms of heat discharge and the fixings are carried out by means of screwing or the like through the openings 56.

(19) As for the terminal connectors, this interface may receive a bending, folding at a given angle or the like. Also, other variants of this interface may be of the rapid disconnection type, turn or the like. Advantageously, these intermediate connectors 34 allow a current return cable of an item of equipment to be connected closest to this item of equipment, forming a branching T, for example, using the connections R1 to R3 illustrated in FIG. 3a to 3c.

(20) In this manner, the interface of the multi-point intermediate connector 34 with the planar layer is produced by means of insertion and crimping of each conductor in an individual cell 58. Each conductor 51 is formed of elementary strands 55 of aluminium which are assembled to form a cord, as illustrated by the sectional view of FIG. 5. The conductor set out by way of example is a calibrated gauge AWG12 which has an outer diameter of approximately 2 mm.

(21) When a given layer is placed in position, dedicated tools allow each layer portion to be cut and crimped in the connectors 32 and 34 in order to produce the desired wiring loom. The connection of the wiring loom can thus be adapted in accordance with the configuration and the dimensions of the installation to be produced. In particular, this connection can be adapted to the resistivity of the connection to be connected, of the transit or excess current, of the number of fixing locations and the spatial requirement of the installation and the number of components to be connected.

(22) The geometry of the connectors allows their total mass to be reduced to an absolute minimum. In particular, the thickness of the connectors 32 and 34 between their walls is just at the maximum diameter of the conductors 51 whilst remaining sufficient to retain a strength which is compatible with the presence of the cells.

(23) The connectors are advantageously formed of an aluminium alloy for electrical use, and therefore have low resistivity. A surface-treatment for the connectors (nickel-coating, tin-coating, etc.) is preferably carried out so that this surface has low resistivity and forms electrical connections at an interface with tight fitting by means of reinforcement with the supports 11, 12, and the cross-members 14, 16 which have to be connected (cf. FIG. 1). In this manner, the risks of galvanic corrosion in the region of the electrical connection are eliminated.

(24) The layer is also modular in order to facilitate its adaptability: the number of conductors 51, the cross section thereof, the dimensions of the connectors, the number of intermediate connectors, the thickness and the width of the layer can be adjusted. Furthermore, the electrical and mechanical connection interfaces can be adapted to the component to be connected.

(25) The finishing in the region of the terminal connectors 32 and intermediate connectors 34 is ensured by portions of a heat-shrinkable polyolefin sheath or the like. This contracted external finishing casing, straddling the space between each connector and the planar layer, thus mechanically protects the crimping operations and the projecting portion of the conductors by completely covering this connector/conductor interface. This outer finishing casing is, in another example, produced by means of localised overmoulding, at low or high pressure.

(26) With more specific reference to the crimping of the conductors 51 in each connector cell, this is carried out by means of a dedicated tool. According to the invention, such a tool applies simultaneous and uniform pressure to the walls 32s and 32i of the terminal connectors 32 (or between the walls 34s and 34i of the intermediate connectors 34), in order to optimise the connection by minimising the plastic deformation and the movement of the material of the connectors. Advantageously, the control of the crimping pressure does not bring about any splitting in the connector 32.

(27) The crimping of all the cells 57 is carried out simultaneously and in a single operation. The crimping compresses and deforms the individual strands of the conductors 51 but does not change the equivalent cross section of conductive material of the conductors.

(28) The length of elementary crimping is such that the traction force which it is necessary to apply to a conductor 51 in order to make it slide or remove it from its crimping is greater than the elastic limit of this conductor.

(29) Advantageously, the conductors are not destranded before crimping. The electrical resistance of an elementary crimping is less than or equal to the electrical resistance of the conductor length equivalent to the length of crimping.

(30) Suitable surface treatment of the conductors 51by means of nickel-coating, tin-coating, silver-coating or the likeallows electrochemical compatibility with that of the connectors, and the surface treatments are not destroyed by the crimping.

(31) With reference to the front and sectional views of FIGS. 6a and 6b, an example of a crimping tool 21 according to the invention comprises two shells, a shell referred to as an upper shell 21s and a shell referred to as a lower shell 21i. Each shell is composed of a main wall P1 which forms an inner face F1 and end edges B1 which are folded down (at least on one shell) perpendicularly to the main wall P1 so as to define an inner space E1. The inner face F1 of the upper wall 21s is provided with a transverse rib N1. In preparation for the crimping, the connector 32 is introduced into the space E1 so that the shells 21s and 21i are arranged at one side and the other of the walls 32s and 32i of the connector 32 to be crimped, a terminal connector in the example.

(32) The rib N1 of the shell 21s, which is positioned transversely, is located approximately mid-way in respect of the portion 51p of the conductors 51 which is located in the cells 57. This positioning is also suitable for crimping the conductors in an intermediate connector according to the invention.

(33) During the crimping operation, the same pressure Ps is applied to each shell 21s and 21i of the tool 21 in order to move the two shells 21s and 21i together until they contact the edges B1, as illustrated by FIGS. 6c and 6d. The rib N1 is introduced in a uniform and simultaneous manner into the wall 32s of the connector 32, forms a transverse cylindrical groove Rc in said wall 32s and, by means of load transfer, compresses and deforms the conductors 51.

(34) According to another example of a crimping tool, with reference to the perspective FIGS. 7a and 7b, the upper shell 22s of the tool 22 has, as above, a transverse rib N1. The inner face F2 of the lower shell 22i has two transverse ribs N2 and N3. Under these conditions, when the conductors 51 of a connector 32 are crimped, as illustrated in greater detail by FIGS. 7c and 7d, the rib N1 is located so as to be interleaved between the ribs N2 and N3. The application of the pressures Ps to the shells 22s and 22i brings about a uniform and simultaneous introduction of the ribs N1 to N3 into the walls 32s and 32i of the connector 32.

(35) As illustrated by the perspective and sectional views of the connector 32 in FIGS. 8a and 8b, grooves Rc are thus formed on the walls 32s and 32i of the connector 32. In order to better visualise the two parallel grooves formed on the lower wall 32i, the connector 32 is shown in an inverted manner in FIGS. 8a and 8b relative to standard use. By means of load transfer from the grooves Rc, the strands 55 of the conductors 51 are compressed and deformed alternately in order to have an undulating shape.

(36) After crimping, the electrical and mechanical performance levels are achieved: the value of the electrical resistance of a crimping is strictly less than the value of electrical resistance of a length of conductor equivalent to the length of the crimping (set out above); in a given connector, the electrical resistances of the crimpings are all located in a range of variation from each other in the order of approximately 5%, which allows the flow of non-homogeneous currents to be prevented in the conductors 51; the value of the traction resistance is at least equal to the value of the elastic limit of the conductor 51.

(37) The invention is not limited to the embodiments described and illustrated. It is, for example, possible to provide hybrid intermediate connectors which are partly formed by through-cavities and by blind cells in order to accommodate the conductors. Furthermore, the conductors are preferably of aluminium alloy but could also optionally be of copper alloy or titanium alloy.