SHIELDED FLEXIBLE RIBBON CABLE

The method of stacking insulating and shielding layers on FFCs addresses power and interference issues, enhancing transmission capacity and shielding effectiveness while simplifying production.

DE102024101089A1Pending Publication Date: 2025-07-17NEXANS SA
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Patent Information

Application Number
DE102024101089
Authority / Receiving Office
DE · DE
Patent Type
Applications
Current Assignee / Owner
Filing Date
2024-01-15
Publication Date
2025-07-17

AI Technical Summary

Technical Problem

Existing shielded flexible flat cable (FFC) designs face limitations in power transmission capacity and are cumbersome to produce, especially when high-frequency pulsed currents are involved, and they lack effective shielding against electromagnetic interference.

Method used

A method for manufacturing a shielded FFC involves stacking insulating carrier layers with conductor tracks, applying insulating and shielding layers to ensure electrical connectivity while preventing short circuits, and optionally adding edge shielding for enhanced electromagnetic interference reduction.

Benefits of technology

The method enhances power transmission capacity and shields against electromagnetic interference, allowing for high-frequency current applications with improved production efficiency.

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Abstract

A method for manufacturing a shielded ribbon cable for higher power ratings is described. In addition to conductors for direct or alternating currents arranged in several superimposed layers, the ribbon cable has shielding surfaces at the top and bottom, as well as shielding conductors running laterally in the layers.
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Description

Area

[0001] The present invention relates to flexible ribbon cables, i.e., cables that have one or more conductor tracks applied to a flexible carrier made of insulating material. These cables are also known as foil cables, flat-flex cables, or flexible flat cables (FFC). These terms are used synonymously below. background

[0002] Foil cables are used particularly where there is insufficient installation space for other types of cables, especially when a large number of cables are routed parallel to one end of the cable.

[0003] For data lines over which data is transmitted at high transmission rates and which are to be shielded against electromagnetic interference, appropriate shielding must be provided, which is connected to a reference potential, usually to an earth or ground potential, at one or both ends of a cable.

[0004] In conventional shielded FFCs, a shielding layer, e.g., in the form of a metallized plastic film, is wrapped around the FFC after lamination. This subsequent application is comparatively complex and requires additional production steps.

[0005] Published patent application US 2021 / 0166836 A1 discloses a shielded FFC in which two signal lines running parallel to each other are arranged between two shield lines running parallel to the signal lines. The shield lines have exposed areas along the length of the FFC. Shielding surfaces are arranged on the top and bottom of the FFC, each of which is electrically connected to exposed areas of the shield lines.

[0006] Conventional FFCs have only a single layer for signal lines, which limits the power that can be transmitted across them, even with comparatively wide conductor paths. The advantages of shielded FFCs have not yet been exploited, particularly in applications where large currents flow in high-frequency pulses.

[0007] It is therefore an object of the present invention to propose a method for producing a shielded FFC for higher power. Description of the invention

[0008] This object is achieved by the method specified in claim 1. Further embodiments and developments of the method are specified in the dependent claims.

[0009] A method for producing a shielded flexible ribbon cable with a first length and a first width according to a first aspect of the invention comprises providing at least two electrically insulating carrier layers of the same length and width. At least one conductor track is applied to a surface of each of the at least two carrier layers. The method further comprises congruently stacking and mechanically connecting the at least two carrier layers with the conductor tracks applied thereon. The mechanical connection is designed to at least prevent separation or delamination of the layers. A slight displacement of the layers relative to one another may be possible or even desirable. The mechanical connection of the layers can be achieved by gluing, partial fusing of the layers, or by suitable interlocking structures.The method further comprises applying an insulating layer to the at least one conductor track of the uppermost carrier layer, wherein the insulating layer extends over a second length which is shorter than the first length, and wherein the ends of the insulating layer are spaced from the respective ends of the carrier layer such that the at least one conductor track is accessible for electrical contact at the respective ends. The method further comprises applying a closed first shielding surface to the uppermost insulating layer. The first shielding surface extends in the direction of the width of the ribbon cable at least over all conductor tracks, and in the direction of the length of the ribbon cable over a third length which is shorter than the first length. Preferably, the third length is as long as the second length or only slightly shorter.Similarly, a closed second shielding surface is applied beneath the bottommost carrier layer. The second shielding surface extends at least across all conductor tracks in the width direction of the ribbon cable and across a fourth length in the length direction of the ribbon cable. The fourth length can be equal to, shorter than, or longer than the third length, but not longer than the first length. The first shielding surface and the underlying insulating layer are aligned with the carrier layers in such a way that conductor tracks can be electrically contacted at both ends of the carrier layers.Alternatively, the first shielding surface and the underlying insulating layer are aligned with the carrier layers such that one or more conductor tracks can be electrically contacted at one end of the carrier layers, and the second shielding surface is aligned with the other end of the carrier layers such that one or more conductor tracks can be electrically contacted at the other end of the carrier layers. In both alternatives, this ensures that the one or more conductor tracks of the at least two carrier layers are not completely covered by both shielding surfaces at any end of the ribbon cable, and an electrical connection is possible.

[0010] In one embodiment of the method, one or more electrically insulating carrier layers are provided, with at least one conductor track being applied to each of two opposite surfaces of at least one of the carrier layers. In this embodiment, the method also comprises applying an insulating layer between those carrier layers which have opposing conductor tracks, or between the bottommost carrier layer and the underlying shielding surface, provided that this bottommost carrier layer has conductor tracks facing the shielding surface. The application of an insulating layer can be omitted if the routing of the conductor tracks ensures that, in the stacked state, only conductor tracks which carry the same potentials and / or identical currents in the same flow direction can touch each other.

[0011] In one or more embodiments, the method further comprises electrically connecting the first and second shielding surfaces at least at one end of the ribbon cable.

[0012] In one or more embodiments of the method, one or more electrically insulating carrier layers are provided, wherein at least one of the carrier layers has at least three conductor tracks provided on it, at least one of which runs close to and along one of the longitudinal edges of the carrier layer. Running close to the edge can comprise a distance of a few millimeters, wherein the distance is preferably less than 1 mm. In this embodiment, the method additionally comprises electrically contacting the first and / or the second shielding surface with at least one of the at least one conductor track running close to the longitudinal edge. The electrical connection takes place at least at one end of the shielding surface, but can also take place at both ends, and / or at one or more arbitrary locations.

[0013] The FFCs manufactured using the process described above can be used not only as data cables but also as shielded cables for supplying power to electrical or electronic components or assemblies. For this purpose, the width of the FFC can be increased and multiple conductor layers can be stacked on top of one another. In the case of "two-wire" FFCs, for example, the appropriate allocation of layers can at least partially cancel out electromagnetic radiation caused by the flow of current. This can be the case, for example, if the forward and return lines of an FFC power supply line are arranged alternately one above the other. In this way, electromagnetic radiation can be reduced even in power supply lines through which high-frequency switched currents flow.

[0014] In order to improve the shielding effect, in addition to the connection of the outer shielding layers only at the respective ends, further connections of the shielding layers and, if applicable, the filler or shielding cables running along the edge of the carrier layer can be provided. Short description of the drawing

[0015] In the following section, the invention is explained in more detail with reference to the drawing. The drawing shows Fig. 1 an exploded view of a first embodiment of a flexible ribbon cable according to the invention, Fig. 2 an exploded view of a second embodiment of a flexible ribbon cable according to the invention, Fig. 3 an exploded view of a third embodiment of a flexible ribbon cable according to the invention, and Fig. 4 an exploded view of a fourth embodiment of a flexible ribbon cable according to the invention.

[0016] In the figures, identical or similar elements may be referenced with the same reference numerals. Description of implementation examples

[0017] Fig. 1 shows an exploded view of a first embodiment of a flexible ribbon cable 10 according to the invention. Fig. 1 a) a perspective view, and Fig. 1 b) a sectional view. Two carrier layers TS, each with conductor tracks LB applied to one side, are arranged one above the other. The conductor tracks LB are shown only as an example and can be wider than shown in the figure. The conductor tracks LB in the figure are intended, for example, for a DC power supply and comprise a conductor track for the positive supply voltage, shown here in black, and a conductor track for the negative supply voltage or ground, shown here with vertical hatching. The conductor tracks LB can each be arranged such that the magnetic fields caused by the flowing current at least partially cancel each other out. Here, a black conductor track and a vertically hatched conductor track are arranged directly one above the other. A continuous shielding surface SF1 and SF2, respectively, is arranged above and below the two carrier layers TS.An insulating layer IS arranged between the upper carrier layer and the upper shielding surface SF1 prevents an electrical short circuit between the conductor tracks LB and the upper shielding surface SF1. The dimensions of the insulating layer IS are at least large enough to cover the conductor tracks LB, but without impairing the possibility of electrical contact between the conductor tracks LB. Likewise, the dimensions of the shielding surfaces SF1 and SF2 are selected so that a connection area for the conductor tracks LB remains accessible at the ends of the carrier layers TS, but an electrical short circuit with the conductor tracks LB is avoided. This can be achieved, for example, by ensuring that the shielding surfaces SF1 and SF2 are no larger than the insulating layer. In this and the following figures, the different dimensions of individual layers or surfaces are illustrated by dashed lines.

[0018] Fig. 2 shows an exploded view of a second embodiment of a flexible ribbon cable 10 according to the invention, again in a perspective view in Fig. 2 a) and a sectional view in Fig. 2 b). The second design essentially corresponds to that of Fig. 1. In contrast to the previously described embodiment, shielding lines SL are provided at the outer edges of the carrier layers, which can be electrically connected to the shielding surfaces SF1, SF2. The connection can be made in the connection area, i.e., at the ends of the ribbon cable, or by means of through-holes or direct electrical contact at any location. For this purpose, the insulating layer IS can, as shown in the figure, have a smaller width than the carrier layers, thus enabling direct electrical contact between the shielding line SL and the shielding surface SF.

[0019] It should be noted that, contrary to the schematic representations in the drawing, the thicknesses of the various elements can vary in all configurations. For example, the shielding lines can be thicker than the conductor tracks LB to achieve a certain balance in the thickness of the insulating layer IS. The insulating layer IS can also be designed in such a way that, after its application, a substantially flat surface results.

[0020] Fig. 3 shows an exploded view of a third embodiment of a flexible ribbon cable 10 according to the invention, as shown in the Fig. 1 and Fig. 2 in a perspective view in Fig. 3 a) and a sectional view in Fig. 3 b). In this embodiment, the conductor tracks LB are arranged for the most part in such a way that the magnetic fields caused by the flowing current at least partially cancel each other out, similar to Fig. 1. In this embodiment, conductor tracks LB are applied to both surfaces of the carrier layers TS. The currents in the conductor tracks LB lying directly above one another preferably flow in opposite directions and their magnitudes are preferably equal. Insulating layers IS are provided between the two carrier layers TS and between the shielding surfaces SF1, SF2 and the carrier layer adjacent to them in order to prevent electrical short circuits. The insulating layer IS between the two carrier layers TS can be omitted if the routing of the conductor tracks LB allows this, e.g. if conductor tracks LB with the same currents and flow directions lie above one another. In the figure, shielding cables SL are again provided on the long sides of the ribbon cable 10.These can be applied to both sides of the carrier layers TS, and the insulating layers IS can have a width B2 smaller than the width B1 of the carrier layers. This allows the shielding lines SL and the shielding surfaces SF1, SF2 to come into direct electrical contact with each other, improving the shielding effect and simplifying the connection.

[0021] In all configurations of the ribbon cable, the cable routing can be designed in such a way that the connection of lines carrying the same potential or signals of adjacent carrier layers to the corresponding terminals is simplified. An exemplary configuration is shown in Fig. 4 shown.

[0022] Fig. 4 shows an exploded view of a fourth embodiment of a flexible ribbon cable 10 according to the invention. Fig. 4 a) again shows a perspective view, while in Fig. 4 b) a sectional view is shown for the section through a plane in which the dotted line AA runs. As in Fig. As can be easily seen in Figure 4 a), the magnetic field generated by the current flow is counteracted over a longer distance by appropriately alternating the conductor paths on one of the carrier layers, while the connections at the ends of the carrier layers are positioned in a suitable manner. The designations of the individual elements have been omitted in the figure; reference is made to the figures described above. List of reference symbols 10 ribbon cable Bx Width Lx Length TS carrier layer LB conductor track IS insulation layer SFx screen area SL shielded cable QUOTES CONTAINED IN THE DESCRIPTION

[0000] This list of documents submitted by the applicant was generated automatically and is included solely for the convenience of the reader. This list is not part of the German patent or utility model application. The DPMA assumes no liability for any errors or omissions. Cited patent literature

[0000] US 2021 / 0166836 A1

[0005]

Claims

[1] Method for producing a shielded flexible ribbon cable (10) having a first length (L1) and a first width (B1), comprising: - providing at least two electrically insulating carrier layers (TS) of the same length and width, wherein at least one conductor track (LB) is applied to a surface of each of the at least two carrier layers (TS), and - congruent layering (130) and mechanically connecting the at least two carrier layers (TS) with the conductor tracks (LB) applied thereon, - applying an insulating layer (IS) to the at least one conductor track (LB) of the uppermost carrier layer (TS), wherein the insulating layer (IS) extends over a second length (L2) which is shorter than the first length (L1), and wherein the ends of the insulating layer (IS) are spaced from the respective ends of the carrier layer (TS) so that the at least one conductor track (LB) is accessible at the respective ends for electrical contacting, the method further comprising: - applying a closed first shielding surface (SF1) to the uppermost insulation layer (IS), which first shielding surface (SF1) extends in the direction of the width (B1) of the ribbon cable (10) at least over all conductor tracks (LB), and which first shielding surface (SF1) extends in the direction of the length (L1) of the ribbon cable (10) over a third length (L3) which is shorter than the first length (L1), - Applying a closed second shielding surface (SF2) beneath the lowermost carrier layer (TS), which second shielding surface (SF2) extends in the direction of the width (B1) of the ribbon cable (10) at least over all conductor tracks (LB), and which extends in the direction of the length (L1) of the ribbon cable (10) over a fourth length (L4) which is not longer than the first length (L1), wherein either the first shielding surface and the underlying insulating layer are aligned with the carrier layers such that conductor tracks (LB) can be electrically contacted at both ends of the carrier layers, or wherein the first shielding surface and the underlying insulating layer are aligned with the carrier layers such that one or more conductor tracks can be electrically contacted at one end of the carrier layers, and the second shielding surface is aligned with the other end of the carrier layers,that one or more conductor tracks at the other end of the carrier layers can be electrically contacted, so that the one or more conductor tracks (LB) of the at least two carrier layers (TS) are not completely covered by both shielding surfaces (SF1, SF2) at any end of the ribbon cable (10). [2] The method of claim 1, further comprising: - electrically connecting the first and second shielding surfaces at least at one end of the ribbon cable (10). [3] Method according to claim 1, wherein at least three conductor tracks (LB1, LB2, LB3) are provided on the at least one carrier layer (TS), and wherein the method further comprises: - electrically contacting the first and / or the second shielding surface (SF1, SF2) with at least one of the outermost conductor tracks (LB1, LB3) at least at one end of the respective shielding surface (SF1, SF2). [4] Shielded ribbon cable (10) produced by the method of one or more of claims 1 to 3.

Citation Information

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