Contactless communication antenna for communication terminal
20220173513 · 2022-06-02
Inventors
Cpc classification
H01Q7/00
ELECTRICITY
H05K1/118
ELECTRICITY
H05K1/028
ELECTRICITY
H05K2201/10098
ELECTRICITY
H01R12/78
ELECTRICITY
International classification
H01Q7/00
ELECTRICITY
H01R12/78
ELECTRICITY
Abstract
A flexible printed circuit including at least two conductive tracks extending along the length of the flexible printed circuit. The conductive tracks form at least two antenna loops. The at least two conductive tracks are substantially parallel to one another. A contact zone located at a first end of the flexible printed circuit is configured to contact a predetermined portion of the flexible printed circuit so that a first track of the flexible printed circuit is connected with a second track of the flexible printed circuit when the first end is placed in contact with the predetermined portion.
Claims
1. A flexible printed circuit, comprising: at least two conductive tracks, including a first track and a second track, extending along the length of the flexible printed circuit, wherein the conductive tracks form at least two antenna loops, said at least two conductive tracks being substantially parallel to one another; at most two ends, including a first end and a second end; and a contact zone located at the first end of the flexible printed circuit and configured to contact a predetermined portion of said flexible printed circuit, so that the first track of the flexible printed circuit is connected with the second track of the flexible printed circuit when the first end is placed in contact with the predetermined portion, the first and second ends are configured to be inserted into one and a same connector.
2. The flexible printed circuit according to claim 1, wherein the predetermined portion comprises the second end of said flexible printed circuit.
3. The flexible printed circuit according to claim 2, wherein the placing in contact of the first end with the second end is carried out during the connection of the first and second ends within a connector.
4. The flexible printed circuit according to claim 1, which comprises at least one folding area shaped to allow said flexible printed circuit to pass from an unfolded state to a folded state.
5. The flexible printed circuit according to claim 1, wherein the contact zone comprises means for connecting said at least two conductive tracks to one another in order to form a predefined number of antenna loops.
6. The flexible printed circuit according to claim 1, which comprises at least one attachment hole to attach said flexible printed circuit on at least one antenna support.
7. A device comprising: a wireless communication circuit comprising a transceiver and an antenna, wherein said antenna comprises a flexible printed circuit comprising: at least two conductive tracks, including a first track and a second track, extending along the length of the flexible printed circuit, wherein the conductive tracks form at least two antenna loops, said at least two conductive tracks being substantially parallel to one another; at most two ends, including a first end and a second end; and a contact zone located at the first end of the flexible printed circuit and configured to contact a predetermined portion of said flexible printed circuit, so that the first track of the flexible printed circuit is connected with the second track of the flexible printed circuit when the first end is placed in contact with the predetermined portion, the first and second ends are configured to be inserted into one and a same connector.
8. The device according to claim 7, which comprises a connector within which the first and second ends of the flexible printed circuit are inserted so that the first end is placed in contact with the second end during the insertion of the first and second ends into said connector.
9. The device according to claim 8, wherein the connector is of a top-bottom type.
10. The device according to claim 7, wherein the predetermined portion comprises the second end of said flexible printed circuit.
11. The device according to claim 10, wherein the placing in contact of the first end with the second end is carried out during the connection of the first and second ends within a connector.
12. The device according to claim 7, wherein the flexible printed circuit comprises at least one folding area shaped to allow said flexible printed circuit to pass from an unfolded state to a folded state.
13. The device according to claim 7, wherein the contact zone comprises means for connecting said at least two conductive tracks to one another in order to form a predefined number of antenna loops.
14. The device according to claim 7, which comprises at least one attachment hole to attach said flexible printed circuit on at least one antenna support.
Description
5. DRAWINGS
[0028] Other features and advantages will become more apparent upon reading the following description of one particular embodiment of the disclosure, given by way of simple illustrative and non-limiting example, and the appended figures, wherein:
[0029]
[0030]
[0031]
[0032]
[0033]
[0034]
[0035]
[0036]
[0037]
[0038]
6. DISCLOSURE
[0039] As previously explained, the solution proposed consists of producing an antenna in a flexible printed circuit. To reduce the manufacturing costs in relation to prior-art antennas, also produced in a flexible printed circuit, a first feature of the technique proposed consists of designing a flexible printed circuit comprising at least two antenna tracks. According to the invention, taken individually, each track of the printed circuit constitutes an antenna loop. Unlike the prior art, particularly that of the European patent EP3107149, the tracks of the flexible printed circuit of the invention are connected to one another to form a multi-turn antenna during the insertion of one end at least of the printed circuit into an appropriate connector. As explained hereafter in connection with a plurality of embodiments, the flexible printed circuit and the connector are adapted so that the antenna loops are effectively formed by the connection of the printed circuit in the connector. More particularly, the connector may be a standard commercial connector skillfully used to cause, during the connection of the printed circuit in the connector, the creation of turns of the antenna.
[0040]
[0041]
[0042] Thus, in summary, the invention consists of a flexible printed circuit the tracks of which form an antenna when they are connected within a connector, the connector being selected to enable a contact between two different tracks of the flexible printed circuit. According to the invention, the flexible printed circuit, for its part, has at least one track (from all of the tracks having for function an antenna turn) the width of which, at the end, occupies at least two locations within the connector.
[0043] According to the invention, one connector having at least one contact more than the number of turns to be produced is sufficient to enable a loop offset (for example three contacts for two turns, as previously disclosed, four contacts for three turns, etc.). However, in the interest of economic efficiency, commercial connectors are used. These generally comprise an even number of connection pins and these connectors are preferred for an operational implementation.
[0044] In a first embodiment, described in relation to
[0045] In
[0046] In
[0047] In
[0053] Thus, it is noted that the change of turn, in this embodiment, is performed at the contact zones A3-A4 and B3-B4. The antenna in a way “starts” at the contact zone A2, the first turn finishes at the contact zones B3-B4. A joint is produced, by the contacts of the connectors (at the corresponding contacts of the connector) to connect the contact zones B3-B4 with the contact zones A3-A4. The second turn starts at A3-A4 and ends at B5. The double turn antenna starts at A2 and ends at B5.
[0054] The advantages provided by this solution are numerous. Firstly, the implementation of the antenna does not require any soldering. The antenna may comprise folding areas in order to conform it to the volume wherein it must be placed. These possible folding operations may be manual or automatic depending on embodiments. The manufacturing cost of the antenna is therefore reduced a first time. Secondly, as the antenna does not require soldering, it is possible to use a flexible material of lower resistance (it does not need to be solder-resistant). This material is therefore less expensive and makes it possible to achieve a second saving. More particularly, it is not necessary to used PI material (material commonly named thus to refer to “Flame-resistant polyimide (PI) film”) and it is possible to make do with a single-layer flexible printed circuit. Thirdly, the antenna may be implemented easily by making do with plugging the ends into the connector.
[0055]
[0056] In another embodiment, the general principle of the invention is implemented on a flexible printed circuit comprising tracks printed on both sides of the flexible printed circuit. Thus, only one end of the flexible printed circuit is inserted into the connector. An example of embodiment of an antenna according to the invention is presented in
[0057] In yet another embodiment, as for the preceding, only one end is plugged into the connector. Unlike the preceding, however, the set of tracks of the printed circuit is plotted on the same side of the flexible printed circuit. The other end is glued or associated (placed in contact) on a predetermined portion of the printed circuit and a connection between the turns is produced at this predetermined portion, rather than at the two ends. This way of doing things somewhat modifies the way in which the tracks of the flexible printed circuit are plotted. However, the principle still consists of defining particular contact zones intended to join the tracks during the assembly (or the folding of the antenna).
[0058] Generally, the invention is usually implemented by defining a flexible printed circuit lengthwise in an unfolded position of the antenna. Thus, rather than having to hollow out a flexible circuit (and therefore pay for the hollowed-out, central, portion,
[0059] Although the present disclosure has been described with reference to one or more examples, workers skilled in the art will recognize that changes may be made in form and detail without departing from the scope of the disclosure and/or the appended claims.