The invention relates to a hearing device to be worn at least partially in the ear canal and comprising an antenna and to a method of manufacturing such hearing instrument.
Hearing devices which are to be worn at least partially in the ear canal comprise a shell with an outwardly facing opening which is covered by a faceplate. ITE (“in-the-ear”) hearing devices are examples of such hearing devices. The shell may have a standard shape or may be customized (having a shape corresponding to the individual shape of the ear canal of the user), wherein the housing/shell has an outer opening which is covered by a faceplate which faces outwardly of the ear canal when the ITE hearing instrument is worn in the ear canal.
For wireless applications, in particular in the 2.4 GHz ISM (Industrial, Scientific, and Medical) band, ITE hearing instruments may be provided with a suitable antenna. The antenna design is determined by the available limited space, the desired frequency band and the interference of the electromagnetic radiation with the tissue of the user.
U.S. Pat. No. 8,494,197 B2 relates to an ITE hearing aid wherein one loop of a double loop antenna surrounding the battery and the electronic unit is inserted into a groove in the inwardly facing (interior) surface of the faceplate; the antenna comprises conductive traces on a flexible dielectric layer.
WO 2017/153020 A1 relates to an ITE hearing aid with an antenna with an open ring structure provided at the interior surface of the faceplate as a stamped-out metal foil glued onto the interior surface of the faceplate.
EP 2 285 138 B1 relates to an ITE hearing aid wherein a loop antenna or patch antenna is integrated or embedded within the battery door or battery lid. Similar ITE hearing aids are known from EP 3 110 174 A1 and EP 3 110 175 A1, wherein in addition to loop antennas and patch antennas also partial loop antennas, slot antennas an inverted F-antennas are mentioned.
EP 2 680 366 A1 relates to an ITE hearing aid wherein a slot antenna is provided at the outer surface of the faceplate.
US 2019/0069101 A1 relates to an ITE hearing aid with an antenna comprising a curved first section located in the faceplate, a curved second section which mirrors the first section and is located below the faceplate and a linear third section connecting one end of the first section and one end of the second section, wherein each of the other end of the first and second section is connected to a feed point by a linear section.
US 2017/0150278 A1 relates to an ITE hearing aid, wherein a magnetic loop antenna is arranged in the faceplate or is attached to the faceplate.
It is an object of the invention to provide for a hearing device with an antenna which is suitable for efficient operation in the 2.4 to 2.5 GHz ISM band. It is a further object to provide for a method of manufacturing such hearing instrument.
According to the invention, these objects are achieved by a hearing device and a manufacturing method as defined in the claims.
The invention is beneficial in that it allows for efficient operation in the 2.4 to 2.5 GHz ISM band, since the antenna is a dipole antenna which is integrated within the faceplate or at the outer surface of the faceplate in a manner so as to follow the contour of the outer surface of the faceplate, whereby radiation gain may be maximized.
Preferred embodiments of the invention are defined in the dependent claims.
Hereinafter, examples of the invention will be illustrated by reference to the attached drawings, wherein:
As used hereinafter, “hearing devices” include all kinds of hearing devices which are configured to be worn at least partially in the ear canal, such as ITE hearing devices, ITC (in-the-canal) hearing devices or CIC (completely-in-the-canal) hearing devices.
As used hereinafter, “outwardly”/“outer” relates to a direction away from the tympanic membrane, when the hearing device is worn at least partially in the ear canal, and “inwardly”/“inner” relates to a direction towards the tympanic membrane, when the hearing device is worn at least partially in the ear canal.
The invention relates to hearing devices to be worn at least partially in the ear canal, in particular ITE hearing instruments, comprising a housing/shell be worn at least in part in the ear canal and having an outer opening which is covered by a faceplate. The ear canal further comprises a transceiver configured to operate in an operating frequency range which is located within 2.4 GHz to 2.5 GHz (which is an ISM band), and a dipole antenna connected to the transceiver. The dipole antenna is integrated within the faceplate or at the outer surface of the faceplate in a manner so as to follow the contour of the outer surface of the faceplate to maximize radiation gain (the outer opening faces outwardly of the ear canal when the hearing instrument is worn in the ear canal).
In some implementations, the dipole antenna is folded around a battery and an electronic subassembly of the hearing device. The dipole antenna may have two arms with an end gap between the arms, wherein the end gap preferably is from 0.1 to 5 mm so as to control performance of the antenna.
In
It can be seen in
Thus, once inserted into the trench 18, the conductive trace 12 is located in a maximal outwardly facing position of the faceplate so as to maximize radiation gain (the tissue surrounding the ear canal interferes to some extent with the electromagnetic radiation, so that an outwardly oriented position of the antenna increases radiation gain).
The conductive trace 12 of the antenna 10 includes a first arm 12A and a second arm 12B which are separated by an end gap 26 which preferably is from 0.1 to 5 mm. Appropriate selection of the width of the end gap 26 allows to optimize performance of the antenna 10.
While the end gap 26 is located in a central portion of the PCB 14, each of the ends of the PCB 14 comprises an antenna feed point 28A and 28B, respectively. According to
The width of the PCB 14 is such that the inner edge 22 is substantially flush with the inner surface 20 of the faceplate 16 when the PCB 14 is fully inserted within the trench 18. Thus, the planar shape of the inner edge 22 of the PCB 14 allows to recognize correct positioning of the PCB 14 in the trench 18 when the inner edge 22 is flush with the inner surface 20 of the faceplate 16.
The trench 18 is provided as deep as possible so as to allow positioning of the conductive trace 12 of the antenna 10 as close as possible to the outer surface of the faceplate, so as to maximize radiation gain. The trench 18 is substantially orthogonal to the inner surface 20 of the faceplate 16 so as to minimize physical space required for the antenna 10.
According to one embodiment, the PCB 14 of the antenna 10 may be fixed in the trench 18 by a mechanical locking system, for example, a snap-in mechanism. The trench 18 should be as narrow as possible so as to provide for a defined position of the antenna 10 after assembly. To improve fitting and positioning of the flexible PCB 14 in the trench 18 additional dielectric material may be added to the trench or the flexible PCB 14; such additional electric material also may be used for antenna tuning.
The state of the faceplate 16 after assembly is shown in
As can be seen in
In case that the antenna trench 118 is provided at the inner surface 120 of the faceplate 116, the trench should be as deep as possible to maximize radiation gain.
Preforming of the antenna wire parts 110A, 110B aids in the insertion of the wire parts 110A, 110B into the (relatively narrow) trench 118.
In some implementations, the trench 118 may be backfilled with the electric material to secure the antenna wire parts 110A, 110B in place in the trench 118. The permittivity of the backfill material may be selected for antenna tuning purposes (the backfill material may be selected accordingly).
As in the example of
Another example of a faceplate with an integrated antenna is shown in
A further example of a faceplate with an integrated antenna is illustrated in
A still further example of a faceplate with an integrated dipole antenna is illustrated in
The connection section 410C consists of two parallel linear portions, each providing for a connection between the outer section 410A and the inner section 410B, with the end gap 426 being formed between the two portions of the connection section 410C The antenna 410 may be implemented as a preformed wire which is inserted into respective trenches formed in the outer surface 419 and the inner surface 420 of the faceplate 416.
Number | Date | Country | Kind |
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19192113 | Aug 2019 | EP | regional |
Number | Name | Date | Kind |
---|---|---|---|
8494197 | Polinske et al. | Jul 2013 | B2 |
20170150278 | Ruaro | May 2017 | A1 |
20180084351 | Polinske | Mar 2018 | A1 |
20190069101 | Kvist | Feb 2019 | A1 |
20190116431 | Hesselballe et al. | Apr 2019 | A1 |
20190141460 | Hasani | May 2019 | A1 |
20190320271 | Hesselballe et al. | Oct 2019 | A1 |
Number | Date | Country |
---|---|---|
2200119 | Jun 2010 | EP |
2285138 | Apr 2013 | EP |
2680366 | Jan 2014 | EP |
2688314 | Jan 2014 | EP |
2986030 | Feb 2016 | EP |
3110174 | Dec 2016 | EP |
3110175 | Dec 2016 | EP |
3174314 | May 2017 | EP |
3471200 | Apr 2019 | EP |
2017153020 | Sep 2017 | WO |
Entry |
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Search Report issued in European Patent Application No. 19 192 113 dated Feb. 26, 2020. |
Number | Date | Country | |
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20210051427 A1 | Feb 2021 | US |