Assembly for hearing aid
11765530 · 2023-09-19
Assignee
Inventors
- Kenneth Rueskov MØLLER (Smørum, DK)
- Jens TROELSEN (Smørum, DK)
- Rune Sø (Smørum, DK)
- Oliver Sundberg (København N, DK)
- Finn Danielsen (Smørum, DK)
- Jesper B. Johansen (Smørum, DK)
- Mads Sager (Smørum, DK)
- Svend Oscar PETERSEN (Smørum, DK)
- Bent Jakobsen (Smørum, DK)
Cpc classification
H04R2225/51
ELECTRICITY
H04R2225/0216
ELECTRICITY
H04R25/65
ELECTRICITY
H04R25/554
ELECTRICITY
International classification
Abstract
An assembly for a hearing aid is disclosed. The hearing aid with the assembly comprises an in the ear part and a behind the ear part and a part mechanically interconnecting the two parts. In the interconnection, a flexible substrate is arranged. The flexible substrate comprises conductive paths. The conductive paths may be used for communication between the in the ear part and the behind the ear part, and/or for an antenna function.
Claims
1. A hearing aid comprising: a first part configured to be positioned at or behind the ear of a user and an assembly comprising a second part configured to be positioned at or at least partly in the ear canal of the user and a third part having a flexible body extending between the first part and the second part, the third part thus being configured to connect the first part and the second part, the second part having an output transducer, the first part having an input transducer, the third part having a flexible substrate whereon a number of conductive paths are formed, a protective member surrounds the flexible substrate and extends along the length of the flexible substrate, an antenna formed in the third member, the antenna being connected to a wireless interface configured to communicate via the antenna, the antenna including an electrical component positioned at a position between the ends of the flexible substrate that isolates the antenna so that the length of the antenna is only a part of the length of the flexible substrate, the electrical component configured to establish a first operational frequency of the antenna; wherein the flexible substrate is a multi-layer flexible circuit board where at least part of the plurality of transmission paths are formed on respective opposite sides of the flexible substrate.
2. The hearing aid according to claim 1, wherein the electrical component is an antenna trap configured so that the first operational frequency is a carrier frequency of around 2.4 GHz.
3. The hearing aid according to claim 1, wherein an electrically conductive path on one surface of the flexible substrate forms at least part of the antenna.
4. The hearing aid according to claim 1, wherein an electrically conductive path inside the flexible substrate forms at least part of the antenna.
5. The hearing aid according to claim 1, wherein the second part includes one or more sensors selected from the group including sensors for sensing temperature, pressure, EEG, accelerometers, gyro sensors or other direction/inclination/orientation sensors.
6. The hearing aid according to claim 1, wherein the second part includes a memory device and/or a processor and/or a filter device.
7. The hearing aid according to claim 1, wherein the second part includes a first input transducer, and the hearing aid further comprising a processor in the first part and/or in the second part, configured to process the output from the first input transducer so as to compensate for a hearing loss of the user.
8. The hearing aid according to claim 7, wherein the first part further comprises a second input transducer, and the processor is further configured to establish a processed audio signals based on output from both the first input transducer and the second input transducer.
9. The hearing aid according to claim 7, wherein the first part includes a third input transducer, and the hearing aid further comprising a processor, in the first part and/or in the second part, configured to process the output from the third input transducer so as to compensate for a hearing loss of the user.
10. A hearing aid comprising: a first part configured to be positioned at or behind the ear of a user and an assembly comprising a second part configured to be positioned at or at least partly in the ear canal of the user and a third part configured to mechanically connect the first part and the second part, the second part comprising an output transducer configured to provide an acoustic signal to be provide to the user's ear canal, the third part comprising a transmission path configured to provide electrical connection between the first part and the second part, the transmission path at least partially established via or on a flexible substrate having a plurality of electrically conductive paths, in the mounted state the flexible substrate extending at least a first length, wherein the third part further comprises a protective member mounted along the length of the flexible substrate, wherein the hearing aid further comprises a wireless interface and an antenna, and wherein at least part of the antenna is formed along the flexible substrate, and wherein the antenna including an antenna trap configured to establish a first operational frequency of the antenna, wherein the length of the antenna is shorter than the length of the third part, wherein the flexible substrate is a multi-layer flexible circuit board where at least part of the plurality of transmission paths are formed on respective opposite sides of the flexible substrate.
11. The hearing aid according to claim 10, wherein the second part includes one or more sensors selected from the group sensors for sensing temperature, pressure, EEG, accelerometers, gyro sensors or other direction/ inclination/orientation sensors.
12. The hearing aid according to claim 10, wherein the flexible substrate has a rectangular cross section.
13. The hearing aid according to claim 10, wherein the second part includes a memory device and/or a processor and/or a filter device.
14. The hearing aid according to claim 13, wherein an electrically conductive path on one surface of the flexible substrate forms at least part of the antenna.
15. The hearing aid according to claim 10, wherein the second part includes a first input transducer, and the hearing aid further comprising a processor in the first part and/or in the second part, configured to process the output from the first input transducer so as to compensate for a hearing loss of the user.
16. The hearing aid according to claim 15, wherein the first part further comprises a second input transducer, and the processor is further configured to established a processed audio signals based on output from both the first input transducer and the second input transducer.
17. The hearing aid according to claim 15, wherein the first part includes a third input transducer, and the hearing aid further comprising a processor, in the first part and/or in the second part, configured to process the output from the third input transducer so as to compensate for a hearing loss of the user.
18. The hearing aid according to claim 10, wherein the first part comprises an interface having a plurality of pins or sockets and the third part includes a tab connector, an adaptor having a first end configured to interface with the plurality of pins or sockets and a second end configured to interface with the tab connector inserted between the first and second part.
19. The hearing aid according to claim 10, wherein a parasitic antenna element is arranged in the first part, the parasitic antenna element being tuned to the operation frequency of the antenna.
20. An assembly configured to be connected as a third member in a hearing aid, the assembly comprising a speaker, a connector and an elongate member, wherein the assembly is configured to be used with a hearing aid having a housing configured to be positioned behind the ear of a wearer, the speaker being configured to output an acoustic signal to the users outer ear canal, the connector connecting to the hearing aid housing, the assembly comprising an ear piece configured to be placed in or at the users outer ear canal and the speaker being arranged in the ear piece, the elongate member mechanically connecting the ear piece with the connector, a flexible substrate arranged in the connector, wherein the flexible substrate comprises conductive paths, wherein, at least one conductive path is part of an antenna, an electronic component arranged at a position between the ends of the flexible substrate, the electronic component isolating the antenna so that the length of the antenna is only a part of the length of the flexible substrate; wherein the flexible substrate is a multi-layer flexible circuit board where at least part of the plurality of the transmission paths are formed on respective opposite sides of the flexible substrate.
Description
BRIEF DESCRIPTION OF DRAWINGS
(1) The aspects of the disclosure may be best understood from the following detailed description taken in conjunction with the accompanying figures. The figures are schematic and simplified for clarity, and they just show details to improve the understanding of the claims, while other details are left out. Throughout, the same reference numerals are used for identical or corresponding parts. The individual features of each aspect may each be combined with any or all features of the other aspects. These and other aspects, features and/or technical effect will be apparent from and elucidated with reference to the illustrations described hereinafter in which:
(2)
(3)
(4)
(5)
(6)
(7)
(8)
(9)
(10)
(11)
(12)
(13)
(14)
(15)
(16)
DETAILED DESCRIPTION
(17) The detailed description set forth below in connection with the appended drawings is intended as a description of various configurations. The detailed description includes specific details for the purpose of providing a thorough understanding of various concepts. However, it will be apparent to those skilled in the art that these concepts may be practiced without these specific details. Several aspects of the apparatus and methods are described by various blocks, functional units, modules, components, circuits, steps, processes, algorithms, etc. (collectively referred to as “elements”). Depending upon particular application, design constraints or other reasons, these elements may be implemented using electronic hardware, computer program, or any combination thereof.
(18) The electronic hardware may include microprocessors, microcontrollers, digital signal processors (DSPs), field programmable gate arrays (FPGAs), programmable logic devices (PLDs), gated logic, discrete hardware circuits, and other suitable hardware configured to perform the various functionality described throughout this disclosure. Computer program shall be construed broadly to mean instructions, instruction sets, code, code segments, program code, programs, subprograms, software modules, applications, software applications, software packages, routines, subroutines, objects, executables, threads of execution, procedures, functions, etc., whether referred to as software, firmware, middleware, microcode, hardware description language, or otherwise.
(19) A hearing aid may be construed as a device that is adapted to improve or augment the hearing capability of a user by receiving an acoustic signal from a user's surroundings, generating a corresponding audio signal, possibly modifying the audio signal and providing the possibly modified audio signal as an audible signal to at least one of the user's ears. Such audible signals may be provided in the form of an acoustic signal radiated into the user's outer ear, or an acoustic signal transferred as mechanical vibrations to the user's inner ears through bone structure of the user's head and/or through parts of middle ear of the user or electric signals transferred directly or indirectly to cochlear nerve and/or to auditory cortex of the user.
(20) The hearing aid is adapted to be worn in any known way. This may include i) arranging a unit of the hearing aid behind the ear with a tube leading an electrical signal to a speaker in the ear canal such as in a Behind-the-Ear type hearing aid, and/or ii) arranging a unit of the hearing device attached to a fixture implanted into the skull bone such as in Bone Anchored Hearing Aid or Cochlear Implant and another unit e.g. in or at the ear canal, or iii) arranging a unit of the hearing device as an entirely or partly implanted unit such as in Bone Anchored Hearing Aid or Cochlear Implant.
(21) A “hearing system” refers to a system comprising one or two hearing aids, and a “binaural hearing system” refers to a system comprising two hearing aids where the hearing aids are adapted to cooperatively provide audible signals to both of the user's ears. The hearing system or binaural hearing system may further include auxiliary device(s) that communicates with at least one hearing aids, the auxiliary device affecting the operation of the hearing aids and/or benefitting from the functioning of the hearing aids. A wired or wireless communication link between the at least one hearing aid and the auxiliary device is established that allows for exchanging information (e.g. control and status signals, possibly audio signals) between the at least one hearing aid and the auxiliary device. The auxiliary device may be used for programming and/or reprogramming and/or adjusting settings for the hearing aid. Auxiliary devices may include at least one of remote controls, remote microphones, audio gateway devices, mobile phones, public-address systems, car audio systems or music players or a combination thereof. The audio gateway may be adapted to receive a multitude of audio signals such as from an entertainment device like a TV or a music player, a telephone apparatus like a mobile telephone or a computer, a PC. The audio gateway is further adapted to select and/or combine an appropriate one of the received audio signals (or combination of signals) for transmission to the at least one hearing aid. The remote control may be adapted to control functionality and operation of the at least one hearing aid. The function of the remote control may be implemented in a SmartPhone or other electronic device, the SmartPhone/electronic device possibly running an application that controls functionality of the at least one hearing aid.
(22) In general, a hearing aid includes i) an input unit such as a microphone for receiving an acoustic signal from a user's surroundings and providing a corresponding input audio signal, and/or ii) a receiving unit for electronically receiving an input audio signal. The hearing aid further includes a signal processing unit for processing the input audio signal and an output unit for providing an audible signal to the user in dependence on the processed audio signal.
(23) The input unit may include multiple input microphones, e.g. for providing direction-dependent audio signal processing. Such directional microphone system is adapted to enhance a target acoustic source among a multitude of acoustic sources in the user's environment. In one aspect, the directional system is adapted to detect (such as adaptively detect) from which direction a particular part of the microphone signal originates. This may be achieved by using conventionally known methods. The signal processing unit may include amplifier that is adapted to apply a frequency dependent gain to the input audio signal. The signal processing unit may further be adapted to provide other relevant functionality such as compression, noise reduction, etc. The output unit may include an output transducer such as a loudspeaker/receiver for providing an air-borne acoustic signal or transcutaneously or percutaneously to the skull bone or a vibrator for providing a structure-borne or liquid-borne acoustic signal. In some hearing devices, the output unit may include one or more output electrodes for providing the electric signals such as in a Cochlear Implant.
(24) As the general number of features of the hearing aid itself raises, e.g. by including electrical components in the part located in the ear canal, the requirement for communication bandwidth between the two parts increases. This could e.g. be due to inclusion of processor, filter, memory, microphone, sensor, battery, antenna, or combinations hereof, in the in-the-ear-part. Therefore, there is a need to increase the possibilities of communication, and one solution could be to increase the number of twisted wires. However, this has, amongst other things, a drawback of increased risk of crosstalk between the wires.
(25)
(26) The behind-the-ear housing, not illustrated here, stores a variety of components, such as power source, one or more input transducers, processing units for processing the input signal(s), or other optional components. As will be explained later, the assembly 10 may comprise electrical components as well.
(27) The assembly 10 have a generally oblong body at the midsection 16, with a speaker 12 at one end and a connector 14 at the other end. At the connector 14 a plug is formed, wherein the plug is shaped to mate with a corresponding socket in the behind-the-ear housing, e.g. as male/female type plug. In an alternative form, the connector 14 could be provided with a socket and the behind-the-ear housing with a protruding plug element. The behind-the-ear housing is a first part, the in-the-ear part is a second part, and the elongate member connecting them is a third part.
(28) The connector may have a flex tab connector. When having such a flex tab connector, it is preferable that the flex tab connector is a bendable flex connector (also known as, for example, flexible connector, flex circuit connector, or flexible circuit connector) including conductive contacts constructed on a flex substrate (also known as flexible substrate, flex circuit substrate, or flexible circuit substrate). With conductive contacts (flex pads) made of mechanically flexible conductive traces such as copper traces, the connector is substantially bendable. The flex tab may be bendable but should retain its original shape when flexed within the materials flexible limits, i.e. without plastic deformation.
(29) The assembly 10 in
(30) The third part, i.e. the elongate member 16, comprises a flexible circuit board, i.e. a flexible substrate, having a number of conductive paths. These conductive paths are at least part of a transmission path configured to provide electrical connection between the first part and the second part. Further, or alternatively, at least one conductive path in the third part 16 is part of an antenna.
(31) In the schematic
(32) The protective coating or tubing 24 comprises strengthening fibers increasing the pull strength of the third part. Aramid fibers are currently added, but other types of fibers may be used.
(33) At one end 26, here the right-most end, of the flexible substrate 22, a number of components are mounted to the flexible substrate 22. Two inputs transducers, here microphones, 30 and 32 are mounted at the end 26. The two input transducers 30, 32 are mounted at respective opposite sides of the flexible substrate 22. An output transducer 34, here a speaker, is mounted to the flexible substrate 22. The output transducer 34 is mounted further from the end of the tubing 24 than the two microphones 30, 32. Other arrangements may be envisioned, e.g. at the side where both a microphone 30 and the speaker 34 is mounted, the speaker 34 could be mounted closer to the end of the tubing 24. The speaker 34 is adhered to the flexible substrate 22 so that the speaker 34 and the flexible substrate 22 are parallel. The speaker 34 has a longitudinal axis and the longitudinal axis and the flexible substrate 22 are parallel.
(34) As seen in
(35) The components 30, 32, 34 are envisioned to be mounted in the housing 36 configured to be positioned in the ear canal of the user. This housing could be provided with a soft, pliable cover, e.g. a dome, or an individually shaped part shaped after the actual shape of the user's ear canal, or the like to increase the comfort for the user.
(36) As seen in
(37) In further examples, a second speaker may be positioned on the flexible substrate. The speaker may be mounted parallel to the flexible substrate. This could e.g. allow for splitting the audio signal to be presented to the user in two parts, e.g. a high and a low frequency part. The frequency parts could e.g. be divided around 1 kHz, 2 kHz, 3 kHz, 4 kHz or other suitable frequency.
(38) Other component types could be mounted at the flexible substrate 22. E.g. an inductive coil for inductive communication, a processor, a memory unit, a filter unit, a sensor, e.g. an EEG sensor, a battery, combinations hereof or any other useful component or components. These other types of components may be included in the housing 36, or they could be mounted on the flexible substrate 22 under or in the protective cover 24. Other wireless communication devices may be included in the hearing aid, e.g. an inductive coil for near field communication, e.g. to establish an inductive link to another hearing aid of a binaural system. The inductive link has an advantage in communicating more or less through the head of the wearer with minimal loss of energy. Further, an inductive coil, e.g. a T-coil or telecoil, may be included in the hearing aid. Such a ‘telecoil systems’ are often used in theaters, churches, train stations, ticket booths etc. for inductive communication to the hearing aid. One or both of the mentioned coils may be positioned in the area between the battery and one or the other end of the hearing aid. In one instance, one coil is located in the opposite end of the other coil. In addition to these at least two types of communication coils, wherein a hearing aid may comprise one or both of them, a further wireless communication device, e.g. in the form of an antenna may be included. This would, as is also expressed elsewhere in the present specification, allow wireless communication to other external units. This may be done using communication according to the Bluetooth protocol, such as using the Bluetooth Low Energy protocol, or similar protocols. This communication may be performed at 2.4 GHz or other suitable frequencies.
(39) At the other end 28 of the flexible substrate 22, one or more connectors may be provided. Here, as seen in detail in
(40) In
(41) Two microphone openings 38 and 40 are provided in the housing of the in-the-ear part. Here the two microphone openings 38, 40 are orientated towards the surroundings. In other versions of the housing 36, one of the microphone openings 38, 40 could be orientated towards the ear drum, i.e. in the same direction as the distal end with the snap connector 39.
(42) The housing 36 has a generally cylindrical form, other geometries may be envisioned, e.g. a square or oblong cross section in a direction perpendicular to the longitudinal axis of the housing 36. Further components may be included in the housing 36, although not illustrated here. This could e.g. be sensors for sensing temperature, pressure, EEG, accelerometers, gyro sensors or other direction/inclination/orientation sensors. Further electrical components could be included in the housing 36, such as a memory device, a processor, a filter, an analogue-to-digital converter or any combinations hereof.
(43) The housing 20, 36 of the speaker 12, 34 may be formed from any of a variety of materials, e.g. hard plastic material or the like, such as TPU, TPE, Pebax, Rilsan, or any other suitable material.
(44)
(45) In
(46) In
(47) Four conductive paths are illustrated at each side, providing a total of eight connections. In other versions more or less connections could be present.
(48)
(49)
(50)
(51) As illustrated in
(52)
(53) In the
(54)
(55)
(56)
(57) A conductive path used as antenna, or at least as part of an antenna, especially an antenna externally from the housing of a behind-the-ear part, may have one of a variety of different shapes depending on the intended use and especially the carrier frequency for the antenna. Interoperability of the hearing aid device and other devices are presently often performed at 2.4 GHz. The conductive path used as antenna may be sized to maximize the coupling of an electromagnetic signal at 2.4 GHz. Further, the antenna may include a trap as described above, to define an appropriate antenna length. This could be achieved by using components as illustrated in
(58) The hearing aid comprises a transceiver, e.g. a radio chip packaging data according to a protocol and outputting a signal to the antenna and/or receiving a signal via the antenna and transforming the received signal to a data signal. A matching circuit may be included between the transceiver and the antenna, this circuit will match the output impedance of the transceiver and the input impedance of the antenna, both for reception and transmission. The electrical length of the antenna, i.e. the length experienced by the signal either being transmitted or received, may be augmented by a reactance mounted in series with the antenna, thereby changing the electrical length of the antenna without changing the physical length. The resonance of the antenna is altered by the reactance.
(59) If a transceiver with an balanced output is used, and e.g. a single line antenna is used, a so-called balun may be included. This balun will transform the balanced output signal of the transceiver to an unbalanced signal to be outputted via the antenna.
(60) The transceiver may encode the data to be transmitted, and decode the data received, or may alternatively be coupled to a separate decoder/encoder unit.
(61)
(62)
(63)
(64)
(65)
(66)
(67)
(68) The coupling element may comprise one or more shield elements for shielding the external antenna such that electrical elements within the first portion, the second portion, the external part and/or external devices will not be affected negatively by radiation from the antenna which has a frequency outside the frequency range of about 2.45 GHz to about 5.5 GHz, or between 2.44 GHz to 5.5 GHz or about the frequency of 2.45 GHz or about the frequency of 5.5 GHz. The shield element may be connected to the wireless interface via a bandpass filter, or the shield element may be connected to the ground plane within the first portion. The shield element may be a wire twisted around the flexible substrate or a net, such as a net of wires, arranged around the electrically conductive elements.
(69)
(70)
(71)
(72)
(73)
(74)
(75)
(76)
(77)
(78)
(79)
(80)
(81) The adaptor 255 comprises a body 257 having a ledge or protrusion 254 whereon the connector, or flexible substrate 256, is attached. This arrangement could allow for a space optimized arrangement and/or pull-strength optimized solution.
(82) In the adaptor 260, the connection from the third part to the body 262 at a flat end 264 is established at a part 266 of the third part having a 90 degree bend, or at least nearly 90 degrees bend. The bend part 266 is attached to the housing at the flat end 264. One advantages of this configuration is that the space inside the adaptor 260 may be better utilized comparted to the adaptor 250.
(83) In the adaptor 270 the third part 276 extends into the housing 272. The housing 272 comprises a part 274 that surrounds, and stabilizes, the third part 276. The adaptor 270 is contemplated to have a high mechanical stability and allow the user to remove the plug or adaptor 270 from a socket many times with low risk of breaking the adaptor at the interface between the adaptor housing 272 and the third part 276.
(84)
(85) At the substrate 280 the three pins 282a, b and c, are connected to electrically conductive leads in the substrate 280, not seen here, via respective substrates 284a, 284b, 284c. At the substrate 290 three pins 292a, b and c, are connected to leads in the substrate 290 via respective vias 294a, 294b, 294c.
(86)
(87) At the end opposite the opening 308, the adaptor 302 have a tab 312 configured to retain the adaptor 308 in the housing of the behind-the-ear part, not illustrated here. This is contemplated to allow great mechanical stability to the combined system, which is e.g. important when the user pull the in-the-ear part out of the ear canal. Typically, the user will pull the housing of the behind-the-ear part to dismount the hearing aid from the ear.
(88)
(89) It is intended that the structural features of the devices described above, either in the detailed description and/or in the claims, may be combined with steps of the method, when appropriately substituted by a corresponding process.
(90) As used, the singular forms “a,” “an,” and “the” are intended to include the plural forms as well (i.e. to have the meaning “at least one”), unless expressly stated otherwise. It will be further understood that the terms “includes,” “comprises,” “including,” and/or “comprising,” when used in this specification, specify the presence of stated features, integers, steps, operations, elements, and/or components, but do not preclude the presence or addition of one or more other features, integers, steps, operations, elements, components, and/or groups thereof. It will also be understood that when an element is referred to as being “connected” or “coupled” to another element, it can be directly connected or coupled to the other element but an intervening elements may also be present, unless expressly stated otherwise. Furthermore, “connected” or “coupled” as used herein may include wirelessly connected or coupled. As used herein, the term “and/or” includes any and all combinations of one or more of the associated listed items. The steps of any disclosed method is not limited to the exact order stated herein, unless expressly stated otherwise.
(91) It should be appreciated that reference throughout this specification to “one embodiment” or “an embodiment” or “an aspect” or features included as “may” means that a particular feature, structure or characteristic described in connection with the embodiment is included in at least one embodiment of the disclosure. Furthermore, the particular features, structures or characteristics may be combined as suitable in one or more embodiments of the disclosure. The previous description is provided to enable any person skilled in the art to practice the various aspects described herein. Various modifications to these aspects will be readily apparent to those skilled in the art, and the generic principles defined herein may be applied to other aspects.
(92) The claims are not intended to be limited to the aspects shown herein, but is to be accorded the full scope consistent with the language of the claims, wherein reference to an element in the singular is not intended to mean “one and only one” unless specifically so stated, but rather “one or more.” Unless specifically stated otherwise, the term “some” refers to one or more.
(93) Accordingly, the scope should be judged in terms of the claims that follow.