The present disclosure relates generally to wearable audio devices.
Antennas can be used in conjunction with wearable devices to communicate signals wirelessly to the wearable device. Implementing antennas for small wearable devices, such as earbuds, can be challenging for a number of reasons. For example, the volume available for the antenna can be small due to a constraint of a small form factor of a device. However, performance of the antenna can be highly dependent on the size of the antenna. As another example, the space available for a ground plane for an antenna can be small. A reduction of a size of the ground plane can lead to degradation of an antenna radiation performance.
As a further example, a physical clearance between an antenna and other components, such as a touch panel, a microphone, a printed circuit board, etc., in the wearable device can be small. A small clearance can cause high radio frequency coupling between the antenna and the other components, which can lead to antenna performance degradation and large variations in a performance of the antenna due to a large tolerance of the other components in an assembly. As a further example, several body effects can degrade a performance of an antenna. The effects can include attenuation, detuning, and shadowing, due to body parts, such as skin, being a highly lossy medium with high permittivity at high frequencies.
Aspects and advantages of embodiments of the present disclosure will be set forth in part in the following description, or may be learned from the description, or may be learned through practice of the embodiments.
One example aspect of the present disclosure is directed to a wearable audio device. The wearable audio device can include a housing defining an interior and an exterior. The exterior can have an ear engaging surface. The wearable audio device can include an audio source located within the interior of the housing. The wearable audio device can include an antenna located within the interior. The antenna can have an arc-shaped conductor with a first end and a second end defining an opening. The antenna can be positioned within the housing of the wearable audio device such that the opening of the antenna is positioned further from an ear relative to a middle portion of the arc-shaped conductor when the wearable audio device is worn in the ear.
Other example aspects of the present disclosure are directed to systems, apparatus, tangible, non-transitory computer-readable media, and devices associated with a wearable audio device.
These and other features, aspects and advantages of various embodiments will become better understood with reference to the following description and appended claims. The accompanying drawings, which are incorporated in and constitute a part of this specification, illustrate embodiments of the present disclosure and, together with the description, serve to explain the related principles.
Detailed discussion of embodiments directed to one of ordinary skill in the art are set forth in the specification, which makes reference to the appended figures, in which:
Reference now will be made in detail to embodiments, one or more examples of which are illustrated in the drawings. Each example is provided by way of explanation of the embodiments, not limitation of the present disclosure. In fact, it will be apparent to those skilled in the art that various modifications and variations can be made to the embodiments without departing from the scope or spirit of the present disclosure. For instance, features illustrated or described as part of one embodiment can be used with another embodiment to yield a still further embodiment. Thus, it is intended that aspects of the present disclosure cover such modifications and variations.
Example aspects of the present disclosure are directed to an antenna for use with a wearable audio device, such as an earbud for providing audio to a user. According to example embodiments of the present disclosure, the antenna can be designed and integrated into the wearable audio device to improve antenna performance. For instance, the antenna can be integrated into the wearable audio device such that a portion of the antenna associated with a maximum electric field and/or a minimum current can be located furthest from tissue when the wearable audio device is worn by a user (e.g., when in the user's ear).
In some embodiments, a wearable audio device can include a housing with a top cover. The antenna can be an arc-shaped or curved conductor having a first end and a second end defining an opening. The antenna can be located in the top cover of the wearable audio device. For instance, in some embodiments, the antenna can be printed on an inner surface of the top cover using a laser direct structuring process. The antenna can be configured to operate at varying frequencies, such as about 2.4 GHz. In some embodiments, the antenna can have length that is a half-wavelength long. This can increase the antenna area and the radiation efficiency.
A feed element can be coupled to antenna at a location proximate to the first end or the second end. The feed element can be coupled to the antenna at a location where the impedance is about 50 Ohms. The feed element can be used to excite the antenna. When excited, the antenna can have a maximum electric field at a portion of the antenna proximate the opening defined by the first end and the second end. The antenna can be positioned within the top cover of the wearable audio device such that the opening is located further from the ear relative to other portions of the antenna (e.g., portions associated with a maximum current) when the wearable audio device is worn by a user. In this way, the antenna can be positioned within the wearable audio device such that the maximum electric field for the antenna is as far away from an ear as the form factor of the wearable audio device allows. Positioning the antenna in this manner can have the technical advantage of reducing performance loss the antenna experiences by being in close proximity with skin, such as detuning, attenuation, and shadowing effect.
In some embodiments, the wearable audio device can include one or more component(s) located proximate the antenna in the housing, such as touch panel used to control the wearable audio device. For instance, a touch panel can be located with an area defined by the arc-shaped conductor. The touch panel, in some embodiments, can include closely spaced planar metal sheets co-located with the antenna in the top cover. To reduce interference caused by the touch panel with the antenna, a ground plane can be implemented proximate to the touch panel. For instance, a ground plane can be disposed in spaced parallel relationship with the touch panel. The ground plane can reduce metal loss from the touch panel or other circuit components in the wearable audio device.
In some embodiments, the ground plane can be a meshed (e.g., slotted ground plane). Use of a meshed ground plane can reduce capacitance between the touch panel and the ground plane. This can have a technical effect of improving touch sensing sensitivity of the touch panel.
In some embodiments, the ground plane can include an extension that follows a path associated with conductors in communication with the touch panel (e.g., used to communicate signals to a printed circuit board in the wearable audio device). The extension can be a solid portion of the ground plane.
In some embodiments, conductor(s) used to carry power and/or audio signals in the wearable audio device can include RF chokes at a location where the conductor(s) are connected to a printed circuit board in the wearable audio device. The RF chokes can be used to isolate the conductors from the antenna and reduce antenna performance variations resulting from the conductors.
As used herein, the term “arc-shaped” refers to any shape that forms an arc, bow, or arcuate shape. An arc-shaped antenna can be composed of one or more curved segments, a plurality of straight segments arranged to form an arc, or combination of curved, straight, and other segments. The use of the term “about” in conjunction with a numerical value refers to within 20% of the stated numerical value.
With reference now to the FIGS., example embodiments of the present disclosure will now be set forth. Aspects of the present disclosure will be discussed with reference to a wearable audio device such an earbud for providing audio to a user.
As shown in
Referring to
The housing 114 include an ear engaging surface 116 that shaped and sized to fit within a user's ear. The ear engaging surface 116 can include, at least in part, a polyamide material. The housing 114 can include a top cover 115. The top cover 115 can house, for instance, an antenna for the wearable audio device. In some embodiments, the top cover 115 can be removable from the housing 114. The top cover 115 can be made using, for instance, a laser direct structuring process. As shown in
The wearable audio device 102 can include one or more microphones 152. The microphone(s) 152 can be configured to record ambient noise observable near the wearable audio device. The ambient noise can be used, for instance, to provide noise cancelling capabilities for the wearable audio device 102.
The wearable audio device 102 can include a printed circuit board 154 (e.g., a flexible printed circuit board). The printed circuit board 154 can include various circuit components (e.g., processors, memory, signal processing circuits, application specific integrated circuits, etc.) used to provide audio output from a source to a user.
The wearable audio device 102 can include a touch panel 160. The touch panel 160 can be used to detect touch inputs from a user (e.g., the user touching the top cover 115 of the housing 114). Signals associated with the touch inputs can be communicated to the printed circuit board 154 to control various operating characteristics of the wearable audio device (e.g., volume, mute, channel, etc.).
The wearable audio device 102 can include an antenna 200. The antenna 200 can be used to communicate wireless signals (e.g., RF signals) to and/or from the wearable audio device 102. A feed element 210 can communicate signals from the antenna 200 to and/or from the printed circuit board 154.
In some embodiments, the arc-shaped conductor 204 can have a length configured to accommodate communicating RF signals at a particular frequency. For instance, the arc-shaped conductor 204 can have a length equal to about a λ/2 for a particular operating frequency where λ is the wavelength associated with the particular frequency. In one example embodiments, the arc-shaped conductor 204 has a length configured to communicate signals at about 2.4 GHz.
According to example embodiments of the present disclosure, the antenna 200 can be located within the top cover 115 of the wearable audio device 102. For instance, as shown in
Curve 304 plots current as a function of azimuth about the antenna 200. As shown, the current is at a maximum at a location proximate middle portion 220 of the antenna 200. The current is at a minimum at a location proximate the first end 206 and the second end 208 (e.g., proximate the opening 212) of the antenna 200.
According to example aspects of the present disclosure, the antenna 200 is positioned and/or oriented within the wearable audio device 102 (e.g., within the top cover 115) such that when the wearable audio device 102 is worn in a user's ear, the portion of the antenna 200 associated with a maximum electric field is located further away from a user's ear relative to the portion of the antenna 200 associated with a minimum electric field. For instance, the portion of the antenna associated with a minimum current is located further away from a user's ear relative to the portion of the antenna 200 associated with a maximum current.
The touch panel can be used to detect touch inputs from a user (e.g., the user touching the top cover 115 of the housing 114). Signals associated with the touch inputs can be communicated to the printed circuit board 154 to control various operating characteristics of the wearable audio device (e.g., volume, mute, channel, etc.). The touch panel 160 can be arranged over a printed circuit board 154 for the wearable audio device 102. The touch panel 160 can provide signals to the printed circuit board 154 via one or more conductors 165.
Because of the close proximity of the touch panel 160 to the antenna 200, the touch panel 160 can affect operating performance of the antenna 200. To reduce variations in operating performance of the antenna 200 resulting from the touch panel 160, a ground plane 180 can be disposed in spaced parallel relation with the touch panel 160. The ground plane 180 can be a conductive plane. In some embodiments, the ground plane 180 can be meshed (e.g., slotted) to reduce capacitance between the touch panel 160 and the ground plane 180.
As shown in
While the present subject matter has been described in detail with respect to specific example embodiments thereof, it will be appreciated that those skilled in the art, upon attaining an understanding of the foregoing may readily produce alterations to, variations of, and equivalents to such embodiments. Accordingly, the scope of the present disclosure is by way of example rather than by way of limitation, and the subject disclosure does not preclude inclusion of such modifications, variations and/or additions to the present subject matter as would be readily apparent to one of ordinary skill in the art.
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International Search Report and Written Opinion for PCT/US2018/038554 dated Sep. 13, 2018, 16 pages. |