IP Library Granted Patent US 9,544,683
Granted Patent B2
US 9,544,683 · App. 14/056,907 · Granted Jan 10, 2017

Wirelessly powered audio devices

Inventors: Steven J. Ganem (Westwood, MA); Hiroshi A. Mendoza (San Francisco, CA); Morris P. Kesler (Bedford, MA); Konrad J. Kulikowski (Denver, CO); Andre B. Kurs (Chestnut Hill, MA); Alexander P. McCauley (Cambridge, MA); Eric R. Giler (Boston, MA); Katherine L. Hall (Arlington, MA); Gozde Guckaya (Belmont, MA)
Assignee: WiTricity Corporation
H04R3/00B60L11/182B60L11/184B60L11/1842B60L11/1844B60L11/1846B60L11/1848H02J5/005H02J7/00H02J17/00H04R25/554B60L2200/18B60L2200/26B60L2210/10B60L2210/20B60L2210/30B60L2210/40B60L2230/22B60L2230/24B60L2240/36B60L2250/10B60L2250/16B60L2270/145B60L2270/32Y02E60/721Y02T10/7005Y02T10/7088Y02T10/725Y02T10/7216Y02T10/7241Y02T90/121Y02T90/122Y02T90/127Y02T90/128Y02T90/14Y02T90/163Y02T90/169Y04S10/126Y04S30/14
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Quick Facts
Patent No.
US 9,544,683
App. No.
14/056,907
Granted
Jan 10, 2017
Kind
B2
Abstract

Techniques herein provide wireless energy transfer to audio devices such as headphones, headsets, hearing aids, and the like. Audio devices are integrated with a device resonator. The device resonator may be positioned and oriented to reduce interaction with lossy or sensitive components of the audio device. A repeater resonator and/or a source resonator is integrated into a headrest of a seat or a chair providing continuous power to the headphones while in use. The audio devices may be recharged wirelessly when positioned near source resonators that may be embedded in pads, tables, carrying cases, cups, and the like.

Claims (31)

1. A wirelessly powered audio device comprising:

an audio output element adapted to generate sounds audible to a user;

a device resonator structure adapted to wirelessly receive energy via oscillating magnetic fields, the device resonator configured to reduce the interaction of the magnetic fields with the audio output element; and

a power demand monitor adapted to monitor the power demands of the audio device and the power received via the device resonator structure, the power demand monitor further configured to cause the audio output element to generate an audible signal when the power demands of the audio device exceed the power delivered by the device resonator.

2. The audio device of claim 1 , wherein the device resonator structure is positioned near the audio output element such that the audio device performance is minimally affected by the presence of the device resonator.

3. The audio device of claim 2 , wherein the audio output element comprises a solenoid coil and wherein the resonator is positioned such that the dipole moment of the resonator structure is substantially orthogonal to the axis of the solenoid.

4. The audio device of claim 1 , further comprising magnetic material, wherein the magnetic material is positioned to shield the audio output element from the magnetic fields near the device resonator structure.

5. The audio device of claim 1 , further comprising a sheet of good electrical conducting material, wherein the sheet of good electrical conducting material is positioned to shield the audio output element from the magnetic fields near the device resonator structure.

6. The audio device of claim 1 , further comprising rechargeable batteries, wherein energy captured by the device resonator is at least in part used to recharge the batteries.

7. The audio device of claim 1 , wherein the device resonator structure comprises capacitively loaded conducting loops printed on a substrate.

8. The audio device of claim 1 , wherein the device resonators are integrated in a pod that is wired to the audio device.

9. The audio device of claim 1 , wherein the audio device comprises one or more speakers.

10. The audio device of claim 1 , wherein the audio device is a headset.

11. The audio device of claim 1 , wherein the audio device is configured to wirelessly receive energy from a source or repeater resonator in a chair.

12. The audio device of claim 1 , wherein the audio device is a hearing aid.

13. A wirelessly powered headphones, the headphones comprising:

a speaker element comprising a diaphragm and an actuator;

a device resonator structure adapted to wirelessly receive energy via oscillating magnetic fields, the device resonator configured to reduce the interaction of the magnetic fields with the speaker element; and

a power demand monitor adapted to monitor the power demands of the headphones and the power received via the device resonator structure, the power demand monitor further configured to cause the speaker element to generate an audible signal when the power demands of the headphones exceed the power delivered by the device resonator.

14. The headphones of claim 13 , wherein the speaker element is positioned for minimal performance degradation by the device resonator structure.

15. The headphones of claim 13 , further comprising magnetic material, wherein the magnetic material is positioned to shield the speaker element from the magnetic fields near the device resonator structure.

16. The headphones of claim 13 , further comprising a sheet of good electrical conducting material, wherein the sheet of good electrical conducting material is positioned to shield the speaker element from the magnetic fields near the device resonator structure.

17. The headphones of claim 13 , wherein the headphones are configured to wirelessly receive energy from a source or repeater resonator in a chair.

18. The headphones of claim 13 , further comprising rechargeable batteries, wherein energy captured by the device resonator structure is at least in part used to recharge the batteries.

19. The headphones of claim 18 , wherein the headphones are configured to be wirelessly recharged from a source resonator embedded in a carrying case.

20. A method for wirelessly powering of an audio device, the method comprising:

initiating wireless energy transfer from a wireless energy source;

monitoring, using a power demand monitor, a power demand of the audio device;

monitoring, using a noise monitor, the noise of an audio signal due to the wireless energy transfer;

adjusting energy transfer to a minimum level that satisfies the power demand of the audio device; and

filtering a noise component from the audio signal.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 10, 2014
From: GANEM, STEVEN J.; MENDOZA, HIROSHI A.; KESLER, MORRIS P.; KULIKOWSKI, KONRAD J.; KURS, ANDRE B.; MCCAULEY, ALEXANDER P.; GILER, ERIC R.; HALL, KATHERINE L.; GUCKAYA, GOZDE
To: WITRICITY CORPORATION
Reel/Frame 033061/0671 →
Continuity (26)
Continuation In Part 12650916 · Dec 31, 2009
Continuation In Part 12567716 · Sep 25, 2009
Provisional Application 61100721 · Sep 27, 2008
Provisional Application 61108743 · Oct 27, 2008
Provisional Application 61147386 · Jan 26, 2009
Provisional Application 61152086 · Feb 12, 2009
Provisional Application 61178508 · May 15, 2009
Provisional Application 61182768 · Jun 1, 2009
Provisional Application 61121159 · Dec 9, 2008
Provisional Application 61142977 · Jan 7, 2009
Provisional Application 61142885 · Jan 6, 2009
Provisional Application 61142796 · Jan 6, 2009
Provisional Application 61142889 · Jan 6, 2009
Provisional Application 61142880 · Jan 6, 2009
Provisional Application 61142818 · Jan 6, 2009
Provisional Application 61142887 · Jan 6, 2009
Provisional Application 61156764 · Mar 2, 2009
Provisional Application 61143058 · Jan 7, 2009
Provisional Application 61152390 · Feb 13, 2009
Provisional Application 61163695 · Mar 26, 2009
Provisional Application 61172633 · Apr 24, 2009
Provisional Application 61169240 · Apr 14, 2009
Provisional Application 61173747 · Apr 29, 2009
Provisional Application 61714996 · Oct 17, 2012
Provisional Application 61825942 · May 21, 2013
Related Publication 20140044293A1 · Feb 13, 2014