IP Library Granted Patent US 10,034,098
Granted Patent B2
US 10,034,098 · App. 15/244,058 · Granted Jul 24, 2018

Generation of audio and ultrasonic signals and measuring ultrasonic response in dual-mode MEMS speaker

Inventors: Haim Kupershmidt (Or Yehuda, IL); Lior Blanka (Rosh Haayin, IL)
Assignee: DSP GROUP LTD.
H04R19/02B81B3/0021H04R17/00B81B2201/0257B81B2201/0271H04R2201/003H04R2217/03
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Quick Facts
Patent No.
US 10,034,098
App. No.
15/244,058
Granted
Jul 24, 2018
Kind
B2
Abstract

A MEMS speaker that includes a control unit and multiple MEMS elements that include a membrane positioned in a first plane, a blind that is positioned in a second plane and a shutter that is positioned in a third plane. The control unit is configured to control the multiple MEMS elements to operate in an audio output mode or an ultrasonic output mode. The MEMS speaker is configured, when operating in the ultrasonic output mode, to oscillate at least one of the membrane, blind and shutter thereby generating an ultrasonic signal without audio-modulating the ultrasonic signal. The MEMS speaker is configured, when operating in the audio output mode, to oscillate the membrane thereby generating the ultrasonic signal and oscillate at least one of the shutter and the blind thereby modulating the ultrasonic acoustic signal to generate an audio signal.

Claims (21)

1. A micro-electro-mechanical system (MEMS) speaker that comprises:

multiple MEMS elements that comprise a membrane positioned in a first plane, a blind that is positioned in a second plane and a shutter that is positioned in a third plane;

a control unit that is configured to control the multiple MEMS elements to operate in an audio output mode or an ultrasonic output mode; and

a detector that is coupled to at least one MEMS element of the multiple MEMS elements;

wherein the MEMS speaker is configured, when operating in the ultrasonic output mode, to oscillate at least one of the membrane, blind and shutter thereby generating an ultrasonic signal without audio-modulating the ultrasonic signal;

wherein the MEMS speaker is configured, when operating in the audio output mode, to oscillate the membrane thereby generating the ultrasonic signal and oscillate at least one of the shutter and the blind thereby modulating the ultrasonic acoustic signal to generate an audio signal; and

wherein the detector is configured to sense ultrasonic vibrations of the at least one MEMS element, during a detection period during which the MEMS speaker is not induced to vibrate by the control unit.

2. The MEMS speaker according to claim 1 , wherein the at least one MEMS element is a single MEMS element.

3. The MEMS speaker according to claim 2 wherein the MEMS element is configured to vibrate as a result of a reception of an ultrasonic echo; wherein the MEMS speaker is configured to output an ultrasonic probe signal during a transmission period that preceded the detection period; and wherein the ultrasonic echo results from the transmission of ultrasonic probe signal.

4. The MEMS speaker according to claim 1 , wherein the at least one MEMS element is the multiple MEMS elements; wherein the detector is configured to sense ultrasonic vibrations of each one of the multiple MEMS elements, during the detection period during which the MEMS speaker is not induced to vibrate by the control unit.

5. The MEMS speaker according to claim 1 wherein the MEMS speaker is configured, when operating in the audio output mode, to send a shutter control signal for oscillating the shutter and send a blind control signal for oscillating the blind.

6. The MEMS speaker according to claim 1 wherein the control unit is configured, when operating in the audio output mode, to receive an input signal that represents the audio signal, and to control one or more of the multiple MEMS elements based on the input signal.

7. A method for generating an output signal by a micro-electro-mechanical system (MEMS) speaker, the method comprises:

oscillating, when operating in an ultrasonic output mode, at least one MEMS element of multiple MEMS elements thereby generating an ultrasonic signal without audio-modulating the ultrasonic signal; wherein the multiple MEMS elements comprise a membrane that is positioned in a first plane, a blind that is positioned in a second plane and a shutter that is positioned in a third plane;

oscillating, wherein operating in the audio output mode, the membrane thereby generating the ultrasonic signal and oscillating at least one of the shutter and the blind thereby modulating the ultrasonic acoustic signal to generate an audio signal; and

sensing, by a detector that is coupled to at least one MEMS element of the multiple MEMS elements, ultrasonic vibrations of the at least one MEMS element, during a detection period during which the MEMS speaker is not induced to vibrate by the control unit.

8. The method according to claim 7 wherein the at least one MEMS element is a single MEMS element.

9. The method according to claim 8 wherein the MEMS element vibrates as a result of a reception of an ultrasonic echo; wherein the method comprises outputting, by the MEMS speaker, an ultrasonic probe signal during a transmission period that preceded the detection period; and wherein the ultrasonic echo results from the transmission of ultrasonic probe signal.

10. The method according to claim 7 wherein the at least one MEMS element is the multiple MEMS elements; wherein the sensing comprises sensing the ultrasonic vibrations of each one of the multiple MEMS elements, during the detection period during which the MEMS speaker is not induced to vibrate by the control unit.

11. The method according to claim 7 , comprising sending, by the MEMS speaker and when operating in the audio output mode, a shutter control signal for oscillating the shutter and sending a blind control signal for oscillating the blind.

12. The method according to claim 7 , comprising receiving, by the control unit and when operating in the audio output mode, an input signal that represents the audio signal, and controlling one or more of the multiple MEMS elements based on the input signal.

Continuity (4)
Continuation In Part 15075246 · Mar 21, 2016
Provisional Application 62208725 · Aug 23, 2015
Provisional Application 62137835 · Mar 25, 2015
Related Publication 20170064457A1 · Mar 2, 2017
Cited By (2)
US 12,192,852 US 12,412,558