IP Library › Granted Patent US 12,483,827
Granted Patent B2
US 12,483,827 · App. 18/086,446 · Granted Nov 25, 2025

Multi-directional wind noise abatement

Inventor: Limin Zhou (Redmond, WA)
Assignee: Meta Platforms Technologies, LLC
H04R3/005H04R1/406H04R2201/403H04R2499/11
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Quick Facts
Patent No.
US 12,483,827
App. No.
18/086,446
Granted
Nov 25, 2025
Kind
B2
Abstract

An acoustic device for use in a wearable device (e.g., smart watch) is described. The acoustic device includes a curved primary audio waveguide and a plurality of secondary waveguides. The curved primary waveguide has two ports that open to a local area on opposite ends of the primary audio waveguide. The primary waveguide is coupled to a plurality of secondary audio waveguides. Each secondary audio waveguide couples a different acoustic sensor to the primary audio waveguide. A controller can select a signal from an acoustic sensor, of the at least two acoustic sensors, having the least amount of wind noise. Additionally, in some embodiments, when there is minimal wind noise, the at least two acoustic sensors may be used for beamforming.

Claims (61)

1 . An acoustic device comprising:

a curved primary waveguide having a first port located at a first end of the curved primary waveguide and a second port at a second end of the curved primary waveguide, the curved primary waveguide configured to direct airflow from a local area that includes sound pressure waves and turbulent pressure waves to a plurality of secondary waveguides; and

the plurality of secondary waveguides, each secondary waveguide of the plurality of secondary waveguides configured to direct the sound pressure waves and a portion of turbulent pressure waves to a respective acoustic sensor of a sensor array,

wherein each acoustic sensor of the sensor array detects a respective portion of the sound pressure waves and a respective portion of turbulent pressure waves, and a remaining portion of the turbulent pressure waves exits the acoustic device at one of the first port and the second port, and at least one of the detected portions of turbulent pressure waves is lower than the remaining portion the turbulent pressure waves.

2 . The acoustic device of claim 1 , wherein the first port includes:

a first end open to a local area, the first end configured to receive airflow from the local area based in part on an orientation of the acoustic device with respect to wind direction; and

a second end coupled to the end of the curved primary waveguide, the second end configured to direct airflow from the local area to the curved primary waveguide.

3 . The acoustic device of claim 1 , wherein the second port includes:

a first end open to a local area, the first end configured to receive airflow from the local area based in part on an orientation of the acoustic device with respect to wind direction; and

a second end coupled to the end of the curved primary waveguide, the second end configured to direct airflow from the local area to the curved primary waveguide.

4 . The acoustic device of claim 1 , wherein the first port and second port are straight tubes.

5 . The acoustic device of claim 1 , wherein each secondary waveguide of the plurality of secondary waveguides includes:

a first end, the first end coupled to the curved primary waveguide between the first port and second port of the curved primary waveguide; and

a second end, the second end coupled to an acoustic sensor.

6 . A wearable device comprising:

an acoustic device comprising:

a curved primary waveguide having a first port located at a first end of the curved primary waveguide and a second port at a second end of the curved primary waveguide, the curved primary waveguide configured to direct airflow from a local area that includes sound pressure waves and turbulent pressure waves to a plurality of secondary waveguides; and

the plurality of secondary waveguides, each secondary waveguide of the plurality of secondary waveguides configured to direct the sound pressure waves and a portion of turbulent pressure waves to a respective acoustic sensor of a sensor array,

wherein each acoustic sensor of the sensor array detects a respective portion of the sound pressure waves and a respective portion of turbulent pressure waves, and a remaining portion of the turbulent pressure waves exit the acoustic device at one of the first port and the second port, and at least one of the detected portions of turbulent pressure waves is lower than the remaining portion the turbulent pressure waves; and

an audio controller coupled to the sensor array, the audio controller configured to monitor levels of wind noise detected in audio signals output by each of the plurality of acoustic sensors.

7 . The wearable device of claim 6 , wherein the first port includes:

a first end open to a local area, the first end configured to receive airflow from the local area based in part on an orientation of the wearable device with respect to wind direction; and

a second end coupled to the end of the curved primary waveguide, the second end configured to direct airflow from the local area to the curved primary waveguide.

8 . The wearable device of claim 6 , wherein the second port includes:

a first end coupled to the end of the curved primary waveguide, the first end configured to direct airflow from the local area to the curved primary waveguide; and

a second end open to a local area, the second end configured to receive airflow from the local area based in part on an orientation of the wearable device with respect to wind direction.

9 . The wearable device of claim 6 , wherein the first port and second port are straight tubes.

10 . The wearable device of claim 6 , wherein the acoustic device is located on a periphery of the wearable device.

11 . The wearable device of claim 6 , wherein the curved primary waveguide is parallel to a periphery of the wearable device.

12 . The wearable device of claim 6 , wherein each secondary waveguide of the plurality of secondary waveguides includes:

a first end, the first end coupled to the curved primary waveguide; and

a second end, the second end coupled to an acoustic sensor.

13 . The wearable device of claim 6 , wherein the audio controller is further configured to:

determine a level of wind noise in the audio signals output by each acoustic sensor from the sensor array; and

in response to the level of wind noise being greater than a predefined threshold:

select a signal of the audio signals with a lower level of wind noise; and

in response to the level of wind noise being lower than a predefined threshold;

execute a beamforming algorithm, wherein the beamforming algorithm uses the audio signals output by each acoustic sensor.

14 . The wearable device of claim 13 , wherein the audio controller is further configured to determine the level of wind noise in the audio signals by calculating a signal-to-noise ratio of the audio signals output by a respective acoustic sensor.

15 . An audio system comprising:

one or more acoustic devices, an acoustic device comprising:

a curved primary waveguide having a first port located at a first end of the curved primary waveguide and a second port at a second end of the curved primary waveguide, the curved primary waveguide configured to direct airflow from a local area that includes sound pressure waves and turbulent pressure waves to a plurality of secondary waveguides; and

the plurality of secondary waveguides, each secondary waveguide of the plurality of secondary waveguides configured to direct the sound pressure waves and a portion of turbulent pressure waves to a respective acoustic sensor of a sensor array,

wherein each acoustic sensor of the sensor array detects a respective portion of the sound pressure waves and a respective portion of turbulent pressure waves, and a remaining portion of the turbulent pressure waves exit the acoustic device at one of the first port and the second port, and at least one of the detected portions of turbulent pressure waves is lower than the remaining portion the turbulent pressure waves; and

an audio controller coupled to the sensor array, the audio controller configured to monitor levels of wind noise detected in audio signals output by each of the plurality of acoustic sensors.

16 . The audio system of claim 15 , wherein the first port includes:

a first end open to a local area, the first end configured to receive airflow from the local area based in part on an orientation of the acoustic device with respect to wind direction; and

a second end coupled to the end of the curved primary waveguide, the second end configured to direct airflow from the local area to the curved primary waveguide.

17 . The audio system of claim 15 , wherein the second port includes:

a first end coupled to the end of the curved primary waveguide, the first end configured to direct airflow from the local area to the curved primary waveguide; and

a second end open to a local area, the second end configured to receive airflow from the local area based in part on an orientation of the acoustic device with respect to wind direction.

18 . The audio system of claim 15 , wherein each secondary waveguide of the plurality of secondary waveguides includes:

a first end, the first end coupled to the curved primary waveguide; and

a second end, the second end coupled to an acoustic sensor.

19 . The audio system of claim 15 , wherein the audio controller is further configured to:

determine a level of wind noise in the audio signals output by each acoustic sensor from the sensor array;

in response to the level of wind noise being greater than a predefined threshold:

select a signal of the audio signals with a lower level of wind noise; and

in response to the level of wind noise being lower than a predefined threshold;

execute a beamforming algorithm, wherein the beamforming algorithm uses the audio signals output by each acoustic sensor.

20 . The audio system of claim 19 , wherein the audio controller is further configured to determine the level of wind noise in the audio signals by calculating a signal-to-noise ratio of the audio signals output by a respective acoustic sensor.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 11, 2023
From: ZHOU, LIMIN
To: META PLATFORMS TECHNOLOGIES, LLC
Reel/Frame 062339/0588 →
Continuity (2)
Provisional Application 63349923 · Jun 7, 2022
Related Publication 20230396920A1 · Dec 7, 2023
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