IP Library › Granted Patent US 12,724,009
Granted Patent B2
US 12,724,009 · App. 18/239,327 · Granted Sep 1, 2026

Sound pressure metrology instrument and determining sound pressure from index of refraction

Inventors: Akobuije Douglas Eziani Chijioke (Silver Spring, MD); Richard Albert Allen (Clarksburg, MD); Benjamin James Reschovsky (Cabin John, MD); Randall Paul Wagner (Arlington, VA)
Assignee: GOVERNMENT OF THE UNITED STATES OF AMERICA, AS REPRESENTED BY THE SECRETARY OF COMMERCE
G01N29/11G01N29/2418G01N2291/015
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Quick Facts
Patent No.
US 12,724,009
App. No.
18/239,327
Granted
Sep 1, 2026
Kind
B2
Abstract

A sound pressure metrology instrument determines sound pressure from index of refraction and includes: a light source that produces source light; the optical cavity that: receives an acoustic field from the sound source; receives the source light from the light source; produces acoustic-modified light from the source light; and communicates the acoustic-modified light to the photodetector; the photodetector that receives the acoustic-modified light from the optical cavity, produces an acoustic-modified signal from the acoustic-modified light, and communicates the acoustic-modified signal to the analyzer module; the analyzer module in electrical communication with the photodetector and that receives the acoustic-modified signal from the photodetector and determines the sound pressure of the acoustic field produced by the sound source from the modulations in the index of refraction of the acoustic medium inside the optical cavity encoded in the acoustic-modified light.

Claims (56)

1 . A sound pressure metrology instrument for determining sound pressure from index of refraction, the sound pressure metrology instrument comprising: a light source that produces source light and communicates the source light to an optical cavity; the optical cavity in optical communication with the light source, in acoustic communication with a sound source, and in optical communication a photodetector, such that an acoustic medium is disposed within an optical mode volume of the optical cavity and such that the optical cavity; receives an acoustic field from the sound source; receives the source light from the light source; produces acoustic-modified light from the source light in response to the source light interacting with the acoustic field in the optical cavity, such that the acoustic-modified light encodes modulations in the index of refraction of the acoustic medium inside the optical cavity due to the acoustic field; and optically communicates the acoustic-modified light to the photodetector; the photodetector in optical communication with the optical cavity and in electrical communication with an analyzer module and that receives the acoustic modified light from the optical cavity, produce an acoustic-modified signal from the acoustic-modified light, and communicates the acoustic-modified signal to the analyzer module; the analyzer module in electrical communication with the photodetector and that receives the acoustic-modified signal from the photodetector and determines the sound pressure of the acoustic field produced by the sound source from the modulations in the index of refraction of the acoustic medium inside the optical cavity encoded in the acoustic-modified light; and an acoustic enclosure in which is disposed the optical cavity, the acoustic medium, the sound source, and the acoustic field, wherein the acoustic enclosure comprises an acoustic resonator, wherein the acoustic enclosure supports a standing acoustic wave at an acoustic wavelength λ ac =L/N, wherein N is an integer, and L is a distance of separation of the sound source and a microphone that are disposed on opposing ends of the acoustic enclosure.

2 . The sound pressure metrology instrument of claim 1 , further comprising a supplemental sensor in communication with the analyzer module and that produces supplemental sensor signal and communicates the supplemental sensor signal to the analyzer module.

3 . The sound pressure metrology instrument of claim 2 , wherein the supplemental sensor comprises a temperature sensor, humidity sensor, pressure sensor, mass spectrometer, chromatograph, wavemeter, a carbon dioxide concentration sensor, an accelerometer, a laser vibrometer, or a displacement sensor that measures a temperature, humidity, static background pressure, or composition of the acoustic medium in the optical cavity or optical frequency or wavelength of the source light or the acoustic-modified light.

4 . The sound pressure metrology instrument of claim 2 , wherein the supplemental sensor:

measures a temperature, humidity, static background pressure, or composition of the acoustic medium in the optical cavity or optical frequency or wavelength of the source light or the acoustic-modified light, and

communicates the temperature, humidity, static background pressure, or composition of the acoustic medium in the optical cavity or optical frequency or wavelength of the source light or the acoustic-modified light as the supplemental sensor signal to the analyzer module.

5 . The sound pressure metrology instrument of claim 2 , wherein the analyzer module receives the supplemental sensor signal from the supplemental sensor, and the analyzer module uses the supplemental sensor signal to improve the fidelity of the determination of the sound pressure.

6 . The sound pressure metrology instrument of claim 1 , wherein the analyzer module determines the sound pressure from the index of refraction based on the following equation:

Δ

⁢

p

=

Δ

⁢

n

⁡

(

dn

dp

)

X

-

1

wherein X is a condition on the derivative and is adiabatic, isothermal, or polytropic; n is index of refraction of acoustic medium; and p is sound pressure.

7 . The sound pressure metrology instrument of claim 1 , further comprising a sound source driver in electrical communication with the sound source and that provides a driver signal, communicates the driver signal to the sound source, and controls production of the acoustic field by the sound source with the driver signal.

8 . Sound pressure metrology instrument for determining sound pressure from index of refraction, the sound pressure metrology instrument comprising: a light source that produces source light and communicates the source light to an optical cavity; the optical cavity in optica al communication with the light source, in acoustic communication with a sound source, and in optical communication a photodetector, such that an acoustic medium is disposed within an optical mode volume of the optical cavity and such that the optical cavity; receives an acoustic field from the sound source; receives the source light from the light source; produces acoustic-modified light from the source light in response to the source light interacting with the acoustic field in the optical cavity, such that the acoustic-modified light encodes modulations in the index of refraction of the acoustic medium inside the optical cavity due to the acoustic field, and optically communicates the acoustic-modified light to the photodetector; the photodetector in optical communication with the optical cavity and in electrical communication with an analyzer module and that receives the acoustic-modified light from the optical cavity, produces an acoustic-modified signal from the acoustic-modified light, and communicates the acoustic-modified signal to the analyzer module; the analyzer module in electrical communication with the photodetector and that receives the acoustic-modified signal from the photodetector and determines the sound assure of the acoustic field produced by the sound source from the modulations in the index of refraction of the acoustic medium inside the optical cavity encoded in the acoustic-modified light; and an acoustic enclosure in which is disposed the optical cavity, the acoustic medium, the sound source, and the acoustic field, wherein the acoustic enclosure comprises an acoustic coupler, wherein the acoustic field has constant acoustic pressure in the acoustic enclosure such that λ ac <<L/N, wherein N is an integer, and L is a distance of separation of the sound source and a microphone that are disposed on opposing ends of the acoustic enclosure.

9 . A sound pressure metrology instrument for determining sound pressure from index of refraction, the sound pressure metrology instrument comprising: a light source that produces source light and communicates the source light to an optical cavity; the optical cavity in optical communication with the light source, ac ustic communication with a sound source, and in optical communication a photodetector, such hat an acoustic medium is disposed within an optical mode volume of the optical cavity and such that the optical cavity; receives an acoustic field from the sound source; receives the source light from the light source; produces acoustic-modified light from the source light in response to the source light interacting with the acoustic field in the optical cavity, such that the acoustic-modified Right encodes modulations in the index of refraction of the acoustic medium inside the optical cavity due to the acoustic field; and optically communicates the acoustic-modified light to the photodetector; the photodetector in optical communication with the optical cavity and in electrical communication with an analyzer module and that receives the acoustic-modified light from the optical cavity, produces an acoustic-modified signal from the acoustic-modified light, and communicates the acoustic-modified signal to the analyzer module; the analyzer module in electrical communication with the photodetector and that receives the acoustic-modified signal from the photodetector and determines the sound pressure of the acoustic field produced by the sound source from the modulations in the index of refraction of the acoustic medium inside optical cavity encoded in the acoustic-modified light; and a microphone in acoustic communication with the sound source such that the optical cavity is acoustically interposed between the sound source and the microphone, such that the microphone receives the acoustic field that propagates through the optical cavity from the sound source, produces a microphone signal from the acoustic field, and communicates the microphone signal to a microphone receiver.

10 . The sound pressure metrology instrument of claim 9 , further comprising the microphone receiver in electrical communication with the microphone and that receives the microphone signal from the microphone, produces an acoustic signal from the microphone signal, and communicates the acoustic signal to the analyzer module, such that the sound pressure measured by the analyzer module is compared with the microphone signal from the microphone to calibrate the sensitivity of the microphone.

11 . A process for determining sound pressure from index of refraction, the process comprising: receiving, by an optical cavity comprising an acoustic medium disposed within an optical mode volume of the optical cavity, an acoustic field from a sound source; receiving, by the optical cavity, source light from a light source; interacting source light with the acoustic field in the optical cavity; producing an acoustic-modified light from the source light in response to interacting with the acoustic field, such that the acoustic-modified light encodes modulations in the index of refraction of the acoustic medium inside the optical cavity due to the acoustic field; communicating the acoustic-modified light signal to a photodetector; receiving the acoustic-modified light by the photodetector; producing, by the photodetector, an acoustic-modified signal from the acoustic-modified light; communicating the acoustic-modified signal from the photodetector to an analyzer module; determining, by the analyzer module, the sound pressure of the acoustic field from the modulations in the index of refraction of the acoustic medium encoded inside the optical cavity in the acoustic-modified light and receiving the acoustic field by a microphone and producing a microphone signal from the acoustic field.

12 . The process of claim 11 , further comprising:

receiving a supplemental sensor signal from a supplemental sensor;

using the supplemental sensor signal to improve the fidelity of the determination of the sound pressure level.

13 . The process of claim 11 , wherein the analyzer module determines the sound pressure level from the index of refraction based on the following equation:

Δ

⁢

p

=

Δ

⁢

n

⁡

(

dn

dp

)

X

-

1

wherein X is a condition on the derivative and is adiabatic, isothermal, or polytropic; n is index of refraction of acoustic medium; and p is sound pressure.

14 . The process of claim 11 , further comprising:

controlling production of the acoustic field by the sound source by a sound source driver.

15 . The process of claim 11 , further comprising:

receiving the microphone signal by a microphone receiver and producing an acoustic signal from the microphone signal.

16 . The process of claim 11 , further comprising:

communicating the acoustic signal to the analyzer module from the microphone receiver; and

comparing, by the analyzer module, the sound pressure level measured by the analyzer module with the microphone signal from the microphone to calibrate the sensitivity of the microphone.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 8, 2023
From: CHIJIOKE, AKOBUIJE DOUGLAS EZIANI; ALLEN, RICHARD ALBERT; RESCHOVSKY, BENJAMIN JAMES; WAGNER, RANDALL PAUL
To: GOVERNMENT OF THE UNITED STATES OF AMERICA, AS REPRESENTED BY THE SECRETARY OF COMMERCE
Reel/Frame 064845/0007 →
Continuity (2)
Provisional Application 63401735 · Aug 29, 2022
Related Publication 20240068990A1 · Feb 29, 2024
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