IP Library Granted Patent US 11,604,094
Granted Patent B2
US 11,604,094 · App. 17/962,171 · Granted Mar 14, 2023

Air quality monitoring system and method

Inventors: Anna Ailene Scott (Austin, TX); Yan Azdoud (Austin, TX); Christopher Daniel Kelley (Austin, TX)
Assignee: PROJECT CANARY, PBC
G01J3/26G01N33/0006G01N33/0031G02B26/001
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Quick Facts
Patent No.
US 11,604,094
App. No.
17/962,171
Granted
Mar 14, 2023
Kind
B2
Abstract

In an illustrative configuration, a method for monitoring air quality is disclosed. The method includes accepting analyte gas into a cell and reflecting light rays into the analyte gas repeatedly across the cell into at least one sensor. The light scattered by particulate matter in the analyte gas and amount of spectra-absorption due to presence of a gaseous chemical is then measured. Based on the determined amount of spectra-absorption and the measured scattered light the gaseous chemical is then measured.

Claims (65)

1. A computer-implemented method of measuring air quality, comprising:

providing a reference monitor that measures a target gaseous chemical, the reference monitor comprising:

a high-precision sensor;

providing a plurality of air quality monitors, each of the plurality of air quality monitors comprising:

a gaseous chemical sensor configured to measure the target gaseous chemical, wherein the gaseous chemical sensor is a low precision sensor that is sensitive to at least one parameter that does not affect the reference monitor;

determining a cross-calibration factor based on measurements of the reference monitor and measurements of the gaseous chemical sensor being sensitive to the at least one parameter;

calculating an error between the high-precision sensor and the gaseous chemical sensor;

updating the cross-calibration factor based on the error, to generate an updated cross-calibration factor; and

providing the updated cross-calibration factor to the plurality of air quality monitors for correcting measurements of the target gaseous chemical.

2. The method of claim 1 , wherein the gaseous chemical sensor of the plurality of air quality monitors comprises:

a cell comprising:

a spectrophotometric chemical sensor;

one or more reflective surfaces that causes light to travel a length of the cell a plurality of times before being directed to the spectrophotometric chemical sensor.

3. The method of claim 2 , wherein the gaseous chemical sensor further comprises:

a light sensor that measures amount of light scattered by particulate matter in the cell,

wherein measurements of the spectrophotometric chemical sensor are adjusted using measurements from the light sensor.

4. The method of claim 3 , wherein the gaseous chemical sensor further comprises:

an analyzer that measures at least one gaseous chemical by receiving the measurements made by the spectrophotometric chemical sensor and determines an amount of spectro-absorption due to presence of the at least one gaseous chemical, wherein the analyzer is configured to compensate for presence of the particulate matter based on the amount of scattered light measured by the light sensor.

5. The method of claim 1 , wherein the error is calculated based on the at least one parameter and a sensitivity of the gaseous chemical sensor to each of the at least one parameter.

6. The method of claim 1 , wherein a precision of the high-precision sensor provided in the reference monitor is higher than a precision of the gaseous chemical sensor provided in each of the plurality of air quality monitors.

7. The method of claim 1 , further comprising:

comparing the error to a threshold to determine a difference; and

updating the cross-calibration factor based on the difference between the error and the threshold, when the error exceeds the threshold.

8. The method of claim 1 , further comprising:

receiving user-input data associated with the plurality of air quality monitors; and

determining a source of the target gaseous chemical based on the user-input data.

9. A system for measuring air quality, comprising:

a reference monitor that measures a target gaseous chemical, the reference monitor comprising:

a high-precision sensor;

a plurality of air quality monitors, each of the plurality of air quality monitors comprising:

a gaseous chemical sensor configured to measure the target gaseous chemical, wherein the gaseous chemical sensor is a low precision sensor that is sensitive to at least one parameter that does not affect the reference monitor; and

a processor module configured to:

determine a cross-calibration factor based on measurements of the reference monitor, measurements of the gaseous chemical sensor being sensitive to the at least one parameter;

calculate an error between the reference monitor and the plurality of air quality monitors;

update the cross-calibration factor based on the error, to generate an updated cross-calibration factor; and

provide the updated cross-calibration factor to the plurality of air quality monitors for correcting measurements of the target gaseous chemical.

10. The system of claim 9 , wherein the gaseous chemical sensor of the plurality of air quality monitors comprises:

a cell comprising:

a spectrophotometric chemical sensor;

one or more reflective surfaces that causes light to travel a length of the cell a plurality of times before being directed to the spectrophotometric chemical sensor.

11. The system of claim 10 , wherein the gaseous chemical sensor further comprises:

a light sensor that measures amount of light scattered by particulate matter in the cell;

wherein measurements of the spectrophotometric chemical sensor are adjusted using measurements from the light sensor.

12. The system of claim 11 , wherein the gaseous chemical sensor further comprises:

an analyzer that measures at least one gaseous chemical by receiving the measurements made by the spectrophotometric chemical sensor and determines an amount of spectro-absorption due to presence of the at least one gaseous chemical, wherein the analyzer is configured to compensate for presence of the particulate matter based on the amount of scattered light measured by the light sensor.

13. The system of claim 9 , wherein the error is calculated based on the at least one parameter and a sensitivity of the gaseous chemical sensor to each of the at least one parameter.

14. The system of claim 13 , wherein the processor module is configured to:

compare the error to a threshold to determine a difference; and

updates the cross-calibration factor based on the difference between the error and the threshold, when the error exceeds the threshold.

15. The system of claim 9 , wherein a precision of the high-precision sensor provided in the reference monitor is higher than a precision of the gaseous chemical sensor provided in each of the plurality of air quality monitors.

16. A system for calibrating one or more gaseous chemical sensors, the system comprising:

a reference monitor that measures a target gaseous chemical, the reference monitor comprising:

a high-precision sensor;

a plurality of air quality monitors located in close proximity to the reference monitor, each of the plurality of air quality monitors comprising:

a gaseous chemical sensor configured to measure the target gaseous chemical, wherein the gaseous chemical sensor is a low precision sensor that is sensitive to at least one parameter that does not affect the reference monitor; and

a processor module configured to:

determine a cross-calibration factor based on measurements of the reference monitor, measurements of the gaseous chemical sensor being sensitive to, the at least one parameter;

calculate an error between the reference monitor and the plurality of air quality monitors;

update the cross-calibration factor based on the error, to generate an updated cross-calibration factor; and

provide the updated cross-calibration factor to the plurality of air quality monitors for calibrating the gaseous chemical sensor.

17. The system of claim 16 , wherein the error is calculated based on the at least one parameter and a sensitivity of the low precision sensor to each of the at least one parameters.

18. The system of claim 16 , wherein a precision of the high-precision sensor provided in the reference monitor is higher than a precision of the gaseous chemical sensor provided in each of the plurality of air quality monitors.

19. The system of claim 16 , wherein the processor module is configured to:

compare the error to a threshold to determine a difference; and

update the cross-calibration factor based on the difference between the error and the threshold, when the error exceeds the threshold.

Assignments (3)
INTELLECTUAL PROPERTY SECURITY AGREEMENT Recorded Feb 23, 2024
From: PROJECT CANARY, PBC
To: SILICON VALLEY BANK, A DIVISION OF FIRST-CITIZENS BANK & TRUST COMPANY
Reel/Frame 066662/0483 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 10, 2022
From: SCOTT, ANNA AILENE; AZDOUD, YAN; KELLEY, CHRISTOPHER DANIEL
To: TROPOSPHERE MONITORING, INC.
Reel/Frame 061368/0340 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 10, 2022
From: TROPOSPHERE MONITORING, INC.
To: PROJECT CANARY, PBC
Reel/Frame 061368/0346 →
Continuity (6)
Division 17716326 · Apr 8, 2022
Division 17540497 · Dec 2, 2021
Continuation 16953908 · Nov 20, 2020
Division 16823205 · Mar 18, 2020
Division 16188793 · Nov 13, 2018
Related Publication 20230045528A1 · Feb 9, 2023