IP Library Granted Patent US 10,634,558
Granted Patent B1
US 10,634,558 · App. 16/188,793 · Granted Apr 28, 2020

Air quality monitoring system and enhanced spectrophotometric chemical sensor

Inventors: Anna Ailene Scott (Austin, TX); Yan Azdoud (Austin, TX); Christopher Daniel Kelley (Austin, TX)
G01J3/26G01N33/0006G01N33/0031G02B26/001
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Quick Facts
Patent No.
US 10,634,558
App. No.
16/188,793
Granted
Apr 28, 2020
Kind
B1
Abstract

An air quality monitoring system that enables a wide scale deployment of instruments with enough accuracy for meaningful and actionable data is provided. In one aspect, an advanced technique is used to calibrate limited-capability gaseous chemical sensors to obtain accurate measurements by cross-calibrating those sensors with reference sensors to correct sensitivities to parameters that cause errors to measurements of targeted gases. In another aspect, air quality measurements are used to identify sources of chemicals in a localized level by accounting for local conditions using data such as ambient condition data and user-provided data about the local environment. In yet another aspect, a gaseous chemical sensor with an improved encasement having a cell for reflecting and lengthening light path is provided to reduce the limitations and enhance the accuracy of a conventional spectrophotometric gaseous chemical sensor.

Claims (22)

1. A system for measuring air quality comprising:

a reference monitor configured to measure a target gaseous chemical;

a plurality of air quality monitors, each of the air quality monitors including a gaseous chemical sensor that is configured to measure the target gaseous chemical, the gaseous chemical sensor being sensitive to a parameter that does not affect the reference monitor;

a processor module configured to determine a cross-calibration factor based on measurements of the reference monitor, measurements of the gaseous chemical sensor and the parameter, the processor module further configured to provide the cross-calibration factor to the air quality monitors for correcting measurements of the target gaseous chemical;

wherein the gaseous chemical sensor in the air quality monitors includes a cell with two reflective surfaces that causes light to travel a length of the cell a plurality of times before being directed to a spectrophotometric chemical sensor.

2. The system of claim 1 , wherein the processor module corrects the measurements from the air quality monitors using the cross-calibration factor.

3. The system of claim 1 , wherein the processor module is further configured to determine an update of the cross-calibration factor based on comparing measurements from one of the air quality monitors and measurements from the reference monitors, and to provide the updated cross-calibration factor to other air quality monitors.

4. The system of claim 1 , wherein the processor module is further configured to receive user-input data associated with at least one of the air quality monitors and to determine a source of the target gaseous chemical based on the user-input data.

5. The system of claim 1 , wherein the gaseous chemical sensor further includes a light sensor to measure light scattered by particulate matter in the cell and wherein the air quality monitors are configured to adjust measurements of the spectrophotometric chemical sensor using measurements from the light sensor.

6. A computer-implemented method comprising:

receiving measurements from a reference monitor configured to measure a target gaseous chemical;

receiving measurements from a plurality of air quality monitors, each air quality monitor including a gaseous chemical sensor that is configured to measure the target gaseous chemical, the gaseous chemical sensor being sensitive to a parameter that does not affect the reference monitor;

determining a cross-calibration factor based on the received measurements of the reference monitor, the received measurements of the gaseous chemical sensor and the parameter; and

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

wherein the gaseous chemical sensor in the air quality monitors includes a cell with two reflective surfaces that causes light to travel a length of the cell a plurality of times before being directed to a spectrophotometric chemical sensor.

7. The computer-implemented method of claim 6 , further comprising correcting the measurements from the air quality monitors using the cross-calibration factor.

8. The computer-implemented method of claim 6 , further comprising:

determining an update of the cross-calibration factor based on comparing measurements from one of the air quality monitors and measurements from the reference monitors; and

providing the updated cross-calibration factor to other air quality monitors.

9. The computer-implemented method of claim 6 , further comprising:

receiving user-input data associated with at least one of the air quality monitors; and

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

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 Sep 28, 2021
From: TROPOSPHERE MONITORING, INC.
To: PROJECT CANARY, PBC
Reel/Frame 057629/0575 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 13, 2020
From: SCOTT, ANNA AILENE; AZDOUD, YAN; KELLEY, CHRISTOPHER DANIEL
To: TROPOSPHERE MONITORING, INC.
Reel/Frame 054360/0525 →
Cited By (1)
US 12,339,265