IP Library Granted Patent US 11,022,489
Granted Patent B2
US 11,022,489 · App. 16/368,171 · Granted Jun 1, 2021

Portable multi-spectrometry system for chemical and biological sensing in atmospheric air

Inventors: Kin Chiu Ng (Fresno, CA); Subrata Sanyal (Eastvale, CA)
Assignee: The United States of America, as represented by the Secretary of the Navy
G01J3/0294G01J3/0272G01J3/42G01J3/4406G01J3/4412G01N21/3103G01N21/3504G01N21/6404G01N21/65H01J49/26
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Quick Facts
Patent No.
US 11,022,489
App. No.
16/368,171
Filed
Mar 28, 2019
Granted
Jun 1, 2021
Kind
B2
Art Unit
2886
USPC
356/72
Abstract

The invention relates to a portable multi-spectrometry system for chemical and biological sensing in atmospheric air. A portable, spectrometric system integrates multiple spectroscopy theories, combines their advantageous features, and fills the gaps for their limitations. The combined spectrometry system with operations for PLS, IRAS, MAS, MFS, RSS, and MS, will detect particles and chemicals, directly and sequentially, in the same air-stream.

Claims (36)

1. A multi-spectrometry system comprising:

an air inlet, wherein a testing sample enters the system;

a plurality of spectrometers comprising at least three spectrometers, wherein each spectrometer of the at least three spectrometers is a light scattering spectrometer, an infrared absorption spectrometer, a spectral filter molecular absorption and spectral filter molecular fluorescence spectrometer, a mass spectrometer, or a Raman scattering spectrometer coupled to a concentrator, wherein each spectrometer of the at least three spectrometers is a different type of spectrometer; wherein the at least three spectrometers are coupled linearly such the testing sample passes through each spectrometer of the at least three spectrometers sequentially;

an air outlet, wherein the testing sample exit the system; and

an air pump, configured to draw the sample through the system.

2. The system of claim 1 , wherein the plurality of spectrometers comprises:

at least one light scattering spectrometer;

at least one infrared absorption spectrometer;

at least one spectral filter molecular absorption and spectral filter molecular fluorescence spectrometer;

at least one mass spectrometer; and

at least one Raman scattering spectrometer coupled with at least one concentrator.

3. The system of claim 2 , wherein the at least one light scattering spectrometer is in a first position closest to the air inlet, wherein the at least one Raman scattering spectrometer is in a last position closest to the air outlet.

4. The system of claim 2 , further comprising:

a processor and a display, wherein each spectrometer of the plurality of spectrometers outputs a plurality of reading signals to the processor, wherein the processor transmits a display signal to the display such that the display shows a result of each spectrometer of the plurality of spectrometers.

5. The system of claim 4 , further comprising a power supply, wherein the power supply provide power to the processor, display, and each spectrometer of the plurality of spectrometers.

6. A method of detecting chemical and biological agents comprising:

providing a multi-spectrometry system comprising:

an air inlet,

a plurality of spectrometers comprising at least three spectrometers, wherein each spectrometer of the at least three spectrometers is a light scattering spectrometer, an infrared absorption spectrometer, a spectral filter molecular absorption and spectral filter molecular fluorescence spectrometer, a mass spectrometer, or a Raman scattering spectrometer coupled to a concentrator, wherein each spectrometer of the at least three spectrometers is a different type of spectrometer; wherein the at least three spectrometers are coupled linearly such that the testing sample passes through each spectrometer of the at least three spectrometers sequentially;

an air outlet; and

an air pump;

transporting the multi-spectrometry system to an end use location;

drawing air through the multi-spectrometry system with the air pump such that air passes through each spectrometer of the first plurality of spectrometers.

7. The method of claim 6 , further comprising:

at the end use location, selecting and installing a second plurality of spectrometers into the multi-spectrometry system.

8. A method of testing spectrometers comprising:

providing a multi-spectrometry system comprising:

an air inlet,

a first plurality of spectrometers,

an air outlet, and

an air pump,

wherein the plurality of spectrometers comprises at least two of a first type of spectrometer; wherein the first type of spectrometer is a light scattering spectrometer, an infrared absorption spectrometer, a spectral filter molecular absorption and spectral filter molecular fluorescence spectrometer, a mass spectrometer, or a Raman scattering spectrometer coupled to a concentrator, wherein each spectrometer of the at least two spectrometers is a different type of spectrometer; wherein the at least two spectrometers are coupled linearly such that the testing sample passes through each spectrometer of the at least two spectrometers sequentially;

drawing air through the multi-spectrometry system with the air pump such that air passes through each spectrometer of the plurality of spectrometers;

comparing the readings of each of the at least two of the first type of spectrometer.

9. The method of claim 8 , further comprising:

if a reading of a first spectrometer of the at least two of the first type of spectrometer is inconsistent with the other spectrometers, replacing the first spectrometer with a second spectrometer of the first type of spectrometer.

Continuity (2)
Provisional Application 62650599 · Mar 30, 2018
Related Publication 20190301931A1 · Oct 3, 2019