IP Library › Granted Patent US 10,908,133
Granted Patent B2
US 10,908,133 · App. 16/850,165 · Granted Feb 2, 2021

System and method for detecting hidden chemicals within objects in a non-invasive manner

Inventor: John Rankin (Columbus, OH)
Assignee: Rankin Labs, LLC
G01N29/4436G01N29/07G01N2291/011G01N2291/024
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 10,908,133
App. No.
16/850,165
Granted
Feb 2, 2021
Kind
B2
Abstract

Systems and methods are disclosed for non-invasive detection of chemicals within objects. An object comprised of cellulose material is placed inside an examination chamber, which is sealed. A first measurement of the speed of sound waves traveling through the chamber is taken to establish a baseline. The chamber is heated to liberate any stored chemicals within the object and a second measurement is taken. An expected difference is compared to an actual difference in measurements to determine if hidden chemicals are present.

Claims (100)

1. A method for non-invasive examination of an object comprised of cellulose material, said method comprising the steps of:

placing the object inside an examination chamber;

sealing the examination chamber to enclose the object;

taking a first temperature measurement of the examination chamber;

taking a first measurement of the speed of sound waves traveling through the examination chamber, including through the object, to establish a baseline;

heating the examination chamber to release chemicals stored within the cellulose material of the object;

taking a second temperature measurement of the examination chamber;

taking a second measurement of the speed of sound waves traveling through the examination chamber, including through the object, to establish a second measurement;

determining an expected difference between the baseline and the second measurement, wherein the expected difference reflects the difference in the speed of sound at the first temperature and the second temperature;

comparing the baseline with the second measurement to determine an actual difference; and

comparing the actual difference to the expected difference.

2. The method of claim 1 wherein:

the steps of taking the first and second measurements of the speed of sound waves comprises the sub-steps of:

generating sound waves at a first number of piezoelectric transducers located along a first wall of the examination chamber; and

detecting the generated sound waves at a second number of piezoelectric transducers located along a second wall of the examination chamber, where said first wall opposes said second wall.

3. The method of claim 2 wherein:

the first and second temperature measurements are taken by a sensor located within or in fluid communication with the examination chamber;

the baseline and the second measurement are determined by a processor in electronic communication with the first and second number of piezoelectric transducers; and

the expected difference and the actual difference are determined at the processor.

4. The method of claim 3 further comprising the steps of:

determining that the actual difference is greater than the expected difference by at least a predetermined amount; and

determining that hidden chemicals are present within the object.

5. The method of claim 4 further comprising the steps of:

displaying, at an electronic display associated with the examination chamber, a message indicating that hidden chemicals are detected.

6. The method of claim 4 further comprising the steps of:

transmitting a message indicating that hidden chemicals are detected to one or more electronic devices associated with the examination chamber.

7. The method of claim 3 further comprising the steps of:

determining that the actual difference is greater or less than the expected difference by less than a predetermined amount; and

determining that no hidden chemicals are present within the object.

8. The method in claim 3 further comprising the steps of:

comparing, at the processor, the actual difference with a table of known values collected from known samples and stored at an electronic database to identify a composition of the hidden chemicals.

9. The method in claim 3 further comprising the steps of:

comparing, at the processor, the second measurement with a table of known values collected from known samples and stored at an electronic database to identify a composition of the hidden chemicals.

10. The method of claim 3 wherein:

said chamber is capable of movement between an open position where the object may be moved into and out of the chamber, and a closed position where the chamber is sealed in an air-tight manner.

11. The method of claim 3 wherein:

said sound waves comprise ultrasonic waves.

12. A system for non-invasive examination of an object comprised of cellulose material, said system comprising:

a chamber configured for movement between an open position where the object may be moved into and out of the chamber, and a closed position where the chamber is sealed;

one or more processors;

a signal generator in electronic communication with the processor and configured to generate sound waves within the chamber;

a signal detector in electronic communication with the processor and configured to detect sound waves within the chamber;

a heating device in electronic communication with the one or more processors and located within, or in fluid communication with, the chamber;

one or more temperature sensors in electronic communication with the one or more processors and located within, or in fluid communication with, the chamber;

one or more electronic storage devices in electronic communication with the one or more processors and comprising software instructions, which when executed, configure the one or more processors to:

take a first temperature reading of air within the chamber by way of the one or more temperature sensors;

take a first measurement of a speed of sound in the chamber by way of the signal generator and the signal detector;

generate heat within the chamber by way of the heating device;

take a second temperature reading of air within the chamber by way of the one or more temperature sensors;

take a second measurement of a speed of sound in the chamber by way of the signal generator and the signal detector;

determine an expected change in the speed of sound based on the first and second temperature readings;

determine an actual change in the speed of sound; and

determine that hidden chemicals are present where a difference between the actual change in the speed of sound and the expected change in the speed of sound is outside of a predetermined margin.

13. The system of claim 12 further comprising:

additional software instructions, which when executed, configure the one or more processors to determine that hidden chemicals are not present where the difference between the actual change in the speed of sound and the expected change in the speed of sound is within a predetermined margin.

14. The system of claim 12 wherein:

said signal generator comprises a first number of piezoelectric transducers located along a first side of the chamber;

said signal detector comprises a second number of piezoelectric transducers located along a second side of the chamber; and

the sound waves comprise ultrasonic sound waves.

15. The system of claim 14 further comprising:

additional software instructions, which when executed, configure the one or more processors to take the first and second measurements of the speed of sound in the chamber by determining the amount of time between transmitting sound waves from the first number of piezoelectric transducers and detecting sound waves at the second number of piezoelectric transducers.

16. The system of claim 12 further comprising:

additional software instructions, which when executed, configure the one or more processors to activate the heating element to generate heat until the temperature sensor indicates that a predetermined temperature is reached.

17. The system of claim 12 further comprising:

a database in electronic communication with the processor, said database comprising the expected speed of sound through air containing various compositions at various temperatures.

18. The system of claim 17 further comprising:

additional software instructions, which when executed, configure the one or more processors to query the database to retrieve a particular composition of air associated with a speed of sound most closely matching the second measurement.

19. The system of claim 18 further comprising:

a display in electronic communication with the one or more processors; and

additional software instructions, which when executed, configure the one or more processors to display the particular composition at the display.

20. A system for non-invasive examination of objects comprised of cellulose material, said system comprising:

a chamber configured for movement between an open position where a particular one of the objects may be inserted into and removed from the chamber, and a closed position where the chamber is sealed in an air-tight manner;

one or more processors;

a signal generator in electronic communication with the one or more processors;

a signal detector in electronic communication with the one or more processors;

a first number of piezoelectric transducers located along a first wall of the chamber, wherein each of said first number of piezoelectric transducers are in electronic communication with the signal generator, and wherein each of said first number of piezoelectric transducers are configured to generate ultrasonic sound waves;

a second number of piezoelectric transducers located along a second wall of the chamber opposing said first wall, wherein each of said second number of piezoelectric transducers are in electronic communication with the signal detector, and wherein each of said second number of piezoelectric transducers are configured to detect ultrasonic sound waves;

a heating device located within the chamber and in electronic communication with the one or more processors;

a temperature sensor located within the chamber and in electronic communication with the one or more processors;

a database in electronic communication with the one or more processors, said database comprising the expected speed of sound through various chemical compositions;

an electronic display in electronic communication with the one or more processors; and

one or more electronic storage devices in electronic communication with the one or more processors and comprising software instructions, which when executed, configure the one or more processors to:

take a first speed of sound measurement for the chamber by:

instructing the first number of piezoelectric transducers to transmit a first burst of ultrasonic waves;

determine, by way of the second number of piezoelectric transducers, that the first burst of ultrasonic waves has been detected;

record a first elapsed time between the transmission and detection of the first burst of ultrasonic waves; and

divide the first elapsed time by a known distance between the first and second number of piezoelectric transducers;

activate the heating device to generate heat within the chamber;

determine, by way of the temperature sensor, that the air in the chamber reaches a predetermined temperature;

take a second speed of sound measurement for the chamber after determining that the air in the chamber reached the predetermined temperature by:

instructing the first number of piezoelectric transducers to transmit a second burst of ultrasonic waves;

determine, by way of the second number of piezoelectric transducers, that the second burst of ultrasonic waves has been detected;

record a second elapsed time between the transmission and detection of the second burst of ultrasonic waves; and

divide the second elapsed time by the known distance between the first and second number of piezoelectric transducers;

determine an expected change in the speed of sound based upon the average composition of atmospheric air at the first temperature and the second temperature;

determine an actual change in the speed of sound from the first and second speed of sound measurements;

determine that at least one hidden chemical is present within the object where a difference between the actual change in the speed of sound and the expected change in the speed of sound is outside of a predetermined margin

retrieve a chemical composition of air which most closely matches the second speed of sound measurement;

remove, from the chemical composition of air, compounds found in average atmospheric air to identify a remaining compound; and

display, at the electronic display, the remaining chemical compound as a hidden chemical within the object.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 11, 2020
From: RANKIN, JOHN
To: RANKIN LABS, LLC
Reel/Frame 054617/0780 →
Continuity (2)
Provisional Application 62834996 · Apr 17, 2019
Related Publication 20200333298A1 · Oct 22, 2020