IP Library Granted Patent US 8,582,712
Granted Patent B2
US 8,582,712 · App. 13/253,927 · Granted Nov 12, 2013

Methods of detection and identification of carbon- and nitrogen-containing materials

Inventors: Alexander Ivanovich Karev (Moscow, RU); Valery Georgievich Raevsky (Moscow, RU); Leonid Zavenovich Dzhilavyan (Moscow, RU); Louis Joseph Brothers (Union, KY); Larry K. Wilhide (Newville, PA)
Assignee: Lawrence Livermore National Security, LLC.
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Quick Facts
Patent No.
US 8,582,712
App. No.
13/253,927
Granted
Nov 12, 2013
Kind
B2
Abstract

Methods for detecting and identifying carbon- and/or nitrogen-containing materials are disclosed. The methods may comprise detection of photo-nuclear reaction products of nitrogen and carbon to detect and identify the carbon- and/or nitrogen-containing materials.

Claims (49)

1. A method for detecting carbon- and/or nitrogen-containing materials, comprising:

irradiating a test object by a single pulse of gamma radiation, the test object comprising carbon- and/or nitrogen-containing material;

measuring a secondary radiation from decay products of nitrogen-12 and boron-12 isotopes, wherein the nitrogen-12 and boron-12 isotopes are formed by the irradiation of the carbon- and/or nitrogen containing material from the test object;

recording one or more time spectra of signals from the secondary radiation; and

analyzing the time spectra to determine one or more parameters indicative of a number of nitrogen-12 or boron-12 isotopes with respect to a total number of nitrogen-12 isotopes and boron-12 isotopes,

wherein the analyzing of the time-spectra to determine the one or more parameters is performed with data from two or more time intervals of recorded time spectra of signals from the secondary radiation of the test object.

2. The method according to claim 1 , wherein the analyzing of the time spectra to determine the one or more parameters comprises using computer processing to identify whether said one or more parameters are known to be associated with a material of interest.

3. The method according to claim 1 , wherein the recording of the time spectrum begins after the end of the irradiation pulse and a timed delay.

4. The method according to claim 1 , wherein the recording of the one or more time spectra is for a time span based on decay half-lives of the nitrogen-12 and boron-12 isotopes.

5. The method according to claim 1 , wherein the analyzing of the time spectra comprises transforming measured differential time spectra into integral time spectra.

6. A method for identifying carbon- and/or nitrogen-containing materials, comprising:

irradiating a test object by a single pulse of gamma radiation, the test object comprising carbon- and/or nitrogen-containing material;

measuring a secondary radiation from decay products of nitrogen-12 and boron-12 isotopes, wherein the nitrogen-12 and boron-12 isotopes are formed by the irradiation of the carbon- and/or nitrogen containing material from the test object;

recording one or more time spectra of signals from the secondary radiation;

analyzing the time spectra to calculate a relative content of nitrogen to carbon of the test object based on one or more parameters indicative of a number of nitrogen-12 or boron-12 isotopes with respect to a total number of nitrogen-12 isotopes and boron-12 isotopes; and

identifying the carbon- and/or nitrogen-containing materials of the test object by comparing the one or more parameters to a database of similar information based on known samples to evaluate whether the one or more parameters are indicative of a material of interest,

wherein the analyzing of the time spectra to calculate the relative content of nitrogen to carbon of the test object is performed with data from two or more time intervals of recorded time spectra of signals from the secondary radiation of the test object.

7. The method according to claim 6 , wherein the recording of the time spectrum begins after the end of the irradiation pulse and a timed delay.

8. The method according to claim 6 , wherein the recording of the one or more time spectra is for a time span based on the decay half-lives of the nitrogen-12 and boron-12 isotopes.

9. The method according to claim 6 , wherein the analyzing of the time spectra comprises transforming measured differential time spectra into integral time spectra.

10. The method according to claim 1 , the method comprising providing a device, the device comprising:

an electron accelerator, comprising a race-track microtron with an operating energy of >50 MeV and configured to generate pulses of accelerated electron beam;

a breaking target, comprising tantalum and configured to receive the pulses of accelerated electron beam and generating an incident gamma radiation to be directed at a test object; and

a radiation detector, comprising a water-filled Cherenkov radiation counter and configured to detect and measure secondary gamma radiation from carbon and/or nitrogen materials undergoing radioactive decay following irradiation of the test object by the incident gamma radiation.

11. The method according to claim 10 wherein the water-filled Cherenkov radiation counter comprises:

a tank filled with water configured to interact with the secondary gamma radiation to generate Cherenkov radiation;

a plurality of photodetectors configured to measure the generated Cherenkov radiation in the tank filled with water; and

control electronics comprising a starting generator and a time analyzer and configured to:

initiate each of the electron accelerator pulses;

terminate each of the electron accelerator pulses;

time a controlled delay;

initiate measurements by photodetectors of the radiation detector only after the controlled delay after termination of each of the electron accelerator pulses; and

terminate measurements by the photodetectors before initiating the next electron accelerator pulse.

12. The method according to claim 1 , the method comprising providing a device, the device comprising:

an electron accelerator configured to generate pulses of one accelerated electron beam;

a breaking target configured to receive the pulses of the accelerated electron beam and generating an incident gamma radiation to be directed at a test object; and

a radiation detector configured to detect and measure secondary gamma radiation from carbon- and/or nitrogen-containing materials in the test object undergoing radioactive decay following irradiation of the test object by the incident gamma radiation, thus detecting and identifying the carbon- and/or nitrogen-containing materials in the test object.

13. The method according to claim 12 , wherein the device is adapted for detecting secondary gamma radiation from carbon and/or nitrogen containing materials in a test object concealed by one or more layers of concealment materials.

14. The method according to claim 13 , the device further comprising control electronics, associated with the electron accelerator and the radiation detector, configured to:

initiate each of the electron accelerator pulses;

terminate each of the electron accelerator pulses;

time a controlled delay;

initiate measurements by photodetectors of the radiation detector only after the controlled delay after termination of each of the electron accelerator pulses; and

terminate measurements by the photodetectors before initiating the next electron accelerator pulse.

15. The method according to claim 10 further comprising identifying the carbon- and/or nitrogen-containing materials of the test object by comparing the one or more parameters to a database of similar information based on known samples to evaluate whether the one or more parameters are indicative of a material of interest.

16. The method according to claim 6 , wherein the material of interest is a hazardous substance in the test object.

17. The method according to claim 15 , wherein the material of interest is a hazardous substance in the test object.

18. The method according to claim 1 , wherein the one or more parameters are each defined as a ratio of the number of nitrogen-12 isotopes over the total number of nitrogen-12 and boron-12 isotopes.

19. The method according to claim 6 , wherein the one or more parameters are each defined as a ratio of the number of nitrogen-12 isotopes over the total number of nitrogen-12 and boron-12 isotopes.

Assignments (2)
CONFIRMATORY LICENSE Recorded Mar 5, 2013
From: LAWRENCE LIVERMORE NATIONAL SECURITY, LLC
To: U.S. DEPARTMENT OF ENERGY
Reel/Frame 029920/0051 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 1, 2011
From: KAREV, ALEXANDER IVANOVICH; RAEVSKY, VALERY GEORGIEVICH; DZHILAVYAN, LEONID ZAVENOVICH; BROTHERS, LOUIS JOSEPH; WILHIDE, LARRY K.
To: LAWRENCE LIVERMORE NATIONAL SECURITY, LLC
Reel/Frame 027310/0768 →
Priority Claims (2)
RU 2010149620 · Dec 6, 2010 · national
RU 2010149621 · Dec 6, 2010 · national
Continuity (3)
Provisional Application 61534177 · Sep 13, 2011
Provisional Application 61534219 · Sep 13, 2011
Related Publication 20120140863A1 · Jun 7, 2012