IP Library Granted Patent US 9,533,334
Granted Patent B2
US 9,533,334 · App. 14/970,986 · Granted Jan 3, 2017

Nuclear radiation cleanup and uranium prospecting

Inventors: Raymond P. Mariella, Jr. (Danville, CA); Yves M. Dardenne (Livermore, CA)
Assignee: Lawrence Livermore National Security, LLC
B08B7/0042B08B15/02B23K26/0884B23K26/36G01N1/04G01T7/00G01T7/02G01V5/0091G01V5/02G21F9/005G01N2001/021G01N2001/028
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Quick Facts
Patent No.
US 9,533,334
App. No.
14/970,986
Granted
Jan 3, 2017
Kind
B2
Abstract

Apparatus, systems, and methods for nuclear radiation cleanup and uranium prospecting include the steps of identifying an area; collecting samples; sample preparation; identification, assay, and analysis; and relating the samples to the area.

Claims (29)

1. A method of cleanup of a contaminated area after detonation of a dirty bomb using a global positioning system that provides GPS coordinates wherein there are solid surfaces at locations in the contaminated area, comprising the steps of:

superimpose a grid on the contaminated area;

collecting samples in the contaminated area and store at said samples with said samples given a unique address according to the GPS coordinates relative to said grid;

wherein said step collecting samples includes the steps of providing a laser that produces a laser beam and collecting samples from the solid surfaces in the contaminated area by directing said laser beam onto the solid surfaces at the locations in the contaminated area to produce said samples,

wherein said step of directing said laser beam onto the solid surfaces at the locations in the contaminated area includes directing water onto the solid surfaces and directing said laser beam onto the water and onto the solid surfaces producing particle samples from the solid surfaces;

analyzing said samples and producing results;

using said results to generate a map of the contaminated area using the GPS coordinates of said grid; and

cleaning up the contaminated area using said map of the contaminated area.

2. The method of cleanup of a contaminated area after detonation of a dirty bomb of claim 1 wherein said step of providing a laser that produces a laser beam comprises providing a laser that produces a laser beam that is a pulsed laser beam.

3. A method of cleanup of a contaminated area after detonation of a dirty bomb using a global positioning system that provides GPS coordinates wherein there are solid surfaces at locations in the contaminated area, comprising the steps of:

superimpose a grid on the contaminated area;

collecting samples in the contaminated area and store said samples with said samples given a unique address according to the GPS coordinates relative to said grid;

wherein said step collecting samples includes the steps of providing a laser that produces a laser beam and collecting samples from the solid surfaces in the contaminated area by directing said laser beam onto the solid surfaces at the locations in the contaminated area to produce said samples,

wherein said step of directing said laser beam onto the solid surfaces at the locations in the contaminated area includes directing water onto the solid surfaces and directing said laser beam onto the water and onto the solid surfaces producing particle samples from the solid surfaces,

wherein said step of collecting samples from the solid surfaces includes using a robot for collecting said samples;

analyzing said samples and producing results;

using said results to generate a map of the contaminated area using the GPS coordinates of said grid; and

cleaning up the contaminated area using said map of the contaminated area.

4. A method of cleanup of a contaminated area after detonation of a dirty bomb using a global positioning system that provides GPS coordinates wherein there are solid surfaces at locations in the contaminated area, comprising the steps of:

superimpose a grid on the contaminated area;

collecting samples in the contaminated area and store said samples with said samples given a unique address according to the GPS coordinates relative to said grid;

wherein said step collecting samples includes the steps of providing a laser that produces a laser beam and collecting samples from the solid surfaces in the contaminated area by directing said laser beam onto the solid surfaces at the locations in the contaminated area to produce said samples,

wherein said step of directing said laser beam onto the solid surfaces at the locations in the contaminated area includes directing water onto the solid surfaces and directing said laser beam onto the water and onto the solid surfaces producing particle samples from the solid surfaces,

wherein said step of collecting samples from said solid surfaces includes using a drone for collecting said samples;

analyzing said samples and producing results,

using said results to generate a map of the contaminated area using the GPS coordinates of said grid, and

cleaning up the contaminated area using said map of the contaminated area.

5. The method of cleanup of a contaminated area after detonation of a dirty bomb of claim 4 wherein said laser is carried by said drone.

6. The method of cleanup of a contaminated area after detonation of a dirty bomb of claim 4 further comprising the step of providing a collection device on said drone and wherein said samples are collected in said collection device.

Assignments (2)
CONFIRMATORY LICENSE Recorded Sep 22, 2016
From: LAWRENCE LIVERMORE NATIONAL SECURITY, LLC
To: U.S. DEPARTMENT OF ENERGY
Reel/Frame 039823/0904 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 16, 2015
From: MARIELLA, RAYMOND P., JR.; DARDENNE, YVES M.
To: LAWRENCE LIVERMORE NATIONAL SECURITY, LLC
Reel/Frame 037305/0295 →
Continuity (3)
Continuation 14589150 · Jan 5, 2015
Provisional Application 61924661 · Jan 7, 2014
Related Publication 20160109615A1 · Apr 21, 2016