IP Library › Granted Patent US 11,054,535
Granted Patent B2
US 11,054,535 · App. 16/812,844 · Granted Jul 6, 2021

Efficient, dual-particle directional detection system using a rotating scatter mask

Inventors: Robert Olesen (Fairborn, OH); Bryan Egner (Harrisburg, PA); Darren Holland (Springfield, OH); Valerie Martin (Denver, PA); James Bevins (Bellbrook, OH); Larry Burggraf (Washington Township, OH); Buckley O'Day (Dunn Loring, VA)
Assignee: United States of America as represented by the Secretary of the Air Force
G01T3/06G01T1/15G01T1/20
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Quick Facts
Patent No.
US 11,054,535
App. No.
16/812,844
Granted
Jul 6, 2021
Kind
B2
Abstract

A directional radiation detection system and an omnidirectional radiation detector. The omnidirectional radiation detector detects radiation comprising at least one of: (i) gamma rays; and (ii) neutron particles. A radiation scatter mask (RSM) of the radiation detection system includes a rotating sleeve received over the omnidirectional radiation detector and rotating about a longitudinal axis. The RSM further includes: (i) a fin extending longitudinally from one side of the rotating sleeve; and (ii) a wall extending from the rotating sleeve and spaced apart from the fin having an upper end distally positioned on the rotating sleeve spaced apart or next to from a first lateral side of the fin and a lower end proximally positioned on the rotating sleeve and spaced apart from or next to a second lateral side of the fin.

Claims (29)

1. A radiation detection system comprising:

an omnidirectional radiation detector that detects radiation comprising at least one of: (i) gamma rays; and (ii) neutron particles; and

a radiation scatter mask (RSM) comprising a rotating sleeve received over the omnidirectional radiation detector for rotation about a longitudinal axis, the RSM further comprising: (i) a fin extending longitudinally from one side of the rotating sleeve; and (ii) a wall extending from the rotating sleeve and spaced apart from or next to the fin having an upper end distally positioned on the rotating sleeve spaced apart from or next to a first lateral side of the fin and a lower end proximally positioned on the rotating sleeve and spaced apart from or next to a second lateral side of the fin.

2. The radiation detection system of claim 1 , wherein the omnidirectional radiation detector comprises a pulse-shape discriminating scintillator that is mounted to a photodetector.

3. The radiation detection system of claim 1 , wherein the RSM is formed of a material that scatters and attenuates gamma rays.

4. The radiation detection system of claim 1 , wherein the RSM is formed of a material that scatters and attenuates neutron particles.

5. The radiation detection system of claim 1 , wherein the fin and the wall have different thicknesses or widths relative to azimuth to impart a respective attenuation valley in a detected radiation signal having a different height or width as a function of time or the RSM's position.

6. The radiation detection system of claim 1 , further comprising:

a motor that rotates the RSM;

a rotation sensor the senses a rotational position of the RSM; and

an identification system communicatively coupled to the rotation sensor and the radiation detector and that comprises a processor that executes program code to enable the radiation detection system to:

receive, via the radiation detector, a signal having position-varying amplitude of detected radiation from a radiation source;

determine, based on the rotational position of the RSM, an azimuthal direction to the radiation source based on a fin valley detected in the signal;

determine a rotational position difference between the fin valley and a wall valley in the signal; and

correlate the rotational position difference to a physical azimuthal angle between the fin and the wall;

determine an attitude of the rotation source based on the physical azimuthal angle; and

generate an indication signal that geometrically identifies a location of the radiation source.

7. A method of determining a direction of a radiation source, the method comprising:

rotating a RSM about a longitudinal axis, the RSM encompassing a radiation detector and comprising: (i) a fin extending longitudinally from one side of a rotating sleeve; and (ii) a wall extending from the rotating sleeve and spaced apart from or next to the fin having an upper end distally positioned on the rotating sleeve spaced apart from or next to a first lateral side of the fin and a lower end proximally positioned on the rotating sleeve and spaced apart from or next to a second lateral side of the fin;

receiving, via the radiation detector, a signal having position-varying amplitude of detected radiation from a radiation source;

determining, based on the rotational position of the RSM and on a fin valley detected in the signal, an azimuthal direction to the radiation source;

determining a rotational position difference between the fin valley and a wall valley in the signal; and

correlating the rotational position difference to a physical azimuthal angle between the fin and the wall;

determining an attitude of the rotation source based on the physical azimuthal angle; and

generating an indication signal that geometrically identifies a location of the radiation source.

8. The method of claim 7 , further comprising detecting the radiation using an omnidirectional radiation detector comprising a pulse-shape discriminating scintillator that is mounted to a photodetector.

9. The method of claim 7 , further comprising detecting the radiation comprising gamma rays that pass through the RSM that is formed of a material that scatters and attenuates the gamma rays.

10. The method of claim 7 , further comprising detecting the radiation comprising neutron particles that pass through the RSM that is formed of a material that scatters and attenuates neutron particles.

11. The method of claim 7 , further comprising distinguishing the fin valley from the wall valley based on a different height or width as a function of time or the RSM's position, wherein the physical fin and the wall of the RSM have different thicknesses or widths relative to azimuth to impart a respective attenuation valley in a detected radiation signal having a different height or width as a function of time or the RSM's position.

Continuity (4)
Provisional Application 62816451 · Mar 11, 2019
Provisional Application 62816435 · Mar 11, 2019
Provisional Application 62986892 · Mar 9, 2020
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