IP Library Granted Patent US 11,852,761
Granted Patent B2
US 11,852,761 · App. 17/633,182 · Granted Dec 26, 2023

Radiation source localization systems and methods

Inventors: Felix J. Liang (Oak Ridge, TN); Kemper Talley (Oak Ridge, TN); William T. Milam (Maryville, TN); Sean Whalen (Oak Ridge, TN); Robert C. Proebstel (Goleta, CA); Clinton M. Wichert (West Lafayette, IN)
Assignee: Teledyne FLIR Detection, Inc.
G01T1/248B64C39/024G01T1/023G01T1/026G01T1/361B64U2101/30B64U2201/20G05D1/102
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Quick Facts
Patent No.
US 11,852,761
App. No.
17/633,182
Filed
Feb 4, 2022
Granted
Dec 26, 2023
Kind
B2
Art Unit
2884
USPC
250/370.08
Abstract

Radiation source localization systems and related techniques are provided to improve the operation of handheld or unmanned mobile sensor or survey platforms. A radiation source localization system includes a logic device configured to communicate with a communications module and a directional radiation detector, where the communications module is configured to establish a wireless communication link with a base station associated with the directional radiation detector and/or a mobile sensor platform, and the directional radiation detector includes a sensor assembly configured to provide directional radiation sensor data as the directional radiation detector is maneuvered within a survey area.

Claims (60)

1. A system comprising:

a directional radiation detector;

a logic device configured to communicate with a communications module and the directional radiation detector coupled to a mobile platform, wherein the communications module is configured to establish a wireless communication link with a base station associated with the mobile platform, the directional radiation detector comprises a sensor assembly comprising first and second radiation detectors configured to provide directional radiation sensor data to determine a direction of a radiological source as the mobile platform is maneuvered within a survey area, and the logic device is configured to:

receive the directional radiation sensor data as the mobile platform maneuvers within the survey area,

receive orientation and/or position data corresponding to the directional radiation sensor data, and

generate radiation source localization survey information corresponding to the survey area based, at least in part, on a combination of the orientation and/or position data and the directional radiation sensor data;

a planar collimating panel, wherein the first and second radiation detectors comprise respective first and second scintillators and/or semiconductor detectors that are separated from each other by the planar collimating panel along a direction perpendicular to a sensor axis of the sensor assembly; and

wherein the directional radiation sensor data is represented by a ratio of counts accumulated in the first and second radiation detectors.

2. The system of claim 1 , further comprising:

the mobile platform;

an orientation and/or position sensor coupled to the mobile platform and configured to provide the orientation and/or position data; and

a radiation sensor cradle coupled to the mobile platform and configured to mount the directional radiation detector to the mobile platform and/or orient the directional radiation detector relative to the mobile platform.

3. The system of claim 1 , wherein:

the first and second radiation detectors are aligned to the sensor axis of the sensor assembly; and

the planar collimating panel is coplanar with the sensor axis of the sensor assembly.

4. The system of claim 3 , wherein:

the first and second radiation detectors comprise respective first and second silicon photomultipliers (SiPMs); and

the first and second SiPMs are coupled to a common printed circuit board disposed within a housing of the directional radiation detector.

5. The system of claim 3 , wherein:

the first and second scintillators are cubic, cylindrical, or rectangular and bonded to opposing surfaces of the planar collimating panel; and

the planar collimating panel is sized to fully occlude at least the first scintillator of the first radiation detector from the second scintillator of the second radiation detector.

6. The system of claim 1 , further comprising a user interface associated with the mobile platform, wherein the logic device is configured to:

render a display view comprising the radiation source localization survey information and/or one or more relative direction indicators via a display of the user interface.

7. The system of claim 1 , wherein the logic device is configured to:

detect entry of the mobile platform into a hazardous portion of the survey area based, at least in part, on the radiation source localization survey information; and

adjust a course of the mobile platform to avoid the hazardous portion of the survey area.

8. The system of claim 1 , wherein the logic device is configured to:

determine one or more dose rate and/or radioactive source concentration boundaries based, at least in part, on the radiation source localization survey information; and

render a display view comprising the dose rate and/or radioactive source concentration boundaries in a display of a user interface associated with the mobile platform.

9. The system of claim 1 , further comprising an imaging module coupled to the mobile platform, wherein the logic device is configured to:

receive visible spectrum and/or infrared images of the survey area from the imaging module as the mobile platform maneuvers within the survey area; and

generate the radiation source localization survey information corresponding to the survey area based, at least in part, on a combination of the orientation and/or position data, the directional radiation sensor data, and the visible spectrum and/or infrared images of the survey area.

10. A method comprising:

receiving, from a directional radiation detector coupled to a mobile platform as the mobile platform maneuvers within a survey area, directional radiation sensor data to determine a direction of a radiological source, wherein the directional radiation detector comprises a sensor assembly comprising first and second radiation detectors;

receiving orientation and/or position data corresponding to the directional radiation sensor data;

generating radiation source localization survey information corresponding to the survey area based, at least in part, on a combination of the orientation and/or position data and the directional radiation sensor data;

wherein the first and second radiation detectors comprise respective first and second scintillators and/or semiconductor detectors that are separated from each other, along a direction perpendicular to a sensor axis of the sensor assembly, by a planar collimating panel; and

wherein the directional radiation sensor data is represented by a ratio of counts accumulated in the first and second radiation detectors.

11. The method of claim 10 , wherein:

the receiving the orientation and/or position data comprises receiving the orientation and/or position data from an orientation and/or position sensor coupled to the mobile platform.

12. The method of claim 10 , wherein:

the first and second radiation detectors are aligned to the sensor axis of the sensor assembly; and

the planar collimating panel is coplanar with the sensor axis of the sensor assembly.

13. The method of claim 12 , wherein:

the first and second radiation detectors comprise respective first and second silicon photomultipliers (SiPMs); and

the first and second SiPMs are coupled to a common printed circuit board disposed within a housing of the directional radiation detector.

14. The method of claim 10 , wherein:

the first and second scintillators are bonded to opposing surfaces of the planar collimating panel; and

the planar collimating panel is sized to fully occlude at least the first scintillator of the first radiation detector from the second scintillator of the second radiation detector.

15. The method of claim 10 , further comprising:

rendering a display view comprising the radiation source localization survey information and/or one or more relative direction indicators via a display of the user interface.

16. The method of claim 10 , further comprising:

detecting entry of the mobile platform into a hazardous portion of the survey area based, at least in part, on the radiation source localization survey information; and

adjusting a course of the mobile platform to avoid the hazardous portion of the survey area.

17. The method of claim 10 , further comprising:

determining one or more dose rate and/or radioactive source concentration boundaries based, at least in part, on the radiation source localization survey information; and

rendering a display view comprising the dose rate and/or radioactive source concentration boundaries in a display of a user interface associated with the mobile platform.

18. The method of claim 10 , further comprising:

receiving visible spectrum and/or infrared images of the survey area from an imaging module as the mobile platform maneuvers within the survey area; and

generating the radiation source localization survey information corresponding to the survey area based, at least in part, on a combination of the orientation and/or position data, the directional radiation sensor data, and the visible spectrum and/or infrared images of the survey area.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 16, 2022
From: LIANG, FELIX J.; TALLEY, KEMPER; MILAM, WILLIAM T.; WHALEN, SEAN; PROEBSTEL, ROBERT C.; WICHERT, CLINTON M.
To: FLIR DETECTION, INC.
Reel/Frame 059025/0155 →
CHANGE OF NAME Recorded Feb 16, 2022
From: FLIR DETECTION, INC.
To: TELEDYNE FLIR DETECTION, INC.
Reel/Frame 059168/0791 →
Continuity (2)
Provisional Application 62882617 · Aug 5, 2019
Related Publication 20220268952A1 · Aug 25, 2022