IP Library Granted Patent US 7,683,334
Granted Patent B2
US 7,683,334 · App. 12/221,675 · Granted Mar 23, 2010

Simultaneous beta and gamma spectroscopy

Assignee: The State of Oregon Acting by and through the State Board of Higher Education on Behalf of Oregon State University
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Quick Facts
Patent No.
US 7,683,334
App. No.
12/221,675
Granted
Mar 23, 2010
Kind
B2
Abstract

A phoswich radiation detector for simultaneous spectroscopy of beta rays and gamma rays includes three scintillators with different decay time characteristics. Two of the three scintillators are used for beta detection and the third scintillator is used for gamma detection. A pulse induced by an interaction of radiation with the detector is digitally analyzed to classify the type of event as beta, gamma, or unknown. A pulse is classified as a beta event if the pulse originated from just the first scintillator alone or from just the first and the second scintillator. A pulse from just the third scintillator is recorded as gamma event. Other pulses are rejected as unknown events.

Claims (40)

1. A radiation detection device comprising:

a first scintillator sensitive primarily to beta radiation;

a second scintillator sensitive primarily to beta radiation;

a third scintillator sensitive primarily to gamma radiation;

a photodetector optically coupled to the first, second, and third scintillators, producing a pulse signal in response to a radiation interaction with the device; and

a digital pulse analyzer electronically coupled to the photodetector for classifying the radiation interaction according to type of event based on characteristics of the pulse signal;

wherein the second scintillator is sandwiched between the first scintillator and the third scintillator; and

wherein the first scintillator, the second scintillator, and the third scintillator have distinct light decay time characteristics.

2. The device of claim 1 wherein the digital pulse analyzer classifies the radiation interaction as a beta type event if the pulse signal has characteristics indicating that the radiation interaction originated in the first scintillator but not the third scintillator.

3. The device of claim 1 wherein the digital pulse analyzer classifies the radiation interaction as a gamma type event if the pulse signal has characteristics indicating that the radiation interaction originated in the third scintillator but not the first scintillator and not the second scintillator.

4. The device of claim 1 wherein the digital pulse analyzer classifies the radiation interaction as an unknown type event if the pulse signal has characteristics indicating that the radiation interaction originated in the second scintillator but not the first scintillator and not the third scintillator.

5. The device of claim 1 wherein the digital pulse analyzer comprises a digital pulse processor for digitizing the pulse signal and validating the pulse signal based on predetermined characteristics of pulse duration and amplitude.

6. The device of claim 5 wherein the digital pulse analyzer uses trapezoidal filters to validate the pulse signal based on predetermined characteristics of pulse duration and amplitude.

7. A method for detecting beta and gamma radiation, the method comprising:

exposing a detector to radiation, wherein the detector comprises:

a plurality of scintillators including a first scintillator sensitive primarily to beta radiation, a second scintillator sensitive primarily to beta radiation, and a third scintillator sensitive primarily to gamma radiation;

a photodetector optically coupled to the scintillators; and

a digital pulse analyzer electronically coupled to the photodetector;

wherein the first scintillator and the second scintillator have distinct light decay time characteristics;

analyzing a pulse generated from the radiation to determine which of the scintillators the radiation interacted with;

recording a beta event if the pulse analysis indicates that the radiation interacted with just the first scintillator;

recording a beta event if the pulse analysis indicates that the radiation interacted with both the first and second scintillators, but not with the third scintillator; and

recording a gamma event if the pulse analysis indicates that the radiation interacted with just the third scintillator, but not with the first scintillator and not with the second scintillator.

8. The method of claim 7 further comprising:

recording an amount of beta energy deposited in the first scintillator by integrating a fast component of the pulse.

9. The method of claim 7 further comprising:

recording an amount of beta energy deposited in the second scintillator by integrating a slow component of the pulse.

10. The method of claim 7 further comprising:

recording an amount of gamma energy deposited in the third scintillator by integrating the pulse.

11. The method of claim 7 wherein analyzing the pulse comprises calculating a fractional drop in amplitude of the pulse between a peak of the pulse and a fast decay time after the peak.

12. The method of claim 7 wherein analyzing the pulse comprises calculating a fractional drop in amplitude of the pulse between a fast decay time after the peak of the pulse and a slow decay time after the peak.

13. A radiation detection device comprising:

a first scintillator sensitive to beta radiation;

a second scintillator sensitive to beta radiation;

a third scintillator sensitive to gamma radiation;

a photodetector optically coupled to the first, second, and third scintillators, producing a pulse signal in response to a radiation interaction with the device; and

a digital pulse analyzer electronically coupled to the photodetector for classifying the radiation interaction according to type of event based on characteristics of the pulse signal;

wherein the second scintillator is sandwiched between the first scintillator and the third scintillator; and

wherein the first scintillator, the second scintillator, and the third scintillator have distinct light decay time characteristics;

wherein the digital pulse analyzer classifies the radiation interaction as an unknown type event if the pulse signal has characteristics indicating that the radiation interaction originated in the second scintillator but not the first scintillator and not the third scintillator.

Assignments (3)
CONFIRMATORY LICENSE Recorded Apr 2, 2019
From: OREGON STATE UNIVERSITY
To: UNITED STATES DEPARTMENT OF ENERGY
Reel/Frame 048760/0967 →
CONFIRMATORY LICENSE Recorded Mar 23, 2009
From: OREGON STATE UNIVERSITY
To: ENERGY, UNITED STATES DEPARTMENT OF
Reel/Frame 022434/0807 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 17, 2008
From: FARSONI, ABDOLLAH T.; HAMBY, DAVID M.
To: STATE OREGON ACTING BY AND THROUGH THE STATE BOARD OF HIGHER EDUCATION ON BEHALF OF OREGON STATE UNIVERSITY, THE
Reel/Frame 021874/0921 →
Continuity (2)
Provisional Application 6096393100 · Aug 7, 2007
Related Publication 20090039271A1 · Feb 12, 2009