IP Library Granted Patent US 10,082,587
Granted Patent B1
US 10,082,587 · App. 15/901,548 · Granted Sep 25, 2018

Neutron ray detecting system, and method of setting neutron ray detecting system

Inventor: Kiyotaka Akabori (Kanagawa, JP)
Assignee: SUMITOMO HEAVY INDUSTRIES, LTD.
G01T3/06G01T7/00
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Quick Facts
Patent No.
US 10,082,587
App. No.
15/901,548
Granted
Sep 25, 2018
Kind
B1
Abstract

By acquiring the neutron ray wave height distribution of the neutron rays and the gamma ray wave height distribution of only the gamma rays included in the radiant rays, how much gamma rays are detected as noise can be ascertained in a case where a certain determination threshold value Q th is set. That is, a relationship between the determination threshold value Q th and detection accuracy can be ascertained. Since the distributions are acquired on the basis of two measurements in a case where a filter that cuts the neutron rays N is used and in a case where the filter is not used, the relationship between the determination threshold value Q th and the detection accuracy can be accurately ascertained. Therefore, a determination threshold value adjusting unit can adjust a suitable determination threshold value Q th in conformity with demanded detection accuracy on the basis of the distributions.

Claims (25)

1. A neutron ray detecting system that detects neutron rays, the system comprising:

a scintillator that generates light when radiant rays enter the scintillator;

an optical fiber that allows the light generated in the scintillator to be transmitted therethrough;

a discrimination unit that receives the light transmitted through the optical fiber, and discriminates a detection signal relating to the received light from a signal relating to the neutron rays in a case where a wave height of the detection signal exceeds a determination threshold value; and

a determination threshold value setting unit that sets the determination threshold value,

wherein the determination threshold value setting unit includes

a detection signal acquiring unit that acquires a first detection signal that is the detection signal of the radiant rays that have entered the scintillator via a filter that cuts the neutron rays, and a second detection signal that is the detection signal of the radiant rays that have entered the scintillator without the filter,

a wave height distribution acquiring unit that acquires a neutron ray wave height distribution of only the neutron rays and a gamma ray wave height distribution of only the gamma rays included in the radiant ray, on the basis of a difference between a wave height distribution based on the first detection signal, and a wave height distribution based on the second detection signal, and

a determination threshold value adjusting unit that adjusts the determination threshold value on the basis of the neutron ray wave height distribution and the gamma ray wave height distribution.

2. The neutron ray detecting system according to claim 1 ,

wherein the determination threshold value setting unit further includes a demanded detection accuracy acquiring unit that acquires a demanded detection accuracy, and

wherein the determination threshold value adjusting unit compares an amount of the gamma rays of which a wave height exceeds the determination threshold value with the detection accuracy acquired by the demanded detection accuracy acquiring unit, thereby adjusting the determination threshold value.

3. The neutron ray detecting system according to claim 1 ,

wherein the wave height distribution acquiring unit acquires the neutron ray wave height distribution and the gamma ray wave height distribution in consideration of a difference between a radiation amount of the radiant rays when acquiring the first detection signal and a radiation amount of the radiant rays when acquiring the second detection signal.

4. The neutron ray detecting system according to claim 1 , further comprising:

an irradiation control unit that controls a radiation amount of the radiant rays,

wherein the irradiation control unit makes a radiation amount of the radiant rays when acquiring the first detection signal, and a radiation amount of the radiant rays when acquiring the second detection signal equal to each other.

5. A method of setting a neutron ray detecting system that detects neutron rays, the system including

a scintillator that generates light when radiant rays enter the scintillator,

an optical fiber that allows the light generated in the scintillator to be transmitted therethrough, and

a discrimination unit that receives the light transmitted through the optical fiber, and discriminates a detection signal relating to the received light from a signal relating to the neutron rays in a case where a wave height of the detection signal exceeds a determination threshold value, the setting method comprising:

a detection signal acquiring process of acquiring a first detection signal that is the detection signal of the radiant rays that have entered the scintillator via a filter that cuts the neutron rays, and a second detection signal that is the detection signal of the radiant rays that have entered the scintillator without the filter;

a wave height distribution acquiring process of acquiring a neutron ray wave height distribution of only the neutron rays and a gamma ray wave height distribution of only the gamma rays included in the radiant rays on the basis of a difference between the first detection signal and the second detection signal; and

a determination threshold value adjusting process of adjusting the determination threshold value on the basis of the neutron ray wave height distribution and the gamma ray wave height distribution.

6. A neutron ray detecting system that detects neutron rays, the system comprising: a scintillator that generates light when radiant rays enter the scintillator; an optical fiber that allows the light generated in the scintillator to be transmitted therethrough; a discrimination unit that receives the light transmitted through the optical fiber, and discriminates a detection signal relating to the received light from a signal relating to the neutron rays in a case where a wave height of the detection signal exceeds a determination threshold value; a display unit that displays information; and a determination threshold value setting unit that sets the determination threshold value, wherein the display unit displays a notification for guiding input of a detection accuracy, and displays, after the determination threshold value setting unit sets the determination threshold value on the basis of the input detection accuracy, the set determination threshold value.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 22, 2018
From: AKABORI, KIYOTAKA
To: SUMITOMO HEAVY INDUSTRIES, LTD.
Reel/Frame 045004/0042 →
Priority Claims (1)
JP 2017-039492 · Mar 2, 2017 · national
Cited By (2)
US 12,434,074 US 12,465,786