2017Journal of Neutron ResearchRequires access

High spatial resolution fiber based miniature detector for neutron flux mapping in a subcritical assembly and neutron generator

Saroj Bishnoi, P.S. Sarkar, Mayank Shukla, Nirmal Ray, Tarun Patel, Yogesh Kashyap, Tushar Roy, P. Adhikari, Manoj K. Pal, Amar Sinha

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Abstract

Accurate neutron flux mapping of reactors and neutron generators is important from the point of view of determining system characteristics. In these applications, the flux measurement with high spatial resolution and in very narrow spaces is required such as in between fuel rods assemblies or shiel ding materials. In this paper, we describe the design and development of high spatial resolution (∼mm) fiber-based detectors for neutron flux mapping in a typical subcritical assembly – BRAHMMA. These detectors utilize neutron convertor-scintillator coupled to the tip of an optical fiber at one end with its other end coupled to a photomultiplier tube. We have used scintillators such as 6LiF+ZnS (Ag) for thermal neutrons and ThO2+ZnS (Ag) for fast neutrons. The detectors were calibrated for 3×10−4cps and 3.6×10−6cps per unit neuron flux of thermal and fast neutron respectively. Small size (∼mm) of these detectors is well suited for measurement of thermal neutron flux profile in narrow experimental channels of the subcritical assembly BRAHMMA. The measured thermal neutron flux profile was compared with those obtained from a miniature 3He detector used in the past. Periodic variation in the flux profile has been observed at the fuel lattice positions of the subcritical assembly, which was not observed with the 3He detector. We also present a neutron emission profile measurement of a D-T neutron generator using the developed fast neutron detector.

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What this paper is about

Accurate neutron flux mapping of reactors and neutron generators is important from the point of view of determining system characteristics. In these applications, the flux measurement with high spatial resolution and in very narrow spaces is required such as in between fuel rods assemblies or shiel ding materials. In this paper, we describe the design and development of high spatial resolution (∼mm) fiber-based detectors for neutron flux mapping in a typical subcritical assembly – BRAHMMA. These detectors utilize neutron convertor-scintillator coupled to the tip of an optical fiber at one end with its other end coupled to a photomultiplier tube. We have used scintillators such as 6LiF+ZnS (Ag) for thermal neutrons and ThO2+ZnS (Ag) for fast neutrons. The detectors were calibrated for 3×10−4cps and 3.6×10−6cps per unit neuron flux of thermal and fast neutron respectively. Small size (∼mm) of these detectors is well suited for measurement of thermal neutron flux profile in narrow experimental channels of the subcritical assembly BRAHMMA. The measured thermal neutron flux profile was compared with those obtained from a miniature 3He detector used in the past. Periodic variation in the flux profile has been observed at the fuel lattice positions of the subcritical assembly, which was not observed with the 3He detector. We also present a neutron emission profile measurement of a D-T neutron generator using the developed fast neutron detector.

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Available abstract

Accurate neutron flux mapping of reactors and neutron generators is important from the point of view of determining system characteristics. In these applications, the flux measurement with high spatial resolution and in very narrow spaces is required such as in between fuel rods assemblies or shiel ding materials. In this paper, we describe the design and development of high spatial resolution (∼mm) fiber-based detectors for neutron flux mapping in a typical subcritical assembly – BRAHMMA. These detectors utilize neutron convertor-scintillator coupled to the tip of an optical fiber at one end with its other end coupled to a photomultiplier tube. We have used scintillators such as 6LiF+ZnS (Ag) for thermal neutrons and ThO2+ZnS (Ag) for fast neutrons. The detectors were calibrated for 3×10−4cps and 3.6×10−6cps per unit neuron flux of thermal and fast neutron respectively. Small size (∼mm) of these detectors is well suited for measurement of thermal neutron flux profile in narrow experimental channels of the subcritical assembly BRAHMMA. The measured thermal neutron flux profile was compared with those obtained from a miniature 3He detector used in the past. Periodic variation in the flux profile has been observed at the fuel lattice positions of the subcritical assembly, which was not observed with the 3He detector. We also present a neutron emission profile measurement of a D-T neutron generator using the developed fast neutron detector.

Key concepts: Scintillator, Neutron flux, Neutron detection, Neutron generator, Neutron, Neutron imaging, Neutron temperature, Detector

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