Abstract

A time-of-flight neutron spectrometer based on the Time-Of-Flight Enhanced Diagnostic (TOFED) concept has been designed and is under development for the Large Helical Device (LHD). It will be the first advanced neutron spectrometer to measure the 2.45MeV D-D neutrons (DDNs) from helical/stellarator plasmas. The main mission of the new TOFED is to study the supra-thermal deuterons generated from the auxiliary heating systems in helical plasmas by measuring the time-of-flight spectra of DDN. It will also measure the triton burnup neutrons (TBNs) from the d+t reactions, unlike the original TOFED in the EAST tokamak. Its capability of diagnosing the TBN ratios is evaluated in this work. This new TOFED is expected to be installed in the basement under the LHD hall and shares the collimator with one channel of the vertical neutron camera to define its line of sight. The distance from its primary scintillators to the equatorial plane of LHD plasmas is about 15.5m. Based on Monte Carlo simulation by a GEANT4 model, the resolution of the DDN energy spectra is 6.6%. When projected onto the neutron rates that are typically obtained in LHD deuterium plasmas (an order of 1015 n/s with neutral beam injection), we expect to obtain the DDN and TBN counting rates of about 2.5 · 105 counts/s and 250 counts/s, respectively. This will allow us to analyze the DDN time-of-flight spectra on time scales of 0.1s and diagnose the TBN emission rates in several seconds with one instrument, for the first time in helical/stellarator plasmas.

Highlights

  • Neutrons produced from D-D and D-T reactions carry the information about the kinematic state of fusion fuels in plasmas

  • For studying the fast ion behavioursIn order to advance our knowledge on the fast ion behaviour in the helical fusion plasmas, a new advanced time-of-flight neutron spectrometer based on the TOFED

  • The defined Large Helical Device (LHD)-TOFED is expected to be installed in the basement under the LHD hall, and shares one of the collimators belonged belonging to the middle channel of the vertical neutron camera, with a view line that passes going through the a concrete shielding

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Summary

INTRODUCTION

Neutrons produced from D-D and D-T reactions carry the information about the kinematic state of fusion fuels in plasmas. Among magnetic confined fusion devices like tokamaks, the neutron diagnostics have been widely adopted. For studying the fast ion behavioursIn order to advance our knowledge on the fast ion behaviour in the helical fusion plasmas, a new advanced time-of-flight neutron spectrometer based on the TOFED Enhanced Diagnostics) concept is projected towill be developed at the LHD, which will and it will be the first advanced neutron spectrometer for the a helical/stellarator plasmas. It will be an attractive application of the TOFED-type neutron spectrometer at the LHD if this new instrument can appropriately respond to both DDN and TBN from the helical fusion plasmas.

TIME-OF-FLIGHT PRINCEPLEPRINCIPLE
Data Acquisition
Line of sight
Response to DDN and TBN
CONCLUSION
Findings
Methods
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