Neutron diagnostics for the physics of a high-field, compact, Q ≥ 1 tokamak
Name
1903.09479.pdf
Description
Accepted version
Size
870.88 KB
Format
Adobe PDF
Checksum (MD5)
73951f3112ac422a3e34e15838a62041
Author(s) • • • • • • • • •
Tinguely, Roy Alexander
Rosenthal, A.
Simpson, R.
Ballinger, S.
Creely, Alexander James
Frank, S.
Kuang, A. Q.
Linehan, B. L.
McCarthy, W.
Milanese, L. M.
Date Issued
June 2019
Journal
Fusion Engineering and Design
Publisher
Elsevier BV
Citation
Tinguely, R. A. et al. “Neutron diagnostics for the physics of a high-field, compact, Q ≥ 1 tokamak.” Fusion Engineering and Design, 143, (June 2019): 212-225 © 2019 The Author(s)
Version
Author's final manuscript
Abstract
Advancements in high temperature superconducting technology have opened a path toward high-field, compact fusion devices. This new parameter space introduces both opportunities and challenges for diagnosis of the plasma. This paper presents a physics review of a neutron diagnostic suite for a SPARC-like tokamak [Greenwald et al., 2018, https://doi.org/10.7910/DVN/OYYBNU]. A notional neutronics model was constructed using plasma parameters from a conceptual device, called the MQ1 (Mission Q ≥ 1) tokamak. The suite includes time-resolved micro-fission chamber (MFC) neutron flux monitors, energy-resolved radial and tangential magnetic proton recoil (MPR) neutron spectrometers, and a neutron camera system (radial and off-vertical) for spatially-resolved measurements of neutron emissivity. Geometries of the tokamak, neutron source, and diagnostics were modeled in the Monte Carlo N-Particle transport code MCNP6 to simulate expected signal and background levels of particle fluxes and energy spectra. From these, measurements of fusion power, neutron flux and fluence are feasible by the MFCs, and the number of independent measurements required for 95% confidence of a fusion gain Q ≥ 1 is assessed. The MPR spectrometer is found to consistently overpredict the ion temperature and also have a 1000× improved detection of alpha knock-on neutrons compared to previous experiments. The deuterium-tritium fuel density ratio, however, is measurable in this setup only for trace levels of tritium, with an upper limit of n T /n D ≈ 6%, motivating further diagnostic exploration. Finally, modeling suggests that in order to adequately measure the self-heating profile, the neutron camera system will require energy and pulse-shape discrimination to suppress otherwise overwhelming fluxes of low energy neutrons and gamma radiation.
MIT Department
Massachusetts Institute of Technology. Plasma Science and Fusion Center
Terms of Use
Creative Commons Attribution-NonCommercial-NoDerivs License
Persistent DSpace Link
DOI of Published Version
https://doi.org/10.1016/J.FUSENGDES.2019.03.148