Bulletin of the American Physical Society
60th Annual Meeting of the APS Division of Plasma Physics
Volume 63, Number 11
Monday–Friday, November 5–9, 2018; Portland, Oregon
Session UP11: Poster Session VIII: MST; DIII-D Tokamak; SPARC, C-Mod, and High Field Tokamaks; HBT-EP; Transport and LPI in ICF Plasmas, Hydrodynamic Instability; HEDP Posters; Space and Astrophysical Plasmas (2:00pm-5:00pm)
Thursday, November 8, 2018
OCC
Room: Exhibit Hall A1&A
Abstract ID: BAPS.2018.DPP.UP11.70
Abstract: UP11.00070 : Diagnostics for a SPARC-like, high-field, compact, net-energy tokamak
Presenter:
Anne White
(Massachusetts Inst of Tech-MIT)
Authors:
Anne White
(Massachusetts Inst of Tech-MIT)
Sean B Ballinger
(Massachusetts Inst of Tech-MIT)
Alexander J Creely
(Massachusetts Inst of Tech-MIT)
Samuel Frank
(Massachusetts Inst of Tech-MIT)
Adam Q Kuang
(Massachusetts Inst of Tech-MIT)
Bryan Linehan
(Massachusetts Inst of Tech-MIT)
William McCarthy
(Massachusetts Inst of Tech-MIT)
Lucio M Milanese
(Massachusetts Inst of Tech-MIT)
Kevin J Montes
(Massachusetts Inst of Tech-MIT)
T. Mouratidis
(Massachusetts Inst of Tech-MIT)
J. F. Picard
(Massachusetts Inst of Tech-MIT)
Pablo Rodriguez Fernandez
(Massachusetts Inst of Tech-MIT)
Aaron M Rosenthal
(Massachusetts Inst of Tech-MIT)
Alexander J Sandberg
(Massachusetts Inst of Tech-MIT)
Francesco Sciortino
(Massachusetts Inst of Tech-MIT)
Raspberry Simpson
(Massachusetts Inst of Tech-MIT)
Roy A Tinguely
(Massachusetts Inst of Tech-MIT)
Elizabeth A Tolman
(Massachusetts Inst of Tech-MIT)
Muni Zhou
(Massachusetts Inst of Tech-MIT)
Brandon Nils Sorbom
(Commonwealth Fusion Systems)
Zachary S Hartwig
(Massachusetts Inst of Tech-MIT)
James Henderson Irby
(Massachusetts Inst of Tech-MIT)
Advances in high temperature superconductor (HTS) technology have opened a path to high field, compact fusion devices, like ARC [Sorbom 2015] and SPARC [Greenwald 2018]. The MQ1 tokamak [Mumgaard 2016] is a conceptual, compact HTS tokamak (R = 1.65 m) with magnetic field on axis B = 12 T and primary mission of achieving net energy. The high magnetic field, high density, and nuclear environment from high power DT operations (Q > 3) present both challenges and opportunities to diagnose MQ1, so diagnostics supporting its mission are explored. A neutronics suite (comprising micro-fission chambers, magnetic proton recoil spectrometers, and neutron cameras) is modeled in MCNP6 with a notional tokamak geometry as well as ne and Te profiles from TSC simulations. Expected neutron signals indicate that measurements of fusion power, ion temperature, deuterium-to-tritium fuel ratio, and self-heating profile are feasible. A combination interferometer-polarimeter, using one set of CO2 and HeNe lasers, is shown to measure line-averaged density for feedback control, poloidal magnetic field for constraining magnetic reconstructions, and fluctuations of both. Additional diagnostics assessed are magnetics, passive radiation detection, x-ray imaging crystal spectroscopy, and Thomson scattering.
To cite this abstract, use the following reference: http://meetings.aps.org/link/BAPS.2018.DPP.UP11.70
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