SPARC Long Wavelength Diagnostics Overview

POSTER

Abstract

SPARC is a compact, high-field, D-T tokamak that is presently under construction and will be used to de-risk ARC, the high-field path to commercial fusion energy. Diagnostic systems are entering the final design stage and will be used for real-time control and to close science gaps needed to design ARC. Long Wavelength diagnostics on SPARC tokamak consist of Interferometry, core Thomson Scattering, Electron Cyclotron Emission, Edge Scanning Reflectometry, UV, visible and IR Imaging and UV and visible Spectroscopy systems. Diagnostics employ unique features in design, calibration and measurement techniques, driven by SPARC's radiation environment, high magnetic fields, high densities and high temperatures. The engineering challenges for systems include space constraints and high thermal and electromagnetic loads, long transmission lines from the port towards the laboratory (approximately 20 m), and the necessity for radiation protection of signal processing equipment. Diagnostics share midplane port plugs and laboratory spaces, emphasizing the need for efficient integration and utilization of finite space near the plasma and through the penetration wall. Given limited in-vessel access due to activation, developing in-situ diagnostic calibration techniques is crucial for success and to plan for diagnostics on ARC.

*This work was supported by Commonwealth Fusion System

Presenters

  • Valentina Nikolaeva

    • Commonwealth Fusion Systems

Authors

  • Valentina Nikolaeva

    • Commonwealth Fusion Systems
  • Mattew Silva Sa

    • Commonwealth Fusion Systems
  • Joshua Nathaniel Hawke

    • Commonwealth Fusion Systems
  • Aaron M Rosenthal

    • Commonwealth Fusion Systems
  • Elizabeth Kowalski

    • Commonwealth Fusion Systems
  • Rafael Zubieta Lupo

    • Commonwealth Fusion Systems
  • Ivana Abramovic

    • Commonwealth Fusion Systems
  • Sean Ouellet

    • Commonwealth Fusion Systems
  • Matthew Cario

    • Commonwealth Fusion Systems
  • Jessica Ilagan

    • Commonwealth Fusion Systems
  • Madison Jean

    • Commonwealth Fusion Systems
  • Mikio LaCapra

    • Commonwealth Fusion Systems
  • Dan Hickson

    • Commonwealth Fusion Systems
  • Daniel Cykman

    • Commonwealth Fusion Systems
  • Jon C Hillesheim

    • Commonwealth Fusion Systems
  • Matthew L Reinke

    • Commonwealth Fusion Systems
  • Ted Howell

    • Commonwealth Fusion Systems
  • Taylor Wender

    • Commonwealth Fusion Systems
  • James Irby

    • MIT Plasma Science and Fusion Center
  • Jerry W hughes@mit.edu

    • MIT Plasma Science and Fusion Center
  • Ke Yao

    • MIT Plasma Science and Fusion Center
  • Yijun Lin

    • MIT PSFC
    • MIT Plasma Science and Fusion Center
  • Daniel Hachmeister

    • MIT Plasma Science and Fusion Center
  • Nathan T Howard

    • MIT PSFC
    • MIT
    • Massachusetts Institute of Technology MIT
    • MIT Plasma Science and Fusion Center
    • Massachusetts Institute of Technology
  • Amanda E Hubbard

    • MIT Plasma Science and Fusion Center
  • Brian Beachnau

    • Sensitic Technologies
  • Keith Coste

    • Sensitic Technologies
  • Kent Wallace

    • Sensitic Technologies
  • John M Rodgers

    • Sensitic Technologies
  • Jim Post

    • Sensitic Technologies