Performance predictions of the SPARC x-ray crystal spectrometers for ion temperature and toroidal rotation measurements (doi:10.7910/DVN/XPJTK6)

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Document Description

Citation

Title:

Performance predictions of the SPARC x-ray crystal spectrometers for ion temperature and toroidal rotation measurements

Identification Number:

doi:10.7910/DVN/XPJTK6

Distributor:

Harvard Dataverse

Date of Distribution:

2025-06-09

Version:

1

Bibliographic Citation:

Perks, C.; Vezinet, D.; Rice, J.E.; Reinke, M.L., 2025, "Performance predictions of the SPARC x-ray crystal spectrometers for ion temperature and toroidal rotation measurements", https://doi.org/10.7910/DVN/XPJTK6, Harvard Dataverse, V1

Study Description

Citation

Title:

Performance predictions of the SPARC x-ray crystal spectrometers for ion temperature and toroidal rotation measurements

Identification Number:

doi:10.7910/DVN/XPJTK6

Authoring Entity:

Perks, C.; Vezinet, D.; Rice, J.E.; Reinke, M.L.

Distributor:

Harvard Dataverse

Holdings Information:

https://doi.org/10.7910/DVN/XPJTK6

Study Scope

Keywords:

Physics, atomic data, collisional-radiative modeling, cylindrically bent crystals, flexible atomic code, ion temperature, SPARC, spectral survey system, synthetic detector images, ToFu code, tomographic inversion, toroidal rotation measurements, voigt line shape, x-ray crystal spectrometer arrays, XICSRT Monte Carlo ray-tracing code

Abstract:

SPARC will be outfitted with three systems of X-ray crystal spectrometer arrays. Two of these are designed using cylindrically bent crystals to achieve high spectral-resolution for ion temperature and toroidal velocity measurements via imaging He-like Kr and Ne-like Xe. The last acts as a spectral survey system to monitor Ne-like W and nearby Hi and He-like emission from Cr, Fe, Co, Ni, Cu. Line radiation intensities are calculated using the FLEXIBLE ATOMIC CODE for atomic data and COLRADPY for collisional-radiative modeling then convoluted with a Voigt line shape. Free-free, free-bound, and two-photon continuum radiation is also included. The TOFU code is used to perform volume-of-sight integration to produce synthetic detector images. Also presented is cross-validation performed using the XICSRT Monte Carlo ray-tracing code. Ion temperature and toroidal velocity profiles are reconstructed using TOFU via tomographic inversion.

Notes:

<a href="http://library.psfc.mit.edu/catalog/reports/2020/24ja/24ja134/abstract.php">PSFC REPORT PSFC/JA-24-134</a><br /><br />This work is supported by Commonwealth Fusion Systems RPP031.<br /><br />If this record does not contain the full text, then the manuscript has been embargoed by the publisher thus restricting open access for 12 to 24 months after publication.

Methodology and Processing

Sources Statement

Data Access

Notes:

<a href="http://creativecommons.org/publicdomain/zero/1.0">CC0 1.0</a>

Other Study Description Materials

Other Study-Related Materials

Label:

24ja134_archival_manuscript.pdf

Text:

Notes:

application/pdf