Modeling of particle transport, neutrals and radiation in magnetically-confined plasmas with Aurora

F. Sciortino, T. Odstrčil, A. Cavallaro, S. P. Smith, O. Meneghini, R. Reksoatmodjo, O. Linder, J. D. Lore, N. T. Howard, E. S. Marmar, S. Mordijck

Research output: Contribution to journalArticlepeer-review

15 Scopus citations

Abstract

We present Aurora, an open-source package for particle transport, neutrals and radiation modeling in magnetic confinement fusion plasmas. Aurora's modern multi-language interface enables simulations of 1.5D impurity transport within high-performance computing frameworks, particularly for the inference of particle transport coefficients. A user-friendly Python library allows simple interaction with atomic rates from the Atomic Data and Atomic Structure database as well as other sources. This enables a range of radiation predictions, both for power balance and spectroscopic analysis. We discuss here the superstaging approximation for complex ions, as a way to group charge states and reduce computational cost, demonstrating its wide applicability within the Aurora forward model and beyond. Aurora also facilitates neutral particle analysis, both from experimental spectroscopic data and other simulation codes. Leveraging Aurora's capabilities to interface SOLPS-ITER results, we demonstrate that charge exchange is unlikely to affect the total radiated power from the ITER core during high performance operation. Finally, we describe the ImpRad module in the one modeling framework for integrated task framework, developed to enable experimental analysis and transport inferences on multiple devices using Aurora.

Original languageEnglish
Article number112001
JournalPlasma Physics and Controlled Fusion
Volume63
Issue number11
DOIs
StatePublished - Nov 1 2021

Funding

FundersFunder number
Horizon 2020 Framework Programme633053

    Keywords

    • ITER
    • integrated modeling
    • neutrals
    • particle transport
    • radiation
    • spectroscopy
    • superstaging

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