The separatrix operational space of next-step fusion experiments: From ASDEX Upgrade data to SPARC scenarios

Fuente: arXiv
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Main Authors: Eich, Thomas, Body, Thomas, Faitsch, Michael, Grover, Ondrej, Miller, Marco Andres, Manz, Peter, Looby, Tom, Kuang, Adam Qingyang, Redl, Andreas, Reinke, Matt, Creely, Alex J., Battaglia, Devon, Hillesheim, Jon, Wigram, Mike, Hughes, Jerry W., team, the ASDEX Upgrade
Format: Preprint
Published: 2024
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author Eich, Thomas
Body, Thomas
Faitsch, Michael
Grover, Ondrej
Miller, Marco Andres
Manz, Peter
Looby, Tom
Kuang, Adam Qingyang
Redl, Andreas
Reinke, Matt
Creely, Alex J.
Battaglia, Devon
Hillesheim, Jon
Wigram, Mike
Hughes, Jerry W.
team, the ASDEX Upgrade
author_facet Eich, Thomas
Body, Thomas
Faitsch, Michael
Grover, Ondrej
Miller, Marco Andres
Manz, Peter
Looby, Tom
Kuang, Adam Qingyang
Redl, Andreas
Reinke, Matt
Creely, Alex J.
Battaglia, Devon
Hillesheim, Jon
Wigram, Mike
Hughes, Jerry W.
team, the ASDEX Upgrade
contents Fusion power plants require ELM-free, detached operation to prevent divertor damage and erosion. The separatrix operational space (SepOS) is proposed as a tool for identifying access to the type-I ELM-free quasi-continuous exhaust regime. In this work, we recast the SepOS framework using simple parameters and present dedicated ASDEX Upgrade discharges to demonstrate how to interpret its results. Analyzing an extended ASDEX Upgrade database consisting of 6688 individual measurements, we show that SepOS accurately describes how the H-mode boundary varies with plasma current and magnetic field strength. We then introduce a normalized SepOS framework and LH minimum scaling and show that normalized boundaries across multiple machines are nearly identical, suggesting that the normalized SepOS can be used to translate results between different machines. The LH minimum density predicted by SepOS is found to closely match an experimentally determined multi-machine scaling, which provides a further indirect validation of SepOS across multiple devices. Finally, we demonstrate how SepOS can be used predictively, identifying a viable QCE operational point for SPARC, at a separatrix density of 4e20/m3, a separatrix temperature of 156eV and an alpha-t of 0.7 - a value solidly within the QCE operational space on ASDEX Upgrade. This demonstrates how SepOS provides a concise, intuitive method for scoping ELM-free operation on next-step devices.
format Preprint
id arxiv_https___arxiv_org_abs_2407_13539
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle The separatrix operational space of next-step fusion experiments: From ASDEX Upgrade data to SPARC scenarios
Eich, Thomas
Body, Thomas
Faitsch, Michael
Grover, Ondrej
Miller, Marco Andres
Manz, Peter
Looby, Tom
Kuang, Adam Qingyang
Redl, Andreas
Reinke, Matt
Creely, Alex J.
Battaglia, Devon
Hillesheim, Jon
Wigram, Mike
Hughes, Jerry W.
team, the ASDEX Upgrade
Plasma Physics
Fusion power plants require ELM-free, detached operation to prevent divertor damage and erosion. The separatrix operational space (SepOS) is proposed as a tool for identifying access to the type-I ELM-free quasi-continuous exhaust regime. In this work, we recast the SepOS framework using simple parameters and present dedicated ASDEX Upgrade discharges to demonstrate how to interpret its results. Analyzing an extended ASDEX Upgrade database consisting of 6688 individual measurements, we show that SepOS accurately describes how the H-mode boundary varies with plasma current and magnetic field strength. We then introduce a normalized SepOS framework and LH minimum scaling and show that normalized boundaries across multiple machines are nearly identical, suggesting that the normalized SepOS can be used to translate results between different machines. The LH minimum density predicted by SepOS is found to closely match an experimentally determined multi-machine scaling, which provides a further indirect validation of SepOS across multiple devices. Finally, we demonstrate how SepOS can be used predictively, identifying a viable QCE operational point for SPARC, at a separatrix density of 4e20/m3, a separatrix temperature of 156eV and an alpha-t of 0.7 - a value solidly within the QCE operational space on ASDEX Upgrade. This demonstrates how SepOS provides a concise, intuitive method for scoping ELM-free operation on next-step devices.
title The separatrix operational space of next-step fusion experiments: From ASDEX Upgrade data to SPARC scenarios
topic Plasma Physics
url https://arxiv.org/abs/2407.13539