Highest Fusion Performance without Harmful Edge Energy Bursts in Tokamak

Fuente: arXiv
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Main Authors: Kim, SangKyeun, Shousha, Ricardo, Yang, SeongMoo, Hu, Qiming, Hahn, SangHee, Jalalvand, Azarakhsh, Park, Jong-Kyu, Logan, Nikolas Christopher, Nelson, Andrew Oakleigh, Na, Yong-Su, Nazikian, Raffi, Wilcox, Robert, Hong, Rongjie, Rhodes, Terry, Paz-Soldan, Carlos, Jeon, YoungMu, Kim, MinWoo, Ko, WongHa, Lee, JongHa, Battey, Alexander, Bortolon, Alessandro, Snipes, Joseph, Kolemen, Egemen
Format: Preprint
Published: 2024
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author Kim, SangKyeun
Shousha, Ricardo
Yang, SeongMoo
Hu, Qiming
Hahn, SangHee
Jalalvand, Azarakhsh
Park, Jong-Kyu
Logan, Nikolas Christopher
Nelson, Andrew Oakleigh
Na, Yong-Su
Nazikian, Raffi
Wilcox, Robert
Hong, Rongjie
Rhodes, Terry
Paz-Soldan, Carlos
Jeon, YoungMu
Kim, MinWoo
Ko, WongHa
Lee, JongHa
Battey, Alexander
Bortolon, Alessandro
Snipes, Joseph
Kolemen, Egemen
author_facet Kim, SangKyeun
Shousha, Ricardo
Yang, SeongMoo
Hu, Qiming
Hahn, SangHee
Jalalvand, Azarakhsh
Park, Jong-Kyu
Logan, Nikolas Christopher
Nelson, Andrew Oakleigh
Na, Yong-Su
Nazikian, Raffi
Wilcox, Robert
Hong, Rongjie
Rhodes, Terry
Paz-Soldan, Carlos
Jeon, YoungMu
Kim, MinWoo
Ko, WongHa
Lee, JongHa
Battey, Alexander
Bortolon, Alessandro
Snipes, Joseph
Kolemen, Egemen
contents The path of tokamak fusion and ITER is maintaining high-performance plasma to produce sufficient fusion power. This effort is hindered by the transient energy burst arising from the instabilities at the boundary of high-confinement plasmas. The application of 3D magnetic perturbations is the method in ITER and possibly in future fusion power plants to suppress this instability and avoid energy busts damaging the device. Unfortunately, the conventional use of the 3D field in tokamaks typically leads to degraded fusion performance and an increased risk of other plasma instabilities, two severe issues for reactor implementation. In this work, we present an innovative 3D field optimization, exploiting machine learning, real-time adaptability, and multi-device capabilities to overcome these limitations. This integrated scheme is successfully deployed on DIII-D and KSTAR tokamaks, consistently achieving reactor-relevant core confinement and the highest fusion performance without triggering damaging instabilities or bursts while demonstrating ITER-relevant automated 3D optimization for the first time. This is enabled both by advances in the physics understanding of self-organized transport in the plasma edge and by advances in machine-learning technology, which is used to optimize the 3D field spectrum for automated management of a volatile and complex system. These findings establish real-time adaptive 3D field optimization as a crucial tool for ITER and future reactors to maximize fusion performance while simultaneously minimizing damage to machine components.
format Preprint
id arxiv_https___arxiv_org_abs_2405_05452
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Highest Fusion Performance without Harmful Edge Energy Bursts in Tokamak
Kim, SangKyeun
Shousha, Ricardo
Yang, SeongMoo
Hu, Qiming
Hahn, SangHee
Jalalvand, Azarakhsh
Park, Jong-Kyu
Logan, Nikolas Christopher
Nelson, Andrew Oakleigh
Na, Yong-Su
Nazikian, Raffi
Wilcox, Robert
Hong, Rongjie
Rhodes, Terry
Paz-Soldan, Carlos
Jeon, YoungMu
Kim, MinWoo
Ko, WongHa
Lee, JongHa
Battey, Alexander
Bortolon, Alessandro
Snipes, Joseph
Kolemen, Egemen
Plasma Physics
The path of tokamak fusion and ITER is maintaining high-performance plasma to produce sufficient fusion power. This effort is hindered by the transient energy burst arising from the instabilities at the boundary of high-confinement plasmas. The application of 3D magnetic perturbations is the method in ITER and possibly in future fusion power plants to suppress this instability and avoid energy busts damaging the device. Unfortunately, the conventional use of the 3D field in tokamaks typically leads to degraded fusion performance and an increased risk of other plasma instabilities, two severe issues for reactor implementation. In this work, we present an innovative 3D field optimization, exploiting machine learning, real-time adaptability, and multi-device capabilities to overcome these limitations. This integrated scheme is successfully deployed on DIII-D and KSTAR tokamaks, consistently achieving reactor-relevant core confinement and the highest fusion performance without triggering damaging instabilities or bursts while demonstrating ITER-relevant automated 3D optimization for the first time. This is enabled both by advances in the physics understanding of self-organized transport in the plasma edge and by advances in machine-learning technology, which is used to optimize the 3D field spectrum for automated management of a volatile and complex system. These findings establish real-time adaptive 3D field optimization as a crucial tool for ITER and future reactors to maximize fusion performance while simultaneously minimizing damage to machine components.
title Highest Fusion Performance without Harmful Edge Energy Bursts in Tokamak
topic Plasma Physics
url https://arxiv.org/abs/2405.05452