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Main Authors: Liu, Ke, Yu, Guodong, Huang, Yuhua, Mao, Wenzhe, Xie, Yidong, Nie, Xianyi, Li, Hong, Lan, Tao, Xie, Jinlin, Ding, Weixing, Liu, Wandong, Zhuang, Ge, Zhu, Caoxiang
Format: Preprint
Published: 2024
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Online Access:https://arxiv.org/abs/2401.14604
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author Liu, Ke
Yu, Guodong
Huang, Yuhua
Mao, Wenzhe
Xie, Yidong
Nie, Xianyi
Li, Hong
Lan, Tao
Xie, Jinlin
Ding, Weixing
Liu, Wandong
Zhuang, Ge
Zhu, Caoxiang
author_facet Liu, Ke
Yu, Guodong
Huang, Yuhua
Mao, Wenzhe
Xie, Yidong
Nie, Xianyi
Li, Hong
Lan, Tao
Xie, Jinlin
Ding, Weixing
Liu, Wandong
Zhuang, Ge
Zhu, Caoxiang
contents The RFP is a toroidal magnetic configuration in which plasmas can spontaneously transform into different self-organized states. Among various states, the QSH state has a dominant component for the magnetic field and significantly improves confinement. Many theoretical and experimental efforts have investigated the transitions among different states. This paper employs the MRxMHD model to study the properties of QSH and other states. The SPEC is used to compute MHD equilibria for the KTX. The toroidal volume of KTX is partitioned into two subvolumes by an internal transport barrier. The geometry of this barrier is adjusted to achieve force balance across the interface, ensuring that the plasma in each subvolume is force-free and that magnetic helicity is conserved. By varying the parameters, we generate distinct self-organized states in KTX. Our findings highlight the crucial role of magnetic helicity in shaping these states. In states with low magnetic helicity in both subvolumes, the plasma exhibits axisymmetric behavior. With increasing core helicity, the plasma gradually transforms from an axisymmetric state to a double-axis helical state and finally to a single-helical-axis state. Elevated core magnetic helicity leads to a more pronounced dominant mode of the boundary magnetic field and a reduced core magnetic shear. This is consistent with previous experimental and numerical results in other RFP devices. We find a linear relationship between the plasma current and helicity in different self-organized states. Our findings suggest that KTX may enter the QSH state when the toroidal current reaches 0.72 MA. This study demonstrates that the stellarator equilibrium code SPEC unveils crucial RFP equilibrium properties, rendering it applicable to a broad range of RFP devices and other toroidal configurations.
format Preprint
id arxiv_https___arxiv_org_abs_2401_14604
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Effects of Magnetic Helicity on 3D Equilibria and Self-Organized States in KTX Reversed Field Pinch
Liu, Ke
Yu, Guodong
Huang, Yuhua
Mao, Wenzhe
Xie, Yidong
Nie, Xianyi
Li, Hong
Lan, Tao
Xie, Jinlin
Ding, Weixing
Liu, Wandong
Zhuang, Ge
Zhu, Caoxiang
Plasma Physics
The RFP is a toroidal magnetic configuration in which plasmas can spontaneously transform into different self-organized states. Among various states, the QSH state has a dominant component for the magnetic field and significantly improves confinement. Many theoretical and experimental efforts have investigated the transitions among different states. This paper employs the MRxMHD model to study the properties of QSH and other states. The SPEC is used to compute MHD equilibria for the KTX. The toroidal volume of KTX is partitioned into two subvolumes by an internal transport barrier. The geometry of this barrier is adjusted to achieve force balance across the interface, ensuring that the plasma in each subvolume is force-free and that magnetic helicity is conserved. By varying the parameters, we generate distinct self-organized states in KTX. Our findings highlight the crucial role of magnetic helicity in shaping these states. In states with low magnetic helicity in both subvolumes, the plasma exhibits axisymmetric behavior. With increasing core helicity, the plasma gradually transforms from an axisymmetric state to a double-axis helical state and finally to a single-helical-axis state. Elevated core magnetic helicity leads to a more pronounced dominant mode of the boundary magnetic field and a reduced core magnetic shear. This is consistent with previous experimental and numerical results in other RFP devices. We find a linear relationship between the plasma current and helicity in different self-organized states. Our findings suggest that KTX may enter the QSH state when the toroidal current reaches 0.72 MA. This study demonstrates that the stellarator equilibrium code SPEC unveils crucial RFP equilibrium properties, rendering it applicable to a broad range of RFP devices and other toroidal configurations.
title Effects of Magnetic Helicity on 3D Equilibria and Self-Organized States in KTX Reversed Field Pinch
topic Plasma Physics
url https://arxiv.org/abs/2401.14604