Poloidal magnetic field reconstruction by laser-driven ion-beam trace probe in spherical tokamak

Zuyu Zhang, T. Xu, Chijie Xiao, Xianli Huang, R. He, Ruixin Yuan, Xiaoyi Yang
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Abstract

The poloidal magnetic field (B_p) plays a critical role in plasma equilibrium, confinement and transport of magnetic confinement devices. Multiple diagnostic methods are needed to complement each other to obtain a more accurate B_p profile. Recently, the laser-driven ion-beam trace probe (LITP) has been proposed as a promising tool for diagnosing B_p and radial electric field (E_r) profiles in tokamaks [Yang X Y et al 2014 Rev. Sci. Instrum. 85 11E429]. The spherical tokamak (ST) is a promising compact device with high plasma beta and naturally large elongation. However, when applying LITP to diagnosing B_p in STs, the larger B_p invalidates the linear reconstruction relationship for conventional tokamaks, necessitating the development of a nonlinear reconstruction principle tailored to STs. This novel approach employs an iterative reconstruction method based on Newton’s method to solve the nonlinear equation. Subsequently, a simulation model to reconstruct the B_p profile of STs is developed and the experimental setup of LITP is designed for EXL-50, a middle-sized ST. Simulation results of the reconstruction show that the relative errors of B_p reconstruction are mostly below 5%. Moreover, even with 5 mm measurement error on beam traces or 1 cm flux surface shape error, the average relative error of reconstruction remains below 15%, initially demonstrating the robustness of LITP in diagnosing B_p profiles in STs.
球形托卡马克中激光驱动离子束痕量探测器的极性磁场重建
极性磁场(B_p)在磁约束装置的等离子体平衡、约束和传输中起着至关重要的作用。要获得更精确的 B_p 曲线,需要多种诊断方法相互补充。最近,有人提出激光驱动离子束痕量探测器(LITP)是诊断托卡马克中 B_p 和径向电场(E_r)剖面的一种很有前途的工具[Yang X Y et al 2014 Rev. Sci. Instrum.]球形托卡马克(ST)是一种很有前途的紧凑型装置,具有高等离子体贝塔和天然的大伸长率。然而,当应用 LITP 诊断 ST 中的 B_p 时,较大的 B_p 使传统托卡马克的线性重构关系失效,因此有必要开发一种适合 ST 的非线性重构原理。这种新方法采用基于牛顿法的迭代重建方法来求解非线性方程。随后,建立了重建 ST 的 B_p 剖面的模拟模型,并为中型 ST EXL-50 设计了 LITP 实验装置。重建的模拟结果表明,B_p 重建的相对误差大多低于 5%。此外,即使存在 5 毫米的光束轨迹测量误差或 1 厘米的通量表面形状误差,重建的平均相对误差仍低于 15%,初步证明了 LITP 在诊断 ST 的 B_p 轮廓方面的鲁棒性。
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