单管中磁流体动力流动的非模式稳定性分析

Matteo Lo Verso , Carolina Introini , Luciana Barucca , Marco Caramello , Matteo Di Prinzio , Francesca Giacobbo , Laura Savoldi , Antonio Cammi
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摘要

要在未来核聚变反应堆的坯料中实现等离子体和工作流体的控制,就必须全面了解不同磁场剖面下流体流动的稳定性。在此背景下,本研究的主要目标是研究变化的磁场剖面对通用流体流动机制的影响,该流体在核聚变反应堆内的热核等离子体和导电流体中均具有代表性。为此,本研究采用了非模态稳定性理论,对无限圆形管道中的磁流体动力学(MHD)流进行稳定性分析,以研究磁场对管道流体动力学的影响。特别是,将两种磁场剖面对一般稳定性的影响与无磁场的管道普瓦西耶流的参考情况进行了比较。首先,采用经典的模态稳定性技术研究渐近稳定性。然后,将非模态稳定性分析应用于磁流体管道流,以研究系统在受到扰动后的有限时间内的响应。傅里叶-切比雪夫-彼得罗夫-加勒金谱法用于计算与线性化系统相关的弱公式的特征值和伪谱。针对不同的扰动波数值,研究了频谱和瞬态增长对特定磁场剖面的依赖性。研究结果表明,一般来说,磁场对系统有稳定作用,这取决于所考虑的特定磁场剖面。此外,非模态稳定性分析表明,磁场的加入也会在短期内减轻扰动的影响,而这一现象仅通过模态稳定性分析是无法看到的。
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Non-modal stability analysis of magneto-hydrodynamic flow in a single pipe

A complete understanding of the stability of fluid flows under varying magnetic field profiles is imperative for achieving control of plasma and operating fluids in the blankets of future fusion reactors. In this context, the primary objective of this study is to investigate the influence of varying magnetic profiles on the flow regime of a generic fluid, which is representative of both thermonuclear plasma and conductive fluids within a nuclear fusion reactor. To this aim in this work non-modal stability theory is adopted to perform stability analysis of a magneto-hydrodynamic (MHD) flow in an infinite circular pipe in order to study the effects of the magnetic field on the fluid dynamics of the pipe flow. In particular, the effects on the general stability of two magnetic field profiles are compared with the reference case of a pipe Poiseuille flow without magnetic field. Firstly, the classic modal stability technique is employed to study asymptotical stability. Then, non-modal stability analysis is applied to magneto-hydrodynamic pipe flow to study the system's response for a finite time immediately after a perturbation. Fourier–Chebyshev Petrov–Galerkin spectral method is used to compute the eigenvalues and pseudospectra of the weak formulation associated with the linearised system. Investigations on the dependence of spectra and transient growths on the specific magnetic profiles are conducted for different values of perturbation wave numbers. The obtained results show that in general the magnetic field has an effect of stabilization on the system, which depends on the specific magnetic profile considered. In addition, the non-modal stability analysis reveals that the inclusion of the magnetic field mitigates the effects of perturbations also in the short term, a phenomenon that cannot be seen using only modal stability analysis.

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