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Variational approach to radiofrequency waves in magnetic fusion devices

机译:磁聚变设备中射频波的变分方法

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Magnetic fusion plasmas feature two major classes of low frequency electromagnetic oscillations: waves in the ion cyclotron range of frequencies (ICRFs) constitute a well established method employed for plasma heating and current drive, whereas waves in the Alfven range of frequencies naturally occur in the form of modes in close interaction with fast particles. The propagation of these waves is characterized by significant space-dispersion, making it necessary to incorporate non-local effects in the global kinetic full-wave codes which are often employed for their simulation. We present here a variational approach to this problem, which has the advantage of providing a common framework to the wave calculation and to the quasilinear response description. Two important points are discussed: firstly, we show that the irreversible part of the power transferred from the wave to the plasma particles is directly available and does not require an explicit evaluation of the kinetic flux; secondly, it is demonstrated that the symmetry of the obtained plasma functional ensures that these energy transfers are described in a consistent fashion, regardless of the level of approximation employed to evaluate the particle Hamiltonian. Finally, quasi-local, finite Larmor radius expressions are derived in the framework of this formalism and implemented in a new multi-dimensional full-wave code, named eve, which is employed to analyse two ICRF heating scenarios for ITER.
机译:磁聚变等离子体具有两大类低频电磁振荡:离子回旋频率范围(ICRF)中的波构成了用于等离子体加热和电流驱动的公认方法,而Alfven频率范围中的波自然以与快速粒子紧密交互的模式集合这些波的传播具有明显的空间分散特征,因此有必要将非局部效应纳入通常用于其模拟的整体动力学全波代码中。在这里,我们为这个问题提供了一种变分方法,其优点是为波浪计算和准线性响应描述提供了一个通用框架。讨论了两个重要的观点:首先,我们表明从波传递到等离子体粒子的功率的不可逆部分是直接可用的,不需要显式评估动通量。其次,证明了所获得的等离子体官能团的对称性确保了以一致的方式描述这些能量转移,而与评估粒子哈密顿量所采用的近似水平无关。最后,在这种形式主义的框架中推导了准局部有限的拉莫尔半径表达式,并在一个名为eve的新的多维全波代码中实现了该代码,该代码用于分析ITER的两种ICRF加热方案。

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