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Investigating ICRF Core Physics with a Hybrid Method using (delta)f Particles

机译:使用(Delta)F粒子用混合方法调查ICRF核心物理

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Particle-in-cell simulations of ICRF core physics yield a significant amount of noise that can overwhelm the low amplitude signals associated with ICRH. To overcome this noise, we employ a hybrid approach that uses a fluid model for electrons and the delta-f particle-in-cell (DFPIC) method for ions. Noise is reduced to a level well below the amplitude of the signal and time steps are permitted to go beyond the electron time scales. With this formulation we have explored minority heating scenarios in Alcator C-Mod and high harmonic heating scenarios in NSTX. We can also employ the fluid model for both electrons and ions to investigate cold plasma scenarios. Here we examine ion test particles with particular attention paid to particle paths near resonance layers. We present our technique for investigating full particle orbits from a single toroidal mode expansion.
机译:ICRF核心物理学的粒子电池模拟产生大量噪声,可以压倒与ICRH相关的低振幅信号。为了克服这种噪声,我们采用一种混合方法,其使用用于离子的电子和Δ-f粒细胞(DFPIC)方法的流体模型。噪声降低到低于信号的幅度,并且允许时间步骤超出电子时间尺度。通过这种制定,我们在NSTX中探索了Alcator C-Mod和高谐波加热方案中的少数群体加热场景。我们还可以采用电子和离子的流体模型来研究冷等离子体情景。在这里,我们研究了在谐振层附近的颗粒路径的特定注意的离子测试颗粒。我们介绍了从单个环形模式扩展中调查全粒子轨道的技术。

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