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Gyrokinetic Simulation of TAE in Fusion plasmas.

机译:融合血浆中TAE的运动学模拟。

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摘要

Linear gyrokinetic simulation of fusion plasmas finds a radial localization of the toroidal Alfv'en eigenmodes (TAE) due to the non-perturbative energetic particles (EP) contribution. The EP-driven TAE has a radial mode width much smaller than that predicted by the magnetohydrodynamic (MHD) theory. The TAE radial position stays around the strongest EP pressure gradients when the EP profile evolves. The non-perturbative EP contribution is also the main cause for the breaking of the radial symmetry of the ballooning mode structure and for the dependence of the TAE frequency on the toroidal mode number. These phenomena are beyond the picture of the conventional MHD theory.;Linear gyrokinetic simulation of the electron cyclotron heating (ECH) experiments on DIII-D successfully recover the TAE and RSAE. The EP profile, rather than the electron temperature, is found to be the key factor determining whether TAE or RSAE is the dominant mode in the system in our simulation.;Investigation on the nonlinear gyrokinetic simulation model reveals a missing nonlinear term which has important contributions to the zonal magnetic fields. A new fluid-electron hybrid model is proposed to keep this nonlinear term in the lowest order fluid part. Nonlinear simulation of TAE using DIII-D parameters confirms the importance of this new term for the zonal magnetic fields. It is also found that zonal structures dominated by zonal electric fields are forced driven at about twice the linear growth rate of TAE in the linear phase. The zonal flows then limit the nonlinear saturation level by tearing the eigenmode structures apart. In the nonlinear phase of the simulation, the major frequency in the system chirps down by about 30% and stays there.
机译:融合等离子体的线性运动学模拟发现,由于非微扰的高能粒子(EP)的作用,环形Alfv'en本征模(TAE)的径向定位。由EP驱动的TAE的径向模式宽度比磁流体动力学(MHD)理论预测的径向模式宽度小得多。当EP曲线演变时,TAE径向位置保持在最强的EP压力梯度附近。非扰动的EP贡献也是破坏膨胀模式结构的径向对称性以及TAE频率对环形模式数的依赖的主要原因。这些现象超出了常规MHD理论的范畴。在DIII-D上进行电子回旋加速器(ECH)实验的线性回转动力学模拟成功地回收了TAE和RSAE。我们发现,EP曲线而不是电子温度是决定系统中TAE或RSAE是主导模式的关键因素。对非线性陀螺动力学模型的研究表明,缺少非线性项具有重要贡献到地磁场。提出了一种新的流体-电子混合模型,以将该非线性项保留在最低阶的流体部分中。使用DIII-D参数对TAE进行非线性模拟,证实了这一新术语对于区域磁场的重要性。还发现,在线性相中,以区域电场为主的区域结构被迫以TAE线性增长率的两倍驱动。然后,纬向流通过将本征模结构撕开来限制非线性饱和度。在仿真的非线性阶段,系统中的主频率降低约30%,并保持在那里。

著录项

  • 作者

    Wang, Zhixuan.;

  • 作者单位

    University of California, Irvine.;

  • 授予单位 University of California, Irvine.;
  • 学科 Physics Fluid and Plasma.;Physics General.
  • 学位 Ph.D.
  • 年度 2014
  • 页码 126 p.
  • 总页数 126
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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