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Full orbit simulation of collisional transport of impurity ions in the MAST spherical tokamak

机译:MAST球形托卡马克中杂质离子碰撞迁移的全轨道模拟

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Transport analysis of MAST discharges indicates that collisions are an important loss mechanism in the core of a tight aspect ratio tokamak. In the strongly varying equilibrium fields of MAST many of the assumptions of drift kinetic and neoclassical theory (e.g. small plasma inverse aspect ratio and low ratio of toroidal Larmor radius to poloidal Larmor radius) are not met by all particle species and it becomes appropriate to use full orbit analysis to evaluate heat and particle fluxes. Collisional transport of impurity ions (C~(6+) and W~(20+)) has been studied using a full orbit solver, CUEBIT, to integrate the test-particle dynamics. Electromagnetic fields in MAST plasma have been modelled using the cylindrical and toroidal two-fluid codes CUTIE and CENTORI. A detailed study of the scaling of the test-particle diffusivity with collisionality in the equilibrium field reveals deviations from the standard neoclassical theory, in both the Pfirsch-Schlüter and banana regimes, and difficulties in defining a local diffusivity at low collisionalities. The effect of electric and magnetic fluctuations is also briefly addressed. It is found that field fluctuations enhance the non-diffusive nature of transport. The full orbit analysis presented here predicts levels of transport and confinement times for the examined species broadly consistent with the experimental observations.
机译:MAST放电的迁移分析表明,碰撞是长宽高比托卡马克的核心中的重要损失机制。在MAST的剧烈变化的平衡场中,并非所有粒子种类都满足漂移动力学和新古典理论的许多假设(例如,较小的等离子体反长宽比和较低的环形拉莫尔半径与多倍体拉莫尔半径之比),因此适合使用全轨道分析以评估热量和粒子通量。已经使用全轨道求解器CUEBIT研究了杂质离子(C〜(6+)和W〜(20+))的碰撞迁移,以整合测试粒子动力学。已使用圆柱和环形双流体代码CUTIE和CENTORI对MAST等离子体中的电磁场进行了建模。在平衡场中对测试粒子扩散率随碰撞性缩放的详细研究揭示了在Pfirsch-Schlüter和Banana体制下与标准新古典理论的偏差,以及在低碰撞度下定义局部扩散率的困难。电磁波动的影响也作了简要介绍。发现场的波动增强了运输的非扩散性。这里介绍的全轨道分析预测了被检查物种的运输和限制时间水平,与实验观察结果基本一致。

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