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L-H transition dynamics in fluid turbulence simulations with neoclassical force balance

机译:具有新古典力平衡的流体湍流模拟中的L-H过渡动力学

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Spontaneous transport barrier generation at the edge of a magnetically confined plasma is reproduced in flux-driven three-dimensional fluid simulations of electrostatic turbulence. Here, the role on the radial electric field of collisional friction between trapped and passing particles is shown to be the key ingredient. Especially, accounting for the self-consistent and precise dependence of the friction term on the actual plasma temperature allows for the triggering of a transport barrier, provided that the input power exceeds some threshold. In addition, the barrier is found to experience quasi-periodic relaxation events, reminiscent of edge localised modes. These results put forward a possible key player, namely, neoclassical physics via radial force balance, for the low- to high-confinement regime transition observed in most of controlled fusion devices.
机译:在磁约束等离子体的边缘处自发的传输势垒产生在静电湍流的通量驱动的三维流体模拟中得以再现。在这里,被捕获的粒子和通过的粒子之间的碰撞摩擦在径向电场上的作用被证明是关键因素。特别地,考虑到摩擦项对实际等离子体温度的自洽和精确依赖性,只要输入功率超过某个阈值,就可以触发传输势垒。另外,发现该障碍经历了准周期性的松弛事件,使人联想到边缘局部模式。这些结果提出了一个可能的关键角色,即通过径向力平衡实现的新古典物理学,从而实现了在大多数受控聚变设备中观察到的从低到高约束状态的转变。

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