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Physics of the density limit in the W7-AS stellarator

机译:W7-AS恒星仪中密度极限的物理原理

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Density-limit discharges in the W7-AS stellarator, with constant line-integrated density and a duration of up to 2 s, were studied at three values of the toroidal magnetic field (B = 0.8, 1.25 and 2.5 T). The central factor governing the physics of the density limit in stellarators was demonstrated to be the decreasing net power to the plasma when the centrally peaked radiated power density profile exceeds that of the deposited power density. The process was further accelerated by the peaking of electron density under these conditions. In discharges with B = 2.5 T, simulations of the centrally peaked radiation power density profiles could be shown to be due to peaked impurity density profiles. Laser blow off measurements clearly inferred an inward pinch of the injected aluminium. These discharges had the electron density profile form found in the improved confinement H-NBI mode on W7-AS. The aim of producing steady-state discharges at the highest possible density in stellarators is naturally of special interest for reactor operation. Such a scenario has been best achieved in H-mode discharges, in which ELMs restricted the impurity influx to the plasma and an equilibrium in the plasma parameters with suitably low radiation power levels was possible. A density scan in ECRH discharges highlights the need to control impurity sources and choose electron densities well below the density limit in order that steady-state operation can be attempted in discharges without ELMs. A simple model of bulk radiation predicted that the limiting density should depend on the square root of heating power and this was experimentally confirmed. The magnetic field scaling of the limiting density found experimentally in this simple model will partly depend on the term concerning the radial profile of the impurity density, which in turn is a function of the diffusion coefficient and inward pinch of the impurity ions. Theoretical studies have shown that an assumption about the B dependence of the thermal conductivity leads to density limit scaling laws with an explicit B dependence. [References: 32]
机译:在环形磁场的三个值(B = 0.8、1.25和2.5 T)下,研究了W7-AS恒星器中的密度极限放电,具有恒定的线积分密度,持续时间长达2 s。当中心峰值辐射功率密度分布超过沉积功率密度的分布时,控制恒星器中密度极限的物理学的中心因素被证明是对等离子体的净功率下降。在这些条件下,电子密度达到峰值将进一步加快该过程。在B = 2.5 T的放电中,中央峰值辐射功率密度分布图的模拟可能显示为峰值杂质浓度分布图。激光吹散测量清楚地推断出所注入的铝向内收缩。这些放电具有在W7-AS上改进的限制H-NBI模式下发现的电子密度分布形式。自然而然地,在反应堆操作中特别关注在恒速器中以最高密度产生稳态排放物的目的。在H模式放电中最好地实现了这种情况,在这种模式下,ELM将杂质流入限制在等离子体中,并且可以在适当降低辐射功率的情况下实现等离子体参数的平衡。 ECRH放电中的密度扫描突出显示了需要控制杂质源并选择远低于密度极限的电子密度,以便可以在没有ELM的放电中尝试稳态操作的需求。一个简单的体辐射模型预测极限密度应取决于加热功率的平方根,并已通过实验证实。在此简单模型中通过实验发现的极限密度的磁场缩放将部分取决于与杂质密度的径向分布有关的术语,该术语又是杂质离子的扩散系数和向内收缩的函数。理论研究表明,关于热导率的B依赖性的假设导致具有显着的B依赖性的密度极限比例定律。 [参考:32]

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