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Transport-driven Scrape-Off-Layer flows and the boundary conditions imposed at the magnetic separatrix in a tokamak plasma

机译:传输驱动的Scrape-Off-Layer流动以及在托卡马克等离子体中施加在磁性分离层上的边界条件

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Plasma profiles and flows in the low- and high-field side scrape-off-layer (SOL) regions in Alcator C-Mod are found to be remarkably sensitive to magnetic separatrix topologies (upper-, lower- and double-null) and to impose topology-dependent flow boundary conditions on the confined plasma. Near-sonic plasma flows along magnetic field lines are observed in the high-field SOL, with magnitude and direction clearly dependent on X-point location. The principal drive mechanism for the flows is a strong ballooning-like poloidal transport asymmetry: parallel flows arise so as to re-symmetrize the resulting poloidal pressure variation in the SOL. Secondary flows involving a combination of toroidal rotation and Pfirsch-Schluter ion currents are also evident. As a result of the transport-driven parallel flows, the SOL exhibits a net co-current (counter-current) volume-averaged toroidal momentum when B × nablaB is towards (away from) the X-point. Depending on the discharge conditions, flow momentum can couple across the separatrix and affect the toroidal rotation of the confined plasma. This mechanism accounts for a positive (negative) increment in central plasma co-rotation seen in L-mode discharges when B × nablaB is towards (away from) the X-point. Experiments in ion-cyclotron range-of-frequency-heated discharges suggest that topology-dependent flow boundary conditions may also play a role in the sensitivity of the L-H power threshold to X-point location: in a set of otherwise similar discharges, the L-H transition is seen to be coincident with central rotation achieving roughly the same value, independent of magnetic topology. For discharges with B × nablaB pointing away from the X-point (i.e. with the SOL flow boundary condition impeding co-current rotation), the same characteristic rotation can only be achieved with higher input power.
机译:发现Alcator C-Mod的低场和高场侧刮除层(SOL)区域中的等离子体轮廓和流动对磁分离分布(上零位,下零位和双零位)以及在受限的等离子体上施加取决于拓扑的流边界条件。在高场SOL中观察到沿磁场线的近音速等离子体流,其大小和方向明显取决于X点位置。流动的主要驱动机制是强烈的气球状极向运输不对称:出现平行流动以便重新对称化SOL中所得的极向压力变化。涉及环形旋转和Pfirsch-Schluter离子流的二次流也很明显。作为运输驱动的平行流的结果,当B×nablaB朝向X点(远离)时,SOL表现出净的并流(逆流)体积平均环形动量。取决于放电条件,流动动量可以耦合穿过分离线并影响受限等离子体的环形旋转。当B×nablaB朝向X点(远离X点)时,这种机制可解决L模式放电中中央等离子体同向旋转的正(负)增量。离子回旋加速器频率加热放电的实验表明,取决于拓扑的流边界条件也可能在LH功率阈值对X点位置的敏感性中起作用:在一组其他类似的放电中,LH可以看出,过渡与中心旋转实现了大致相同的值一致,而与磁拓扑无关。对于B×nablaB背离X点的放电(即SOL流动边界条件阻止并流旋转),只有在更高的输入功率下才能实现相同的特征旋转。

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